diff options
| author | Linus Torvalds <torvalds@linux-foundation.org> | 2011-11-02 20:02:37 -0400 |
|---|---|---|
| committer | Linus Torvalds <torvalds@linux-foundation.org> | 2011-11-02 20:02:37 -0400 |
| commit | 43672a0784707d795556b1f93925da8b8e797d03 (patch) | |
| tree | 5c92aabd211281300f89fc2e69e9ee7e58bcc449 | |
| parent | 2380078cdb7e6d520e33dcf834e0be979d542e48 (diff) | |
| parent | 2e727c3ca1beff05f27b6207a795790f222bf8d8 (diff) | |
Merge git://git.kernel.org/pub/scm/linux/kernel/git/steve/linux-dm
* git://git.kernel.org/pub/scm/linux/kernel/git/steve/linux-dm:
dm: raid fix device status indicator when array initializing
dm log userspace: add log device dependency
dm log userspace: fix comment hyphens
dm: add thin provisioning target
dm: add persistent data library
dm: add bufio
dm: export dm get md
dm table: add immutable feature
dm table: add always writeable feature
dm table: add singleton feature
dm kcopyd: add dm_kcopyd_zero to zero an area
dm: remove superfluous smp_mb
dm: use local printk ratelimit
dm table: propagate non rotational flag
42 files changed, 12079 insertions, 37 deletions
diff --git a/Documentation/device-mapper/dm-log.txt b/Documentation/device-mapper/dm-log.txt index 994dd75475a6..c155ac569c44 100644 --- a/Documentation/device-mapper/dm-log.txt +++ b/Documentation/device-mapper/dm-log.txt | |||
| @@ -48,7 +48,7 @@ kernel and userspace, 'connector' is used as the interface for | |||
| 48 | communication. | 48 | communication. |
| 49 | 49 | ||
| 50 | There are currently two userspace log implementations that leverage this | 50 | There are currently two userspace log implementations that leverage this |
| 51 | framework - "clustered_disk" and "clustered_core". These implementations | 51 | framework - "clustered-disk" and "clustered-core". These implementations |
| 52 | provide a cluster-coherent log for shared-storage. Device-mapper mirroring | 52 | provide a cluster-coherent log for shared-storage. Device-mapper mirroring |
| 53 | can be used in a shared-storage environment when the cluster log implementations | 53 | can be used in a shared-storage environment when the cluster log implementations |
| 54 | are employed. | 54 | are employed. |
diff --git a/Documentation/device-mapper/persistent-data.txt b/Documentation/device-mapper/persistent-data.txt new file mode 100644 index 000000000000..0e5df9b04ad2 --- /dev/null +++ b/Documentation/device-mapper/persistent-data.txt | |||
| @@ -0,0 +1,84 @@ | |||
| 1 | Introduction | ||
| 2 | ============ | ||
| 3 | |||
| 4 | The more-sophisticated device-mapper targets require complex metadata | ||
| 5 | that is managed in kernel. In late 2010 we were seeing that various | ||
| 6 | different targets were rolling their own data strutures, for example: | ||
| 7 | |||
| 8 | - Mikulas Patocka's multisnap implementation | ||
| 9 | - Heinz Mauelshagen's thin provisioning target | ||
| 10 | - Another btree-based caching target posted to dm-devel | ||
| 11 | - Another multi-snapshot target based on a design of Daniel Phillips | ||
| 12 | |||
| 13 | Maintaining these data structures takes a lot of work, so if possible | ||
| 14 | we'd like to reduce the number. | ||
| 15 | |||
| 16 | The persistent-data library is an attempt to provide a re-usable | ||
| 17 | framework for people who want to store metadata in device-mapper | ||
| 18 | targets. It's currently used by the thin-provisioning target and an | ||
| 19 | upcoming hierarchical storage target. | ||
| 20 | |||
| 21 | Overview | ||
| 22 | ======== | ||
| 23 | |||
| 24 | The main documentation is in the header files which can all be found | ||
| 25 | under drivers/md/persistent-data. | ||
| 26 | |||
| 27 | The block manager | ||
| 28 | ----------------- | ||
| 29 | |||
| 30 | dm-block-manager.[hc] | ||
| 31 | |||
| 32 | This provides access to the data on disk in fixed sized-blocks. There | ||
| 33 | is a read/write locking interface to prevent concurrent accesses, and | ||
| 34 | keep data that is being used in the cache. | ||
| 35 | |||
| 36 | Clients of persistent-data are unlikely to use this directly. | ||
| 37 | |||
| 38 | The transaction manager | ||
| 39 | ----------------------- | ||
| 40 | |||
| 41 | dm-transaction-manager.[hc] | ||
| 42 | |||
| 43 | This restricts access to blocks and enforces copy-on-write semantics. | ||
| 44 | The only way you can get hold of a writable block through the | ||
| 45 | transaction manager is by shadowing an existing block (ie. doing | ||
| 46 | copy-on-write) or allocating a fresh one. Shadowing is elided within | ||
| 47 | the same transaction so performance is reasonable. The commit method | ||
| 48 | ensures that all data is flushed before it writes the superblock. | ||
| 49 | On power failure your metadata will be as it was when last committed. | ||
| 50 | |||
| 51 | The Space Maps | ||
| 52 | -------------- | ||
| 53 | |||
| 54 | dm-space-map.h | ||
| 55 | dm-space-map-metadata.[hc] | ||
| 56 | dm-space-map-disk.[hc] | ||
| 57 | |||
| 58 | On-disk data structures that keep track of reference counts of blocks. | ||
| 59 | Also acts as the allocator of new blocks. Currently two | ||
| 60 | implementations: a simpler one for managing blocks on a different | ||
| 61 | device (eg. thinly-provisioned data blocks); and one for managing | ||
| 62 | the metadata space. The latter is complicated by the need to store | ||
| 63 | its own data within the space it's managing. | ||
| 64 | |||
| 65 | The data structures | ||
| 66 | ------------------- | ||
| 67 | |||
| 68 | dm-btree.[hc] | ||
| 69 | dm-btree-remove.c | ||
| 70 | dm-btree-spine.c | ||
| 71 | dm-btree-internal.h | ||
| 72 | |||
| 73 | Currently there is only one data structure, a hierarchical btree. | ||
| 74 | There are plans to add more. For example, something with an | ||
| 75 | array-like interface would see a lot of use. | ||
| 76 | |||
| 77 | The btree is 'hierarchical' in that you can define it to be composed | ||
| 78 | of nested btrees, and take multiple keys. For example, the | ||
| 79 | thin-provisioning target uses a btree with two levels of nesting. | ||
| 80 | The first maps a device id to a mapping tree, and that in turn maps a | ||
| 81 | virtual block to a physical block. | ||
| 82 | |||
| 83 | Values stored in the btrees can have arbitrary size. Keys are always | ||
| 84 | 64bits, although nesting allows you to use multiple keys. | ||
diff --git a/Documentation/device-mapper/thin-provisioning.txt b/Documentation/device-mapper/thin-provisioning.txt new file mode 100644 index 000000000000..801d9d1cf82b --- /dev/null +++ b/Documentation/device-mapper/thin-provisioning.txt | |||
| @@ -0,0 +1,285 @@ | |||
| 1 | Introduction | ||
| 2 | ============ | ||
| 3 | |||
| 4 | This document descibes a collection of device-mapper targets that | ||
| 5 | between them implement thin-provisioning and snapshots. | ||
| 6 | |||
| 7 | The main highlight of this implementation, compared to the previous | ||
| 8 | implementation of snapshots, is that it allows many virtual devices to | ||
| 9 | be stored on the same data volume. This simplifies administration and | ||
| 10 | allows the sharing of data between volumes, thus reducing disk usage. | ||
| 11 | |||
| 12 | Another significant feature is support for an arbitrary depth of | ||
| 13 | recursive snapshots (snapshots of snapshots of snapshots ...). The | ||
| 14 | previous implementation of snapshots did this by chaining together | ||
| 15 | lookup tables, and so performance was O(depth). This new | ||
| 16 | implementation uses a single data structure to avoid this degradation | ||
| 17 | with depth. Fragmentation may still be an issue, however, in some | ||
| 18 | scenarios. | ||
| 19 | |||
| 20 | Metadata is stored on a separate device from data, giving the | ||
| 21 | administrator some freedom, for example to: | ||
| 22 | |||
| 23 | - Improve metadata resilience by storing metadata on a mirrored volume | ||
| 24 | but data on a non-mirrored one. | ||
| 25 | |||
| 26 | - Improve performance by storing the metadata on SSD. | ||
| 27 | |||
| 28 | Status | ||
| 29 | ====== | ||
| 30 | |||
| 31 | These targets are very much still in the EXPERIMENTAL state. Please | ||
| 32 | do not yet rely on them in production. But do experiment and offer us | ||
| 33 | feedback. Different use cases will have different performance | ||
| 34 | characteristics, for example due to fragmentation of the data volume. | ||
| 35 | |||
| 36 | If you find this software is not performing as expected please mail | ||
| 37 | dm-devel@redhat.com with details and we'll try our best to improve | ||
| 38 | things for you. | ||
| 39 | |||
| 40 | Userspace tools for checking and repairing the metadata are under | ||
| 41 | development. | ||
| 42 | |||
| 43 | Cookbook | ||
| 44 | ======== | ||
| 45 | |||
| 46 | This section describes some quick recipes for using thin provisioning. | ||
| 47 | They use the dmsetup program to control the device-mapper driver | ||
| 48 | directly. End users will be advised to use a higher-level volume | ||
| 49 | manager such as LVM2 once support has been added. | ||
| 50 | |||
| 51 | Pool device | ||
| 52 | ----------- | ||
| 53 | |||
| 54 | The pool device ties together the metadata volume and the data volume. | ||
| 55 | It maps I/O linearly to the data volume and updates the metadata via | ||
| 56 | two mechanisms: | ||
| 57 | |||
| 58 | - Function calls from the thin targets | ||
| 59 | |||
| 60 | - Device-mapper 'messages' from userspace which control the creation of new | ||
| 61 | virtual devices amongst other things. | ||
| 62 | |||
| 63 | Setting up a fresh pool device | ||
| 64 | ------------------------------ | ||
| 65 | |||
| 66 | Setting up a pool device requires a valid metadata device, and a | ||
| 67 | data device. If you do not have an existing metadata device you can | ||
| 68 | make one by zeroing the first 4k to indicate empty metadata. | ||
| 69 | |||
| 70 | dd if=/dev/zero of=$metadata_dev bs=4096 count=1 | ||
| 71 | |||
| 72 | The amount of metadata you need will vary according to how many blocks | ||
| 73 | are shared between thin devices (i.e. through snapshots). If you have | ||
| 74 | less sharing than average you'll need a larger-than-average metadata device. | ||
| 75 | |||
| 76 | As a guide, we suggest you calculate the number of bytes to use in the | ||
| 77 | metadata device as 48 * $data_dev_size / $data_block_size but round it up | ||
| 78 | to 2MB if the answer is smaller. The largest size supported is 16GB. | ||
| 79 | |||
| 80 | If you're creating large numbers of snapshots which are recording large | ||
| 81 | amounts of change, you may need find you need to increase this. | ||
| 82 | |||
| 83 | Reloading a pool table | ||
| 84 | ---------------------- | ||
| 85 | |||
| 86 | You may reload a pool's table, indeed this is how the pool is resized | ||
| 87 | if it runs out of space. (N.B. While specifying a different metadata | ||
| 88 | device when reloading is not forbidden at the moment, things will go | ||
| 89 | wrong if it does not route I/O to exactly the same on-disk location as | ||
| 90 | previously.) | ||
| 91 | |||
| 92 | Using an existing pool device | ||
| 93 | ----------------------------- | ||
| 94 | |||
| 95 | dmsetup create pool \ | ||
| 96 | --table "0 20971520 thin-pool $metadata_dev $data_dev \ | ||
| 97 | $data_block_size $low_water_mark" | ||
| 98 | |||
| 99 | $data_block_size gives the smallest unit of disk space that can be | ||
| 100 | allocated at a time expressed in units of 512-byte sectors. People | ||
| 101 | primarily interested in thin provisioning may want to use a value such | ||
| 102 | as 1024 (512KB). People doing lots of snapshotting may want a smaller value | ||
| 103 | such as 128 (64KB). If you are not zeroing newly-allocated data, | ||
| 104 | a larger $data_block_size in the region of 256000 (128MB) is suggested. | ||
| 105 | $data_block_size must be the same for the lifetime of the | ||
| 106 | metadata device. | ||
| 107 | |||
| 108 | $low_water_mark is expressed in blocks of size $data_block_size. If | ||
| 109 | free space on the data device drops below this level then a dm event | ||
| 110 | will be triggered which a userspace daemon should catch allowing it to | ||
| 111 | extend the pool device. Only one such event will be sent. | ||
| 112 | Resuming a device with a new table itself triggers an event so the | ||
| 113 | userspace daemon can use this to detect a situation where a new table | ||
| 114 | already exceeds the threshold. | ||
| 115 | |||
| 116 | Thin provisioning | ||
| 117 | ----------------- | ||
| 118 | |||
| 119 | i) Creating a new thinly-provisioned volume. | ||
| 120 | |||
| 121 | To create a new thinly- provisioned volume you must send a message to an | ||
| 122 | active pool device, /dev/mapper/pool in this example. | ||
| 123 | |||
| 124 | dmsetup message /dev/mapper/pool 0 "create_thin 0" | ||
| 125 | |||
| 126 | Here '0' is an identifier for the volume, a 24-bit number. It's up | ||
| 127 | to the caller to allocate and manage these identifiers. If the | ||
| 128 | identifier is already in use, the message will fail with -EEXIST. | ||
| 129 | |||
| 130 | ii) Using a thinly-provisioned volume. | ||
| 131 | |||
| 132 | Thinly-provisioned volumes are activated using the 'thin' target: | ||
| 133 | |||
| 134 | dmsetup create thin --table "0 2097152 thin /dev/mapper/pool 0" | ||
| 135 | |||
| 136 | The last parameter is the identifier for the thinp device. | ||
| 137 | |||
| 138 | Internal snapshots | ||
| 139 | ------------------ | ||
| 140 | |||
| 141 | i) Creating an internal snapshot. | ||
| 142 | |||
| 143 | Snapshots are created with another message to the pool. | ||
| 144 | |||
| 145 | N.B. If the origin device that you wish to snapshot is active, you | ||
| 146 | must suspend it before creating the snapshot to avoid corruption. | ||
| 147 | This is NOT enforced at the moment, so please be careful! | ||
| 148 | |||
| 149 | dmsetup suspend /dev/mapper/thin | ||
| 150 | dmsetup message /dev/mapper/pool 0 "create_snap 1 0" | ||
| 151 | dmsetup resume /dev/mapper/thin | ||
| 152 | |||
| 153 | Here '1' is the identifier for the volume, a 24-bit number. '0' is the | ||
| 154 | identifier for the origin device. | ||
| 155 | |||
| 156 | ii) Using an internal snapshot. | ||
| 157 | |||
| 158 | Once created, the user doesn't have to worry about any connection | ||
| 159 | between the origin and the snapshot. Indeed the snapshot is no | ||
| 160 | different from any other thinly-provisioned device and can be | ||
| 161 | snapshotted itself via the same method. It's perfectly legal to | ||
| 162 | have only one of them active, and there's no ordering requirement on | ||
| 163 | activating or removing them both. (This differs from conventional | ||
| 164 | device-mapper snapshots.) | ||
| 165 | |||
| 166 | Activate it exactly the same way as any other thinly-provisioned volume: | ||
| 167 | |||
| 168 | dmsetup create snap --table "0 2097152 thin /dev/mapper/pool 1" | ||
| 169 | |||
| 170 | Deactivation | ||
| 171 | ------------ | ||
| 172 | |||
| 173 | All devices using a pool must be deactivated before the pool itself | ||
| 174 | can be. | ||
| 175 | |||
| 176 | dmsetup remove thin | ||
| 177 | dmsetup remove snap | ||
| 178 | dmsetup remove pool | ||
| 179 | |||
| 180 | Reference | ||
| 181 | ========= | ||
| 182 | |||
| 183 | 'thin-pool' target | ||
| 184 | ------------------ | ||
| 185 | |||
| 186 | i) Constructor | ||
| 187 | |||
| 188 | thin-pool <metadata dev> <data dev> <data block size (sectors)> \ | ||
| 189 | <low water mark (blocks)> [<number of feature args> [<arg>]*] | ||
| 190 | |||
| 191 | Optional feature arguments: | ||
| 192 | - 'skip_block_zeroing': skips the zeroing of newly-provisioned blocks. | ||
| 193 | |||
| 194 | Data block size must be between 64KB (128 sectors) and 1GB | ||
| 195 | (2097152 sectors) inclusive. | ||
| 196 | |||
| 197 | |||
| 198 | ii) Status | ||
| 199 | |||
| 200 | <transaction id> <used metadata blocks>/<total metadata blocks> | ||
| 201 | <used data blocks>/<total data blocks> <held metadata root> | ||
| 202 | |||
| 203 | |||
| 204 | transaction id: | ||
| 205 | A 64-bit number used by userspace to help synchronise with metadata | ||
| 206 | from volume managers. | ||
| 207 | |||
| 208 | used data blocks / total data blocks | ||
| 209 | If the number of free blocks drops below the pool's low water mark a | ||
| 210 | dm event will be sent to userspace. This event is edge-triggered and | ||
| 211 | it will occur only once after each resume so volume manager writers | ||
| 212 | should register for the event and then check the target's status. | ||
| 213 | |||
| 214 | held metadata root: | ||
| 215 | The location, in sectors, of the metadata root that has been | ||
| 216 | 'held' for userspace read access. '-' indicates there is no | ||
| 217 | held root. This feature is not yet implemented so '-' is | ||
| 218 | always returned. | ||
| 219 | |||
| 220 | iii) Messages | ||
| 221 | |||
| 222 | create_thin <dev id> | ||
| 223 | |||
| 224 | Create a new thinly-provisioned device. | ||
| 225 | <dev id> is an arbitrary unique 24-bit identifier chosen by | ||
| 226 | the caller. | ||
| 227 | |||
| 228 | create_snap <dev id> <origin id> | ||
| 229 | |||
| 230 | Create a new snapshot of another thinly-provisioned device. | ||
| 231 | <dev id> is an arbitrary unique 24-bit identifier chosen by | ||
| 232 | the caller. | ||
| 233 | <origin id> is the identifier of the thinly-provisioned device | ||
| 234 | of which the new device will be a snapshot. | ||
| 235 | |||
| 236 | delete <dev id> | ||
| 237 | |||
| 238 | Deletes a thin device. Irreversible. | ||
| 239 | |||
| 240 | trim <dev id> <new size in sectors> | ||
| 241 | |||
| 242 | Delete mappings from the end of a thin device. Irreversible. | ||
| 243 | You might want to use this if you're reducing the size of | ||
| 244 | your thinly-provisioned device. In many cases, due to the | ||
| 245 | sharing of blocks between devices, it is not possible to | ||
| 246 | determine in advance how much space 'trim' will release. (In | ||
| 247 | future a userspace tool might be able to perform this | ||
| 248 | calculation.) | ||
| 249 | |||
| 250 | set_transaction_id <current id> <new id> | ||
| 251 | |||
| 252 | Userland volume managers, such as LVM, need a way to | ||
| 253 | synchronise their external metadata with the internal metadata of the | ||
| 254 | pool target. The thin-pool target offers to store an | ||
| 255 | arbitrary 64-bit transaction id and return it on the target's | ||
| 256 | status line. To avoid races you must provide what you think | ||
| 257 | the current transaction id is when you change it with this | ||
| 258 | compare-and-swap message. | ||
| 259 | |||
| 260 | 'thin' target | ||
| 261 | ------------- | ||
| 262 | |||
| 263 | i) Constructor | ||
| 264 | |||
| 265 | thin <pool dev> <dev id> | ||
| 266 | |||
| 267 | pool dev: | ||
| 268 | the thin-pool device, e.g. /dev/mapper/my_pool or 253:0 | ||
| 269 | |||
| 270 | dev id: | ||
| 271 | the internal device identifier of the device to be | ||
| 272 | activated. | ||
| 273 | |||
| 274 | The pool doesn't store any size against the thin devices. If you | ||
| 275 | load a thin target that is smaller than you've been using previously, | ||
| 276 | then you'll have no access to blocks mapped beyond the end. If you | ||
| 277 | load a target that is bigger than before, then extra blocks will be | ||
| 278 | provisioned as and when needed. | ||
| 279 | |||
| 280 | If you wish to reduce the size of your thin device and potentially | ||
| 281 | regain some space then send the 'trim' message to the pool. | ||
| 282 | |||
| 283 | ii) Status | ||
| 284 | |||
| 285 | <nr mapped sectors> <highest mapped sector> | ||
diff --git a/drivers/md/Kconfig b/drivers/md/Kconfig index f75a66e7d312..faa4741df6d3 100644 --- a/drivers/md/Kconfig +++ b/drivers/md/Kconfig | |||
| @@ -208,6 +208,16 @@ config DM_DEBUG | |||
| 208 | 208 | ||
| 209 | If unsure, say N. | 209 | If unsure, say N. |
| 210 | 210 | ||
| 211 | config DM_BUFIO | ||
| 212 | tristate | ||
| 213 | depends on BLK_DEV_DM && EXPERIMENTAL | ||
| 214 | ---help--- | ||
| 215 | This interface allows you to do buffered I/O on a device and acts | ||
| 216 | as a cache, holding recently-read blocks in memory and performing | ||
| 217 | delayed writes. | ||
| 218 | |||
| 219 | source "drivers/md/persistent-data/Kconfig" | ||
| 220 | |||
| 211 | config DM_CRYPT | 221 | config DM_CRYPT |
| 212 | tristate "Crypt target support" | 222 | tristate "Crypt target support" |
| 213 | depends on BLK_DEV_DM | 223 | depends on BLK_DEV_DM |
| @@ -233,6 +243,32 @@ config DM_SNAPSHOT | |||
| 233 | ---help--- | 243 | ---help--- |
| 234 | Allow volume managers to take writable snapshots of a device. | 244 | Allow volume managers to take writable snapshots of a device. |
| 235 | 245 | ||
| 246 | config DM_THIN_PROVISIONING | ||
| 247 | tristate "Thin provisioning target (EXPERIMENTAL)" | ||
| 248 | depends on BLK_DEV_DM && EXPERIMENTAL | ||
| 249 | select DM_PERSISTENT_DATA | ||
| 250 | ---help--- | ||
| 251 | Provides thin provisioning and snapshots that share a data store. | ||
| 252 | |||
| 253 | config DM_DEBUG_BLOCK_STACK_TRACING | ||
| 254 | boolean "Keep stack trace of thin provisioning block lock holders" | ||
| 255 | depends on STACKTRACE_SUPPORT && DM_THIN_PROVISIONING | ||
| 256 | select STACKTRACE | ||
| 257 | ---help--- | ||
| 258 | Enable this for messages that may help debug problems with the | ||
| 259 | block manager locking used by thin provisioning. | ||
| 260 | |||
| 261 | If unsure, say N. | ||
| 262 | |||
| 263 | config DM_DEBUG_SPACE_MAPS | ||
| 264 | boolean "Extra validation for thin provisioning space maps" | ||
| 265 | depends on DM_THIN_PROVISIONING | ||
| 266 | ---help--- | ||
| 267 | Enable this for messages that may help debug problems with the | ||
| 268 | space maps used by thin provisioning. | ||
| 269 | |||
| 270 | If unsure, say N. | ||
| 271 | |||
| 236 | config DM_MIRROR | 272 | config DM_MIRROR |
| 237 | tristate "Mirror target" | 273 | tristate "Mirror target" |
| 238 | depends on BLK_DEV_DM | 274 | depends on BLK_DEV_DM |
diff --git a/drivers/md/Makefile b/drivers/md/Makefile index 448838b1f92a..046860c7a166 100644 --- a/drivers/md/Makefile +++ b/drivers/md/Makefile | |||
| @@ -10,6 +10,7 @@ dm-snapshot-y += dm-snap.o dm-exception-store.o dm-snap-transient.o \ | |||
| 10 | dm-mirror-y += dm-raid1.o | 10 | dm-mirror-y += dm-raid1.o |
| 11 | dm-log-userspace-y \ | 11 | dm-log-userspace-y \ |
| 12 | += dm-log-userspace-base.o dm-log-userspace-transfer.o | 12 | += dm-log-userspace-base.o dm-log-userspace-transfer.o |
| 13 | dm-thin-pool-y += dm-thin.o dm-thin-metadata.o | ||
| 13 | md-mod-y += md.o bitmap.o | 14 | md-mod-y += md.o bitmap.o |
| 14 | raid456-y += raid5.o | 15 | raid456-y += raid5.o |
| 15 | 16 | ||
| @@ -27,6 +28,7 @@ obj-$(CONFIG_MD_MULTIPATH) += multipath.o | |||
| 27 | obj-$(CONFIG_MD_FAULTY) += faulty.o | 28 | obj-$(CONFIG_MD_FAULTY) += faulty.o |
| 28 | obj-$(CONFIG_BLK_DEV_MD) += md-mod.o | 29 | obj-$(CONFIG_BLK_DEV_MD) += md-mod.o |
| 29 | obj-$(CONFIG_BLK_DEV_DM) += dm-mod.o | 30 | obj-$(CONFIG_BLK_DEV_DM) += dm-mod.o |
| 31 | obj-$(CONFIG_DM_BUFIO) += dm-bufio.o | ||
| 30 | obj-$(CONFIG_DM_CRYPT) += dm-crypt.o | 32 | obj-$(CONFIG_DM_CRYPT) += dm-crypt.o |
| 31 | obj-$(CONFIG_DM_DELAY) += dm-delay.o | 33 | obj-$(CONFIG_DM_DELAY) += dm-delay.o |
| 32 | obj-$(CONFIG_DM_FLAKEY) += dm-flakey.o | 34 | obj-$(CONFIG_DM_FLAKEY) += dm-flakey.o |
| @@ -34,10 +36,12 @@ obj-$(CONFIG_DM_MULTIPATH) += dm-multipath.o dm-round-robin.o | |||
| 34 | obj-$(CONFIG_DM_MULTIPATH_QL) += dm-queue-length.o | 36 | obj-$(CONFIG_DM_MULTIPATH_QL) += dm-queue-length.o |
| 35 | obj-$(CONFIG_DM_MULTIPATH_ST) += dm-service-time.o | 37 | obj-$(CONFIG_DM_MULTIPATH_ST) += dm-service-time.o |
| 36 | obj-$(CONFIG_DM_SNAPSHOT) += dm-snapshot.o | 38 | obj-$(CONFIG_DM_SNAPSHOT) += dm-snapshot.o |
| 39 | obj-$(CONFIG_DM_PERSISTENT_DATA) += persistent-data/ | ||
| 37 | obj-$(CONFIG_DM_MIRROR) += dm-mirror.o dm-log.o dm-region-hash.o | 40 | obj-$(CONFIG_DM_MIRROR) += dm-mirror.o dm-log.o dm-region-hash.o |
| 38 | obj-$(CONFIG_DM_LOG_USERSPACE) += dm-log-userspace.o | 41 | obj-$(CONFIG_DM_LOG_USERSPACE) += dm-log-userspace.o |
| 39 | obj-$(CONFIG_DM_ZERO) += dm-zero.o | 42 | obj-$(CONFIG_DM_ZERO) += dm-zero.o |
| 40 | obj-$(CONFIG_DM_RAID) += dm-raid.o | 43 | obj-$(CONFIG_DM_RAID) += dm-raid.o |
| 44 | obj-$(CONFIG_DM_THIN_PROVISIONING) += dm-thin-pool.o | ||
| 41 | 45 | ||
| 42 | ifeq ($(CONFIG_DM_UEVENT),y) | 46 | ifeq ($(CONFIG_DM_UEVENT),y) |
| 43 | dm-mod-objs += dm-uevent.o | 47 | dm-mod-objs += dm-uevent.o |
diff --git a/drivers/md/dm-bufio.c b/drivers/md/dm-bufio.c new file mode 100644 index 000000000000..cb246667dd52 --- /dev/null +++ b/drivers/md/dm-bufio.c | |||
| @@ -0,0 +1,1699 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2009-2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * Author: Mikulas Patocka <mpatocka@redhat.com> | ||
| 5 | * | ||
| 6 | * This file is released under the GPL. | ||
| 7 | */ | ||
| 8 | |||
| 9 | #include "dm-bufio.h" | ||
| 10 | |||
| 11 | #include <linux/device-mapper.h> | ||
| 12 | #include <linux/dm-io.h> | ||
| 13 | #include <linux/slab.h> | ||
| 14 | #include <linux/vmalloc.h> | ||
| 15 | #include <linux/version.h> | ||
| 16 | #include <linux/shrinker.h> | ||
| 17 | |||
| 18 | #define DM_MSG_PREFIX "bufio" | ||
| 19 | |||
| 20 | /* | ||
| 21 | * Memory management policy: | ||
| 22 | * Limit the number of buffers to DM_BUFIO_MEMORY_PERCENT of main memory | ||
| 23 | * or DM_BUFIO_VMALLOC_PERCENT of vmalloc memory (whichever is lower). | ||
| 24 | * Always allocate at least DM_BUFIO_MIN_BUFFERS buffers. | ||
| 25 | * Start background writeback when there are DM_BUFIO_WRITEBACK_PERCENT | ||
| 26 | * dirty buffers. | ||
| 27 | */ | ||
| 28 | #define DM_BUFIO_MIN_BUFFERS 8 | ||
| 29 | |||
| 30 | #define DM_BUFIO_MEMORY_PERCENT 2 | ||
| 31 | #define DM_BUFIO_VMALLOC_PERCENT 25 | ||
| 32 | #define DM_BUFIO_WRITEBACK_PERCENT 75 | ||
| 33 | |||
| 34 | /* | ||
| 35 | * Check buffer ages in this interval (seconds) | ||
| 36 | */ | ||
| 37 | #define DM_BUFIO_WORK_TIMER_SECS 10 | ||
| 38 | |||
| 39 | /* | ||
| 40 | * Free buffers when they are older than this (seconds) | ||
| 41 | */ | ||
| 42 | #define DM_BUFIO_DEFAULT_AGE_SECS 60 | ||
| 43 | |||
| 44 | /* | ||
| 45 | * The number of bvec entries that are embedded directly in the buffer. | ||
| 46 | * If the chunk size is larger, dm-io is used to do the io. | ||
| 47 | */ | ||
| 48 | #define DM_BUFIO_INLINE_VECS 16 | ||
| 49 | |||
| 50 | /* | ||
| 51 | * Buffer hash | ||
| 52 | */ | ||
| 53 | #define DM_BUFIO_HASH_BITS 20 | ||
| 54 | #define DM_BUFIO_HASH(block) \ | ||
| 55 | ((((block) >> DM_BUFIO_HASH_BITS) ^ (block)) & \ | ||
| 56 | ((1 << DM_BUFIO_HASH_BITS) - 1)) | ||
| 57 | |||
| 58 | /* | ||
| 59 | * Don't try to use kmem_cache_alloc for blocks larger than this. | ||
| 60 | * For explanation, see alloc_buffer_data below. | ||
| 61 | */ | ||
| 62 | #define DM_BUFIO_BLOCK_SIZE_SLAB_LIMIT (PAGE_SIZE >> 1) | ||
| 63 | #define DM_BUFIO_BLOCK_SIZE_GFP_LIMIT (PAGE_SIZE << (MAX_ORDER - 1)) | ||
| 64 | |||
| 65 | /* | ||
| 66 | * dm_buffer->list_mode | ||
| 67 | */ | ||
| 68 | #define LIST_CLEAN 0 | ||
| 69 | #define LIST_DIRTY 1 | ||
| 70 | #define LIST_SIZE 2 | ||
| 71 | |||
| 72 | /* | ||
| 73 | * Linking of buffers: | ||
| 74 | * All buffers are linked to cache_hash with their hash_list field. | ||
| 75 | * | ||
| 76 | * Clean buffers that are not being written (B_WRITING not set) | ||
| 77 | * are linked to lru[LIST_CLEAN] with their lru_list field. | ||
| 78 | * | ||
| 79 | * Dirty and clean buffers that are being written are linked to | ||
| 80 | * lru[LIST_DIRTY] with their lru_list field. When the write | ||
| 81 | * finishes, the buffer cannot be relinked immediately (because we | ||
| 82 | * are in an interrupt context and relinking requires process | ||
| 83 | * context), so some clean-not-writing buffers can be held on | ||
| 84 | * dirty_lru too. They are later added to lru in the process | ||
| 85 | * context. | ||
| 86 | */ | ||
| 87 | struct dm_bufio_client { | ||
| 88 | struct mutex lock; | ||
| 89 | |||
| 90 | struct list_head lru[LIST_SIZE]; | ||
| 91 | unsigned long n_buffers[LIST_SIZE]; | ||
| 92 | |||
| 93 | struct block_device *bdev; | ||
| 94 | unsigned block_size; | ||
| 95 | unsigned char sectors_per_block_bits; | ||
| 96 | unsigned char pages_per_block_bits; | ||
| 97 | unsigned char blocks_per_page_bits; | ||
| 98 | unsigned aux_size; | ||
| 99 | void (*alloc_callback)(struct dm_buffer *); | ||
| 100 | void (*write_callback)(struct dm_buffer *); | ||
| 101 | |||
| 102 | struct dm_io_client *dm_io; | ||
| 103 | |||
| 104 | struct list_head reserved_buffers; | ||
| 105 | unsigned need_reserved_buffers; | ||
| 106 | |||
| 107 | struct hlist_head *cache_hash; | ||
| 108 | wait_queue_head_t free_buffer_wait; | ||
| 109 | |||
| 110 | int async_write_error; | ||
| 111 | |||
| 112 | struct list_head client_list; | ||
| 113 | struct shrinker shrinker; | ||
| 114 | }; | ||
| 115 | |||
| 116 | /* | ||
| 117 | * Buffer state bits. | ||
| 118 | */ | ||
| 119 | #define B_READING 0 | ||
| 120 | #define B_WRITING 1 | ||
| 121 | #define B_DIRTY 2 | ||
| 122 | |||
| 123 | /* | ||
| 124 | * Describes how the block was allocated: | ||
| 125 | * kmem_cache_alloc(), __get_free_pages() or vmalloc(). | ||
| 126 | * See the comment at alloc_buffer_data. | ||
| 127 | */ | ||
| 128 | enum data_mode { | ||
| 129 | DATA_MODE_SLAB = 0, | ||
| 130 | DATA_MODE_GET_FREE_PAGES = 1, | ||
| 131 | DATA_MODE_VMALLOC = 2, | ||
| 132 | DATA_MODE_LIMIT = 3 | ||
| 133 | }; | ||
| 134 | |||
| 135 | struct dm_buffer { | ||
| 136 | struct hlist_node hash_list; | ||
| 137 | struct list_head lru_list; | ||
| 138 | sector_t block; | ||
| 139 | void *data; | ||
| 140 | enum data_mode data_mode; | ||
| 141 | unsigned char list_mode; /* LIST_* */ | ||
| 142 | unsigned hold_count; | ||
| 143 | int read_error; | ||
| 144 | int write_error; | ||
| 145 | unsigned long state; | ||
| 146 | unsigned long last_accessed; | ||
| 147 | struct dm_bufio_client *c; | ||
| 148 | struct bio bio; | ||
| 149 | struct bio_vec bio_vec[DM_BUFIO_INLINE_VECS]; | ||
| 150 | }; | ||
| 151 | |||
| 152 | /*----------------------------------------------------------------*/ | ||
| 153 | |||
| 154 | static struct kmem_cache *dm_bufio_caches[PAGE_SHIFT - SECTOR_SHIFT]; | ||
| 155 | static char *dm_bufio_cache_names[PAGE_SHIFT - SECTOR_SHIFT]; | ||
| 156 | |||
| 157 | static inline int dm_bufio_cache_index(struct dm_bufio_client *c) | ||
| 158 | { | ||
| 159 | unsigned ret = c->blocks_per_page_bits - 1; | ||
| 160 | |||
| 161 | BUG_ON(ret >= ARRAY_SIZE(dm_bufio_caches)); | ||
| 162 | |||
| 163 | return ret; | ||
| 164 | } | ||
| 165 | |||
| 166 | #define DM_BUFIO_CACHE(c) (dm_bufio_caches[dm_bufio_cache_index(c)]) | ||
| 167 | #define DM_BUFIO_CACHE_NAME(c) (dm_bufio_cache_names[dm_bufio_cache_index(c)]) | ||
| 168 | |||
| 169 | #define dm_bufio_in_request() (!!current->bio_list) | ||
| 170 | |||
| 171 | static void dm_bufio_lock(struct dm_bufio_client *c) | ||
| 172 | { | ||
| 173 | mutex_lock_nested(&c->lock, dm_bufio_in_request()); | ||
| 174 | } | ||
| 175 | |||
| 176 | static int dm_bufio_trylock(struct dm_bufio_client *c) | ||
| 177 | { | ||
| 178 | return mutex_trylock(&c->lock); | ||
| 179 | } | ||
| 180 | |||
| 181 | static void dm_bufio_unlock(struct dm_bufio_client *c) | ||
| 182 | { | ||
| 183 | mutex_unlock(&c->lock); | ||
| 184 | } | ||
| 185 | |||
| 186 | /* | ||
| 187 | * FIXME Move to sched.h? | ||
| 188 | */ | ||
| 189 | #ifdef CONFIG_PREEMPT_VOLUNTARY | ||
| 190 | # define dm_bufio_cond_resched() \ | ||
| 191 | do { \ | ||
| 192 | if (unlikely(need_resched())) \ | ||
| 193 | _cond_resched(); \ | ||
| 194 | } while (0) | ||
| 195 | #else | ||
| 196 | # define dm_bufio_cond_resched() do { } while (0) | ||
| 197 | #endif | ||
| 198 | |||
| 199 | /*----------------------------------------------------------------*/ | ||
| 200 | |||
| 201 | /* | ||
| 202 | * Default cache size: available memory divided by the ratio. | ||
| 203 | */ | ||
| 204 | static unsigned long dm_bufio_default_cache_size; | ||
| 205 | |||
| 206 | /* | ||
| 207 | * Total cache size set by the user. | ||
| 208 | */ | ||
| 209 | static unsigned long dm_bufio_cache_size; | ||
| 210 | |||
| 211 | /* | ||
| 212 | * A copy of dm_bufio_cache_size because dm_bufio_cache_size can change | ||
| 213 | * at any time. If it disagrees, the user has changed cache size. | ||
| 214 | */ | ||
| 215 | static unsigned long dm_bufio_cache_size_latch; | ||
| 216 | |||
| 217 | static DEFINE_SPINLOCK(param_spinlock); | ||
| 218 | |||
| 219 | /* | ||
| 220 | * Buffers are freed after this timeout | ||
| 221 | */ | ||
| 222 | static unsigned dm_bufio_max_age = DM_BUFIO_DEFAULT_AGE_SECS; | ||
| 223 | |||
| 224 | static unsigned long dm_bufio_peak_allocated; | ||
| 225 | static unsigned long dm_bufio_allocated_kmem_cache; | ||
| 226 | static unsigned long dm_bufio_allocated_get_free_pages; | ||
| 227 | static unsigned long dm_bufio_allocated_vmalloc; | ||
| 228 | static unsigned long dm_bufio_current_allocated; | ||
| 229 | |||
| 230 | /*----------------------------------------------------------------*/ | ||
| 231 | |||
| 232 | /* | ||
| 233 | * Per-client cache: dm_bufio_cache_size / dm_bufio_client_count | ||
| 234 | */ | ||
| 235 | static unsigned long dm_bufio_cache_size_per_client; | ||
| 236 | |||
| 237 | /* | ||
| 238 | * The current number of clients. | ||
| 239 | */ | ||
| 240 | static int dm_bufio_client_count; | ||
| 241 | |||
| 242 | /* | ||
| 243 | * The list of all clients. | ||
| 244 | */ | ||
| 245 | static LIST_HEAD(dm_bufio_all_clients); | ||
| 246 | |||
| 247 | /* | ||
| 248 | * This mutex protects dm_bufio_cache_size_latch, | ||
| 249 | * dm_bufio_cache_size_per_client and dm_bufio_client_count | ||
| 250 | */ | ||
| 251 | static DEFINE_MUTEX(dm_bufio_clients_lock); | ||
| 252 | |||
| 253 | /*----------------------------------------------------------------*/ | ||
| 254 | |||
| 255 | static void adjust_total_allocated(enum data_mode data_mode, long diff) | ||
| 256 | { | ||
| 257 | static unsigned long * const class_ptr[DATA_MODE_LIMIT] = { | ||
| 258 | &dm_bufio_allocated_kmem_cache, | ||
| 259 | &dm_bufio_allocated_get_free_pages, | ||
| 260 | &dm_bufio_allocated_vmalloc, | ||
| 261 | }; | ||
| 262 | |||
| 263 | spin_lock(¶m_spinlock); | ||
| 264 | |||
| 265 | *class_ptr[data_mode] += diff; | ||
| 266 | |||
| 267 | dm_bufio_current_allocated += diff; | ||
| 268 | |||
| 269 | if (dm_bufio_current_allocated > dm_bufio_peak_allocated) | ||
| 270 | dm_bufio_peak_allocated = dm_bufio_current_allocated; | ||
| 271 | |||
| 272 | spin_unlock(¶m_spinlock); | ||
| 273 | } | ||
| 274 | |||
| 275 | /* | ||
| 276 | * Change the number of clients and recalculate per-client limit. | ||
| 277 | */ | ||
| 278 | static void __cache_size_refresh(void) | ||
| 279 | { | ||
| 280 | BUG_ON(!mutex_is_locked(&dm_bufio_clients_lock)); | ||
| 281 | BUG_ON(dm_bufio_client_count < 0); | ||
| 282 | |||
| 283 | dm_bufio_cache_size_latch = dm_bufio_cache_size; | ||
| 284 | |||
| 285 | barrier(); | ||
| 286 | |||
| 287 | /* | ||
| 288 | * Use default if set to 0 and report the actual cache size used. | ||
| 289 | */ | ||
| 290 | if (!dm_bufio_cache_size_latch) { | ||
| 291 | (void)cmpxchg(&dm_bufio_cache_size, 0, | ||
| 292 | dm_bufio_default_cache_size); | ||
| 293 | dm_bufio_cache_size_latch = dm_bufio_default_cache_size; | ||
| 294 | } | ||
| 295 | |||
| 296 | dm_bufio_cache_size_per_client = dm_bufio_cache_size_latch / | ||
| 297 | (dm_bufio_client_count ? : 1); | ||
| 298 | } | ||
| 299 | |||
| 300 | /* | ||
| 301 | * Allocating buffer data. | ||
| 302 | * | ||
| 303 | * Small buffers are allocated with kmem_cache, to use space optimally. | ||
| 304 | * | ||
| 305 | * For large buffers, we choose between get_free_pages and vmalloc. | ||
| 306 | * Each has advantages and disadvantages. | ||
| 307 | * | ||
| 308 | * __get_free_pages can randomly fail if the memory is fragmented. | ||
| 309 | * __vmalloc won't randomly fail, but vmalloc space is limited (it may be | ||
| 310 | * as low as 128M) so using it for caching is not appropriate. | ||
| 311 | * | ||
| 312 | * If the allocation may fail we use __get_free_pages. Memory fragmentation | ||
| 313 | * won't have a fatal effect here, but it just causes flushes of some other | ||
| 314 | * buffers and more I/O will be performed. Don't use __get_free_pages if it | ||
| 315 | * always fails (i.e. order >= MAX_ORDER). | ||
| 316 | * | ||
| 317 | * If the allocation shouldn't fail we use __vmalloc. This is only for the | ||
| 318 | * initial reserve allocation, so there's no risk of wasting all vmalloc | ||
| 319 | * space. | ||
| 320 | */ | ||
| 321 | static void *alloc_buffer_data(struct dm_bufio_client *c, gfp_t gfp_mask, | ||
| 322 | enum data_mode *data_mode) | ||
| 323 | { | ||
| 324 | if (c->block_size <= DM_BUFIO_BLOCK_SIZE_SLAB_LIMIT) { | ||
| 325 | *data_mode = DATA_MODE_SLAB; | ||
| 326 | return kmem_cache_alloc(DM_BUFIO_CACHE(c), gfp_mask); | ||
| 327 | } | ||
| 328 | |||
| 329 | if (c->block_size <= DM_BUFIO_BLOCK_SIZE_GFP_LIMIT && | ||
| 330 | gfp_mask & __GFP_NORETRY) { | ||
| 331 | *data_mode = DATA_MODE_GET_FREE_PAGES; | ||
| 332 | return (void *)__get_free_pages(gfp_mask, | ||
| 333 | c->pages_per_block_bits); | ||
| 334 | } | ||
| 335 | |||
| 336 | *data_mode = DATA_MODE_VMALLOC; | ||
| 337 | return __vmalloc(c->block_size, gfp_mask, PAGE_KERNEL); | ||
| 338 | } | ||
| 339 | |||
| 340 | /* | ||
| 341 | * Free buffer's data. | ||
| 342 | */ | ||
| 343 | static void free_buffer_data(struct dm_bufio_client *c, | ||
| 344 | void *data, enum data_mode data_mode) | ||
| 345 | { | ||
| 346 | switch (data_mode) { | ||
| 347 | case DATA_MODE_SLAB: | ||
| 348 | kmem_cache_free(DM_BUFIO_CACHE(c), data); | ||
| 349 | break; | ||
| 350 | |||
| 351 | case DATA_MODE_GET_FREE_PAGES: | ||
| 352 | free_pages((unsigned long)data, c->pages_per_block_bits); | ||
| 353 | break; | ||
| 354 | |||
| 355 | case DATA_MODE_VMALLOC: | ||
| 356 | vfree(data); | ||
| 357 | break; | ||
| 358 | |||
| 359 | default: | ||
| 360 | DMCRIT("dm_bufio_free_buffer_data: bad data mode: %d", | ||
| 361 | data_mode); | ||
| 362 | BUG(); | ||
| 363 | } | ||
| 364 | } | ||
| 365 | |||
| 366 | /* | ||
| 367 | * Allocate buffer and its data. | ||
| 368 | */ | ||
| 369 | static struct dm_buffer *alloc_buffer(struct dm_bufio_client *c, gfp_t gfp_mask) | ||
| 370 | { | ||
| 371 | struct dm_buffer *b = kmalloc(sizeof(struct dm_buffer) + c->aux_size, | ||
| 372 | gfp_mask); | ||
| 373 | |||
| 374 | if (!b) | ||
| 375 | return NULL; | ||
| 376 | |||
| 377 | b->c = c; | ||
| 378 | |||
| 379 | b->data = alloc_buffer_data(c, gfp_mask, &b->data_mode); | ||
| 380 | if (!b->data) { | ||
| 381 | kfree(b); | ||
| 382 | return NULL; | ||
| 383 | } | ||
| 384 | |||
| 385 | adjust_total_allocated(b->data_mode, (long)c->block_size); | ||
| 386 | |||
| 387 | return b; | ||
| 388 | } | ||
| 389 | |||
| 390 | /* | ||
| 391 | * Free buffer and its data. | ||
| 392 | */ | ||
| 393 | static void free_buffer(struct dm_buffer *b) | ||
| 394 | { | ||
| 395 | struct dm_bufio_client *c = b->c; | ||
| 396 | |||
| 397 | adjust_total_allocated(b->data_mode, -(long)c->block_size); | ||
| 398 | |||
| 399 | free_buffer_data(c, b->data, b->data_mode); | ||
| 400 | kfree(b); | ||
| 401 | } | ||
| 402 | |||
| 403 | /* | ||
| 404 | * Link buffer to the hash list and clean or dirty queue. | ||
| 405 | */ | ||
| 406 | static void __link_buffer(struct dm_buffer *b, sector_t block, int dirty) | ||
| 407 | { | ||
| 408 | struct dm_bufio_client *c = b->c; | ||
| 409 | |||
| 410 | c->n_buffers[dirty]++; | ||
| 411 | b->block = block; | ||
| 412 | b->list_mode = dirty; | ||
| 413 | list_add(&b->lru_list, &c->lru[dirty]); | ||
| 414 | hlist_add_head(&b->hash_list, &c->cache_hash[DM_BUFIO_HASH(block)]); | ||
| 415 | b->last_accessed = jiffies; | ||
| 416 | } | ||
| 417 | |||
| 418 | /* | ||
| 419 | * Unlink buffer from the hash list and dirty or clean queue. | ||
| 420 | */ | ||
| 421 | static void __unlink_buffer(struct dm_buffer *b) | ||
| 422 | { | ||
| 423 | struct dm_bufio_client *c = b->c; | ||
| 424 | |||
| 425 | BUG_ON(!c->n_buffers[b->list_mode]); | ||
| 426 | |||
| 427 | c->n_buffers[b->list_mode]--; | ||
| 428 | hlist_del(&b->hash_list); | ||
| 429 | list_del(&b->lru_list); | ||
| 430 | } | ||
| 431 | |||
| 432 | /* | ||
| 433 | * Place the buffer to the head of dirty or clean LRU queue. | ||
| 434 | */ | ||
| 435 | static void __relink_lru(struct dm_buffer *b, int dirty) | ||
| 436 | { | ||
| 437 | struct dm_bufio_client *c = b->c; | ||
| 438 | |||
| 439 | BUG_ON(!c->n_buffers[b->list_mode]); | ||
| 440 | |||
| 441 | c->n_buffers[b->list_mode]--; | ||
| 442 | c->n_buffers[dirty]++; | ||
| 443 | b->list_mode = dirty; | ||
| 444 | list_del(&b->lru_list); | ||
| 445 | list_add(&b->lru_list, &c->lru[dirty]); | ||
| 446 | } | ||
| 447 | |||
| 448 | /*---------------------------------------------------------------- | ||
| 449 | * Submit I/O on the buffer. | ||
| 450 | * | ||
| 451 | * Bio interface is faster but it has some problems: | ||
| 452 | * the vector list is limited (increasing this limit increases | ||
| 453 | * memory-consumption per buffer, so it is not viable); | ||
| 454 | * | ||
| 455 | * the memory must be direct-mapped, not vmalloced; | ||
| 456 | * | ||
| 457 | * the I/O driver can reject requests spuriously if it thinks that | ||
| 458 | * the requests are too big for the device or if they cross a | ||
| 459 | * controller-defined memory boundary. | ||
| 460 | * | ||
| 461 | * If the buffer is small enough (up to DM_BUFIO_INLINE_VECS pages) and | ||
| 462 | * it is not vmalloced, try using the bio interface. | ||
| 463 | * | ||
| 464 | * If the buffer is big, if it is vmalloced or if the underlying device | ||
| 465 | * rejects the bio because it is too large, use dm-io layer to do the I/O. | ||
| 466 | * The dm-io layer splits the I/O into multiple requests, avoiding the above | ||
| 467 | * shortcomings. | ||
| 468 | *--------------------------------------------------------------*/ | ||
| 469 | |||
| 470 | /* | ||
| 471 | * dm-io completion routine. It just calls b->bio.bi_end_io, pretending | ||
| 472 | * that the request was handled directly with bio interface. | ||
| 473 | */ | ||
| 474 | static void dmio_complete(unsigned long error, void *context) | ||
| 475 | { | ||
| 476 | struct dm_buffer *b = context; | ||
| 477 | |||
| 478 | b->bio.bi_end_io(&b->bio, error ? -EIO : 0); | ||
| 479 | } | ||
| 480 | |||
| 481 | static void use_dmio(struct dm_buffer *b, int rw, sector_t block, | ||
| 482 | bio_end_io_t *end_io) | ||
| 483 | { | ||
| 484 | int r; | ||
| 485 | struct dm_io_request io_req = { | ||
| 486 | .bi_rw = rw, | ||
| 487 | .notify.fn = dmio_complete, | ||
| 488 | .notify.context = b, | ||
| 489 | .client = b->c->dm_io, | ||
| 490 | }; | ||
| 491 | struct dm_io_region region = { | ||
| 492 | .bdev = b->c->bdev, | ||
| 493 | .sector = block << b->c->sectors_per_block_bits, | ||
| 494 | .count = b->c->block_size >> SECTOR_SHIFT, | ||
| 495 | }; | ||
| 496 | |||
| 497 | if (b->data_mode != DATA_MODE_VMALLOC) { | ||
| 498 | io_req.mem.type = DM_IO_KMEM; | ||
| 499 | io_req.mem.ptr.addr = b->data; | ||
| 500 | } else { | ||
| 501 | io_req.mem.type = DM_IO_VMA; | ||
| 502 | io_req.mem.ptr.vma = b->data; | ||
| 503 | } | ||
| 504 | |||
| 505 | b->bio.bi_end_io = end_io; | ||
| 506 | |||
| 507 | r = dm_io(&io_req, 1, ®ion, NULL); | ||
| 508 | if (r) | ||
| 509 | end_io(&b->bio, r); | ||
| 510 | } | ||
| 511 | |||
| 512 | static void use_inline_bio(struct dm_buffer *b, int rw, sector_t block, | ||
| 513 | bio_end_io_t *end_io) | ||
| 514 | { | ||
| 515 | char *ptr; | ||
| 516 | int len; | ||
| 517 | |||
| 518 | bio_init(&b->bio); | ||
| 519 | b->bio.bi_io_vec = b->bio_vec; | ||
| 520 | b->bio.bi_max_vecs = DM_BUFIO_INLINE_VECS; | ||
| 521 | b->bio.bi_sector = block << b->c->sectors_per_block_bits; | ||
| 522 | b->bio.bi_bdev = b->c->bdev; | ||
| 523 | b->bio.bi_end_io = end_io; | ||
| 524 | |||
| 525 | /* | ||
| 526 | * We assume that if len >= PAGE_SIZE ptr is page-aligned. | ||
| 527 | * If len < PAGE_SIZE the buffer doesn't cross page boundary. | ||
| 528 | */ | ||
| 529 | ptr = b->data; | ||
| 530 | len = b->c->block_size; | ||
| 531 | |||
| 532 | if (len >= PAGE_SIZE) | ||
| 533 | BUG_ON((unsigned long)ptr & (PAGE_SIZE - 1)); | ||
| 534 | else | ||
| 535 | BUG_ON((unsigned long)ptr & (len - 1)); | ||
| 536 | |||
| 537 | do { | ||
| 538 | if (!bio_add_page(&b->bio, virt_to_page(ptr), | ||
| 539 | len < PAGE_SIZE ? len : PAGE_SIZE, | ||
| 540 | virt_to_phys(ptr) & (PAGE_SIZE - 1))) { | ||
| 541 | BUG_ON(b->c->block_size <= PAGE_SIZE); | ||
| 542 | use_dmio(b, rw, block, end_io); | ||
| 543 | return; | ||
| 544 | } | ||
| 545 | |||
| 546 | len -= PAGE_SIZE; | ||
| 547 | ptr += PAGE_SIZE; | ||
| 548 | } while (len > 0); | ||
| 549 | |||
| 550 | submit_bio(rw, &b->bio); | ||
| 551 | } | ||
| 552 | |||
| 553 | static void submit_io(struct dm_buffer *b, int rw, sector_t block, | ||
| 554 | bio_end_io_t *end_io) | ||
| 555 | { | ||
| 556 | if (rw == WRITE && b->c->write_callback) | ||
| 557 | b->c->write_callback(b); | ||
| 558 | |||
| 559 | if (b->c->block_size <= DM_BUFIO_INLINE_VECS * PAGE_SIZE && | ||
| 560 | b->data_mode != DATA_MODE_VMALLOC) | ||
| 561 | use_inline_bio(b, rw, block, end_io); | ||
| 562 | else | ||
| 563 | use_dmio(b, rw, block, end_io); | ||
| 564 | } | ||
| 565 | |||
| 566 | /*---------------------------------------------------------------- | ||
| 567 | * Writing dirty buffers | ||
| 568 | *--------------------------------------------------------------*/ | ||
| 569 | |||
| 570 | /* | ||
| 571 | * The endio routine for write. | ||
| 572 | * | ||
| 573 | * Set the error, clear B_WRITING bit and wake anyone who was waiting on | ||
| 574 | * it. | ||
| 575 | */ | ||
| 576 | static void write_endio(struct bio *bio, int error) | ||
| 577 | { | ||
| 578 | struct dm_buffer *b = container_of(bio, struct dm_buffer, bio); | ||
| 579 | |||
| 580 | b->write_error = error; | ||
| 581 | if (error) { | ||
| 582 | struct dm_bufio_client *c = b->c; | ||
| 583 | (void)cmpxchg(&c->async_write_error, 0, error); | ||
| 584 | } | ||
| 585 | |||
| 586 | BUG_ON(!test_bit(B_WRITING, &b->state)); | ||
| 587 | |||
| 588 | smp_mb__before_clear_bit(); | ||
| 589 | clear_bit(B_WRITING, &b->state); | ||
| 590 | smp_mb__after_clear_bit(); | ||
| 591 | |||
| 592 | wake_up_bit(&b->state, B_WRITING); | ||
| 593 | } | ||
| 594 | |||
| 595 | /* | ||
| 596 | * This function is called when wait_on_bit is actually waiting. | ||
| 597 | */ | ||
| 598 | static int do_io_schedule(void *word) | ||
| 599 | { | ||
| 600 | io_schedule(); | ||
| 601 | |||
| 602 | return 0; | ||
| 603 | } | ||
| 604 | |||
| 605 | /* | ||
| 606 | * Initiate a write on a dirty buffer, but don't wait for it. | ||
| 607 | * | ||
| 608 | * - If the buffer is not dirty, exit. | ||
| 609 | * - If there some previous write going on, wait for it to finish (we can't | ||
| 610 | * have two writes on the same buffer simultaneously). | ||
| 611 | * - Submit our write and don't wait on it. We set B_WRITING indicating | ||
| 612 | * that there is a write in progress. | ||
| 613 | */ | ||
| 614 | static void __write_dirty_buffer(struct dm_buffer *b) | ||
| 615 | { | ||
| 616 | if (!test_bit(B_DIRTY, &b->state)) | ||
| 617 | return; | ||
| 618 | |||
| 619 | clear_bit(B_DIRTY, &b->state); | ||
| 620 | wait_on_bit_lock(&b->state, B_WRITING, | ||
| 621 | do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 622 | |||
| 623 | submit_io(b, WRITE, b->block, write_endio); | ||
| 624 | } | ||
| 625 | |||
| 626 | /* | ||
| 627 | * Wait until any activity on the buffer finishes. Possibly write the | ||
| 628 | * buffer if it is dirty. When this function finishes, there is no I/O | ||
| 629 | * running on the buffer and the buffer is not dirty. | ||
| 630 | */ | ||
| 631 | static void __make_buffer_clean(struct dm_buffer *b) | ||
| 632 | { | ||
| 633 | BUG_ON(b->hold_count); | ||
| 634 | |||
| 635 | if (!b->state) /* fast case */ | ||
| 636 | return; | ||
| 637 | |||
| 638 | wait_on_bit(&b->state, B_READING, do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 639 | __write_dirty_buffer(b); | ||
| 640 | wait_on_bit(&b->state, B_WRITING, do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 641 | } | ||
| 642 | |||
| 643 | /* | ||
| 644 | * Find some buffer that is not held by anybody, clean it, unlink it and | ||
| 645 | * return it. | ||
| 646 | */ | ||
| 647 | static struct dm_buffer *__get_unclaimed_buffer(struct dm_bufio_client *c) | ||
| 648 | { | ||
| 649 | struct dm_buffer *b; | ||
| 650 | |||
| 651 | list_for_each_entry_reverse(b, &c->lru[LIST_CLEAN], lru_list) { | ||
| 652 | BUG_ON(test_bit(B_WRITING, &b->state)); | ||
| 653 | BUG_ON(test_bit(B_DIRTY, &b->state)); | ||
| 654 | |||
| 655 | if (!b->hold_count) { | ||
| 656 | __make_buffer_clean(b); | ||
| 657 | __unlink_buffer(b); | ||
| 658 | return b; | ||
| 659 | } | ||
| 660 | dm_bufio_cond_resched(); | ||
| 661 | } | ||
| 662 | |||
| 663 | list_for_each_entry_reverse(b, &c->lru[LIST_DIRTY], lru_list) { | ||
| 664 | BUG_ON(test_bit(B_READING, &b->state)); | ||
| 665 | |||
| 666 | if (!b->hold_count) { | ||
| 667 | __make_buffer_clean(b); | ||
| 668 | __unlink_buffer(b); | ||
| 669 | return b; | ||
| 670 | } | ||
| 671 | dm_bufio_cond_resched(); | ||
| 672 | } | ||
| 673 | |||
| 674 | return NULL; | ||
| 675 | } | ||
| 676 | |||
| 677 | /* | ||
| 678 | * Wait until some other threads free some buffer or release hold count on | ||
| 679 | * some buffer. | ||
| 680 | * | ||
| 681 | * This function is entered with c->lock held, drops it and regains it | ||
| 682 | * before exiting. | ||
| 683 | */ | ||
| 684 | static void __wait_for_free_buffer(struct dm_bufio_client *c) | ||
| 685 | { | ||
| 686 | DECLARE_WAITQUEUE(wait, current); | ||
| 687 | |||
| 688 | add_wait_queue(&c->free_buffer_wait, &wait); | ||
| 689 | set_task_state(current, TASK_UNINTERRUPTIBLE); | ||
| 690 | dm_bufio_unlock(c); | ||
| 691 | |||
| 692 | io_schedule(); | ||
| 693 | |||
| 694 | set_task_state(current, TASK_RUNNING); | ||
| 695 | remove_wait_queue(&c->free_buffer_wait, &wait); | ||
| 696 | |||
| 697 | dm_bufio_lock(c); | ||
| 698 | } | ||
| 699 | |||
| 700 | /* | ||
| 701 | * Allocate a new buffer. If the allocation is not possible, wait until | ||
| 702 | * some other thread frees a buffer. | ||
| 703 | * | ||
| 704 | * May drop the lock and regain it. | ||
| 705 | */ | ||
| 706 | static struct dm_buffer *__alloc_buffer_wait_no_callback(struct dm_bufio_client *c) | ||
| 707 | { | ||
| 708 | struct dm_buffer *b; | ||
| 709 | |||
| 710 | /* | ||
| 711 | * dm-bufio is resistant to allocation failures (it just keeps | ||
| 712 | * one buffer reserved in cases all the allocations fail). | ||
| 713 | * So set flags to not try too hard: | ||
| 714 | * GFP_NOIO: don't recurse into the I/O layer | ||
| 715 | * __GFP_NORETRY: don't retry and rather return failure | ||
| 716 | * __GFP_NOMEMALLOC: don't use emergency reserves | ||
| 717 | * __GFP_NOWARN: don't print a warning in case of failure | ||
| 718 | * | ||
| 719 | * For debugging, if we set the cache size to 1, no new buffers will | ||
| 720 | * be allocated. | ||
| 721 | */ | ||
| 722 | while (1) { | ||
| 723 | if (dm_bufio_cache_size_latch != 1) { | ||
| 724 | b = alloc_buffer(c, GFP_NOIO | __GFP_NORETRY | __GFP_NOMEMALLOC | __GFP_NOWARN); | ||
| 725 | if (b) | ||
| 726 | return b; | ||
| 727 | } | ||
| 728 | |||
| 729 | if (!list_empty(&c->reserved_buffers)) { | ||
| 730 | b = list_entry(c->reserved_buffers.next, | ||
| 731 | struct dm_buffer, lru_list); | ||
| 732 | list_del(&b->lru_list); | ||
| 733 | c->need_reserved_buffers++; | ||
| 734 | |||
| 735 | return b; | ||
| 736 | } | ||
| 737 | |||
| 738 | b = __get_unclaimed_buffer(c); | ||
| 739 | if (b) | ||
| 740 | return b; | ||
| 741 | |||
| 742 | __wait_for_free_buffer(c); | ||
| 743 | } | ||
| 744 | } | ||
| 745 | |||
| 746 | static struct dm_buffer *__alloc_buffer_wait(struct dm_bufio_client *c) | ||
| 747 | { | ||
| 748 | struct dm_buffer *b = __alloc_buffer_wait_no_callback(c); | ||
| 749 | |||
| 750 | if (c->alloc_callback) | ||
| 751 | c->alloc_callback(b); | ||
| 752 | |||
| 753 | return b; | ||
| 754 | } | ||
| 755 | |||
| 756 | /* | ||
| 757 | * Free a buffer and wake other threads waiting for free buffers. | ||
| 758 | */ | ||
| 759 | static void __free_buffer_wake(struct dm_buffer *b) | ||
| 760 | { | ||
| 761 | struct dm_bufio_client *c = b->c; | ||
| 762 | |||
| 763 | if (!c->need_reserved_buffers) | ||
| 764 | free_buffer(b); | ||
| 765 | else { | ||
| 766 | list_add(&b->lru_list, &c->reserved_buffers); | ||
| 767 | c->need_reserved_buffers--; | ||
| 768 | } | ||
| 769 | |||
| 770 | wake_up(&c->free_buffer_wait); | ||
| 771 | } | ||
| 772 | |||
| 773 | static void __write_dirty_buffers_async(struct dm_bufio_client *c, int no_wait) | ||
| 774 | { | ||
| 775 | struct dm_buffer *b, *tmp; | ||
| 776 | |||
| 777 | list_for_each_entry_safe_reverse(b, tmp, &c->lru[LIST_DIRTY], lru_list) { | ||
| 778 | BUG_ON(test_bit(B_READING, &b->state)); | ||
| 779 | |||
| 780 | if (!test_bit(B_DIRTY, &b->state) && | ||
| 781 | !test_bit(B_WRITING, &b->state)) { | ||
| 782 | __relink_lru(b, LIST_CLEAN); | ||
| 783 | continue; | ||
| 784 | } | ||
| 785 | |||
| 786 | if (no_wait && test_bit(B_WRITING, &b->state)) | ||
| 787 | return; | ||
| 788 | |||
| 789 | __write_dirty_buffer(b); | ||
| 790 | dm_bufio_cond_resched(); | ||
| 791 | } | ||
| 792 | } | ||
| 793 | |||
| 794 | /* | ||
| 795 | * Get writeback threshold and buffer limit for a given client. | ||
| 796 | */ | ||
| 797 | static void __get_memory_limit(struct dm_bufio_client *c, | ||
| 798 | unsigned long *threshold_buffers, | ||
| 799 | unsigned long *limit_buffers) | ||
| 800 | { | ||
| 801 | unsigned long buffers; | ||
| 802 | |||
| 803 | if (dm_bufio_cache_size != dm_bufio_cache_size_latch) { | ||
| 804 | mutex_lock(&dm_bufio_clients_lock); | ||
| 805 | __cache_size_refresh(); | ||
| 806 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 807 | } | ||
| 808 | |||
| 809 | buffers = dm_bufio_cache_size_per_client >> | ||
| 810 | (c->sectors_per_block_bits + SECTOR_SHIFT); | ||
| 811 | |||
| 812 | if (buffers < DM_BUFIO_MIN_BUFFERS) | ||
| 813 | buffers = DM_BUFIO_MIN_BUFFERS; | ||
| 814 | |||
| 815 | *limit_buffers = buffers; | ||
| 816 | *threshold_buffers = buffers * DM_BUFIO_WRITEBACK_PERCENT / 100; | ||
| 817 | } | ||
| 818 | |||
| 819 | /* | ||
| 820 | * Check if we're over watermark. | ||
| 821 | * If we are over threshold_buffers, start freeing buffers. | ||
| 822 | * If we're over "limit_buffers", block until we get under the limit. | ||
| 823 | */ | ||
| 824 | static void __check_watermark(struct dm_bufio_client *c) | ||
| 825 | { | ||
| 826 | unsigned long threshold_buffers, limit_buffers; | ||
| 827 | |||
| 828 | __get_memory_limit(c, &threshold_buffers, &limit_buffers); | ||
| 829 | |||
| 830 | while (c->n_buffers[LIST_CLEAN] + c->n_buffers[LIST_DIRTY] > | ||
| 831 | limit_buffers) { | ||
| 832 | |||
| 833 | struct dm_buffer *b = __get_unclaimed_buffer(c); | ||
| 834 | |||
| 835 | if (!b) | ||
| 836 | return; | ||
| 837 | |||
| 838 | __free_buffer_wake(b); | ||
| 839 | dm_bufio_cond_resched(); | ||
| 840 | } | ||
| 841 | |||
| 842 | if (c->n_buffers[LIST_DIRTY] > threshold_buffers) | ||
| 843 | __write_dirty_buffers_async(c, 1); | ||
| 844 | } | ||
| 845 | |||
| 846 | /* | ||
| 847 | * Find a buffer in the hash. | ||
| 848 | */ | ||
| 849 | static struct dm_buffer *__find(struct dm_bufio_client *c, sector_t block) | ||
| 850 | { | ||
| 851 | struct dm_buffer *b; | ||
| 852 | struct hlist_node *hn; | ||
| 853 | |||
| 854 | hlist_for_each_entry(b, hn, &c->cache_hash[DM_BUFIO_HASH(block)], | ||
| 855 | hash_list) { | ||
| 856 | dm_bufio_cond_resched(); | ||
| 857 | if (b->block == block) | ||
| 858 | return b; | ||
| 859 | } | ||
| 860 | |||
| 861 | return NULL; | ||
| 862 | } | ||
| 863 | |||
| 864 | /*---------------------------------------------------------------- | ||
| 865 | * Getting a buffer | ||
| 866 | *--------------------------------------------------------------*/ | ||
| 867 | |||
| 868 | enum new_flag { | ||
| 869 | NF_FRESH = 0, | ||
| 870 | NF_READ = 1, | ||
| 871 | NF_GET = 2 | ||
| 872 | }; | ||
| 873 | |||
| 874 | static struct dm_buffer *__bufio_new(struct dm_bufio_client *c, sector_t block, | ||
| 875 | enum new_flag nf, struct dm_buffer **bp, | ||
| 876 | int *need_submit) | ||
| 877 | { | ||
| 878 | struct dm_buffer *b, *new_b = NULL; | ||
| 879 | |||
| 880 | *need_submit = 0; | ||
| 881 | |||
| 882 | b = __find(c, block); | ||
| 883 | if (b) { | ||
| 884 | b->hold_count++; | ||
| 885 | __relink_lru(b, test_bit(B_DIRTY, &b->state) || | ||
| 886 | test_bit(B_WRITING, &b->state)); | ||
| 887 | return b; | ||
| 888 | } | ||
| 889 | |||
| 890 | if (nf == NF_GET) | ||
| 891 | return NULL; | ||
| 892 | |||
| 893 | new_b = __alloc_buffer_wait(c); | ||
| 894 | |||
| 895 | /* | ||
| 896 | * We've had a period where the mutex was unlocked, so need to | ||
| 897 | * recheck the hash table. | ||
| 898 | */ | ||
| 899 | b = __find(c, block); | ||
| 900 | if (b) { | ||
| 901 | __free_buffer_wake(new_b); | ||
| 902 | b->hold_count++; | ||
| 903 | __relink_lru(b, test_bit(B_DIRTY, &b->state) || | ||
| 904 | test_bit(B_WRITING, &b->state)); | ||
| 905 | return b; | ||
| 906 | } | ||
| 907 | |||
| 908 | __check_watermark(c); | ||
| 909 | |||
| 910 | b = new_b; | ||
| 911 | b->hold_count = 1; | ||
| 912 | b->read_error = 0; | ||
| 913 | b->write_error = 0; | ||
| 914 | __link_buffer(b, block, LIST_CLEAN); | ||
| 915 | |||
| 916 | if (nf == NF_FRESH) { | ||
| 917 | b->state = 0; | ||
| 918 | return b; | ||
| 919 | } | ||
| 920 | |||
| 921 | b->state = 1 << B_READING; | ||
| 922 | *need_submit = 1; | ||
| 923 | |||
| 924 | return b; | ||
| 925 | } | ||
| 926 | |||
| 927 | /* | ||
| 928 | * The endio routine for reading: set the error, clear the bit and wake up | ||
| 929 | * anyone waiting on the buffer. | ||
| 930 | */ | ||
| 931 | static void read_endio(struct bio *bio, int error) | ||
| 932 | { | ||
| 933 | struct dm_buffer *b = container_of(bio, struct dm_buffer, bio); | ||
| 934 | |||
| 935 | b->read_error = error; | ||
| 936 | |||
| 937 | BUG_ON(!test_bit(B_READING, &b->state)); | ||
| 938 | |||
| 939 | smp_mb__before_clear_bit(); | ||
| 940 | clear_bit(B_READING, &b->state); | ||
| 941 | smp_mb__after_clear_bit(); | ||
| 942 | |||
| 943 | wake_up_bit(&b->state, B_READING); | ||
| 944 | } | ||
| 945 | |||
| 946 | /* | ||
| 947 | * A common routine for dm_bufio_new and dm_bufio_read. Operation of these | ||
| 948 | * functions is similar except that dm_bufio_new doesn't read the | ||
| 949 | * buffer from the disk (assuming that the caller overwrites all the data | ||
| 950 | * and uses dm_bufio_mark_buffer_dirty to write new data back). | ||
| 951 | */ | ||
| 952 | static void *new_read(struct dm_bufio_client *c, sector_t block, | ||
| 953 | enum new_flag nf, struct dm_buffer **bp) | ||
| 954 | { | ||
| 955 | int need_submit; | ||
| 956 | struct dm_buffer *b; | ||
| 957 | |||
| 958 | dm_bufio_lock(c); | ||
| 959 | b = __bufio_new(c, block, nf, bp, &need_submit); | ||
| 960 | dm_bufio_unlock(c); | ||
| 961 | |||
| 962 | if (!b || IS_ERR(b)) | ||
| 963 | return b; | ||
| 964 | |||
| 965 | if (need_submit) | ||
| 966 | submit_io(b, READ, b->block, read_endio); | ||
| 967 | |||
| 968 | wait_on_bit(&b->state, B_READING, do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 969 | |||
| 970 | if (b->read_error) { | ||
| 971 | int error = b->read_error; | ||
| 972 | |||
| 973 | dm_bufio_release(b); | ||
| 974 | |||
| 975 | return ERR_PTR(error); | ||
| 976 | } | ||
| 977 | |||
| 978 | *bp = b; | ||
| 979 | |||
| 980 | return b->data; | ||
| 981 | } | ||
| 982 | |||
| 983 | void *dm_bufio_get(struct dm_bufio_client *c, sector_t block, | ||
| 984 | struct dm_buffer **bp) | ||
| 985 | { | ||
| 986 | return new_read(c, block, NF_GET, bp); | ||
| 987 | } | ||
| 988 | EXPORT_SYMBOL_GPL(dm_bufio_get); | ||
| 989 | |||
| 990 | void *dm_bufio_read(struct dm_bufio_client *c, sector_t block, | ||
| 991 | struct dm_buffer **bp) | ||
| 992 | { | ||
| 993 | BUG_ON(dm_bufio_in_request()); | ||
| 994 | |||
| 995 | return new_read(c, block, NF_READ, bp); | ||
| 996 | } | ||
| 997 | EXPORT_SYMBOL_GPL(dm_bufio_read); | ||
| 998 | |||
| 999 | void *dm_bufio_new(struct dm_bufio_client *c, sector_t block, | ||
| 1000 | struct dm_buffer **bp) | ||
| 1001 | { | ||
| 1002 | BUG_ON(dm_bufio_in_request()); | ||
| 1003 | |||
| 1004 | return new_read(c, block, NF_FRESH, bp); | ||
| 1005 | } | ||
| 1006 | EXPORT_SYMBOL_GPL(dm_bufio_new); | ||
| 1007 | |||
| 1008 | void dm_bufio_release(struct dm_buffer *b) | ||
| 1009 | { | ||
| 1010 | struct dm_bufio_client *c = b->c; | ||
| 1011 | |||
| 1012 | dm_bufio_lock(c); | ||
| 1013 | |||
| 1014 | BUG_ON(test_bit(B_READING, &b->state)); | ||
| 1015 | BUG_ON(!b->hold_count); | ||
| 1016 | |||
| 1017 | b->hold_count--; | ||
| 1018 | if (!b->hold_count) { | ||
| 1019 | wake_up(&c->free_buffer_wait); | ||
| 1020 | |||
| 1021 | /* | ||
| 1022 | * If there were errors on the buffer, and the buffer is not | ||
| 1023 | * to be written, free the buffer. There is no point in caching | ||
| 1024 | * invalid buffer. | ||
| 1025 | */ | ||
| 1026 | if ((b->read_error || b->write_error) && | ||
| 1027 | !test_bit(B_WRITING, &b->state) && | ||
| 1028 | !test_bit(B_DIRTY, &b->state)) { | ||
| 1029 | __unlink_buffer(b); | ||
| 1030 | __free_buffer_wake(b); | ||
| 1031 | } | ||
| 1032 | } | ||
| 1033 | |||
| 1034 | dm_bufio_unlock(c); | ||
| 1035 | } | ||
| 1036 | EXPORT_SYMBOL_GPL(dm_bufio_release); | ||
| 1037 | |||
| 1038 | void dm_bufio_mark_buffer_dirty(struct dm_buffer *b) | ||
| 1039 | { | ||
| 1040 | struct dm_bufio_client *c = b->c; | ||
| 1041 | |||
| 1042 | dm_bufio_lock(c); | ||
| 1043 | |||
| 1044 | if (!test_and_set_bit(B_DIRTY, &b->state)) | ||
| 1045 | __relink_lru(b, LIST_DIRTY); | ||
| 1046 | |||
| 1047 | dm_bufio_unlock(c); | ||
| 1048 | } | ||
| 1049 | EXPORT_SYMBOL_GPL(dm_bufio_mark_buffer_dirty); | ||
| 1050 | |||
| 1051 | void dm_bufio_write_dirty_buffers_async(struct dm_bufio_client *c) | ||
| 1052 | { | ||
| 1053 | BUG_ON(dm_bufio_in_request()); | ||
| 1054 | |||
| 1055 | dm_bufio_lock(c); | ||
| 1056 | __write_dirty_buffers_async(c, 0); | ||
| 1057 | dm_bufio_unlock(c); | ||
| 1058 | } | ||
| 1059 | EXPORT_SYMBOL_GPL(dm_bufio_write_dirty_buffers_async); | ||
| 1060 | |||
| 1061 | /* | ||
| 1062 | * For performance, it is essential that the buffers are written asynchronously | ||
| 1063 | * and simultaneously (so that the block layer can merge the writes) and then | ||
| 1064 | * waited upon. | ||
| 1065 | * | ||
| 1066 | * Finally, we flush hardware disk cache. | ||
| 1067 | */ | ||
| 1068 | int dm_bufio_write_dirty_buffers(struct dm_bufio_client *c) | ||
| 1069 | { | ||
| 1070 | int a, f; | ||
| 1071 | unsigned long buffers_processed = 0; | ||
| 1072 | struct dm_buffer *b, *tmp; | ||
| 1073 | |||
| 1074 | dm_bufio_lock(c); | ||
| 1075 | __write_dirty_buffers_async(c, 0); | ||
| 1076 | |||
| 1077 | again: | ||
| 1078 | list_for_each_entry_safe_reverse(b, tmp, &c->lru[LIST_DIRTY], lru_list) { | ||
| 1079 | int dropped_lock = 0; | ||
| 1080 | |||
| 1081 | if (buffers_processed < c->n_buffers[LIST_DIRTY]) | ||
| 1082 | buffers_processed++; | ||
| 1083 | |||
| 1084 | BUG_ON(test_bit(B_READING, &b->state)); | ||
| 1085 | |||
| 1086 | if (test_bit(B_WRITING, &b->state)) { | ||
| 1087 | if (buffers_processed < c->n_buffers[LIST_DIRTY]) { | ||
| 1088 | dropped_lock = 1; | ||
| 1089 | b->hold_count++; | ||
| 1090 | dm_bufio_unlock(c); | ||
| 1091 | wait_on_bit(&b->state, B_WRITING, | ||
| 1092 | do_io_schedule, | ||
| 1093 | TASK_UNINTERRUPTIBLE); | ||
| 1094 | dm_bufio_lock(c); | ||
| 1095 | b->hold_count--; | ||
| 1096 | } else | ||
| 1097 | wait_on_bit(&b->state, B_WRITING, | ||
| 1098 | do_io_schedule, | ||
| 1099 | TASK_UNINTERRUPTIBLE); | ||
| 1100 | } | ||
| 1101 | |||
| 1102 | if (!test_bit(B_DIRTY, &b->state) && | ||
| 1103 | !test_bit(B_WRITING, &b->state)) | ||
| 1104 | __relink_lru(b, LIST_CLEAN); | ||
| 1105 | |||
| 1106 | dm_bufio_cond_resched(); | ||
| 1107 | |||
| 1108 | /* | ||
| 1109 | * If we dropped the lock, the list is no longer consistent, | ||
| 1110 | * so we must restart the search. | ||
| 1111 | * | ||
| 1112 | * In the most common case, the buffer just processed is | ||
| 1113 | * relinked to the clean list, so we won't loop scanning the | ||
| 1114 | * same buffer again and again. | ||
| 1115 | * | ||
| 1116 | * This may livelock if there is another thread simultaneously | ||
| 1117 | * dirtying buffers, so we count the number of buffers walked | ||
| 1118 | * and if it exceeds the total number of buffers, it means that | ||
| 1119 | * someone is doing some writes simultaneously with us. In | ||
| 1120 | * this case, stop, dropping the lock. | ||
| 1121 | */ | ||
| 1122 | if (dropped_lock) | ||
| 1123 | goto again; | ||
| 1124 | } | ||
| 1125 | wake_up(&c->free_buffer_wait); | ||
| 1126 | dm_bufio_unlock(c); | ||
| 1127 | |||
| 1128 | a = xchg(&c->async_write_error, 0); | ||
| 1129 | f = dm_bufio_issue_flush(c); | ||
| 1130 | if (a) | ||
| 1131 | return a; | ||
| 1132 | |||
| 1133 | return f; | ||
| 1134 | } | ||
| 1135 | EXPORT_SYMBOL_GPL(dm_bufio_write_dirty_buffers); | ||
| 1136 | |||
| 1137 | /* | ||
| 1138 | * Use dm-io to send and empty barrier flush the device. | ||
| 1139 | */ | ||
| 1140 | int dm_bufio_issue_flush(struct dm_bufio_client *c) | ||
| 1141 | { | ||
| 1142 | struct dm_io_request io_req = { | ||
| 1143 | .bi_rw = REQ_FLUSH, | ||
| 1144 | .mem.type = DM_IO_KMEM, | ||
| 1145 | .mem.ptr.addr = NULL, | ||
| 1146 | .client = c->dm_io, | ||
| 1147 | }; | ||
| 1148 | struct dm_io_region io_reg = { | ||
| 1149 | .bdev = c->bdev, | ||
| 1150 | .sector = 0, | ||
| 1151 | .count = 0, | ||
| 1152 | }; | ||
| 1153 | |||
| 1154 | BUG_ON(dm_bufio_in_request()); | ||
| 1155 | |||
| 1156 | return dm_io(&io_req, 1, &io_reg, NULL); | ||
| 1157 | } | ||
| 1158 | EXPORT_SYMBOL_GPL(dm_bufio_issue_flush); | ||
| 1159 | |||
| 1160 | /* | ||
| 1161 | * We first delete any other buffer that may be at that new location. | ||
| 1162 | * | ||
| 1163 | * Then, we write the buffer to the original location if it was dirty. | ||
| 1164 | * | ||
| 1165 | * Then, if we are the only one who is holding the buffer, relink the buffer | ||
| 1166 | * in the hash queue for the new location. | ||
| 1167 | * | ||
| 1168 | * If there was someone else holding the buffer, we write it to the new | ||
| 1169 | * location but not relink it, because that other user needs to have the buffer | ||
| 1170 | * at the same place. | ||
| 1171 | */ | ||
| 1172 | void dm_bufio_release_move(struct dm_buffer *b, sector_t new_block) | ||
| 1173 | { | ||
| 1174 | struct dm_bufio_client *c = b->c; | ||
| 1175 | struct dm_buffer *new; | ||
| 1176 | |||
| 1177 | BUG_ON(dm_bufio_in_request()); | ||
| 1178 | |||
| 1179 | dm_bufio_lock(c); | ||
| 1180 | |||
| 1181 | retry: | ||
| 1182 | new = __find(c, new_block); | ||
| 1183 | if (new) { | ||
| 1184 | if (new->hold_count) { | ||
| 1185 | __wait_for_free_buffer(c); | ||
| 1186 | goto retry; | ||
| 1187 | } | ||
| 1188 | |||
| 1189 | /* | ||
| 1190 | * FIXME: Is there any point waiting for a write that's going | ||
| 1191 | * to be overwritten in a bit? | ||
| 1192 | */ | ||
| 1193 | __make_buffer_clean(new); | ||
| 1194 | __unlink_buffer(new); | ||
| 1195 | __free_buffer_wake(new); | ||
| 1196 | } | ||
| 1197 | |||
| 1198 | BUG_ON(!b->hold_count); | ||
| 1199 | BUG_ON(test_bit(B_READING, &b->state)); | ||
| 1200 | |||
| 1201 | __write_dirty_buffer(b); | ||
| 1202 | if (b->hold_count == 1) { | ||
| 1203 | wait_on_bit(&b->state, B_WRITING, | ||
| 1204 | do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 1205 | set_bit(B_DIRTY, &b->state); | ||
| 1206 | __unlink_buffer(b); | ||
| 1207 | __link_buffer(b, new_block, LIST_DIRTY); | ||
| 1208 | } else { | ||
| 1209 | sector_t old_block; | ||
| 1210 | wait_on_bit_lock(&b->state, B_WRITING, | ||
| 1211 | do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 1212 | /* | ||
| 1213 | * Relink buffer to "new_block" so that write_callback | ||
| 1214 | * sees "new_block" as a block number. | ||
| 1215 | * After the write, link the buffer back to old_block. | ||
| 1216 | * All this must be done in bufio lock, so that block number | ||
| 1217 | * change isn't visible to other threads. | ||
| 1218 | */ | ||
| 1219 | old_block = b->block; | ||
| 1220 | __unlink_buffer(b); | ||
| 1221 | __link_buffer(b, new_block, b->list_mode); | ||
| 1222 | submit_io(b, WRITE, new_block, write_endio); | ||
| 1223 | wait_on_bit(&b->state, B_WRITING, | ||
| 1224 | do_io_schedule, TASK_UNINTERRUPTIBLE); | ||
| 1225 | __unlink_buffer(b); | ||
| 1226 | __link_buffer(b, old_block, b->list_mode); | ||
| 1227 | } | ||
| 1228 | |||
| 1229 | dm_bufio_unlock(c); | ||
| 1230 | dm_bufio_release(b); | ||
| 1231 | } | ||
| 1232 | EXPORT_SYMBOL_GPL(dm_bufio_release_move); | ||
| 1233 | |||
| 1234 | unsigned dm_bufio_get_block_size(struct dm_bufio_client *c) | ||
| 1235 | { | ||
| 1236 | return c->block_size; | ||
| 1237 | } | ||
| 1238 | EXPORT_SYMBOL_GPL(dm_bufio_get_block_size); | ||
| 1239 | |||
| 1240 | sector_t dm_bufio_get_device_size(struct dm_bufio_client *c) | ||
| 1241 | { | ||
| 1242 | return i_size_read(c->bdev->bd_inode) >> | ||
| 1243 | (SECTOR_SHIFT + c->sectors_per_block_bits); | ||
| 1244 | } | ||
| 1245 | EXPORT_SYMBOL_GPL(dm_bufio_get_device_size); | ||
| 1246 | |||
| 1247 | sector_t dm_bufio_get_block_number(struct dm_buffer *b) | ||
| 1248 | { | ||
| 1249 | return b->block; | ||
| 1250 | } | ||
| 1251 | EXPORT_SYMBOL_GPL(dm_bufio_get_block_number); | ||
| 1252 | |||
| 1253 | void *dm_bufio_get_block_data(struct dm_buffer *b) | ||
| 1254 | { | ||
| 1255 | return b->data; | ||
| 1256 | } | ||
| 1257 | EXPORT_SYMBOL_GPL(dm_bufio_get_block_data); | ||
| 1258 | |||
| 1259 | void *dm_bufio_get_aux_data(struct dm_buffer *b) | ||
| 1260 | { | ||
| 1261 | return b + 1; | ||
| 1262 | } | ||
| 1263 | EXPORT_SYMBOL_GPL(dm_bufio_get_aux_data); | ||
| 1264 | |||
| 1265 | struct dm_bufio_client *dm_bufio_get_client(struct dm_buffer *b) | ||
| 1266 | { | ||
| 1267 | return b->c; | ||
| 1268 | } | ||
| 1269 | EXPORT_SYMBOL_GPL(dm_bufio_get_client); | ||
| 1270 | |||
| 1271 | static void drop_buffers(struct dm_bufio_client *c) | ||
| 1272 | { | ||
| 1273 | struct dm_buffer *b; | ||
| 1274 | int i; | ||
| 1275 | |||
| 1276 | BUG_ON(dm_bufio_in_request()); | ||
| 1277 | |||
| 1278 | /* | ||
| 1279 | * An optimization so that the buffers are not written one-by-one. | ||
| 1280 | */ | ||
| 1281 | dm_bufio_write_dirty_buffers_async(c); | ||
| 1282 | |||
| 1283 | dm_bufio_lock(c); | ||
| 1284 | |||
| 1285 | while ((b = __get_unclaimed_buffer(c))) | ||
| 1286 | __free_buffer_wake(b); | ||
| 1287 | |||
| 1288 | for (i = 0; i < LIST_SIZE; i++) | ||
| 1289 | list_for_each_entry(b, &c->lru[i], lru_list) | ||
| 1290 | DMERR("leaked buffer %llx, hold count %u, list %d", | ||
| 1291 | (unsigned long long)b->block, b->hold_count, i); | ||
| 1292 | |||
| 1293 | for (i = 0; i < LIST_SIZE; i++) | ||
| 1294 | BUG_ON(!list_empty(&c->lru[i])); | ||
| 1295 | |||
| 1296 | dm_bufio_unlock(c); | ||
| 1297 | } | ||
| 1298 | |||
| 1299 | /* | ||
| 1300 | * Test if the buffer is unused and too old, and commit it. | ||
| 1301 | * At if noio is set, we must not do any I/O because we hold | ||
| 1302 | * dm_bufio_clients_lock and we would risk deadlock if the I/O gets rerouted to | ||
| 1303 | * different bufio client. | ||
| 1304 | */ | ||
| 1305 | static int __cleanup_old_buffer(struct dm_buffer *b, gfp_t gfp, | ||
| 1306 | unsigned long max_jiffies) | ||
| 1307 | { | ||
| 1308 | if (jiffies - b->last_accessed < max_jiffies) | ||
| 1309 | return 1; | ||
| 1310 | |||
| 1311 | if (!(gfp & __GFP_IO)) { | ||
| 1312 | if (test_bit(B_READING, &b->state) || | ||
| 1313 | test_bit(B_WRITING, &b->state) || | ||
| 1314 | test_bit(B_DIRTY, &b->state)) | ||
| 1315 | return 1; | ||
| 1316 | } | ||
| 1317 | |||
| 1318 | if (b->hold_count) | ||
| 1319 | return 1; | ||
| 1320 | |||
| 1321 | __make_buffer_clean(b); | ||
| 1322 | __unlink_buffer(b); | ||
| 1323 | __free_buffer_wake(b); | ||
| 1324 | |||
| 1325 | return 0; | ||
| 1326 | } | ||
| 1327 | |||
| 1328 | static void __scan(struct dm_bufio_client *c, unsigned long nr_to_scan, | ||
| 1329 | struct shrink_control *sc) | ||
| 1330 | { | ||
| 1331 | int l; | ||
| 1332 | struct dm_buffer *b, *tmp; | ||
| 1333 | |||
| 1334 | for (l = 0; l < LIST_SIZE; l++) { | ||
| 1335 | list_for_each_entry_safe_reverse(b, tmp, &c->lru[l], lru_list) | ||
| 1336 | if (!__cleanup_old_buffer(b, sc->gfp_mask, 0) && | ||
| 1337 | !--nr_to_scan) | ||
| 1338 | return; | ||
| 1339 | dm_bufio_cond_resched(); | ||
| 1340 | } | ||
| 1341 | } | ||
| 1342 | |||
| 1343 | static int shrink(struct shrinker *shrinker, struct shrink_control *sc) | ||
| 1344 | { | ||
| 1345 | struct dm_bufio_client *c = | ||
| 1346 | container_of(shrinker, struct dm_bufio_client, shrinker); | ||
| 1347 | unsigned long r; | ||
| 1348 | unsigned long nr_to_scan = sc->nr_to_scan; | ||
| 1349 | |||
| 1350 | if (sc->gfp_mask & __GFP_IO) | ||
| 1351 | dm_bufio_lock(c); | ||
| 1352 | else if (!dm_bufio_trylock(c)) | ||
| 1353 | return !nr_to_scan ? 0 : -1; | ||
| 1354 | |||
| 1355 | if (nr_to_scan) | ||
| 1356 | __scan(c, nr_to_scan, sc); | ||
| 1357 | |||
| 1358 | r = c->n_buffers[LIST_CLEAN] + c->n_buffers[LIST_DIRTY]; | ||
| 1359 | if (r > INT_MAX) | ||
| 1360 | r = INT_MAX; | ||
| 1361 | |||
| 1362 | dm_bufio_unlock(c); | ||
| 1363 | |||
| 1364 | return r; | ||
| 1365 | } | ||
| 1366 | |||
| 1367 | /* | ||
| 1368 | * Create the buffering interface | ||
| 1369 | */ | ||
| 1370 | struct dm_bufio_client *dm_bufio_client_create(struct block_device *bdev, unsigned block_size, | ||
| 1371 | unsigned reserved_buffers, unsigned aux_size, | ||
| 1372 | void (*alloc_callback)(struct dm_buffer *), | ||
| 1373 | void (*write_callback)(struct dm_buffer *)) | ||
| 1374 | { | ||
| 1375 | int r; | ||
| 1376 | struct dm_bufio_client *c; | ||
| 1377 | unsigned i; | ||
| 1378 | |||
| 1379 | BUG_ON(block_size < 1 << SECTOR_SHIFT || | ||
| 1380 | (block_size & (block_size - 1))); | ||
| 1381 | |||
| 1382 | c = kmalloc(sizeof(*c), GFP_KERNEL); | ||
| 1383 | if (!c) { | ||
| 1384 | r = -ENOMEM; | ||
| 1385 | goto bad_client; | ||
| 1386 | } | ||
| 1387 | c->cache_hash = vmalloc(sizeof(struct hlist_head) << DM_BUFIO_HASH_BITS); | ||
| 1388 | if (!c->cache_hash) { | ||
| 1389 | r = -ENOMEM; | ||
| 1390 | goto bad_hash; | ||
| 1391 | } | ||
| 1392 | |||
| 1393 | c->bdev = bdev; | ||
| 1394 | c->block_size = block_size; | ||
| 1395 | c->sectors_per_block_bits = ffs(block_size) - 1 - SECTOR_SHIFT; | ||
| 1396 | c->pages_per_block_bits = (ffs(block_size) - 1 >= PAGE_SHIFT) ? | ||
| 1397 | ffs(block_size) - 1 - PAGE_SHIFT : 0; | ||
| 1398 | c->blocks_per_page_bits = (ffs(block_size) - 1 < PAGE_SHIFT ? | ||
| 1399 | PAGE_SHIFT - (ffs(block_size) - 1) : 0); | ||
| 1400 | |||
| 1401 | c->aux_size = aux_size; | ||
| 1402 | c->alloc_callback = alloc_callback; | ||
| 1403 | c->write_callback = write_callback; | ||
| 1404 | |||
| 1405 | for (i = 0; i < LIST_SIZE; i++) { | ||
| 1406 | INIT_LIST_HEAD(&c->lru[i]); | ||
| 1407 | c->n_buffers[i] = 0; | ||
| 1408 | } | ||
| 1409 | |||
| 1410 | for (i = 0; i < 1 << DM_BUFIO_HASH_BITS; i++) | ||
| 1411 | INIT_HLIST_HEAD(&c->cache_hash[i]); | ||
| 1412 | |||
| 1413 | mutex_init(&c->lock); | ||
| 1414 | INIT_LIST_HEAD(&c->reserved_buffers); | ||
| 1415 | c->need_reserved_buffers = reserved_buffers; | ||
| 1416 | |||
| 1417 | init_waitqueue_head(&c->free_buffer_wait); | ||
| 1418 | c->async_write_error = 0; | ||
| 1419 | |||
| 1420 | c->dm_io = dm_io_client_create(); | ||
| 1421 | if (IS_ERR(c->dm_io)) { | ||
| 1422 | r = PTR_ERR(c->dm_io); | ||
| 1423 | goto bad_dm_io; | ||
| 1424 | } | ||
| 1425 | |||
| 1426 | mutex_lock(&dm_bufio_clients_lock); | ||
| 1427 | if (c->blocks_per_page_bits) { | ||
| 1428 | if (!DM_BUFIO_CACHE_NAME(c)) { | ||
| 1429 | DM_BUFIO_CACHE_NAME(c) = kasprintf(GFP_KERNEL, "dm_bufio_cache-%u", c->block_size); | ||
| 1430 | if (!DM_BUFIO_CACHE_NAME(c)) { | ||
| 1431 | r = -ENOMEM; | ||
| 1432 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1433 | goto bad_cache; | ||
| 1434 | } | ||
| 1435 | } | ||
| 1436 | |||
| 1437 | if (!DM_BUFIO_CACHE(c)) { | ||
| 1438 | DM_BUFIO_CACHE(c) = kmem_cache_create(DM_BUFIO_CACHE_NAME(c), | ||
| 1439 | c->block_size, | ||
| 1440 | c->block_size, 0, NULL); | ||
| 1441 | if (!DM_BUFIO_CACHE(c)) { | ||
| 1442 | r = -ENOMEM; | ||
| 1443 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1444 | goto bad_cache; | ||
| 1445 | } | ||
| 1446 | } | ||
| 1447 | } | ||
| 1448 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1449 | |||
| 1450 | while (c->need_reserved_buffers) { | ||
| 1451 | struct dm_buffer *b = alloc_buffer(c, GFP_KERNEL); | ||
| 1452 | |||
| 1453 | if (!b) { | ||
| 1454 | r = -ENOMEM; | ||
| 1455 | goto bad_buffer; | ||
| 1456 | } | ||
| 1457 | __free_buffer_wake(b); | ||
| 1458 | } | ||
| 1459 | |||
| 1460 | mutex_lock(&dm_bufio_clients_lock); | ||
| 1461 | dm_bufio_client_count++; | ||
| 1462 | list_add(&c->client_list, &dm_bufio_all_clients); | ||
| 1463 | __cache_size_refresh(); | ||
| 1464 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1465 | |||
| 1466 | c->shrinker.shrink = shrink; | ||
| 1467 | c->shrinker.seeks = 1; | ||
| 1468 | c->shrinker.batch = 0; | ||
| 1469 | register_shrinker(&c->shrinker); | ||
| 1470 | |||
| 1471 | return c; | ||
| 1472 | |||
| 1473 | bad_buffer: | ||
| 1474 | bad_cache: | ||
| 1475 | while (!list_empty(&c->reserved_buffers)) { | ||
| 1476 | struct dm_buffer *b = list_entry(c->reserved_buffers.next, | ||
| 1477 | struct dm_buffer, lru_list); | ||
| 1478 | list_del(&b->lru_list); | ||
| 1479 | free_buffer(b); | ||
| 1480 | } | ||
| 1481 | dm_io_client_destroy(c->dm_io); | ||
| 1482 | bad_dm_io: | ||
| 1483 | vfree(c->cache_hash); | ||
| 1484 | bad_hash: | ||
| 1485 | kfree(c); | ||
| 1486 | bad_client: | ||
| 1487 | return ERR_PTR(r); | ||
| 1488 | } | ||
| 1489 | EXPORT_SYMBOL_GPL(dm_bufio_client_create); | ||
| 1490 | |||
| 1491 | /* | ||
| 1492 | * Free the buffering interface. | ||
| 1493 | * It is required that there are no references on any buffers. | ||
| 1494 | */ | ||
| 1495 | void dm_bufio_client_destroy(struct dm_bufio_client *c) | ||
| 1496 | { | ||
| 1497 | unsigned i; | ||
| 1498 | |||
| 1499 | drop_buffers(c); | ||
| 1500 | |||
| 1501 | unregister_shrinker(&c->shrinker); | ||
| 1502 | |||
| 1503 | mutex_lock(&dm_bufio_clients_lock); | ||
| 1504 | |||
| 1505 | list_del(&c->client_list); | ||
| 1506 | dm_bufio_client_count--; | ||
| 1507 | __cache_size_refresh(); | ||
| 1508 | |||
| 1509 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1510 | |||
| 1511 | for (i = 0; i < 1 << DM_BUFIO_HASH_BITS; i++) | ||
| 1512 | BUG_ON(!hlist_empty(&c->cache_hash[i])); | ||
| 1513 | |||
| 1514 | BUG_ON(c->need_reserved_buffers); | ||
| 1515 | |||
| 1516 | while (!list_empty(&c->reserved_buffers)) { | ||
| 1517 | struct dm_buffer *b = list_entry(c->reserved_buffers.next, | ||
| 1518 | struct dm_buffer, lru_list); | ||
| 1519 | list_del(&b->lru_list); | ||
| 1520 | free_buffer(b); | ||
| 1521 | } | ||
| 1522 | |||
| 1523 | for (i = 0; i < LIST_SIZE; i++) | ||
| 1524 | if (c->n_buffers[i]) | ||
| 1525 | DMERR("leaked buffer count %d: %ld", i, c->n_buffers[i]); | ||
| 1526 | |||
| 1527 | for (i = 0; i < LIST_SIZE; i++) | ||
| 1528 | BUG_ON(c->n_buffers[i]); | ||
| 1529 | |||
| 1530 | dm_io_client_destroy(c->dm_io); | ||
| 1531 | vfree(c->cache_hash); | ||
| 1532 | kfree(c); | ||
| 1533 | } | ||
| 1534 | EXPORT_SYMBOL_GPL(dm_bufio_client_destroy); | ||
| 1535 | |||
| 1536 | static void cleanup_old_buffers(void) | ||
| 1537 | { | ||
| 1538 | unsigned long max_age = dm_bufio_max_age; | ||
| 1539 | struct dm_bufio_client *c; | ||
| 1540 | |||
| 1541 | barrier(); | ||
| 1542 | |||
| 1543 | if (max_age > ULONG_MAX / HZ) | ||
| 1544 | max_age = ULONG_MAX / HZ; | ||
| 1545 | |||
| 1546 | mutex_lock(&dm_bufio_clients_lock); | ||
| 1547 | list_for_each_entry(c, &dm_bufio_all_clients, client_list) { | ||
| 1548 | if (!dm_bufio_trylock(c)) | ||
| 1549 | continue; | ||
| 1550 | |||
| 1551 | while (!list_empty(&c->lru[LIST_CLEAN])) { | ||
| 1552 | struct dm_buffer *b; | ||
| 1553 | b = list_entry(c->lru[LIST_CLEAN].prev, | ||
| 1554 | struct dm_buffer, lru_list); | ||
| 1555 | if (__cleanup_old_buffer(b, 0, max_age * HZ)) | ||
| 1556 | break; | ||
| 1557 | dm_bufio_cond_resched(); | ||
| 1558 | } | ||
| 1559 | |||
| 1560 | dm_bufio_unlock(c); | ||
| 1561 | dm_bufio_cond_resched(); | ||
| 1562 | } | ||
| 1563 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1564 | } | ||
| 1565 | |||
| 1566 | static struct workqueue_struct *dm_bufio_wq; | ||
| 1567 | static struct delayed_work dm_bufio_work; | ||
| 1568 | |||
| 1569 | static void work_fn(struct work_struct *w) | ||
| 1570 | { | ||
| 1571 | cleanup_old_buffers(); | ||
| 1572 | |||
| 1573 | queue_delayed_work(dm_bufio_wq, &dm_bufio_work, | ||
| 1574 | DM_BUFIO_WORK_TIMER_SECS * HZ); | ||
| 1575 | } | ||
| 1576 | |||
| 1577 | /*---------------------------------------------------------------- | ||
| 1578 | * Module setup | ||
| 1579 | *--------------------------------------------------------------*/ | ||
| 1580 | |||
| 1581 | /* | ||
| 1582 | * This is called only once for the whole dm_bufio module. | ||
| 1583 | * It initializes memory limit. | ||
| 1584 | */ | ||
| 1585 | static int __init dm_bufio_init(void) | ||
| 1586 | { | ||
| 1587 | __u64 mem; | ||
| 1588 | |||
| 1589 | memset(&dm_bufio_caches, 0, sizeof dm_bufio_caches); | ||
| 1590 | memset(&dm_bufio_cache_names, 0, sizeof dm_bufio_cache_names); | ||
| 1591 | |||
| 1592 | mem = (__u64)((totalram_pages - totalhigh_pages) * | ||
| 1593 | DM_BUFIO_MEMORY_PERCENT / 100) << PAGE_SHIFT; | ||
| 1594 | |||
| 1595 | if (mem > ULONG_MAX) | ||
| 1596 | mem = ULONG_MAX; | ||
| 1597 | |||
| 1598 | #ifdef CONFIG_MMU | ||
| 1599 | /* | ||
| 1600 | * Get the size of vmalloc space the same way as VMALLOC_TOTAL | ||
| 1601 | * in fs/proc/internal.h | ||
| 1602 | */ | ||
| 1603 | if (mem > (VMALLOC_END - VMALLOC_START) * DM_BUFIO_VMALLOC_PERCENT / 100) | ||
| 1604 | mem = (VMALLOC_END - VMALLOC_START) * DM_BUFIO_VMALLOC_PERCENT / 100; | ||
| 1605 | #endif | ||
| 1606 | |||
| 1607 | dm_bufio_default_cache_size = mem; | ||
| 1608 | |||
| 1609 | mutex_lock(&dm_bufio_clients_lock); | ||
| 1610 | __cache_size_refresh(); | ||
| 1611 | mutex_unlock(&dm_bufio_clients_lock); | ||
| 1612 | |||
| 1613 | dm_bufio_wq = create_singlethread_workqueue("dm_bufio_cache"); | ||
| 1614 | if (!dm_bufio_wq) | ||
| 1615 | return -ENOMEM; | ||
| 1616 | |||
| 1617 | INIT_DELAYED_WORK(&dm_bufio_work, work_fn); | ||
| 1618 | queue_delayed_work(dm_bufio_wq, &dm_bufio_work, | ||
| 1619 | DM_BUFIO_WORK_TIMER_SECS * HZ); | ||
| 1620 | |||
| 1621 | return 0; | ||
| 1622 | } | ||
| 1623 | |||
| 1624 | /* | ||
| 1625 | * This is called once when unloading the dm_bufio module. | ||
| 1626 | */ | ||
| 1627 | static void __exit dm_bufio_exit(void) | ||
| 1628 | { | ||
| 1629 | int bug = 0; | ||
| 1630 | int i; | ||
| 1631 | |||
| 1632 | cancel_delayed_work_sync(&dm_bufio_work); | ||
| 1633 | destroy_workqueue(dm_bufio_wq); | ||
| 1634 | |||
| 1635 | for (i = 0; i < ARRAY_SIZE(dm_bufio_caches); i++) { | ||
| 1636 | struct kmem_cache *kc = dm_bufio_caches[i]; | ||
| 1637 | |||
| 1638 | if (kc) | ||
| 1639 | kmem_cache_destroy(kc); | ||
| 1640 | } | ||
| 1641 | |||
| 1642 | for (i = 0; i < ARRAY_SIZE(dm_bufio_cache_names); i++) | ||
| 1643 | kfree(dm_bufio_cache_names[i]); | ||
| 1644 | |||
| 1645 | if (dm_bufio_client_count) { | ||
| 1646 | DMCRIT("%s: dm_bufio_client_count leaked: %d", | ||
| 1647 | __func__, dm_bufio_client_count); | ||
| 1648 | bug = 1; | ||
| 1649 | } | ||
| 1650 | |||
| 1651 | if (dm_bufio_current_allocated) { | ||
| 1652 | DMCRIT("%s: dm_bufio_current_allocated leaked: %lu", | ||
| 1653 | __func__, dm_bufio_current_allocated); | ||
| 1654 | bug = 1; | ||
| 1655 | } | ||
| 1656 | |||
| 1657 | if (dm_bufio_allocated_get_free_pages) { | ||
| 1658 | DMCRIT("%s: dm_bufio_allocated_get_free_pages leaked: %lu", | ||
| 1659 | __func__, dm_bufio_allocated_get_free_pages); | ||
| 1660 | bug = 1; | ||
| 1661 | } | ||
| 1662 | |||
| 1663 | if (dm_bufio_allocated_vmalloc) { | ||
| 1664 | DMCRIT("%s: dm_bufio_vmalloc leaked: %lu", | ||
| 1665 | __func__, dm_bufio_allocated_vmalloc); | ||
| 1666 | bug = 1; | ||
| 1667 | } | ||
| 1668 | |||
| 1669 | if (bug) | ||
| 1670 | BUG(); | ||
| 1671 | } | ||
| 1672 | |||
| 1673 | module_init(dm_bufio_init) | ||
| 1674 | module_exit(dm_bufio_exit) | ||
| 1675 | |||
| 1676 | module_param_named(max_cache_size_bytes, dm_bufio_cache_size, ulong, S_IRUGO | S_IWUSR); | ||
| 1677 | MODULE_PARM_DESC(max_cache_size_bytes, "Size of metadata cache"); | ||
| 1678 | |||
| 1679 | module_param_named(max_age_seconds, dm_bufio_max_age, uint, S_IRUGO | S_IWUSR); | ||
| 1680 | MODULE_PARM_DESC(max_age_seconds, "Max age of a buffer in seconds"); | ||
| 1681 | |||
| 1682 | module_param_named(peak_allocated_bytes, dm_bufio_peak_allocated, ulong, S_IRUGO | S_IWUSR); | ||
| 1683 | MODULE_PARM_DESC(peak_allocated_bytes, "Tracks the maximum allocated memory"); | ||
| 1684 | |||
| 1685 | module_param_named(allocated_kmem_cache_bytes, dm_bufio_allocated_kmem_cache, ulong, S_IRUGO); | ||
| 1686 | MODULE_PARM_DESC(allocated_kmem_cache_bytes, "Memory allocated with kmem_cache_alloc"); | ||
| 1687 | |||
| 1688 | module_param_named(allocated_get_free_pages_bytes, dm_bufio_allocated_get_free_pages, ulong, S_IRUGO); | ||
| 1689 | MODULE_PARM_DESC(allocated_get_free_pages_bytes, "Memory allocated with get_free_pages"); | ||
| 1690 | |||
| 1691 | module_param_named(allocated_vmalloc_bytes, dm_bufio_allocated_vmalloc, ulong, S_IRUGO); | ||
| 1692 | MODULE_PARM_DESC(allocated_vmalloc_bytes, "Memory allocated with vmalloc"); | ||
| 1693 | |||
| 1694 | module_param_named(current_allocated_bytes, dm_bufio_current_allocated, ulong, S_IRUGO); | ||
| 1695 | MODULE_PARM_DESC(current_allocated_bytes, "Memory currently used by the cache"); | ||
| 1696 | |||
| 1697 | MODULE_AUTHOR("Mikulas Patocka <dm-devel@redhat.com>"); | ||
| 1698 | MODULE_DESCRIPTION(DM_NAME " buffered I/O library"); | ||
| 1699 | MODULE_LICENSE("GPL"); | ||
diff --git a/drivers/md/dm-bufio.h b/drivers/md/dm-bufio.h new file mode 100644 index 000000000000..5c4c3a04e381 --- /dev/null +++ b/drivers/md/dm-bufio.h | |||
| @@ -0,0 +1,112 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2009-2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * Author: Mikulas Patocka <mpatocka@redhat.com> | ||
| 5 | * | ||
| 6 | * This file is released under the GPL. | ||
| 7 | */ | ||
| 8 | |||
| 9 | #ifndef DM_BUFIO_H | ||
| 10 | #define DM_BUFIO_H | ||
| 11 | |||
| 12 | #include <linux/blkdev.h> | ||
| 13 | #include <linux/types.h> | ||
| 14 | |||
| 15 | /*----------------------------------------------------------------*/ | ||
| 16 | |||
| 17 | struct dm_bufio_client; | ||
| 18 | struct dm_buffer; | ||
| 19 | |||
| 20 | /* | ||
| 21 | * Create a buffered IO cache on a given device | ||
| 22 | */ | ||
| 23 | struct dm_bufio_client * | ||
| 24 | dm_bufio_client_create(struct block_device *bdev, unsigned block_size, | ||
| 25 | unsigned reserved_buffers, unsigned aux_size, | ||
| 26 | void (*alloc_callback)(struct dm_buffer *), | ||
| 27 | void (*write_callback)(struct dm_buffer *)); | ||
| 28 | |||
| 29 | /* | ||
| 30 | * Release a buffered IO cache. | ||
| 31 | */ | ||
| 32 | void dm_bufio_client_destroy(struct dm_bufio_client *c); | ||
| 33 | |||
| 34 | /* | ||
| 35 | * WARNING: to avoid deadlocks, these conditions are observed: | ||
| 36 | * | ||
| 37 | * - At most one thread can hold at most "reserved_buffers" simultaneously. | ||
| 38 | * - Each other threads can hold at most one buffer. | ||
| 39 | * - Threads which call only dm_bufio_get can hold unlimited number of | ||
| 40 | * buffers. | ||
| 41 | */ | ||
| 42 | |||
| 43 | /* | ||
| 44 | * Read a given block from disk. Returns pointer to data. Returns a | ||
| 45 | * pointer to dm_buffer that can be used to release the buffer or to make | ||
| 46 | * it dirty. | ||
| 47 | */ | ||
| 48 | void *dm_bufio_read(struct dm_bufio_client *c, sector_t block, | ||
| 49 | struct dm_buffer **bp); | ||
| 50 | |||
| 51 | /* | ||
| 52 | * Like dm_bufio_read, but return buffer from cache, don't read | ||
| 53 | * it. If the buffer is not in the cache, return NULL. | ||
| 54 | */ | ||
| 55 | void *dm_bufio_get(struct dm_bufio_client *c, sector_t block, | ||
| 56 | struct dm_buffer **bp); | ||
| 57 | |||
| 58 | /* | ||
| 59 | * Like dm_bufio_read, but don't read anything from the disk. It is | ||
| 60 | * expected that the caller initializes the buffer and marks it dirty. | ||
| 61 | */ | ||
| 62 | void *dm_bufio_new(struct dm_bufio_client *c, sector_t block, | ||
| 63 | struct dm_buffer **bp); | ||
| 64 | |||
| 65 | /* | ||
| 66 | * Release a reference obtained with dm_bufio_{read,get,new}. The data | ||
| 67 | * pointer and dm_buffer pointer is no longer valid after this call. | ||
| 68 | */ | ||
| 69 | void dm_bufio_release(struct dm_buffer *b); | ||
| 70 | |||
| 71 | /* | ||
| 72 | * Mark a buffer dirty. It should be called after the buffer is modified. | ||
| 73 | * | ||
| 74 | * In case of memory pressure, the buffer may be written after | ||
| 75 | * dm_bufio_mark_buffer_dirty, but before dm_bufio_write_dirty_buffers. So | ||
| 76 | * dm_bufio_write_dirty_buffers guarantees that the buffer is on-disk but | ||
| 77 | * the actual writing may occur earlier. | ||
| 78 | */ | ||
| 79 | void dm_bufio_mark_buffer_dirty(struct dm_buffer *b); | ||
| 80 | |||
| 81 | /* | ||
| 82 | * Initiate writing of dirty buffers, without waiting for completion. | ||
| 83 | */ | ||
| 84 | void dm_bufio_write_dirty_buffers_async(struct dm_bufio_client *c); | ||
| 85 | |||
| 86 | /* | ||
| 87 | * Write all dirty buffers. Guarantees that all dirty buffers created prior | ||
| 88 | * to this call are on disk when this call exits. | ||
| 89 | */ | ||
| 90 | int dm_bufio_write_dirty_buffers(struct dm_bufio_client *c); | ||
| 91 | |||
| 92 | /* | ||
| 93 | * Send an empty write barrier to the device to flush hardware disk cache. | ||
| 94 | */ | ||
| 95 | int dm_bufio_issue_flush(struct dm_bufio_client *c); | ||
| 96 | |||
| 97 | /* | ||
| 98 | * Like dm_bufio_release but also move the buffer to the new | ||
| 99 | * block. dm_bufio_write_dirty_buffers is needed to commit the new block. | ||
| 100 | */ | ||
| 101 | void dm_bufio_release_move(struct dm_buffer *b, sector_t new_block); | ||
| 102 | |||
| 103 | unsigned dm_bufio_get_block_size(struct dm_bufio_client *c); | ||
| 104 | sector_t dm_bufio_get_device_size(struct dm_bufio_client *c); | ||
| 105 | sector_t dm_bufio_get_block_number(struct dm_buffer *b); | ||
| 106 | void *dm_bufio_get_block_data(struct dm_buffer *b); | ||
| 107 | void *dm_bufio_get_aux_data(struct dm_buffer *b); | ||
| 108 | struct dm_bufio_client *dm_bufio_get_client(struct dm_buffer *b); | ||
| 109 | |||
| 110 | /*----------------------------------------------------------------*/ | ||
| 111 | |||
| 112 | #endif | ||
diff --git a/drivers/md/dm-ioctl.c b/drivers/md/dm-ioctl.c index 2e9a3ca37bdd..31c2dc25886d 100644 --- a/drivers/md/dm-ioctl.c +++ b/drivers/md/dm-ioctl.c | |||
| @@ -1215,6 +1215,7 @@ static int table_load(struct dm_ioctl *param, size_t param_size) | |||
| 1215 | struct hash_cell *hc; | 1215 | struct hash_cell *hc; |
| 1216 | struct dm_table *t; | 1216 | struct dm_table *t; |
| 1217 | struct mapped_device *md; | 1217 | struct mapped_device *md; |
| 1218 | struct target_type *immutable_target_type; | ||
| 1218 | 1219 | ||
| 1219 | md = find_device(param); | 1220 | md = find_device(param); |
| 1220 | if (!md) | 1221 | if (!md) |
| @@ -1230,6 +1231,16 @@ static int table_load(struct dm_ioctl *param, size_t param_size) | |||
| 1230 | goto out; | 1231 | goto out; |
| 1231 | } | 1232 | } |
| 1232 | 1233 | ||
| 1234 | immutable_target_type = dm_get_immutable_target_type(md); | ||
| 1235 | if (immutable_target_type && | ||
| 1236 | (immutable_target_type != dm_table_get_immutable_target_type(t))) { | ||
| 1237 | DMWARN("can't replace immutable target type %s", | ||
| 1238 | immutable_target_type->name); | ||
| 1239 | dm_table_destroy(t); | ||
| 1240 | r = -EINVAL; | ||
| 1241 | goto out; | ||
| 1242 | } | ||
| 1243 | |||
| 1233 | /* Protect md->type and md->queue against concurrent table loads. */ | 1244 | /* Protect md->type and md->queue against concurrent table loads. */ |
| 1234 | dm_lock_md_type(md); | 1245 | dm_lock_md_type(md); |
| 1235 | if (dm_get_md_type(md) == DM_TYPE_NONE) | 1246 | if (dm_get_md_type(md) == DM_TYPE_NONE) |
diff --git a/drivers/md/dm-kcopyd.c b/drivers/md/dm-kcopyd.c index 32ac70861d66..bed444c93d8d 100644 --- a/drivers/md/dm-kcopyd.c +++ b/drivers/md/dm-kcopyd.c | |||
| @@ -66,6 +66,8 @@ struct dm_kcopyd_client { | |||
| 66 | struct list_head pages_jobs; | 66 | struct list_head pages_jobs; |
| 67 | }; | 67 | }; |
| 68 | 68 | ||
| 69 | static struct page_list zero_page_list; | ||
| 70 | |||
| 69 | static void wake(struct dm_kcopyd_client *kc) | 71 | static void wake(struct dm_kcopyd_client *kc) |
| 70 | { | 72 | { |
| 71 | queue_work(kc->kcopyd_wq, &kc->kcopyd_work); | 73 | queue_work(kc->kcopyd_wq, &kc->kcopyd_work); |
| @@ -254,6 +256,9 @@ int __init dm_kcopyd_init(void) | |||
| 254 | if (!_job_cache) | 256 | if (!_job_cache) |
| 255 | return -ENOMEM; | 257 | return -ENOMEM; |
| 256 | 258 | ||
| 259 | zero_page_list.next = &zero_page_list; | ||
| 260 | zero_page_list.page = ZERO_PAGE(0); | ||
| 261 | |||
| 257 | return 0; | 262 | return 0; |
| 258 | } | 263 | } |
| 259 | 264 | ||
| @@ -322,7 +327,7 @@ static int run_complete_job(struct kcopyd_job *job) | |||
| 322 | dm_kcopyd_notify_fn fn = job->fn; | 327 | dm_kcopyd_notify_fn fn = job->fn; |
| 323 | struct dm_kcopyd_client *kc = job->kc; | 328 | struct dm_kcopyd_client *kc = job->kc; |
| 324 | 329 | ||
| 325 | if (job->pages) | 330 | if (job->pages && job->pages != &zero_page_list) |
| 326 | kcopyd_put_pages(kc, job->pages); | 331 | kcopyd_put_pages(kc, job->pages); |
| 327 | /* | 332 | /* |
| 328 | * If this is the master job, the sub jobs have already | 333 | * If this is the master job, the sub jobs have already |
| @@ -484,6 +489,8 @@ static void dispatch_job(struct kcopyd_job *job) | |||
| 484 | atomic_inc(&kc->nr_jobs); | 489 | atomic_inc(&kc->nr_jobs); |
| 485 | if (unlikely(!job->source.count)) | 490 | if (unlikely(!job->source.count)) |
| 486 | push(&kc->complete_jobs, job); | 491 | push(&kc->complete_jobs, job); |
| 492 | else if (job->pages == &zero_page_list) | ||
| 493 | push(&kc->io_jobs, job); | ||
| 487 | else | 494 | else |
| 488 | push(&kc->pages_jobs, job); | 495 | push(&kc->pages_jobs, job); |
| 489 | wake(kc); | 496 | wake(kc); |
| @@ -592,14 +599,20 @@ int dm_kcopyd_copy(struct dm_kcopyd_client *kc, struct dm_io_region *from, | |||
| 592 | job->flags = flags; | 599 | job->flags = flags; |
| 593 | job->read_err = 0; | 600 | job->read_err = 0; |
| 594 | job->write_err = 0; | 601 | job->write_err = 0; |
| 595 | job->rw = READ; | ||
| 596 | |||
| 597 | job->source = *from; | ||
| 598 | 602 | ||
| 599 | job->num_dests = num_dests; | 603 | job->num_dests = num_dests; |
| 600 | memcpy(&job->dests, dests, sizeof(*dests) * num_dests); | 604 | memcpy(&job->dests, dests, sizeof(*dests) * num_dests); |
| 601 | 605 | ||
| 602 | job->pages = NULL; | 606 | if (from) { |
| 607 | job->source = *from; | ||
| 608 | job->pages = NULL; | ||
| 609 | job->rw = READ; | ||
| 610 | } else { | ||
| 611 | memset(&job->source, 0, sizeof job->source); | ||
| 612 | job->source.count = job->dests[0].count; | ||
| 613 | job->pages = &zero_page_list; | ||
| 614 | job->rw = WRITE; | ||
| 615 | } | ||
| 603 | 616 | ||
| 604 | job->fn = fn; | 617 | job->fn = fn; |
| 605 | job->context = context; | 618 | job->context = context; |
| @@ -617,6 +630,14 @@ int dm_kcopyd_copy(struct dm_kcopyd_client *kc, struct dm_io_region *from, | |||
| 617 | } | 630 | } |
| 618 | EXPORT_SYMBOL(dm_kcopyd_copy); | 631 | EXPORT_SYMBOL(dm_kcopyd_copy); |
| 619 | 632 | ||
| 633 | int dm_kcopyd_zero(struct dm_kcopyd_client *kc, | ||
| 634 | unsigned num_dests, struct dm_io_region *dests, | ||
| 635 | unsigned flags, dm_kcopyd_notify_fn fn, void *context) | ||
| 636 | { | ||
| 637 | return dm_kcopyd_copy(kc, NULL, num_dests, dests, flags, fn, context); | ||
| 638 | } | ||
| 639 | EXPORT_SYMBOL(dm_kcopyd_zero); | ||
| 640 | |||
| 620 | void *dm_kcopyd_prepare_callback(struct dm_kcopyd_client *kc, | 641 | void *dm_kcopyd_prepare_callback(struct dm_kcopyd_client *kc, |
| 621 | dm_kcopyd_notify_fn fn, void *context) | 642 | dm_kcopyd_notify_fn fn, void *context) |
| 622 | { | 643 | { |
diff --git a/drivers/md/dm-log-userspace-base.c b/drivers/md/dm-log-userspace-base.c index 1021c8986011..8db3862dade5 100644 --- a/drivers/md/dm-log-userspace-base.c +++ b/drivers/md/dm-log-userspace-base.c | |||
| @@ -30,6 +30,7 @@ struct flush_entry { | |||
| 30 | 30 | ||
| 31 | struct log_c { | 31 | struct log_c { |
| 32 | struct dm_target *ti; | 32 | struct dm_target *ti; |
| 33 | struct dm_dev *log_dev; | ||
| 33 | uint32_t region_size; | 34 | uint32_t region_size; |
| 34 | region_t region_count; | 35 | region_t region_count; |
| 35 | uint64_t luid; | 36 | uint64_t luid; |
| @@ -146,7 +147,7 @@ static int build_constructor_string(struct dm_target *ti, | |||
| 146 | * <UUID> <other args> | 147 | * <UUID> <other args> |
| 147 | * Where 'other args' is the userspace implementation specific log | 148 | * Where 'other args' is the userspace implementation specific log |
| 148 | * arguments. An example might be: | 149 | * arguments. An example might be: |
| 149 | * <UUID> clustered_disk <arg count> <log dev> <region_size> [[no]sync] | 150 | * <UUID> clustered-disk <arg count> <log dev> <region_size> [[no]sync] |
| 150 | * | 151 | * |
| 151 | * So, this module will strip off the <UUID> for identification purposes | 152 | * So, this module will strip off the <UUID> for identification purposes |
| 152 | * when communicating with userspace about a log; but will pass on everything | 153 | * when communicating with userspace about a log; but will pass on everything |
| @@ -161,13 +162,15 @@ static int userspace_ctr(struct dm_dirty_log *log, struct dm_target *ti, | |||
| 161 | struct log_c *lc = NULL; | 162 | struct log_c *lc = NULL; |
| 162 | uint64_t rdata; | 163 | uint64_t rdata; |
| 163 | size_t rdata_size = sizeof(rdata); | 164 | size_t rdata_size = sizeof(rdata); |
| 165 | char *devices_rdata = NULL; | ||
| 166 | size_t devices_rdata_size = DM_NAME_LEN; | ||
| 164 | 167 | ||
| 165 | if (argc < 3) { | 168 | if (argc < 3) { |
| 166 | DMWARN("Too few arguments to userspace dirty log"); | 169 | DMWARN("Too few arguments to userspace dirty log"); |
| 167 | return -EINVAL; | 170 | return -EINVAL; |
| 168 | } | 171 | } |
| 169 | 172 | ||
| 170 | lc = kmalloc(sizeof(*lc), GFP_KERNEL); | 173 | lc = kzalloc(sizeof(*lc), GFP_KERNEL); |
| 171 | if (!lc) { | 174 | if (!lc) { |
| 172 | DMWARN("Unable to allocate userspace log context."); | 175 | DMWARN("Unable to allocate userspace log context."); |
| 173 | return -ENOMEM; | 176 | return -ENOMEM; |
| @@ -195,9 +198,19 @@ static int userspace_ctr(struct dm_dirty_log *log, struct dm_target *ti, | |||
| 195 | return str_size; | 198 | return str_size; |
| 196 | } | 199 | } |
| 197 | 200 | ||
| 198 | /* Send table string */ | 201 | devices_rdata = kzalloc(devices_rdata_size, GFP_KERNEL); |
| 202 | if (!devices_rdata) { | ||
| 203 | DMERR("Failed to allocate memory for device information"); | ||
| 204 | r = -ENOMEM; | ||
| 205 | goto out; | ||
| 206 | } | ||
| 207 | |||
| 208 | /* | ||
| 209 | * Send table string and get back any opened device. | ||
| 210 | */ | ||
| 199 | r = dm_consult_userspace(lc->uuid, lc->luid, DM_ULOG_CTR, | 211 | r = dm_consult_userspace(lc->uuid, lc->luid, DM_ULOG_CTR, |
| 200 | ctr_str, str_size, NULL, NULL); | 212 | ctr_str, str_size, |
| 213 | devices_rdata, &devices_rdata_size); | ||
| 201 | 214 | ||
| 202 | if (r < 0) { | 215 | if (r < 0) { |
| 203 | if (r == -ESRCH) | 216 | if (r == -ESRCH) |
| @@ -220,7 +233,20 @@ static int userspace_ctr(struct dm_dirty_log *log, struct dm_target *ti, | |||
| 220 | lc->region_size = (uint32_t)rdata; | 233 | lc->region_size = (uint32_t)rdata; |
| 221 | lc->region_count = dm_sector_div_up(ti->len, lc->region_size); | 234 | lc->region_count = dm_sector_div_up(ti->len, lc->region_size); |
| 222 | 235 | ||
| 236 | if (devices_rdata_size) { | ||
| 237 | if (devices_rdata[devices_rdata_size - 1] != '\0') { | ||
| 238 | DMERR("DM_ULOG_CTR device return string not properly terminated"); | ||
| 239 | r = -EINVAL; | ||
| 240 | goto out; | ||
| 241 | } | ||
| 242 | r = dm_get_device(ti, devices_rdata, | ||
| 243 | dm_table_get_mode(ti->table), &lc->log_dev); | ||
| 244 | if (r) | ||
| 245 | DMERR("Failed to register %s with device-mapper", | ||
| 246 | devices_rdata); | ||
| 247 | } | ||
| 223 | out: | 248 | out: |
| 249 | kfree(devices_rdata); | ||
| 224 | if (r) { | 250 | if (r) { |
| 225 | kfree(lc); | 251 | kfree(lc); |
| 226 | kfree(ctr_str); | 252 | kfree(ctr_str); |
| @@ -241,6 +267,9 @@ static void userspace_dtr(struct dm_dirty_log *log) | |||
| 241 | NULL, 0, | 267 | NULL, 0, |
| 242 | NULL, NULL); | 268 | NULL, NULL); |
| 243 | 269 | ||
| 270 | if (lc->log_dev) | ||
| 271 | dm_put_device(lc->ti, lc->log_dev); | ||
| 272 | |||
| 244 | kfree(lc->usr_argv_str); | 273 | kfree(lc->usr_argv_str); |
| 245 | kfree(lc); | 274 | kfree(lc); |
| 246 | 275 | ||
diff --git a/drivers/md/dm-raid.c b/drivers/md/dm-raid.c index 37a37266a1e3..11fa96df4b06 100644 --- a/drivers/md/dm-raid.c +++ b/drivers/md/dm-raid.c | |||
| @@ -1017,30 +1017,56 @@ static int raid_status(struct dm_target *ti, status_type_t type, | |||
| 1017 | struct raid_set *rs = ti->private; | 1017 | struct raid_set *rs = ti->private; |
| 1018 | unsigned raid_param_cnt = 1; /* at least 1 for chunksize */ | 1018 | unsigned raid_param_cnt = 1; /* at least 1 for chunksize */ |
| 1019 | unsigned sz = 0; | 1019 | unsigned sz = 0; |
| 1020 | int i; | 1020 | int i, array_in_sync = 0; |
| 1021 | sector_t sync; | 1021 | sector_t sync; |
| 1022 | 1022 | ||
| 1023 | switch (type) { | 1023 | switch (type) { |
| 1024 | case STATUSTYPE_INFO: | 1024 | case STATUSTYPE_INFO: |
| 1025 | DMEMIT("%s %d ", rs->raid_type->name, rs->md.raid_disks); | 1025 | DMEMIT("%s %d ", rs->raid_type->name, rs->md.raid_disks); |
| 1026 | 1026 | ||
| 1027 | for (i = 0; i < rs->md.raid_disks; i++) { | ||
| 1028 | if (test_bit(Faulty, &rs->dev[i].rdev.flags)) | ||
| 1029 | DMEMIT("D"); | ||
| 1030 | else if (test_bit(In_sync, &rs->dev[i].rdev.flags)) | ||
| 1031 | DMEMIT("A"); | ||
| 1032 | else | ||
| 1033 | DMEMIT("a"); | ||
| 1034 | } | ||
| 1035 | |||
| 1036 | if (test_bit(MD_RECOVERY_RUNNING, &rs->md.recovery)) | 1027 | if (test_bit(MD_RECOVERY_RUNNING, &rs->md.recovery)) |
| 1037 | sync = rs->md.curr_resync_completed; | 1028 | sync = rs->md.curr_resync_completed; |
| 1038 | else | 1029 | else |
| 1039 | sync = rs->md.recovery_cp; | 1030 | sync = rs->md.recovery_cp; |
| 1040 | 1031 | ||
| 1041 | if (sync > rs->md.resync_max_sectors) | 1032 | if (sync >= rs->md.resync_max_sectors) { |
| 1033 | array_in_sync = 1; | ||
| 1042 | sync = rs->md.resync_max_sectors; | 1034 | sync = rs->md.resync_max_sectors; |
| 1035 | } else { | ||
| 1036 | /* | ||
| 1037 | * The array may be doing an initial sync, or it may | ||
| 1038 | * be rebuilding individual components. If all the | ||
| 1039 | * devices are In_sync, then it is the array that is | ||
| 1040 | * being initialized. | ||
| 1041 | */ | ||
| 1042 | for (i = 0; i < rs->md.raid_disks; i++) | ||
| 1043 | if (!test_bit(In_sync, &rs->dev[i].rdev.flags)) | ||
| 1044 | array_in_sync = 1; | ||
| 1045 | } | ||
| 1046 | /* | ||
| 1047 | * Status characters: | ||
| 1048 | * 'D' = Dead/Failed device | ||
| 1049 | * 'a' = Alive but not in-sync | ||
| 1050 | * 'A' = Alive and in-sync | ||
| 1051 | */ | ||
| 1052 | for (i = 0; i < rs->md.raid_disks; i++) { | ||
| 1053 | if (test_bit(Faulty, &rs->dev[i].rdev.flags)) | ||
| 1054 | DMEMIT("D"); | ||
| 1055 | else if (!array_in_sync || | ||
| 1056 | !test_bit(In_sync, &rs->dev[i].rdev.flags)) | ||
| 1057 | DMEMIT("a"); | ||
| 1058 | else | ||
| 1059 | DMEMIT("A"); | ||
| 1060 | } | ||
| 1043 | 1061 | ||
| 1062 | /* | ||
| 1063 | * In-sync ratio: | ||
| 1064 | * The in-sync ratio shows the progress of: | ||
| 1065 | * - Initializing the array | ||
| 1066 | * - Rebuilding a subset of devices of the array | ||
| 1067 | * The user can distinguish between the two by referring | ||
| 1068 | * to the status characters. | ||
| 1069 | */ | ||
| 1044 | DMEMIT(" %llu/%llu", | 1070 | DMEMIT(" %llu/%llu", |
| 1045 | (unsigned long long) sync, | 1071 | (unsigned long long) sync, |
| 1046 | (unsigned long long) rs->md.resync_max_sectors); | 1072 | (unsigned long long) rs->md.resync_max_sectors); |
diff --git a/drivers/md/dm-table.c b/drivers/md/dm-table.c index bc04518e9d8b..8e9132130142 100644 --- a/drivers/md/dm-table.c +++ b/drivers/md/dm-table.c | |||
| @@ -54,7 +54,9 @@ struct dm_table { | |||
| 54 | sector_t *highs; | 54 | sector_t *highs; |
| 55 | struct dm_target *targets; | 55 | struct dm_target *targets; |
| 56 | 56 | ||
| 57 | struct target_type *immutable_target_type; | ||
| 57 | unsigned integrity_supported:1; | 58 | unsigned integrity_supported:1; |
| 59 | unsigned singleton:1; | ||
| 58 | 60 | ||
| 59 | /* | 61 | /* |
| 60 | * Indicates the rw permissions for the new logical | 62 | * Indicates the rw permissions for the new logical |
| @@ -740,6 +742,12 @@ int dm_table_add_target(struct dm_table *t, const char *type, | |||
| 740 | char **argv; | 742 | char **argv; |
| 741 | struct dm_target *tgt; | 743 | struct dm_target *tgt; |
| 742 | 744 | ||
| 745 | if (t->singleton) { | ||
| 746 | DMERR("%s: target type %s must appear alone in table", | ||
| 747 | dm_device_name(t->md), t->targets->type->name); | ||
| 748 | return -EINVAL; | ||
| 749 | } | ||
| 750 | |||
| 743 | if ((r = check_space(t))) | 751 | if ((r = check_space(t))) |
| 744 | return r; | 752 | return r; |
| 745 | 753 | ||
| @@ -758,6 +766,36 @@ int dm_table_add_target(struct dm_table *t, const char *type, | |||
| 758 | return -EINVAL; | 766 | return -EINVAL; |
| 759 | } | 767 | } |
| 760 | 768 | ||
| 769 | if (dm_target_needs_singleton(tgt->type)) { | ||
| 770 | if (t->num_targets) { | ||
| 771 | DMERR("%s: target type %s must appear alone in table", | ||
| 772 | dm_device_name(t->md), type); | ||
| 773 | return -EINVAL; | ||
| 774 | } | ||
| 775 | t->singleton = 1; | ||
| 776 | } | ||
| 777 | |||
| 778 | if (dm_target_always_writeable(tgt->type) && !(t->mode & FMODE_WRITE)) { | ||
| 779 | DMERR("%s: target type %s may not be included in read-only tables", | ||
| 780 | dm_device_name(t->md), type); | ||
| 781 | return -EINVAL; | ||
| 782 | } | ||
| 783 | |||
| 784 | if (t->immutable_target_type) { | ||
| 785 | if (t->immutable_target_type != tgt->type) { | ||
| 786 | DMERR("%s: immutable target type %s cannot be mixed with other target types", | ||
| 787 | dm_device_name(t->md), t->immutable_target_type->name); | ||
| 788 | return -EINVAL; | ||
| 789 | } | ||
| 790 | } else if (dm_target_is_immutable(tgt->type)) { | ||
| 791 | if (t->num_targets) { | ||
| 792 | DMERR("%s: immutable target type %s cannot be mixed with other target types", | ||
| 793 | dm_device_name(t->md), tgt->type->name); | ||
| 794 | return -EINVAL; | ||
| 795 | } | ||
| 796 | t->immutable_target_type = tgt->type; | ||
| 797 | } | ||
| 798 | |||
| 761 | tgt->table = t; | 799 | tgt->table = t; |
| 762 | tgt->begin = start; | 800 | tgt->begin = start; |
| 763 | tgt->len = len; | 801 | tgt->len = len; |
| @@ -915,6 +953,11 @@ unsigned dm_table_get_type(struct dm_table *t) | |||
| 915 | return t->type; | 953 | return t->type; |
| 916 | } | 954 | } |
| 917 | 955 | ||
| 956 | struct target_type *dm_table_get_immutable_target_type(struct dm_table *t) | ||
| 957 | { | ||
| 958 | return t->immutable_target_type; | ||
| 959 | } | ||
| 960 | |||
| 918 | bool dm_table_request_based(struct dm_table *t) | 961 | bool dm_table_request_based(struct dm_table *t) |
| 919 | { | 962 | { |
| 920 | return dm_table_get_type(t) == DM_TYPE_REQUEST_BASED; | 963 | return dm_table_get_type(t) == DM_TYPE_REQUEST_BASED; |
| @@ -1299,6 +1342,31 @@ static bool dm_table_discard_zeroes_data(struct dm_table *t) | |||
| 1299 | return 1; | 1342 | return 1; |
| 1300 | } | 1343 | } |
| 1301 | 1344 | ||
| 1345 | static int device_is_nonrot(struct dm_target *ti, struct dm_dev *dev, | ||
| 1346 | sector_t start, sector_t len, void *data) | ||
| 1347 | { | ||
| 1348 | struct request_queue *q = bdev_get_queue(dev->bdev); | ||
| 1349 | |||
| 1350 | return q && blk_queue_nonrot(q); | ||
| 1351 | } | ||
| 1352 | |||
| 1353 | static bool dm_table_is_nonrot(struct dm_table *t) | ||
| 1354 | { | ||
| 1355 | struct dm_target *ti; | ||
| 1356 | unsigned i = 0; | ||
| 1357 | |||
| 1358 | /* Ensure that all underlying device are non-rotational. */ | ||
| 1359 | while (i < dm_table_get_num_targets(t)) { | ||
| 1360 | ti = dm_table_get_target(t, i++); | ||
| 1361 | |||
| 1362 | if (!ti->type->iterate_devices || | ||
| 1363 | !ti->type->iterate_devices(ti, device_is_nonrot, NULL)) | ||
| 1364 | return 0; | ||
| 1365 | } | ||
| 1366 | |||
| 1367 | return 1; | ||
| 1368 | } | ||
| 1369 | |||
| 1302 | void dm_table_set_restrictions(struct dm_table *t, struct request_queue *q, | 1370 | void dm_table_set_restrictions(struct dm_table *t, struct request_queue *q, |
| 1303 | struct queue_limits *limits) | 1371 | struct queue_limits *limits) |
| 1304 | { | 1372 | { |
| @@ -1324,6 +1392,11 @@ void dm_table_set_restrictions(struct dm_table *t, struct request_queue *q, | |||
| 1324 | if (!dm_table_discard_zeroes_data(t)) | 1392 | if (!dm_table_discard_zeroes_data(t)) |
| 1325 | q->limits.discard_zeroes_data = 0; | 1393 | q->limits.discard_zeroes_data = 0; |
| 1326 | 1394 | ||
| 1395 | if (dm_table_is_nonrot(t)) | ||
| 1396 | queue_flag_set_unlocked(QUEUE_FLAG_NONROT, q); | ||
| 1397 | else | ||
| 1398 | queue_flag_clear_unlocked(QUEUE_FLAG_NONROT, q); | ||
| 1399 | |||
| 1327 | dm_table_set_integrity(t); | 1400 | dm_table_set_integrity(t); |
| 1328 | 1401 | ||
| 1329 | /* | 1402 | /* |
diff --git a/drivers/md/dm-thin-metadata.c b/drivers/md/dm-thin-metadata.c new file mode 100644 index 000000000000..59c4f0446ffa --- /dev/null +++ b/drivers/md/dm-thin-metadata.c | |||
| @@ -0,0 +1,1391 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-thin-metadata.h" | ||
| 8 | #include "persistent-data/dm-btree.h" | ||
| 9 | #include "persistent-data/dm-space-map.h" | ||
| 10 | #include "persistent-data/dm-space-map-disk.h" | ||
| 11 | #include "persistent-data/dm-transaction-manager.h" | ||
| 12 | |||
| 13 | #include <linux/list.h> | ||
| 14 | #include <linux/device-mapper.h> | ||
| 15 | #include <linux/workqueue.h> | ||
| 16 | |||
| 17 | /*-------------------------------------------------------------------------- | ||
| 18 | * As far as the metadata goes, there is: | ||
| 19 | * | ||
| 20 | * - A superblock in block zero, taking up fewer than 512 bytes for | ||
| 21 | * atomic writes. | ||
| 22 | * | ||
| 23 | * - A space map managing the metadata blocks. | ||
| 24 | * | ||
| 25 | * - A space map managing the data blocks. | ||
| 26 | * | ||
| 27 | * - A btree mapping our internal thin dev ids onto struct disk_device_details. | ||
| 28 | * | ||
| 29 | * - A hierarchical btree, with 2 levels which effectively maps (thin | ||
| 30 | * dev id, virtual block) -> block_time. Block time is a 64-bit | ||
| 31 | * field holding the time in the low 24 bits, and block in the top 48 | ||
| 32 | * bits. | ||
| 33 | * | ||
| 34 | * BTrees consist solely of btree_nodes, that fill a block. Some are | ||
| 35 | * internal nodes, as such their values are a __le64 pointing to other | ||
| 36 | * nodes. Leaf nodes can store data of any reasonable size (ie. much | ||
| 37 | * smaller than the block size). The nodes consist of the header, | ||
| 38 | * followed by an array of keys, followed by an array of values. We have | ||
| 39 | * to binary search on the keys so they're all held together to help the | ||
| 40 | * cpu cache. | ||
| 41 | * | ||
| 42 | * Space maps have 2 btrees: | ||
| 43 | * | ||
| 44 | * - One maps a uint64_t onto a struct index_entry. Which points to a | ||
| 45 | * bitmap block, and has some details about how many free entries there | ||
| 46 | * are etc. | ||
| 47 | * | ||
| 48 | * - The bitmap blocks have a header (for the checksum). Then the rest | ||
| 49 | * of the block is pairs of bits. With the meaning being: | ||
| 50 | * | ||
| 51 | * 0 - ref count is 0 | ||
| 52 | * 1 - ref count is 1 | ||
| 53 | * 2 - ref count is 2 | ||
| 54 | * 3 - ref count is higher than 2 | ||
| 55 | * | ||
| 56 | * - If the count is higher than 2 then the ref count is entered in a | ||
| 57 | * second btree that directly maps the block_address to a uint32_t ref | ||
| 58 | * count. | ||
| 59 | * | ||
| 60 | * The space map metadata variant doesn't have a bitmaps btree. Instead | ||
| 61 | * it has one single blocks worth of index_entries. This avoids | ||
| 62 | * recursive issues with the bitmap btree needing to allocate space in | ||
| 63 | * order to insert. With a small data block size such as 64k the | ||
| 64 | * metadata support data devices that are hundreds of terrabytes. | ||
| 65 | * | ||
| 66 | * The space maps allocate space linearly from front to back. Space that | ||
| 67 | * is freed in a transaction is never recycled within that transaction. | ||
| 68 | * To try and avoid fragmenting _free_ space the allocator always goes | ||
| 69 | * back and fills in gaps. | ||
| 70 | * | ||
| 71 | * All metadata io is in THIN_METADATA_BLOCK_SIZE sized/aligned chunks | ||
| 72 | * from the block manager. | ||
| 73 | *--------------------------------------------------------------------------*/ | ||
| 74 | |||
| 75 | #define DM_MSG_PREFIX "thin metadata" | ||
| 76 | |||
| 77 | #define THIN_SUPERBLOCK_MAGIC 27022010 | ||
| 78 | #define THIN_SUPERBLOCK_LOCATION 0 | ||
| 79 | #define THIN_VERSION 1 | ||
| 80 | #define THIN_METADATA_CACHE_SIZE 64 | ||
| 81 | #define SECTOR_TO_BLOCK_SHIFT 3 | ||
| 82 | |||
| 83 | /* This should be plenty */ | ||
| 84 | #define SPACE_MAP_ROOT_SIZE 128 | ||
| 85 | |||
| 86 | /* | ||
| 87 | * Little endian on-disk superblock and device details. | ||
| 88 | */ | ||
| 89 | struct thin_disk_superblock { | ||
| 90 | __le32 csum; /* Checksum of superblock except for this field. */ | ||
| 91 | __le32 flags; | ||
| 92 | __le64 blocknr; /* This block number, dm_block_t. */ | ||
| 93 | |||
| 94 | __u8 uuid[16]; | ||
| 95 | __le64 magic; | ||
| 96 | __le32 version; | ||
| 97 | __le32 time; | ||
| 98 | |||
| 99 | __le64 trans_id; | ||
| 100 | |||
| 101 | /* | ||
| 102 | * Root held by userspace transactions. | ||
| 103 | */ | ||
| 104 | __le64 held_root; | ||
| 105 | |||
| 106 | __u8 data_space_map_root[SPACE_MAP_ROOT_SIZE]; | ||
| 107 | __u8 metadata_space_map_root[SPACE_MAP_ROOT_SIZE]; | ||
| 108 | |||
| 109 | /* | ||
| 110 | * 2-level btree mapping (dev_id, (dev block, time)) -> data block | ||
| 111 | */ | ||
| 112 | __le64 data_mapping_root; | ||
| 113 | |||
| 114 | /* | ||
| 115 | * Device detail root mapping dev_id -> device_details | ||
| 116 | */ | ||
| 117 | __le64 device_details_root; | ||
| 118 | |||
| 119 | __le32 data_block_size; /* In 512-byte sectors. */ | ||
| 120 | |||
| 121 | __le32 metadata_block_size; /* In 512-byte sectors. */ | ||
| 122 | __le64 metadata_nr_blocks; | ||
| 123 | |||
| 124 | __le32 compat_flags; | ||
| 125 | __le32 compat_ro_flags; | ||
| 126 | __le32 incompat_flags; | ||
| 127 | } __packed; | ||
| 128 | |||
| 129 | struct disk_device_details { | ||
| 130 | __le64 mapped_blocks; | ||
| 131 | __le64 transaction_id; /* When created. */ | ||
| 132 | __le32 creation_time; | ||
| 133 | __le32 snapshotted_time; | ||
| 134 | } __packed; | ||
| 135 | |||
| 136 | struct dm_pool_metadata { | ||
| 137 | struct hlist_node hash; | ||
| 138 | |||
| 139 | struct block_device *bdev; | ||
| 140 | struct dm_block_manager *bm; | ||
| 141 | struct dm_space_map *metadata_sm; | ||
| 142 | struct dm_space_map *data_sm; | ||
| 143 | struct dm_transaction_manager *tm; | ||
| 144 | struct dm_transaction_manager *nb_tm; | ||
| 145 | |||
| 146 | /* | ||
| 147 | * Two-level btree. | ||
| 148 | * First level holds thin_dev_t. | ||
| 149 | * Second level holds mappings. | ||
| 150 | */ | ||
| 151 | struct dm_btree_info info; | ||
| 152 | |||
| 153 | /* | ||
| 154 | * Non-blocking version of the above. | ||
| 155 | */ | ||
| 156 | struct dm_btree_info nb_info; | ||
| 157 | |||
| 158 | /* | ||
| 159 | * Just the top level for deleting whole devices. | ||
| 160 | */ | ||
| 161 | struct dm_btree_info tl_info; | ||
| 162 | |||
| 163 | /* | ||
| 164 | * Just the bottom level for creating new devices. | ||
| 165 | */ | ||
| 166 | struct dm_btree_info bl_info; | ||
| 167 | |||
| 168 | /* | ||
| 169 | * Describes the device details btree. | ||
| 170 | */ | ||
| 171 | struct dm_btree_info details_info; | ||
| 172 | |||
| 173 | struct rw_semaphore root_lock; | ||
| 174 | uint32_t time; | ||
| 175 | int need_commit; | ||
| 176 | dm_block_t root; | ||
| 177 | dm_block_t details_root; | ||
| 178 | struct list_head thin_devices; | ||
| 179 | uint64_t trans_id; | ||
| 180 | unsigned long flags; | ||
| 181 | sector_t data_block_size; | ||
| 182 | }; | ||
| 183 | |||
| 184 | struct dm_thin_device { | ||
| 185 | struct list_head list; | ||
| 186 | struct dm_pool_metadata *pmd; | ||
| 187 | dm_thin_id id; | ||
| 188 | |||
| 189 | int open_count; | ||
| 190 | int changed; | ||
| 191 | uint64_t mapped_blocks; | ||
| 192 | uint64_t transaction_id; | ||
| 193 | uint32_t creation_time; | ||
| 194 | uint32_t snapshotted_time; | ||
| 195 | }; | ||
| 196 | |||
| 197 | /*---------------------------------------------------------------- | ||
| 198 | * superblock validator | ||
| 199 | *--------------------------------------------------------------*/ | ||
| 200 | |||
| 201 | #define SUPERBLOCK_CSUM_XOR 160774 | ||
| 202 | |||
| 203 | static void sb_prepare_for_write(struct dm_block_validator *v, | ||
| 204 | struct dm_block *b, | ||
| 205 | size_t block_size) | ||
| 206 | { | ||
| 207 | struct thin_disk_superblock *disk_super = dm_block_data(b); | ||
| 208 | |||
| 209 | disk_super->blocknr = cpu_to_le64(dm_block_location(b)); | ||
| 210 | disk_super->csum = cpu_to_le32(dm_bm_checksum(&disk_super->flags, | ||
| 211 | block_size - sizeof(__le32), | ||
| 212 | SUPERBLOCK_CSUM_XOR)); | ||
| 213 | } | ||
| 214 | |||
| 215 | static int sb_check(struct dm_block_validator *v, | ||
| 216 | struct dm_block *b, | ||
| 217 | size_t block_size) | ||
| 218 | { | ||
| 219 | struct thin_disk_superblock *disk_super = dm_block_data(b); | ||
| 220 | __le32 csum_le; | ||
| 221 | |||
| 222 | if (dm_block_location(b) != le64_to_cpu(disk_super->blocknr)) { | ||
| 223 | DMERR("sb_check failed: blocknr %llu: " | ||
| 224 | "wanted %llu", le64_to_cpu(disk_super->blocknr), | ||
| 225 | (unsigned long long)dm_block_location(b)); | ||
| 226 | return -ENOTBLK; | ||
| 227 | } | ||
| 228 | |||
| 229 | if (le64_to_cpu(disk_super->magic) != THIN_SUPERBLOCK_MAGIC) { | ||
| 230 | DMERR("sb_check failed: magic %llu: " | ||
| 231 | "wanted %llu", le64_to_cpu(disk_super->magic), | ||
| 232 | (unsigned long long)THIN_SUPERBLOCK_MAGIC); | ||
| 233 | return -EILSEQ; | ||
| 234 | } | ||
| 235 | |||
| 236 | csum_le = cpu_to_le32(dm_bm_checksum(&disk_super->flags, | ||
| 237 | block_size - sizeof(__le32), | ||
| 238 | SUPERBLOCK_CSUM_XOR)); | ||
| 239 | if (csum_le != disk_super->csum) { | ||
| 240 | DMERR("sb_check failed: csum %u: wanted %u", | ||
| 241 | le32_to_cpu(csum_le), le32_to_cpu(disk_super->csum)); | ||
| 242 | return -EILSEQ; | ||
| 243 | } | ||
| 244 | |||
| 245 | return 0; | ||
| 246 | } | ||
| 247 | |||
| 248 | static struct dm_block_validator sb_validator = { | ||
| 249 | .name = "superblock", | ||
| 250 | .prepare_for_write = sb_prepare_for_write, | ||
| 251 | .check = sb_check | ||
| 252 | }; | ||
| 253 | |||
| 254 | /*---------------------------------------------------------------- | ||
| 255 | * Methods for the btree value types | ||
| 256 | *--------------------------------------------------------------*/ | ||
| 257 | |||
| 258 | static uint64_t pack_block_time(dm_block_t b, uint32_t t) | ||
| 259 | { | ||
| 260 | return (b << 24) | t; | ||
| 261 | } | ||
| 262 | |||
| 263 | static void unpack_block_time(uint64_t v, dm_block_t *b, uint32_t *t) | ||
| 264 | { | ||
| 265 | *b = v >> 24; | ||
| 266 | *t = v & ((1 << 24) - 1); | ||
| 267 | } | ||
| 268 | |||
| 269 | static void data_block_inc(void *context, void *value_le) | ||
| 270 | { | ||
| 271 | struct dm_space_map *sm = context; | ||
| 272 | __le64 v_le; | ||
| 273 | uint64_t b; | ||
| 274 | uint32_t t; | ||
| 275 | |||
| 276 | memcpy(&v_le, value_le, sizeof(v_le)); | ||
| 277 | unpack_block_time(le64_to_cpu(v_le), &b, &t); | ||
| 278 | dm_sm_inc_block(sm, b); | ||
| 279 | } | ||
| 280 | |||
| 281 | static void data_block_dec(void *context, void *value_le) | ||
| 282 | { | ||
| 283 | struct dm_space_map *sm = context; | ||
| 284 | __le64 v_le; | ||
| 285 | uint64_t b; | ||
| 286 | uint32_t t; | ||
| 287 | |||
| 288 | memcpy(&v_le, value_le, sizeof(v_le)); | ||
| 289 | unpack_block_time(le64_to_cpu(v_le), &b, &t); | ||
| 290 | dm_sm_dec_block(sm, b); | ||
| 291 | } | ||
| 292 | |||
| 293 | static int data_block_equal(void *context, void *value1_le, void *value2_le) | ||
| 294 | { | ||
| 295 | __le64 v1_le, v2_le; | ||
| 296 | uint64_t b1, b2; | ||
| 297 | uint32_t t; | ||
| 298 | |||
| 299 | memcpy(&v1_le, value1_le, sizeof(v1_le)); | ||
| 300 | memcpy(&v2_le, value2_le, sizeof(v2_le)); | ||
| 301 | unpack_block_time(le64_to_cpu(v1_le), &b1, &t); | ||
| 302 | unpack_block_time(le64_to_cpu(v2_le), &b2, &t); | ||
| 303 | |||
| 304 | return b1 == b2; | ||
| 305 | } | ||
| 306 | |||
| 307 | static void subtree_inc(void *context, void *value) | ||
| 308 | { | ||
| 309 | struct dm_btree_info *info = context; | ||
| 310 | __le64 root_le; | ||
| 311 | uint64_t root; | ||
| 312 | |||
| 313 | memcpy(&root_le, value, sizeof(root_le)); | ||
| 314 | root = le64_to_cpu(root_le); | ||
| 315 | dm_tm_inc(info->tm, root); | ||
| 316 | } | ||
| 317 | |||
| 318 | static void subtree_dec(void *context, void *value) | ||
| 319 | { | ||
| 320 | struct dm_btree_info *info = context; | ||
| 321 | __le64 root_le; | ||
| 322 | uint64_t root; | ||
| 323 | |||
| 324 | memcpy(&root_le, value, sizeof(root_le)); | ||
| 325 | root = le64_to_cpu(root_le); | ||
| 326 | if (dm_btree_del(info, root)) | ||
| 327 | DMERR("btree delete failed\n"); | ||
| 328 | } | ||
| 329 | |||
| 330 | static int subtree_equal(void *context, void *value1_le, void *value2_le) | ||
| 331 | { | ||
| 332 | __le64 v1_le, v2_le; | ||
| 333 | memcpy(&v1_le, value1_le, sizeof(v1_le)); | ||
| 334 | memcpy(&v2_le, value2_le, sizeof(v2_le)); | ||
| 335 | |||
| 336 | return v1_le == v2_le; | ||
| 337 | } | ||
| 338 | |||
| 339 | /*----------------------------------------------------------------*/ | ||
| 340 | |||
| 341 | static int superblock_all_zeroes(struct dm_block_manager *bm, int *result) | ||
| 342 | { | ||
| 343 | int r; | ||
| 344 | unsigned i; | ||
| 345 | struct dm_block *b; | ||
| 346 | __le64 *data_le, zero = cpu_to_le64(0); | ||
| 347 | unsigned block_size = dm_bm_block_size(bm) / sizeof(__le64); | ||
| 348 | |||
| 349 | /* | ||
| 350 | * We can't use a validator here - it may be all zeroes. | ||
| 351 | */ | ||
| 352 | r = dm_bm_read_lock(bm, THIN_SUPERBLOCK_LOCATION, NULL, &b); | ||
| 353 | if (r) | ||
| 354 | return r; | ||
| 355 | |||
| 356 | data_le = dm_block_data(b); | ||
| 357 | *result = 1; | ||
| 358 | for (i = 0; i < block_size; i++) { | ||
| 359 | if (data_le[i] != zero) { | ||
| 360 | *result = 0; | ||
| 361 | break; | ||
| 362 | } | ||
| 363 | } | ||
| 364 | |||
| 365 | return dm_bm_unlock(b); | ||
| 366 | } | ||
| 367 | |||
| 368 | static int init_pmd(struct dm_pool_metadata *pmd, | ||
| 369 | struct dm_block_manager *bm, | ||
| 370 | dm_block_t nr_blocks, int create) | ||
| 371 | { | ||
| 372 | int r; | ||
| 373 | struct dm_space_map *sm, *data_sm; | ||
| 374 | struct dm_transaction_manager *tm; | ||
| 375 | struct dm_block *sblock; | ||
| 376 | |||
| 377 | if (create) { | ||
| 378 | r = dm_tm_create_with_sm(bm, THIN_SUPERBLOCK_LOCATION, | ||
| 379 | &sb_validator, &tm, &sm, &sblock); | ||
| 380 | if (r < 0) { | ||
| 381 | DMERR("tm_create_with_sm failed"); | ||
| 382 | return r; | ||
| 383 | } | ||
| 384 | |||
| 385 | data_sm = dm_sm_disk_create(tm, nr_blocks); | ||
| 386 | if (IS_ERR(data_sm)) { | ||
| 387 | DMERR("sm_disk_create failed"); | ||
| 388 | r = PTR_ERR(data_sm); | ||
| 389 | goto bad; | ||
| 390 | } | ||
| 391 | } else { | ||
| 392 | struct thin_disk_superblock *disk_super = NULL; | ||
| 393 | size_t space_map_root_offset = | ||
| 394 | offsetof(struct thin_disk_superblock, metadata_space_map_root); | ||
| 395 | |||
| 396 | r = dm_tm_open_with_sm(bm, THIN_SUPERBLOCK_LOCATION, | ||
| 397 | &sb_validator, space_map_root_offset, | ||
| 398 | SPACE_MAP_ROOT_SIZE, &tm, &sm, &sblock); | ||
| 399 | if (r < 0) { | ||
| 400 | DMERR("tm_open_with_sm failed"); | ||
| 401 | return r; | ||
| 402 | } | ||
| 403 | |||
| 404 | disk_super = dm_block_data(sblock); | ||
| 405 | data_sm = dm_sm_disk_open(tm, disk_super->data_space_map_root, | ||
| 406 | sizeof(disk_super->data_space_map_root)); | ||
| 407 | if (IS_ERR(data_sm)) { | ||
| 408 | DMERR("sm_disk_open failed"); | ||
| 409 | r = PTR_ERR(data_sm); | ||
| 410 | goto bad; | ||
| 411 | } | ||
| 412 | } | ||
| 413 | |||
| 414 | |||
| 415 | r = dm_tm_unlock(tm, sblock); | ||
| 416 | if (r < 0) { | ||
| 417 | DMERR("couldn't unlock superblock"); | ||
| 418 | goto bad_data_sm; | ||
| 419 | } | ||
| 420 | |||
| 421 | pmd->bm = bm; | ||
| 422 | pmd->metadata_sm = sm; | ||
| 423 | pmd->data_sm = data_sm; | ||
| 424 | pmd->tm = tm; | ||
| 425 | pmd->nb_tm = dm_tm_create_non_blocking_clone(tm); | ||
| 426 | if (!pmd->nb_tm) { | ||
| 427 | DMERR("could not create clone tm"); | ||
| 428 | r = -ENOMEM; | ||
| 429 | goto bad_data_sm; | ||
| 430 | } | ||
| 431 | |||
| 432 | pmd->info.tm = tm; | ||
| 433 | pmd->info.levels = 2; | ||
| 434 | pmd->info.value_type.context = pmd->data_sm; | ||
| 435 | pmd->info.value_type.size = sizeof(__le64); | ||
| 436 | pmd->info.value_type.inc = data_block_inc; | ||
| 437 | pmd->info.value_type.dec = data_block_dec; | ||
| 438 | pmd->info.value_type.equal = data_block_equal; | ||
| 439 | |||
| 440 | memcpy(&pmd->nb_info, &pmd->info, sizeof(pmd->nb_info)); | ||
| 441 | pmd->nb_info.tm = pmd->nb_tm; | ||
| 442 | |||
| 443 | pmd->tl_info.tm = tm; | ||
| 444 | pmd->tl_info.levels = 1; | ||
| 445 | pmd->tl_info.value_type.context = &pmd->info; | ||
| 446 | pmd->tl_info.value_type.size = sizeof(__le64); | ||
| 447 | pmd->tl_info.value_type.inc = subtree_inc; | ||
| 448 | pmd->tl_info.value_type.dec = subtree_dec; | ||
| 449 | pmd->tl_info.value_type.equal = subtree_equal; | ||
| 450 | |||
| 451 | pmd->bl_info.tm = tm; | ||
| 452 | pmd->bl_info.levels = 1; | ||
| 453 | pmd->bl_info.value_type.context = pmd->data_sm; | ||
| 454 | pmd->bl_info.value_type.size = sizeof(__le64); | ||
| 455 | pmd->bl_info.value_type.inc = data_block_inc; | ||
| 456 | pmd->bl_info.value_type.dec = data_block_dec; | ||
| 457 | pmd->bl_info.value_type.equal = data_block_equal; | ||
| 458 | |||
| 459 | pmd->details_info.tm = tm; | ||
| 460 | pmd->details_info.levels = 1; | ||
| 461 | pmd->details_info.value_type.context = NULL; | ||
| 462 | pmd->details_info.value_type.size = sizeof(struct disk_device_details); | ||
| 463 | pmd->details_info.value_type.inc = NULL; | ||
| 464 | pmd->details_info.value_type.dec = NULL; | ||
| 465 | pmd->details_info.value_type.equal = NULL; | ||
| 466 | |||
| 467 | pmd->root = 0; | ||
| 468 | |||
| 469 | init_rwsem(&pmd->root_lock); | ||
| 470 | pmd->time = 0; | ||
| 471 | pmd->need_commit = 0; | ||
| 472 | pmd->details_root = 0; | ||
| 473 | pmd->trans_id = 0; | ||
| 474 | pmd->flags = 0; | ||
| 475 | INIT_LIST_HEAD(&pmd->thin_devices); | ||
| 476 | |||
| 477 | return 0; | ||
| 478 | |||
| 479 | bad_data_sm: | ||
| 480 | dm_sm_destroy(data_sm); | ||
| 481 | bad: | ||
| 482 | dm_tm_destroy(tm); | ||
| 483 | dm_sm_destroy(sm); | ||
| 484 | |||
| 485 | return r; | ||
| 486 | } | ||
| 487 | |||
| 488 | static int __begin_transaction(struct dm_pool_metadata *pmd) | ||
| 489 | { | ||
| 490 | int r; | ||
| 491 | u32 features; | ||
| 492 | struct thin_disk_superblock *disk_super; | ||
| 493 | struct dm_block *sblock; | ||
| 494 | |||
| 495 | /* | ||
| 496 | * __maybe_commit_transaction() resets these | ||
| 497 | */ | ||
| 498 | WARN_ON(pmd->need_commit); | ||
| 499 | |||
| 500 | /* | ||
| 501 | * We re-read the superblock every time. Shouldn't need to do this | ||
| 502 | * really. | ||
| 503 | */ | ||
| 504 | r = dm_bm_read_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION, | ||
| 505 | &sb_validator, &sblock); | ||
| 506 | if (r) | ||
| 507 | return r; | ||
| 508 | |||
| 509 | disk_super = dm_block_data(sblock); | ||
| 510 | pmd->time = le32_to_cpu(disk_super->time); | ||
| 511 | pmd->root = le64_to_cpu(disk_super->data_mapping_root); | ||
| 512 | pmd->details_root = le64_to_cpu(disk_super->device_details_root); | ||
| 513 | pmd->trans_id = le64_to_cpu(disk_super->trans_id); | ||
| 514 | pmd->flags = le32_to_cpu(disk_super->flags); | ||
| 515 | pmd->data_block_size = le32_to_cpu(disk_super->data_block_size); | ||
| 516 | |||
| 517 | features = le32_to_cpu(disk_super->incompat_flags) & ~THIN_FEATURE_INCOMPAT_SUPP; | ||
| 518 | if (features) { | ||
| 519 | DMERR("could not access metadata due to " | ||
| 520 | "unsupported optional features (%lx).", | ||
| 521 | (unsigned long)features); | ||
| 522 | r = -EINVAL; | ||
| 523 | goto out; | ||
| 524 | } | ||
| 525 | |||
| 526 | /* | ||
| 527 | * Check for read-only metadata to skip the following RDWR checks. | ||
| 528 | */ | ||
| 529 | if (get_disk_ro(pmd->bdev->bd_disk)) | ||
| 530 | goto out; | ||
| 531 | |||
| 532 | features = le32_to_cpu(disk_super->compat_ro_flags) & ~THIN_FEATURE_COMPAT_RO_SUPP; | ||
| 533 | if (features) { | ||
| 534 | DMERR("could not access metadata RDWR due to " | ||
| 535 | "unsupported optional features (%lx).", | ||
| 536 | (unsigned long)features); | ||
| 537 | r = -EINVAL; | ||
| 538 | } | ||
| 539 | |||
| 540 | out: | ||
| 541 | dm_bm_unlock(sblock); | ||
| 542 | return r; | ||
| 543 | } | ||
| 544 | |||
| 545 | static int __write_changed_details(struct dm_pool_metadata *pmd) | ||
| 546 | { | ||
| 547 | int r; | ||
| 548 | struct dm_thin_device *td, *tmp; | ||
| 549 | struct disk_device_details details; | ||
| 550 | uint64_t key; | ||
| 551 | |||
| 552 | list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) { | ||
| 553 | if (!td->changed) | ||
| 554 | continue; | ||
| 555 | |||
| 556 | key = td->id; | ||
| 557 | |||
| 558 | details.mapped_blocks = cpu_to_le64(td->mapped_blocks); | ||
| 559 | details.transaction_id = cpu_to_le64(td->transaction_id); | ||
| 560 | details.creation_time = cpu_to_le32(td->creation_time); | ||
| 561 | details.snapshotted_time = cpu_to_le32(td->snapshotted_time); | ||
| 562 | __dm_bless_for_disk(&details); | ||
| 563 | |||
| 564 | r = dm_btree_insert(&pmd->details_info, pmd->details_root, | ||
| 565 | &key, &details, &pmd->details_root); | ||
| 566 | if (r) | ||
| 567 | return r; | ||
| 568 | |||
| 569 | if (td->open_count) | ||
| 570 | td->changed = 0; | ||
| 571 | else { | ||
| 572 | list_del(&td->list); | ||
| 573 | kfree(td); | ||
| 574 | } | ||
| 575 | |||
| 576 | pmd->need_commit = 1; | ||
| 577 | } | ||
| 578 | |||
| 579 | return 0; | ||
| 580 | } | ||
| 581 | |||
| 582 | static int __commit_transaction(struct dm_pool_metadata *pmd) | ||
| 583 | { | ||
| 584 | /* | ||
| 585 | * FIXME: Associated pool should be made read-only on failure. | ||
| 586 | */ | ||
| 587 | int r; | ||
| 588 | size_t metadata_len, data_len; | ||
| 589 | struct thin_disk_superblock *disk_super; | ||
| 590 | struct dm_block *sblock; | ||
| 591 | |||
| 592 | /* | ||
| 593 | * We need to know if the thin_disk_superblock exceeds a 512-byte sector. | ||
| 594 | */ | ||
| 595 | BUILD_BUG_ON(sizeof(struct thin_disk_superblock) > 512); | ||
| 596 | |||
| 597 | r = __write_changed_details(pmd); | ||
| 598 | if (r < 0) | ||
| 599 | goto out; | ||
| 600 | |||
| 601 | if (!pmd->need_commit) | ||
| 602 | goto out; | ||
| 603 | |||
| 604 | r = dm_sm_commit(pmd->data_sm); | ||
| 605 | if (r < 0) | ||
| 606 | goto out; | ||
| 607 | |||
| 608 | r = dm_tm_pre_commit(pmd->tm); | ||
| 609 | if (r < 0) | ||
| 610 | goto out; | ||
| 611 | |||
| 612 | r = dm_sm_root_size(pmd->metadata_sm, &metadata_len); | ||
| 613 | if (r < 0) | ||
| 614 | goto out; | ||
| 615 | |||
| 616 | r = dm_sm_root_size(pmd->metadata_sm, &data_len); | ||
| 617 | if (r < 0) | ||
| 618 | goto out; | ||
| 619 | |||
| 620 | r = dm_bm_write_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION, | ||
| 621 | &sb_validator, &sblock); | ||
| 622 | if (r) | ||
| 623 | goto out; | ||
| 624 | |||
| 625 | disk_super = dm_block_data(sblock); | ||
| 626 | disk_super->time = cpu_to_le32(pmd->time); | ||
| 627 | disk_super->data_mapping_root = cpu_to_le64(pmd->root); | ||
| 628 | disk_super->device_details_root = cpu_to_le64(pmd->details_root); | ||
| 629 | disk_super->trans_id = cpu_to_le64(pmd->trans_id); | ||
| 630 | disk_super->flags = cpu_to_le32(pmd->flags); | ||
| 631 | |||
| 632 | r = dm_sm_copy_root(pmd->metadata_sm, &disk_super->metadata_space_map_root, | ||
| 633 | metadata_len); | ||
| 634 | if (r < 0) | ||
| 635 | goto out_locked; | ||
| 636 | |||
| 637 | r = dm_sm_copy_root(pmd->data_sm, &disk_super->data_space_map_root, | ||
| 638 | data_len); | ||
| 639 | if (r < 0) | ||
| 640 | goto out_locked; | ||
| 641 | |||
| 642 | r = dm_tm_commit(pmd->tm, sblock); | ||
| 643 | if (!r) | ||
| 644 | pmd->need_commit = 0; | ||
| 645 | |||
| 646 | out: | ||
| 647 | return r; | ||
| 648 | |||
| 649 | out_locked: | ||
| 650 | dm_bm_unlock(sblock); | ||
| 651 | return r; | ||
| 652 | } | ||
| 653 | |||
| 654 | struct dm_pool_metadata *dm_pool_metadata_open(struct block_device *bdev, | ||
| 655 | sector_t data_block_size) | ||
| 656 | { | ||
| 657 | int r; | ||
| 658 | struct thin_disk_superblock *disk_super; | ||
| 659 | struct dm_pool_metadata *pmd; | ||
| 660 | sector_t bdev_size = i_size_read(bdev->bd_inode) >> SECTOR_SHIFT; | ||
| 661 | struct dm_block_manager *bm; | ||
| 662 | int create; | ||
| 663 | struct dm_block *sblock; | ||
| 664 | |||
| 665 | pmd = kmalloc(sizeof(*pmd), GFP_KERNEL); | ||
| 666 | if (!pmd) { | ||
| 667 | DMERR("could not allocate metadata struct"); | ||
| 668 | return ERR_PTR(-ENOMEM); | ||
| 669 | } | ||
| 670 | |||
| 671 | /* | ||
| 672 | * Max hex locks: | ||
| 673 | * 3 for btree insert + | ||
| 674 | * 2 for btree lookup used within space map | ||
| 675 | */ | ||
| 676 | bm = dm_block_manager_create(bdev, THIN_METADATA_BLOCK_SIZE, | ||
| 677 | THIN_METADATA_CACHE_SIZE, 5); | ||
| 678 | if (!bm) { | ||
| 679 | DMERR("could not create block manager"); | ||
| 680 | kfree(pmd); | ||
| 681 | return ERR_PTR(-ENOMEM); | ||
| 682 | } | ||
| 683 | |||
| 684 | r = superblock_all_zeroes(bm, &create); | ||
| 685 | if (r) { | ||
| 686 | dm_block_manager_destroy(bm); | ||
| 687 | kfree(pmd); | ||
| 688 | return ERR_PTR(r); | ||
| 689 | } | ||
| 690 | |||
| 691 | |||
| 692 | r = init_pmd(pmd, bm, 0, create); | ||
| 693 | if (r) { | ||
| 694 | dm_block_manager_destroy(bm); | ||
| 695 | kfree(pmd); | ||
| 696 | return ERR_PTR(r); | ||
| 697 | } | ||
| 698 | pmd->bdev = bdev; | ||
| 699 | |||
| 700 | if (!create) { | ||
| 701 | r = __begin_transaction(pmd); | ||
| 702 | if (r < 0) | ||
| 703 | goto bad; | ||
| 704 | return pmd; | ||
| 705 | } | ||
| 706 | |||
| 707 | /* | ||
| 708 | * Create. | ||
| 709 | */ | ||
| 710 | r = dm_bm_write_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION, | ||
| 711 | &sb_validator, &sblock); | ||
| 712 | if (r) | ||
| 713 | goto bad; | ||
| 714 | |||
| 715 | disk_super = dm_block_data(sblock); | ||
| 716 | disk_super->magic = cpu_to_le64(THIN_SUPERBLOCK_MAGIC); | ||
| 717 | disk_super->version = cpu_to_le32(THIN_VERSION); | ||
| 718 | disk_super->time = 0; | ||
| 719 | disk_super->metadata_block_size = cpu_to_le32(THIN_METADATA_BLOCK_SIZE >> SECTOR_SHIFT); | ||
| 720 | disk_super->metadata_nr_blocks = cpu_to_le64(bdev_size >> SECTOR_TO_BLOCK_SHIFT); | ||
| 721 | disk_super->data_block_size = cpu_to_le32(data_block_size); | ||
| 722 | |||
| 723 | r = dm_bm_unlock(sblock); | ||
| 724 | if (r < 0) | ||
| 725 | goto bad; | ||
| 726 | |||
| 727 | r = dm_btree_empty(&pmd->info, &pmd->root); | ||
| 728 | if (r < 0) | ||
| 729 | goto bad; | ||
| 730 | |||
| 731 | r = dm_btree_empty(&pmd->details_info, &pmd->details_root); | ||
| 732 | if (r < 0) { | ||
| 733 | DMERR("couldn't create devices root"); | ||
| 734 | goto bad; | ||
| 735 | } | ||
| 736 | |||
| 737 | pmd->flags = 0; | ||
| 738 | pmd->need_commit = 1; | ||
| 739 | r = dm_pool_commit_metadata(pmd); | ||
| 740 | if (r < 0) { | ||
| 741 | DMERR("%s: dm_pool_commit_metadata() failed, error = %d", | ||
| 742 | __func__, r); | ||
| 743 | goto bad; | ||
| 744 | } | ||
| 745 | |||
| 746 | return pmd; | ||
| 747 | |||
| 748 | bad: | ||
| 749 | if (dm_pool_metadata_close(pmd) < 0) | ||
| 750 | DMWARN("%s: dm_pool_metadata_close() failed.", __func__); | ||
| 751 | return ERR_PTR(r); | ||
| 752 | } | ||
| 753 | |||
| 754 | int dm_pool_metadata_close(struct dm_pool_metadata *pmd) | ||
| 755 | { | ||
| 756 | int r; | ||
| 757 | unsigned open_devices = 0; | ||
| 758 | struct dm_thin_device *td, *tmp; | ||
| 759 | |||
| 760 | down_read(&pmd->root_lock); | ||
| 761 | list_for_each_entry_safe(td, tmp, &pmd->thin_devices, list) { | ||
| 762 | if (td->open_count) | ||
| 763 | open_devices++; | ||
| 764 | else { | ||
| 765 | list_del(&td->list); | ||
| 766 | kfree(td); | ||
| 767 | } | ||
| 768 | } | ||
| 769 | up_read(&pmd->root_lock); | ||
| 770 | |||
| 771 | if (open_devices) { | ||
| 772 | DMERR("attempt to close pmd when %u device(s) are still open", | ||
| 773 | open_devices); | ||
| 774 | return -EBUSY; | ||
| 775 | } | ||
| 776 | |||
| 777 | r = __commit_transaction(pmd); | ||
| 778 | if (r < 0) | ||
| 779 | DMWARN("%s: __commit_transaction() failed, error = %d", | ||
| 780 | __func__, r); | ||
| 781 | |||
| 782 | dm_tm_destroy(pmd->tm); | ||
| 783 | dm_tm_destroy(pmd->nb_tm); | ||
| 784 | dm_block_manager_destroy(pmd->bm); | ||
| 785 | dm_sm_destroy(pmd->metadata_sm); | ||
| 786 | dm_sm_destroy(pmd->data_sm); | ||
| 787 | kfree(pmd); | ||
| 788 | |||
| 789 | return 0; | ||
| 790 | } | ||
| 791 | |||
| 792 | static int __open_device(struct dm_pool_metadata *pmd, | ||
| 793 | dm_thin_id dev, int create, | ||
| 794 | struct dm_thin_device **td) | ||
| 795 | { | ||
| 796 | int r, changed = 0; | ||
| 797 | struct dm_thin_device *td2; | ||
| 798 | uint64_t key = dev; | ||
| 799 | struct disk_device_details details_le; | ||
| 800 | |||
| 801 | /* | ||
| 802 | * Check the device isn't already open. | ||
| 803 | */ | ||
| 804 | list_for_each_entry(td2, &pmd->thin_devices, list) | ||
| 805 | if (td2->id == dev) { | ||
| 806 | td2->open_count++; | ||
| 807 | *td = td2; | ||
| 808 | return 0; | ||
| 809 | } | ||
| 810 | |||
| 811 | /* | ||
| 812 | * Check the device exists. | ||
| 813 | */ | ||
| 814 | r = dm_btree_lookup(&pmd->details_info, pmd->details_root, | ||
| 815 | &key, &details_le); | ||
| 816 | if (r) { | ||
| 817 | if (r != -ENODATA || !create) | ||
| 818 | return r; | ||
| 819 | |||
| 820 | changed = 1; | ||
| 821 | details_le.mapped_blocks = 0; | ||
| 822 | details_le.transaction_id = cpu_to_le64(pmd->trans_id); | ||
| 823 | details_le.creation_time = cpu_to_le32(pmd->time); | ||
| 824 | details_le.snapshotted_time = cpu_to_le32(pmd->time); | ||
| 825 | } | ||
| 826 | |||
| 827 | *td = kmalloc(sizeof(**td), GFP_NOIO); | ||
| 828 | if (!*td) | ||
| 829 | return -ENOMEM; | ||
| 830 | |||
| 831 | (*td)->pmd = pmd; | ||
| 832 | (*td)->id = dev; | ||
| 833 | (*td)->open_count = 1; | ||
| 834 | (*td)->changed = changed; | ||
| 835 | (*td)->mapped_blocks = le64_to_cpu(details_le.mapped_blocks); | ||
| 836 | (*td)->transaction_id = le64_to_cpu(details_le.transaction_id); | ||
| 837 | (*td)->creation_time = le32_to_cpu(details_le.creation_time); | ||
| 838 | (*td)->snapshotted_time = le32_to_cpu(details_le.snapshotted_time); | ||
| 839 | |||
| 840 | list_add(&(*td)->list, &pmd->thin_devices); | ||
| 841 | |||
| 842 | return 0; | ||
| 843 | } | ||
| 844 | |||
| 845 | static void __close_device(struct dm_thin_device *td) | ||
| 846 | { | ||
| 847 | --td->open_count; | ||
| 848 | } | ||
| 849 | |||
| 850 | static int __create_thin(struct dm_pool_metadata *pmd, | ||
| 851 | dm_thin_id dev) | ||
| 852 | { | ||
| 853 | int r; | ||
| 854 | dm_block_t dev_root; | ||
| 855 | uint64_t key = dev; | ||
| 856 | struct disk_device_details details_le; | ||
| 857 | struct dm_thin_device *td; | ||
| 858 | __le64 value; | ||
| 859 | |||
| 860 | r = dm_btree_lookup(&pmd->details_info, pmd->details_root, | ||
| 861 | &key, &details_le); | ||
| 862 | if (!r) | ||
| 863 | return -EEXIST; | ||
| 864 | |||
| 865 | /* | ||
| 866 | * Create an empty btree for the mappings. | ||
| 867 | */ | ||
| 868 | r = dm_btree_empty(&pmd->bl_info, &dev_root); | ||
| 869 | if (r) | ||
| 870 | return r; | ||
| 871 | |||
| 872 | /* | ||
| 873 | * Insert it into the main mapping tree. | ||
| 874 | */ | ||
| 875 | value = cpu_to_le64(dev_root); | ||
| 876 | __dm_bless_for_disk(&value); | ||
| 877 | r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root); | ||
| 878 | if (r) { | ||
| 879 | dm_btree_del(&pmd->bl_info, dev_root); | ||
| 880 | return r; | ||
| 881 | } | ||
| 882 | |||
| 883 | r = __open_device(pmd, dev, 1, &td); | ||
| 884 | if (r) { | ||
| 885 | __close_device(td); | ||
| 886 | dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root); | ||
| 887 | dm_btree_del(&pmd->bl_info, dev_root); | ||
| 888 | return r; | ||
| 889 | } | ||
| 890 | td->changed = 1; | ||
| 891 | __close_device(td); | ||
| 892 | |||
| 893 | return r; | ||
| 894 | } | ||
| 895 | |||
| 896 | int dm_pool_create_thin(struct dm_pool_metadata *pmd, dm_thin_id dev) | ||
| 897 | { | ||
| 898 | int r; | ||
| 899 | |||
| 900 | down_write(&pmd->root_lock); | ||
| 901 | r = __create_thin(pmd, dev); | ||
| 902 | up_write(&pmd->root_lock); | ||
| 903 | |||
| 904 | return r; | ||
| 905 | } | ||
| 906 | |||
| 907 | static int __set_snapshot_details(struct dm_pool_metadata *pmd, | ||
| 908 | struct dm_thin_device *snap, | ||
| 909 | dm_thin_id origin, uint32_t time) | ||
| 910 | { | ||
| 911 | int r; | ||
| 912 | struct dm_thin_device *td; | ||
| 913 | |||
| 914 | r = __open_device(pmd, origin, 0, &td); | ||
| 915 | if (r) | ||
| 916 | return r; | ||
| 917 | |||
| 918 | td->changed = 1; | ||
| 919 | td->snapshotted_time = time; | ||
| 920 | |||
| 921 | snap->mapped_blocks = td->mapped_blocks; | ||
| 922 | snap->snapshotted_time = time; | ||
| 923 | __close_device(td); | ||
| 924 | |||
| 925 | return 0; | ||
| 926 | } | ||
| 927 | |||
| 928 | static int __create_snap(struct dm_pool_metadata *pmd, | ||
| 929 | dm_thin_id dev, dm_thin_id origin) | ||
| 930 | { | ||
| 931 | int r; | ||
| 932 | dm_block_t origin_root; | ||
| 933 | uint64_t key = origin, dev_key = dev; | ||
| 934 | struct dm_thin_device *td; | ||
| 935 | struct disk_device_details details_le; | ||
| 936 | __le64 value; | ||
| 937 | |||
| 938 | /* check this device is unused */ | ||
| 939 | r = dm_btree_lookup(&pmd->details_info, pmd->details_root, | ||
| 940 | &dev_key, &details_le); | ||
| 941 | if (!r) | ||
| 942 | return -EEXIST; | ||
| 943 | |||
| 944 | /* find the mapping tree for the origin */ | ||
| 945 | r = dm_btree_lookup(&pmd->tl_info, pmd->root, &key, &value); | ||
| 946 | if (r) | ||
| 947 | return r; | ||
| 948 | origin_root = le64_to_cpu(value); | ||
| 949 | |||
| 950 | /* clone the origin, an inc will do */ | ||
| 951 | dm_tm_inc(pmd->tm, origin_root); | ||
| 952 | |||
| 953 | /* insert into the main mapping tree */ | ||
| 954 | value = cpu_to_le64(origin_root); | ||
| 955 | __dm_bless_for_disk(&value); | ||
| 956 | key = dev; | ||
| 957 | r = dm_btree_insert(&pmd->tl_info, pmd->root, &key, &value, &pmd->root); | ||
| 958 | if (r) { | ||
| 959 | dm_tm_dec(pmd->tm, origin_root); | ||
| 960 | return r; | ||
| 961 | } | ||
| 962 | |||
| 963 | pmd->time++; | ||
| 964 | |||
| 965 | r = __open_device(pmd, dev, 1, &td); | ||
| 966 | if (r) | ||
| 967 | goto bad; | ||
| 968 | |||
| 969 | r = __set_snapshot_details(pmd, td, origin, pmd->time); | ||
| 970 | if (r) | ||
| 971 | goto bad; | ||
| 972 | |||
| 973 | __close_device(td); | ||
| 974 | return 0; | ||
| 975 | |||
| 976 | bad: | ||
| 977 | __close_device(td); | ||
| 978 | dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root); | ||
| 979 | dm_btree_remove(&pmd->details_info, pmd->details_root, | ||
| 980 | &key, &pmd->details_root); | ||
| 981 | return r; | ||
| 982 | } | ||
| 983 | |||
| 984 | int dm_pool_create_snap(struct dm_pool_metadata *pmd, | ||
| 985 | dm_thin_id dev, | ||
| 986 | dm_thin_id origin) | ||
| 987 | { | ||
| 988 | int r; | ||
| 989 | |||
| 990 | down_write(&pmd->root_lock); | ||
| 991 | r = __create_snap(pmd, dev, origin); | ||
| 992 | up_write(&pmd->root_lock); | ||
| 993 | |||
| 994 | return r; | ||
| 995 | } | ||
| 996 | |||
| 997 | static int __delete_device(struct dm_pool_metadata *pmd, dm_thin_id dev) | ||
| 998 | { | ||
| 999 | int r; | ||
| 1000 | uint64_t key = dev; | ||
| 1001 | struct dm_thin_device *td; | ||
| 1002 | |||
| 1003 | /* TODO: failure should mark the transaction invalid */ | ||
| 1004 | r = __open_device(pmd, dev, 0, &td); | ||
| 1005 | if (r) | ||
| 1006 | return r; | ||
| 1007 | |||
| 1008 | if (td->open_count > 1) { | ||
| 1009 | __close_device(td); | ||
| 1010 | return -EBUSY; | ||
| 1011 | } | ||
| 1012 | |||
| 1013 | list_del(&td->list); | ||
| 1014 | kfree(td); | ||
| 1015 | r = dm_btree_remove(&pmd->details_info, pmd->details_root, | ||
| 1016 | &key, &pmd->details_root); | ||
| 1017 | if (r) | ||
| 1018 | return r; | ||
| 1019 | |||
| 1020 | r = dm_btree_remove(&pmd->tl_info, pmd->root, &key, &pmd->root); | ||
| 1021 | if (r) | ||
| 1022 | return r; | ||
| 1023 | |||
| 1024 | pmd->need_commit = 1; | ||
| 1025 | |||
| 1026 | return 0; | ||
| 1027 | } | ||
| 1028 | |||
| 1029 | int dm_pool_delete_thin_device(struct dm_pool_metadata *pmd, | ||
| 1030 | dm_thin_id dev) | ||
| 1031 | { | ||
| 1032 | int r; | ||
| 1033 | |||
| 1034 | down_write(&pmd->root_lock); | ||
| 1035 | r = __delete_device(pmd, dev); | ||
| 1036 | up_write(&pmd->root_lock); | ||
| 1037 | |||
| 1038 | return r; | ||
| 1039 | } | ||
| 1040 | |||
| 1041 | int dm_pool_set_metadata_transaction_id(struct dm_pool_metadata *pmd, | ||
| 1042 | uint64_t current_id, | ||
| 1043 | uint64_t new_id) | ||
| 1044 | { | ||
| 1045 | down_write(&pmd->root_lock); | ||
| 1046 | if (pmd->trans_id != current_id) { | ||
| 1047 | up_write(&pmd->root_lock); | ||
| 1048 | DMERR("mismatched transaction id"); | ||
| 1049 | return -EINVAL; | ||
| 1050 | } | ||
| 1051 | |||
| 1052 | pmd->trans_id = new_id; | ||
| 1053 | pmd->need_commit = 1; | ||
| 1054 | up_write(&pmd->root_lock); | ||
| 1055 | |||
| 1056 | return 0; | ||
| 1057 | } | ||
| 1058 | |||
| 1059 | int dm_pool_get_metadata_transaction_id(struct dm_pool_metadata *pmd, | ||
| 1060 | uint64_t *result) | ||
| 1061 | { | ||
| 1062 | down_read(&pmd->root_lock); | ||
| 1063 | *result = pmd->trans_id; | ||
| 1064 | up_read(&pmd->root_lock); | ||
| 1065 | |||
| 1066 | return 0; | ||
| 1067 | } | ||
| 1068 | |||
| 1069 | static int __get_held_metadata_root(struct dm_pool_metadata *pmd, | ||
| 1070 | dm_block_t *result) | ||
| 1071 | { | ||
| 1072 | int r; | ||
| 1073 | struct thin_disk_superblock *disk_super; | ||
| 1074 | struct dm_block *sblock; | ||
| 1075 | |||
| 1076 | r = dm_bm_write_lock(pmd->bm, THIN_SUPERBLOCK_LOCATION, | ||
| 1077 | &sb_validator, &sblock); | ||
| 1078 | if (r) | ||
| 1079 | return r; | ||
| 1080 | |||
| 1081 | disk_super = dm_block_data(sblock); | ||
| 1082 | *result = le64_to_cpu(disk_super->held_root); | ||
| 1083 | |||
| 1084 | return dm_bm_unlock(sblock); | ||
| 1085 | } | ||
| 1086 | |||
| 1087 | int dm_pool_get_held_metadata_root(struct dm_pool_metadata *pmd, | ||
| 1088 | dm_block_t *result) | ||
| 1089 | { | ||
| 1090 | int r; | ||
| 1091 | |||
| 1092 | down_read(&pmd->root_lock); | ||
| 1093 | r = __get_held_metadata_root(pmd, result); | ||
| 1094 | up_read(&pmd->root_lock); | ||
| 1095 | |||
| 1096 | return r; | ||
| 1097 | } | ||
| 1098 | |||
| 1099 | int dm_pool_open_thin_device(struct dm_pool_metadata *pmd, dm_thin_id dev, | ||
| 1100 | struct dm_thin_device **td) | ||
| 1101 | { | ||
| 1102 | int r; | ||
| 1103 | |||
| 1104 | down_write(&pmd->root_lock); | ||
| 1105 | r = __open_device(pmd, dev, 0, td); | ||
| 1106 | up_write(&pmd->root_lock); | ||
| 1107 | |||
| 1108 | return r; | ||
| 1109 | } | ||
| 1110 | |||
| 1111 | int dm_pool_close_thin_device(struct dm_thin_device *td) | ||
| 1112 | { | ||
| 1113 | down_write(&td->pmd->root_lock); | ||
| 1114 | __close_device(td); | ||
| 1115 | up_write(&td->pmd->root_lock); | ||
| 1116 | |||
| 1117 | return 0; | ||
| 1118 | } | ||
| 1119 | |||
| 1120 | dm_thin_id dm_thin_dev_id(struct dm_thin_device *td) | ||
| 1121 | { | ||
| 1122 | return td->id; | ||
| 1123 | } | ||
| 1124 | |||
| 1125 | static int __snapshotted_since(struct dm_thin_device *td, uint32_t time) | ||
| 1126 | { | ||
| 1127 | return td->snapshotted_time > time; | ||
| 1128 | } | ||
| 1129 | |||
| 1130 | int dm_thin_find_block(struct dm_thin_device *td, dm_block_t block, | ||
| 1131 | int can_block, struct dm_thin_lookup_result *result) | ||
| 1132 | { | ||
| 1133 | int r; | ||
| 1134 | uint64_t block_time = 0; | ||
| 1135 | __le64 value; | ||
| 1136 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1137 | dm_block_t keys[2] = { td->id, block }; | ||
| 1138 | |||
| 1139 | if (can_block) { | ||
| 1140 | down_read(&pmd->root_lock); | ||
| 1141 | r = dm_btree_lookup(&pmd->info, pmd->root, keys, &value); | ||
| 1142 | if (!r) | ||
| 1143 | block_time = le64_to_cpu(value); | ||
| 1144 | up_read(&pmd->root_lock); | ||
| 1145 | |||
| 1146 | } else if (down_read_trylock(&pmd->root_lock)) { | ||
| 1147 | r = dm_btree_lookup(&pmd->nb_info, pmd->root, keys, &value); | ||
| 1148 | if (!r) | ||
| 1149 | block_time = le64_to_cpu(value); | ||
| 1150 | up_read(&pmd->root_lock); | ||
| 1151 | |||
| 1152 | } else | ||
| 1153 | return -EWOULDBLOCK; | ||
| 1154 | |||
| 1155 | if (!r) { | ||
| 1156 | dm_block_t exception_block; | ||
| 1157 | uint32_t exception_time; | ||
| 1158 | unpack_block_time(block_time, &exception_block, | ||
| 1159 | &exception_time); | ||
| 1160 | result->block = exception_block; | ||
| 1161 | result->shared = __snapshotted_since(td, exception_time); | ||
| 1162 | } | ||
| 1163 | |||
| 1164 | return r; | ||
| 1165 | } | ||
| 1166 | |||
| 1167 | static int __insert(struct dm_thin_device *td, dm_block_t block, | ||
| 1168 | dm_block_t data_block) | ||
| 1169 | { | ||
| 1170 | int r, inserted; | ||
| 1171 | __le64 value; | ||
| 1172 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1173 | dm_block_t keys[2] = { td->id, block }; | ||
| 1174 | |||
| 1175 | pmd->need_commit = 1; | ||
| 1176 | value = cpu_to_le64(pack_block_time(data_block, pmd->time)); | ||
| 1177 | __dm_bless_for_disk(&value); | ||
| 1178 | |||
| 1179 | r = dm_btree_insert_notify(&pmd->info, pmd->root, keys, &value, | ||
| 1180 | &pmd->root, &inserted); | ||
| 1181 | if (r) | ||
| 1182 | return r; | ||
| 1183 | |||
| 1184 | if (inserted) { | ||
| 1185 | td->mapped_blocks++; | ||
| 1186 | td->changed = 1; | ||
| 1187 | } | ||
| 1188 | |||
| 1189 | return 0; | ||
| 1190 | } | ||
| 1191 | |||
| 1192 | int dm_thin_insert_block(struct dm_thin_device *td, dm_block_t block, | ||
| 1193 | dm_block_t data_block) | ||
| 1194 | { | ||
| 1195 | int r; | ||
| 1196 | |||
| 1197 | down_write(&td->pmd->root_lock); | ||
| 1198 | r = __insert(td, block, data_block); | ||
| 1199 | up_write(&td->pmd->root_lock); | ||
| 1200 | |||
| 1201 | return r; | ||
| 1202 | } | ||
| 1203 | |||
| 1204 | static int __remove(struct dm_thin_device *td, dm_block_t block) | ||
| 1205 | { | ||
| 1206 | int r; | ||
| 1207 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1208 | dm_block_t keys[2] = { td->id, block }; | ||
| 1209 | |||
| 1210 | r = dm_btree_remove(&pmd->info, pmd->root, keys, &pmd->root); | ||
| 1211 | if (r) | ||
| 1212 | return r; | ||
| 1213 | |||
| 1214 | pmd->need_commit = 1; | ||
| 1215 | |||
| 1216 | return 0; | ||
| 1217 | } | ||
| 1218 | |||
| 1219 | int dm_thin_remove_block(struct dm_thin_device *td, dm_block_t block) | ||
| 1220 | { | ||
| 1221 | int r; | ||
| 1222 | |||
| 1223 | down_write(&td->pmd->root_lock); | ||
| 1224 | r = __remove(td, block); | ||
| 1225 | up_write(&td->pmd->root_lock); | ||
| 1226 | |||
| 1227 | return r; | ||
| 1228 | } | ||
| 1229 | |||
| 1230 | int dm_pool_alloc_data_block(struct dm_pool_metadata *pmd, dm_block_t *result) | ||
| 1231 | { | ||
| 1232 | int r; | ||
| 1233 | |||
| 1234 | down_write(&pmd->root_lock); | ||
| 1235 | |||
| 1236 | r = dm_sm_new_block(pmd->data_sm, result); | ||
| 1237 | pmd->need_commit = 1; | ||
| 1238 | |||
| 1239 | up_write(&pmd->root_lock); | ||
| 1240 | |||
| 1241 | return r; | ||
| 1242 | } | ||
| 1243 | |||
| 1244 | int dm_pool_commit_metadata(struct dm_pool_metadata *pmd) | ||
| 1245 | { | ||
| 1246 | int r; | ||
| 1247 | |||
| 1248 | down_write(&pmd->root_lock); | ||
| 1249 | |||
| 1250 | r = __commit_transaction(pmd); | ||
| 1251 | if (r <= 0) | ||
| 1252 | goto out; | ||
| 1253 | |||
| 1254 | /* | ||
| 1255 | * Open the next transaction. | ||
| 1256 | */ | ||
| 1257 | r = __begin_transaction(pmd); | ||
| 1258 | out: | ||
| 1259 | up_write(&pmd->root_lock); | ||
| 1260 | return r; | ||
| 1261 | } | ||
| 1262 | |||
| 1263 | int dm_pool_get_free_block_count(struct dm_pool_metadata *pmd, dm_block_t *result) | ||
| 1264 | { | ||
| 1265 | int r; | ||
| 1266 | |||
| 1267 | down_read(&pmd->root_lock); | ||
| 1268 | r = dm_sm_get_nr_free(pmd->data_sm, result); | ||
| 1269 | up_read(&pmd->root_lock); | ||
| 1270 | |||
| 1271 | return r; | ||
| 1272 | } | ||
| 1273 | |||
| 1274 | int dm_pool_get_free_metadata_block_count(struct dm_pool_metadata *pmd, | ||
| 1275 | dm_block_t *result) | ||
| 1276 | { | ||
| 1277 | int r; | ||
| 1278 | |||
| 1279 | down_read(&pmd->root_lock); | ||
| 1280 | r = dm_sm_get_nr_free(pmd->metadata_sm, result); | ||
| 1281 | up_read(&pmd->root_lock); | ||
| 1282 | |||
| 1283 | return r; | ||
| 1284 | } | ||
| 1285 | |||
| 1286 | int dm_pool_get_metadata_dev_size(struct dm_pool_metadata *pmd, | ||
| 1287 | dm_block_t *result) | ||
| 1288 | { | ||
| 1289 | int r; | ||
| 1290 | |||
| 1291 | down_read(&pmd->root_lock); | ||
| 1292 | r = dm_sm_get_nr_blocks(pmd->metadata_sm, result); | ||
| 1293 | up_read(&pmd->root_lock); | ||
| 1294 | |||
| 1295 | return r; | ||
| 1296 | } | ||
| 1297 | |||
| 1298 | int dm_pool_get_data_block_size(struct dm_pool_metadata *pmd, sector_t *result) | ||
| 1299 | { | ||
| 1300 | down_read(&pmd->root_lock); | ||
| 1301 | *result = pmd->data_block_size; | ||
| 1302 | up_read(&pmd->root_lock); | ||
| 1303 | |||
| 1304 | return 0; | ||
| 1305 | } | ||
| 1306 | |||
| 1307 | int dm_pool_get_data_dev_size(struct dm_pool_metadata *pmd, dm_block_t *result) | ||
| 1308 | { | ||
| 1309 | int r; | ||
| 1310 | |||
| 1311 | down_read(&pmd->root_lock); | ||
| 1312 | r = dm_sm_get_nr_blocks(pmd->data_sm, result); | ||
| 1313 | up_read(&pmd->root_lock); | ||
| 1314 | |||
| 1315 | return r; | ||
| 1316 | } | ||
| 1317 | |||
| 1318 | int dm_thin_get_mapped_count(struct dm_thin_device *td, dm_block_t *result) | ||
| 1319 | { | ||
| 1320 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1321 | |||
| 1322 | down_read(&pmd->root_lock); | ||
| 1323 | *result = td->mapped_blocks; | ||
| 1324 | up_read(&pmd->root_lock); | ||
| 1325 | |||
| 1326 | return 0; | ||
| 1327 | } | ||
| 1328 | |||
| 1329 | static int __highest_block(struct dm_thin_device *td, dm_block_t *result) | ||
| 1330 | { | ||
| 1331 | int r; | ||
| 1332 | __le64 value_le; | ||
| 1333 | dm_block_t thin_root; | ||
| 1334 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1335 | |||
| 1336 | r = dm_btree_lookup(&pmd->tl_info, pmd->root, &td->id, &value_le); | ||
| 1337 | if (r) | ||
| 1338 | return r; | ||
| 1339 | |||
| 1340 | thin_root = le64_to_cpu(value_le); | ||
| 1341 | |||
| 1342 | return dm_btree_find_highest_key(&pmd->bl_info, thin_root, result); | ||
| 1343 | } | ||
| 1344 | |||
| 1345 | int dm_thin_get_highest_mapped_block(struct dm_thin_device *td, | ||
| 1346 | dm_block_t *result) | ||
| 1347 | { | ||
| 1348 | int r; | ||
| 1349 | struct dm_pool_metadata *pmd = td->pmd; | ||
| 1350 | |||
| 1351 | down_read(&pmd->root_lock); | ||
| 1352 | r = __highest_block(td, result); | ||
| 1353 | up_read(&pmd->root_lock); | ||
| 1354 | |||
| 1355 | return r; | ||
| 1356 | } | ||
| 1357 | |||
| 1358 | static int __resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_count) | ||
| 1359 | { | ||
| 1360 | int r; | ||
| 1361 | dm_block_t old_count; | ||
| 1362 | |||
| 1363 | r = dm_sm_get_nr_blocks(pmd->data_sm, &old_count); | ||
| 1364 | if (r) | ||
| 1365 | return r; | ||
| 1366 | |||
| 1367 | if (new_count == old_count) | ||
| 1368 | return 0; | ||
| 1369 | |||
| 1370 | if (new_count < old_count) { | ||
| 1371 | DMERR("cannot reduce size of data device"); | ||
| 1372 | return -EINVAL; | ||
| 1373 | } | ||
| 1374 | |||
| 1375 | r = dm_sm_extend(pmd->data_sm, new_count - old_count); | ||
| 1376 | if (!r) | ||
| 1377 | pmd->need_commit = 1; | ||
| 1378 | |||
| 1379 | return r; | ||
| 1380 | } | ||
| 1381 | |||
| 1382 | int dm_pool_resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_count) | ||
| 1383 | { | ||
| 1384 | int r; | ||
| 1385 | |||
| 1386 | down_write(&pmd->root_lock); | ||
| 1387 | r = __resize_data_dev(pmd, new_count); | ||
| 1388 | up_write(&pmd->root_lock); | ||
| 1389 | |||
| 1390 | return r; | ||
| 1391 | } | ||
diff --git a/drivers/md/dm-thin-metadata.h b/drivers/md/dm-thin-metadata.h new file mode 100644 index 000000000000..859c16896877 --- /dev/null +++ b/drivers/md/dm-thin-metadata.h | |||
| @@ -0,0 +1,156 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2010-2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef DM_THIN_METADATA_H | ||
| 8 | #define DM_THIN_METADATA_H | ||
| 9 | |||
| 10 | #include "persistent-data/dm-block-manager.h" | ||
| 11 | |||
| 12 | #define THIN_METADATA_BLOCK_SIZE 4096 | ||
| 13 | |||
| 14 | /*----------------------------------------------------------------*/ | ||
| 15 | |||
| 16 | struct dm_pool_metadata; | ||
| 17 | struct dm_thin_device; | ||
| 18 | |||
| 19 | /* | ||
| 20 | * Device identifier | ||
| 21 | */ | ||
| 22 | typedef uint64_t dm_thin_id; | ||
| 23 | |||
| 24 | /* | ||
| 25 | * Reopens or creates a new, empty metadata volume. | ||
| 26 | */ | ||
| 27 | struct dm_pool_metadata *dm_pool_metadata_open(struct block_device *bdev, | ||
| 28 | sector_t data_block_size); | ||
| 29 | |||
| 30 | int dm_pool_metadata_close(struct dm_pool_metadata *pmd); | ||
| 31 | |||
| 32 | /* | ||
| 33 | * Compat feature flags. Any incompat flags beyond the ones | ||
| 34 | * specified below will prevent use of the thin metadata. | ||
| 35 | */ | ||
| 36 | #define THIN_FEATURE_COMPAT_SUPP 0UL | ||
| 37 | #define THIN_FEATURE_COMPAT_RO_SUPP 0UL | ||
| 38 | #define THIN_FEATURE_INCOMPAT_SUPP 0UL | ||
| 39 | |||
| 40 | /* | ||
| 41 | * Device creation/deletion. | ||
| 42 | */ | ||
| 43 | int dm_pool_create_thin(struct dm_pool_metadata *pmd, dm_thin_id dev); | ||
| 44 | |||
| 45 | /* | ||
| 46 | * An internal snapshot. | ||
| 47 | * | ||
| 48 | * You can only snapshot a quiesced origin i.e. one that is either | ||
| 49 | * suspended or not instanced at all. | ||
| 50 | */ | ||
| 51 | int dm_pool_create_snap(struct dm_pool_metadata *pmd, dm_thin_id dev, | ||
| 52 | dm_thin_id origin); | ||
| 53 | |||
| 54 | /* | ||
| 55 | * Deletes a virtual device from the metadata. It _is_ safe to call this | ||
| 56 | * when that device is open. Operations on that device will just start | ||
| 57 | * failing. You still need to call close() on the device. | ||
| 58 | */ | ||
| 59 | int dm_pool_delete_thin_device(struct dm_pool_metadata *pmd, | ||
| 60 | dm_thin_id dev); | ||
| 61 | |||
| 62 | /* | ||
| 63 | * Commits _all_ metadata changes: device creation, deletion, mapping | ||
| 64 | * updates. | ||
| 65 | */ | ||
| 66 | int dm_pool_commit_metadata(struct dm_pool_metadata *pmd); | ||
| 67 | |||
| 68 | /* | ||
| 69 | * Set/get userspace transaction id. | ||
| 70 | */ | ||
| 71 | int dm_pool_set_metadata_transaction_id(struct dm_pool_metadata *pmd, | ||
| 72 | uint64_t current_id, | ||
| 73 | uint64_t new_id); | ||
| 74 | |||
| 75 | int dm_pool_get_metadata_transaction_id(struct dm_pool_metadata *pmd, | ||
| 76 | uint64_t *result); | ||
| 77 | |||
| 78 | /* | ||
| 79 | * Hold/get root for userspace transaction. | ||
| 80 | */ | ||
| 81 | int dm_pool_hold_metadata_root(struct dm_pool_metadata *pmd); | ||
| 82 | |||
| 83 | int dm_pool_get_held_metadata_root(struct dm_pool_metadata *pmd, | ||
| 84 | dm_block_t *result); | ||
| 85 | |||
| 86 | /* | ||
| 87 | * Actions on a single virtual device. | ||
| 88 | */ | ||
| 89 | |||
| 90 | /* | ||
| 91 | * Opening the same device more than once will fail with -EBUSY. | ||
| 92 | */ | ||
| 93 | int dm_pool_open_thin_device(struct dm_pool_metadata *pmd, dm_thin_id dev, | ||
| 94 | struct dm_thin_device **td); | ||
| 95 | |||
| 96 | int dm_pool_close_thin_device(struct dm_thin_device *td); | ||
| 97 | |||
| 98 | dm_thin_id dm_thin_dev_id(struct dm_thin_device *td); | ||
| 99 | |||
| 100 | struct dm_thin_lookup_result { | ||
| 101 | dm_block_t block; | ||
| 102 | int shared; | ||
| 103 | }; | ||
| 104 | |||
| 105 | /* | ||
| 106 | * Returns: | ||
| 107 | * -EWOULDBLOCK iff @can_block is set and would block. | ||
| 108 | * -ENODATA iff that mapping is not present. | ||
| 109 | * 0 success | ||
| 110 | */ | ||
| 111 | int dm_thin_find_block(struct dm_thin_device *td, dm_block_t block, | ||
| 112 | int can_block, struct dm_thin_lookup_result *result); | ||
| 113 | |||
| 114 | /* | ||
| 115 | * Obtain an unused block. | ||
| 116 | */ | ||
| 117 | int dm_pool_alloc_data_block(struct dm_pool_metadata *pmd, dm_block_t *result); | ||
| 118 | |||
| 119 | /* | ||
| 120 | * Insert or remove block. | ||
| 121 | */ | ||
| 122 | int dm_thin_insert_block(struct dm_thin_device *td, dm_block_t block, | ||
| 123 | dm_block_t data_block); | ||
| 124 | |||
| 125 | int dm_thin_remove_block(struct dm_thin_device *td, dm_block_t block); | ||
| 126 | |||
| 127 | /* | ||
| 128 | * Queries. | ||
| 129 | */ | ||
| 130 | int dm_thin_get_highest_mapped_block(struct dm_thin_device *td, | ||
| 131 | dm_block_t *highest_mapped); | ||
| 132 | |||
| 133 | int dm_thin_get_mapped_count(struct dm_thin_device *td, dm_block_t *result); | ||
| 134 | |||
| 135 | int dm_pool_get_free_block_count(struct dm_pool_metadata *pmd, | ||
| 136 | dm_block_t *result); | ||
| 137 | |||
| 138 | int dm_pool_get_free_metadata_block_count(struct dm_pool_metadata *pmd, | ||
| 139 | dm_block_t *result); | ||
| 140 | |||
| 141 | int dm_pool_get_metadata_dev_size(struct dm_pool_metadata *pmd, | ||
| 142 | dm_block_t *result); | ||
| 143 | |||
| 144 | int dm_pool_get_data_block_size(struct dm_pool_metadata *pmd, sector_t *result); | ||
| 145 | |||
| 146 | int dm_pool_get_data_dev_size(struct dm_pool_metadata *pmd, dm_block_t *result); | ||
| 147 | |||
| 148 | /* | ||
| 149 | * Returns -ENOSPC if the new size is too small and already allocated | ||
| 150 | * blocks would be lost. | ||
| 151 | */ | ||
| 152 | int dm_pool_resize_data_dev(struct dm_pool_metadata *pmd, dm_block_t new_size); | ||
| 153 | |||
| 154 | /*----------------------------------------------------------------*/ | ||
| 155 | |||
| 156 | #endif | ||
diff --git a/drivers/md/dm-thin.c b/drivers/md/dm-thin.c new file mode 100644 index 000000000000..c3087575fef0 --- /dev/null +++ b/drivers/md/dm-thin.c | |||
| @@ -0,0 +1,2428 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat UK. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-thin-metadata.h" | ||
| 8 | |||
| 9 | #include <linux/device-mapper.h> | ||
| 10 | #include <linux/dm-io.h> | ||
| 11 | #include <linux/dm-kcopyd.h> | ||
| 12 | #include <linux/list.h> | ||
| 13 | #include <linux/init.h> | ||
| 14 | #include <linux/module.h> | ||
| 15 | #include <linux/slab.h> | ||
| 16 | |||
| 17 | #define DM_MSG_PREFIX "thin" | ||
| 18 | |||
| 19 | /* | ||
| 20 | * Tunable constants | ||
| 21 | */ | ||
| 22 | #define ENDIO_HOOK_POOL_SIZE 10240 | ||
| 23 | #define DEFERRED_SET_SIZE 64 | ||
| 24 | #define MAPPING_POOL_SIZE 1024 | ||
| 25 | #define PRISON_CELLS 1024 | ||
| 26 | |||
| 27 | /* | ||
| 28 | * The block size of the device holding pool data must be | ||
| 29 | * between 64KB and 1GB. | ||
| 30 | */ | ||
| 31 | #define DATA_DEV_BLOCK_SIZE_MIN_SECTORS (64 * 1024 >> SECTOR_SHIFT) | ||
| 32 | #define DATA_DEV_BLOCK_SIZE_MAX_SECTORS (1024 * 1024 * 1024 >> SECTOR_SHIFT) | ||
| 33 | |||
| 34 | /* | ||
| 35 | * The metadata device is currently limited in size. The limitation is | ||
| 36 | * checked lower down in dm-space-map-metadata, but we also check it here | ||
| 37 | * so we can fail early. | ||
| 38 | * | ||
| 39 | * We have one block of index, which can hold 255 index entries. Each | ||
| 40 | * index entry contains allocation info about 16k metadata blocks. | ||
| 41 | */ | ||
| 42 | #define METADATA_DEV_MAX_SECTORS (255 * (1 << 14) * (THIN_METADATA_BLOCK_SIZE / (1 << SECTOR_SHIFT))) | ||
| 43 | |||
| 44 | /* | ||
| 45 | * Device id is restricted to 24 bits. | ||
| 46 | */ | ||
| 47 | #define MAX_DEV_ID ((1 << 24) - 1) | ||
| 48 | |||
| 49 | /* | ||
| 50 | * How do we handle breaking sharing of data blocks? | ||
| 51 | * ================================================= | ||
| 52 | * | ||
| 53 | * We use a standard copy-on-write btree to store the mappings for the | ||
| 54 | * devices (note I'm talking about copy-on-write of the metadata here, not | ||
| 55 | * the data). When you take an internal snapshot you clone the root node | ||
| 56 | * of the origin btree. After this there is no concept of an origin or a | ||
| 57 | * snapshot. They are just two device trees that happen to point to the | ||
| 58 | * same data blocks. | ||
| 59 | * | ||
| 60 | * When we get a write in we decide if it's to a shared data block using | ||
| 61 | * some timestamp magic. If it is, we have to break sharing. | ||
| 62 | * | ||
| 63 | * Let's say we write to a shared block in what was the origin. The | ||
| 64 | * steps are: | ||
| 65 | * | ||
| 66 | * i) plug io further to this physical block. (see bio_prison code). | ||
| 67 | * | ||
| 68 | * ii) quiesce any read io to that shared data block. Obviously | ||
| 69 | * including all devices that share this block. (see deferred_set code) | ||
| 70 | * | ||
| 71 | * iii) copy the data block to a newly allocate block. This step can be | ||
| 72 | * missed out if the io covers the block. (schedule_copy). | ||
| 73 | * | ||
| 74 | * iv) insert the new mapping into the origin's btree | ||
| 75 | * (process_prepared_mappings). This act of inserting breaks some | ||
| 76 | * sharing of btree nodes between the two devices. Breaking sharing only | ||
| 77 | * effects the btree of that specific device. Btrees for the other | ||
| 78 | * devices that share the block never change. The btree for the origin | ||
| 79 | * device as it was after the last commit is untouched, ie. we're using | ||
| 80 | * persistent data structures in the functional programming sense. | ||
| 81 | * | ||
| 82 | * v) unplug io to this physical block, including the io that triggered | ||
| 83 | * the breaking of sharing. | ||
| 84 | * | ||
| 85 | * Steps (ii) and (iii) occur in parallel. | ||
| 86 | * | ||
| 87 | * The metadata _doesn't_ need to be committed before the io continues. We | ||
| 88 | * get away with this because the io is always written to a _new_ block. | ||
| 89 | * If there's a crash, then: | ||
| 90 | * | ||
| 91 | * - The origin mapping will point to the old origin block (the shared | ||
| 92 | * one). This will contain the data as it was before the io that triggered | ||
| 93 | * the breaking of sharing came in. | ||
| 94 | * | ||
| 95 | * - The snap mapping still points to the old block. As it would after | ||
| 96 | * the commit. | ||
| 97 | * | ||
| 98 | * The downside of this scheme is the timestamp magic isn't perfect, and | ||
| 99 | * will continue to think that data block in the snapshot device is shared | ||
| 100 | * even after the write to the origin has broken sharing. I suspect data | ||
| 101 | * blocks will typically be shared by many different devices, so we're | ||
| 102 | * breaking sharing n + 1 times, rather than n, where n is the number of | ||
| 103 | * devices that reference this data block. At the moment I think the | ||
| 104 | * benefits far, far outweigh the disadvantages. | ||
| 105 | */ | ||
| 106 | |||
| 107 | /*----------------------------------------------------------------*/ | ||
| 108 | |||
| 109 | /* | ||
| 110 | * Sometimes we can't deal with a bio straight away. We put them in prison | ||
| 111 | * where they can't cause any mischief. Bios are put in a cell identified | ||
| 112 | * by a key, multiple bios can be in the same cell. When the cell is | ||
| 113 | * subsequently unlocked the bios become available. | ||
| 114 | */ | ||
| 115 | struct bio_prison; | ||
| 116 | |||
| 117 | struct cell_key { | ||
| 118 | int virtual; | ||
| 119 | dm_thin_id dev; | ||
| 120 | dm_block_t block; | ||
| 121 | }; | ||
| 122 | |||
| 123 | struct cell { | ||
| 124 | struct hlist_node list; | ||
| 125 | struct bio_prison *prison; | ||
| 126 | struct cell_key key; | ||
| 127 | unsigned count; | ||
| 128 | struct bio_list bios; | ||
| 129 | }; | ||
| 130 | |||
| 131 | struct bio_prison { | ||
| 132 | spinlock_t lock; | ||
| 133 | mempool_t *cell_pool; | ||
| 134 | |||
| 135 | unsigned nr_buckets; | ||
| 136 | unsigned hash_mask; | ||
| 137 | struct hlist_head *cells; | ||
| 138 | }; | ||
| 139 | |||
| 140 | static uint32_t calc_nr_buckets(unsigned nr_cells) | ||
| 141 | { | ||
| 142 | uint32_t n = 128; | ||
| 143 | |||
| 144 | nr_cells /= 4; | ||
| 145 | nr_cells = min(nr_cells, 8192u); | ||
| 146 | |||
| 147 | while (n < nr_cells) | ||
| 148 | n <<= 1; | ||
| 149 | |||
| 150 | return n; | ||
| 151 | } | ||
| 152 | |||
| 153 | /* | ||
| 154 | * @nr_cells should be the number of cells you want in use _concurrently_. | ||
| 155 | * Don't confuse it with the number of distinct keys. | ||
| 156 | */ | ||
| 157 | static struct bio_prison *prison_create(unsigned nr_cells) | ||
| 158 | { | ||
| 159 | unsigned i; | ||
| 160 | uint32_t nr_buckets = calc_nr_buckets(nr_cells); | ||
| 161 | size_t len = sizeof(struct bio_prison) + | ||
| 162 | (sizeof(struct hlist_head) * nr_buckets); | ||
| 163 | struct bio_prison *prison = kmalloc(len, GFP_KERNEL); | ||
| 164 | |||
| 165 | if (!prison) | ||
| 166 | return NULL; | ||
| 167 | |||
| 168 | spin_lock_init(&prison->lock); | ||
| 169 | prison->cell_pool = mempool_create_kmalloc_pool(nr_cells, | ||
| 170 | sizeof(struct cell)); | ||
| 171 | if (!prison->cell_pool) { | ||
| 172 | kfree(prison); | ||
| 173 | return NULL; | ||
| 174 | } | ||
| 175 | |||
| 176 | prison->nr_buckets = nr_buckets; | ||
| 177 | prison->hash_mask = nr_buckets - 1; | ||
| 178 | prison->cells = (struct hlist_head *) (prison + 1); | ||
| 179 | for (i = 0; i < nr_buckets; i++) | ||
| 180 | INIT_HLIST_HEAD(prison->cells + i); | ||
| 181 | |||
| 182 | return prison; | ||
| 183 | } | ||
| 184 | |||
| 185 | static void prison_destroy(struct bio_prison *prison) | ||
| 186 | { | ||
| 187 | mempool_destroy(prison->cell_pool); | ||
| 188 | kfree(prison); | ||
| 189 | } | ||
| 190 | |||
| 191 | static uint32_t hash_key(struct bio_prison *prison, struct cell_key *key) | ||
| 192 | { | ||
| 193 | const unsigned long BIG_PRIME = 4294967291UL; | ||
| 194 | uint64_t hash = key->block * BIG_PRIME; | ||
| 195 | |||
| 196 | return (uint32_t) (hash & prison->hash_mask); | ||
| 197 | } | ||
| 198 | |||
| 199 | static int keys_equal(struct cell_key *lhs, struct cell_key *rhs) | ||
| 200 | { | ||
| 201 | return (lhs->virtual == rhs->virtual) && | ||
| 202 | (lhs->dev == rhs->dev) && | ||
| 203 | (lhs->block == rhs->block); | ||
| 204 | } | ||
| 205 | |||
| 206 | static struct cell *__search_bucket(struct hlist_head *bucket, | ||
| 207 | struct cell_key *key) | ||
| 208 | { | ||
| 209 | struct cell *cell; | ||
| 210 | struct hlist_node *tmp; | ||
| 211 | |||
| 212 | hlist_for_each_entry(cell, tmp, bucket, list) | ||
| 213 | if (keys_equal(&cell->key, key)) | ||
| 214 | return cell; | ||
| 215 | |||
| 216 | return NULL; | ||
| 217 | } | ||
| 218 | |||
| 219 | /* | ||
| 220 | * This may block if a new cell needs allocating. You must ensure that | ||
| 221 | * cells will be unlocked even if the calling thread is blocked. | ||
| 222 | * | ||
| 223 | * Returns the number of entries in the cell prior to the new addition | ||
| 224 | * or < 0 on failure. | ||
| 225 | */ | ||
| 226 | static int bio_detain(struct bio_prison *prison, struct cell_key *key, | ||
| 227 | struct bio *inmate, struct cell **ref) | ||
| 228 | { | ||
| 229 | int r; | ||
| 230 | unsigned long flags; | ||
| 231 | uint32_t hash = hash_key(prison, key); | ||
| 232 | struct cell *uninitialized_var(cell), *cell2 = NULL; | ||
| 233 | |||
| 234 | BUG_ON(hash > prison->nr_buckets); | ||
| 235 | |||
| 236 | spin_lock_irqsave(&prison->lock, flags); | ||
| 237 | cell = __search_bucket(prison->cells + hash, key); | ||
| 238 | |||
| 239 | if (!cell) { | ||
| 240 | /* | ||
| 241 | * Allocate a new cell | ||
| 242 | */ | ||
| 243 | spin_unlock_irqrestore(&prison->lock, flags); | ||
| 244 | cell2 = mempool_alloc(prison->cell_pool, GFP_NOIO); | ||
| 245 | spin_lock_irqsave(&prison->lock, flags); | ||
| 246 | |||
| 247 | /* | ||
| 248 | * We've been unlocked, so we have to double check that | ||
| 249 | * nobody else has inserted this cell in the meantime. | ||
| 250 | */ | ||
| 251 | cell = __search_bucket(prison->cells + hash, key); | ||
| 252 | |||
| 253 | if (!cell) { | ||
| 254 | cell = cell2; | ||
| 255 | cell2 = NULL; | ||
| 256 | |||
| 257 | cell->prison = prison; | ||
| 258 | memcpy(&cell->key, key, sizeof(cell->key)); | ||
| 259 | cell->count = 0; | ||
| 260 | bio_list_init(&cell->bios); | ||
| 261 | hlist_add_head(&cell->list, prison->cells + hash); | ||
| 262 | } | ||
| 263 | } | ||
| 264 | |||
| 265 | r = cell->count++; | ||
| 266 | bio_list_add(&cell->bios, inmate); | ||
| 267 | spin_unlock_irqrestore(&prison->lock, flags); | ||
| 268 | |||
| 269 | if (cell2) | ||
| 270 | mempool_free(cell2, prison->cell_pool); | ||
| 271 | |||
| 272 | *ref = cell; | ||
| 273 | |||
| 274 | return r; | ||
| 275 | } | ||
| 276 | |||
| 277 | /* | ||
| 278 | * @inmates must have been initialised prior to this call | ||
| 279 | */ | ||
| 280 | static void __cell_release(struct cell *cell, struct bio_list *inmates) | ||
| 281 | { | ||
| 282 | struct bio_prison *prison = cell->prison; | ||
| 283 | |||
| 284 | hlist_del(&cell->list); | ||
| 285 | |||
| 286 | if (inmates) | ||
| 287 | bio_list_merge(inmates, &cell->bios); | ||
| 288 | |||
| 289 | mempool_free(cell, prison->cell_pool); | ||
| 290 | } | ||
| 291 | |||
| 292 | static void cell_release(struct cell *cell, struct bio_list *bios) | ||
| 293 | { | ||
| 294 | unsigned long flags; | ||
| 295 | struct bio_prison *prison = cell->prison; | ||
| 296 | |||
| 297 | spin_lock_irqsave(&prison->lock, flags); | ||
| 298 | __cell_release(cell, bios); | ||
| 299 | spin_unlock_irqrestore(&prison->lock, flags); | ||
| 300 | } | ||
| 301 | |||
| 302 | /* | ||
| 303 | * There are a couple of places where we put a bio into a cell briefly | ||
| 304 | * before taking it out again. In these situations we know that no other | ||
| 305 | * bio may be in the cell. This function releases the cell, and also does | ||
| 306 | * a sanity check. | ||
| 307 | */ | ||
| 308 | static void cell_release_singleton(struct cell *cell, struct bio *bio) | ||
| 309 | { | ||
| 310 | struct bio_prison *prison = cell->prison; | ||
| 311 | struct bio_list bios; | ||
| 312 | struct bio *b; | ||
| 313 | unsigned long flags; | ||
| 314 | |||
| 315 | bio_list_init(&bios); | ||
| 316 | |||
| 317 | spin_lock_irqsave(&prison->lock, flags); | ||
| 318 | __cell_release(cell, &bios); | ||
| 319 | spin_unlock_irqrestore(&prison->lock, flags); | ||
| 320 | |||
| 321 | b = bio_list_pop(&bios); | ||
| 322 | BUG_ON(b != bio); | ||
| 323 | BUG_ON(!bio_list_empty(&bios)); | ||
| 324 | } | ||
| 325 | |||
| 326 | static void cell_error(struct cell *cell) | ||
| 327 | { | ||
| 328 | struct bio_prison *prison = cell->prison; | ||
| 329 | struct bio_list bios; | ||
| 330 | struct bio *bio; | ||
| 331 | unsigned long flags; | ||
| 332 | |||
| 333 | bio_list_init(&bios); | ||
| 334 | |||
| 335 | spin_lock_irqsave(&prison->lock, flags); | ||
| 336 | __cell_release(cell, &bios); | ||
| 337 | spin_unlock_irqrestore(&prison->lock, flags); | ||
| 338 | |||
| 339 | while ((bio = bio_list_pop(&bios))) | ||
| 340 | bio_io_error(bio); | ||
| 341 | } | ||
| 342 | |||
| 343 | /*----------------------------------------------------------------*/ | ||
| 344 | |||
| 345 | /* | ||
| 346 | * We use the deferred set to keep track of pending reads to shared blocks. | ||
| 347 | * We do this to ensure the new mapping caused by a write isn't performed | ||
| 348 | * until these prior reads have completed. Otherwise the insertion of the | ||
| 349 | * new mapping could free the old block that the read bios are mapped to. | ||
| 350 | */ | ||
| 351 | |||
| 352 | struct deferred_set; | ||
| 353 | struct deferred_entry { | ||
| 354 | struct deferred_set *ds; | ||
| 355 | unsigned count; | ||
| 356 | struct list_head work_items; | ||
| 357 | }; | ||
| 358 | |||
| 359 | struct deferred_set { | ||
| 360 | spinlock_t lock; | ||
| 361 | unsigned current_entry; | ||
| 362 | unsigned sweeper; | ||
| 363 | struct deferred_entry entries[DEFERRED_SET_SIZE]; | ||
| 364 | }; | ||
| 365 | |||
| 366 | static void ds_init(struct deferred_set *ds) | ||
| 367 | { | ||
| 368 | int i; | ||
| 369 | |||
| 370 | spin_lock_init(&ds->lock); | ||
| 371 | ds->current_entry = 0; | ||
| 372 | ds->sweeper = 0; | ||
| 373 | for (i = 0; i < DEFERRED_SET_SIZE; i++) { | ||
| 374 | ds->entries[i].ds = ds; | ||
| 375 | ds->entries[i].count = 0; | ||
| 376 | INIT_LIST_HEAD(&ds->entries[i].work_items); | ||
| 377 | } | ||
| 378 | } | ||
| 379 | |||
| 380 | static struct deferred_entry *ds_inc(struct deferred_set *ds) | ||
| 381 | { | ||
| 382 | unsigned long flags; | ||
| 383 | struct deferred_entry *entry; | ||
| 384 | |||
| 385 | spin_lock_irqsave(&ds->lock, flags); | ||
| 386 | entry = ds->entries + ds->current_entry; | ||
| 387 | entry->count++; | ||
| 388 | spin_unlock_irqrestore(&ds->lock, flags); | ||
| 389 | |||
| 390 | return entry; | ||
| 391 | } | ||
| 392 | |||
| 393 | static unsigned ds_next(unsigned index) | ||
| 394 | { | ||
| 395 | return (index + 1) % DEFERRED_SET_SIZE; | ||
| 396 | } | ||
| 397 | |||
| 398 | static void __sweep(struct deferred_set *ds, struct list_head *head) | ||
| 399 | { | ||
| 400 | while ((ds->sweeper != ds->current_entry) && | ||
| 401 | !ds->entries[ds->sweeper].count) { | ||
| 402 | list_splice_init(&ds->entries[ds->sweeper].work_items, head); | ||
| 403 | ds->sweeper = ds_next(ds->sweeper); | ||
| 404 | } | ||
| 405 | |||
| 406 | if ((ds->sweeper == ds->current_entry) && !ds->entries[ds->sweeper].count) | ||
| 407 | list_splice_init(&ds->entries[ds->sweeper].work_items, head); | ||
| 408 | } | ||
| 409 | |||
| 410 | static void ds_dec(struct deferred_entry *entry, struct list_head *head) | ||
| 411 | { | ||
| 412 | unsigned long flags; | ||
| 413 | |||
| 414 | spin_lock_irqsave(&entry->ds->lock, flags); | ||
| 415 | BUG_ON(!entry->count); | ||
| 416 | --entry->count; | ||
| 417 | __sweep(entry->ds, head); | ||
| 418 | spin_unlock_irqrestore(&entry->ds->lock, flags); | ||
| 419 | } | ||
| 420 | |||
| 421 | /* | ||
| 422 | * Returns 1 if deferred or 0 if no pending items to delay job. | ||
| 423 | */ | ||
| 424 | static int ds_add_work(struct deferred_set *ds, struct list_head *work) | ||
| 425 | { | ||
| 426 | int r = 1; | ||
| 427 | unsigned long flags; | ||
| 428 | unsigned next_entry; | ||
| 429 | |||
| 430 | spin_lock_irqsave(&ds->lock, flags); | ||
| 431 | if ((ds->sweeper == ds->current_entry) && | ||
| 432 | !ds->entries[ds->current_entry].count) | ||
| 433 | r = 0; | ||
| 434 | else { | ||
| 435 | list_add(work, &ds->entries[ds->current_entry].work_items); | ||
| 436 | next_entry = ds_next(ds->current_entry); | ||
| 437 | if (!ds->entries[next_entry].count) | ||
| 438 | ds->current_entry = next_entry; | ||
| 439 | } | ||
| 440 | spin_unlock_irqrestore(&ds->lock, flags); | ||
| 441 | |||
| 442 | return r; | ||
| 443 | } | ||
| 444 | |||
| 445 | /*----------------------------------------------------------------*/ | ||
| 446 | |||
| 447 | /* | ||
| 448 | * Key building. | ||
| 449 | */ | ||
| 450 | static void build_data_key(struct dm_thin_device *td, | ||
| 451 | dm_block_t b, struct cell_key *key) | ||
| 452 | { | ||
| 453 | key->virtual = 0; | ||
| 454 | key->dev = dm_thin_dev_id(td); | ||
| 455 | key->block = b; | ||
| 456 | } | ||
| 457 | |||
| 458 | static void build_virtual_key(struct dm_thin_device *td, dm_block_t b, | ||
| 459 | struct cell_key *key) | ||
| 460 | { | ||
| 461 | key->virtual = 1; | ||
| 462 | key->dev = dm_thin_dev_id(td); | ||
| 463 | key->block = b; | ||
| 464 | } | ||
| 465 | |||
| 466 | /*----------------------------------------------------------------*/ | ||
| 467 | |||
| 468 | /* | ||
| 469 | * A pool device ties together a metadata device and a data device. It | ||
| 470 | * also provides the interface for creating and destroying internal | ||
| 471 | * devices. | ||
| 472 | */ | ||
| 473 | struct new_mapping; | ||
| 474 | struct pool { | ||
| 475 | struct list_head list; | ||
| 476 | struct dm_target *ti; /* Only set if a pool target is bound */ | ||
| 477 | |||
| 478 | struct mapped_device *pool_md; | ||
| 479 | struct block_device *md_dev; | ||
| 480 | struct dm_pool_metadata *pmd; | ||
| 481 | |||
| 482 | uint32_t sectors_per_block; | ||
| 483 | unsigned block_shift; | ||
| 484 | dm_block_t offset_mask; | ||
| 485 | dm_block_t low_water_blocks; | ||
| 486 | |||
| 487 | unsigned zero_new_blocks:1; | ||
| 488 | unsigned low_water_triggered:1; /* A dm event has been sent */ | ||
| 489 | unsigned no_free_space:1; /* A -ENOSPC warning has been issued */ | ||
| 490 | |||
| 491 | struct bio_prison *prison; | ||
| 492 | struct dm_kcopyd_client *copier; | ||
| 493 | |||
| 494 | struct workqueue_struct *wq; | ||
| 495 | struct work_struct worker; | ||
| 496 | |||
| 497 | unsigned ref_count; | ||
| 498 | |||
| 499 | spinlock_t lock; | ||
| 500 | struct bio_list deferred_bios; | ||
| 501 | struct bio_list deferred_flush_bios; | ||
| 502 | struct list_head prepared_mappings; | ||
| 503 | |||
| 504 | struct bio_list retry_on_resume_list; | ||
| 505 | |||
| 506 | struct deferred_set ds; /* FIXME: move to thin_c */ | ||
| 507 | |||
| 508 | struct new_mapping *next_mapping; | ||
| 509 | mempool_t *mapping_pool; | ||
| 510 | mempool_t *endio_hook_pool; | ||
| 511 | }; | ||
| 512 | |||
| 513 | /* | ||
| 514 | * Target context for a pool. | ||
| 515 | */ | ||
| 516 | struct pool_c { | ||
| 517 | struct dm_target *ti; | ||
| 518 | struct pool *pool; | ||
| 519 | struct dm_dev *data_dev; | ||
| 520 | struct dm_dev *metadata_dev; | ||
| 521 | struct dm_target_callbacks callbacks; | ||
| 522 | |||
| 523 | dm_block_t low_water_blocks; | ||
| 524 | unsigned zero_new_blocks:1; | ||
| 525 | }; | ||
| 526 | |||
| 527 | /* | ||
| 528 | * Target context for a thin. | ||
| 529 | */ | ||
| 530 | struct thin_c { | ||
| 531 | struct dm_dev *pool_dev; | ||
| 532 | dm_thin_id dev_id; | ||
| 533 | |||
| 534 | struct pool *pool; | ||
| 535 | struct dm_thin_device *td; | ||
| 536 | }; | ||
| 537 | |||
| 538 | /*----------------------------------------------------------------*/ | ||
| 539 | |||
| 540 | /* | ||
| 541 | * A global list of pools that uses a struct mapped_device as a key. | ||
| 542 | */ | ||
| 543 | static struct dm_thin_pool_table { | ||
| 544 | struct mutex mutex; | ||
| 545 | struct list_head pools; | ||
| 546 | } dm_thin_pool_table; | ||
| 547 | |||
| 548 | static void pool_table_init(void) | ||
| 549 | { | ||
| 550 | mutex_init(&dm_thin_pool_table.mutex); | ||
| 551 | INIT_LIST_HEAD(&dm_thin_pool_table.pools); | ||
| 552 | } | ||
| 553 | |||
| 554 | static void __pool_table_insert(struct pool *pool) | ||
| 555 | { | ||
| 556 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 557 | list_add(&pool->list, &dm_thin_pool_table.pools); | ||
| 558 | } | ||
| 559 | |||
| 560 | static void __pool_table_remove(struct pool *pool) | ||
| 561 | { | ||
| 562 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 563 | list_del(&pool->list); | ||
| 564 | } | ||
| 565 | |||
| 566 | static struct pool *__pool_table_lookup(struct mapped_device *md) | ||
| 567 | { | ||
| 568 | struct pool *pool = NULL, *tmp; | ||
| 569 | |||
| 570 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 571 | |||
| 572 | list_for_each_entry(tmp, &dm_thin_pool_table.pools, list) { | ||
| 573 | if (tmp->pool_md == md) { | ||
| 574 | pool = tmp; | ||
| 575 | break; | ||
| 576 | } | ||
| 577 | } | ||
| 578 | |||
| 579 | return pool; | ||
| 580 | } | ||
| 581 | |||
| 582 | static struct pool *__pool_table_lookup_metadata_dev(struct block_device *md_dev) | ||
| 583 | { | ||
| 584 | struct pool *pool = NULL, *tmp; | ||
| 585 | |||
| 586 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 587 | |||
| 588 | list_for_each_entry(tmp, &dm_thin_pool_table.pools, list) { | ||
| 589 | if (tmp->md_dev == md_dev) { | ||
| 590 | pool = tmp; | ||
| 591 | break; | ||
| 592 | } | ||
| 593 | } | ||
| 594 | |||
| 595 | return pool; | ||
| 596 | } | ||
| 597 | |||
| 598 | /*----------------------------------------------------------------*/ | ||
| 599 | |||
| 600 | static void __requeue_bio_list(struct thin_c *tc, struct bio_list *master) | ||
| 601 | { | ||
| 602 | struct bio *bio; | ||
| 603 | struct bio_list bios; | ||
| 604 | |||
| 605 | bio_list_init(&bios); | ||
| 606 | bio_list_merge(&bios, master); | ||
| 607 | bio_list_init(master); | ||
| 608 | |||
| 609 | while ((bio = bio_list_pop(&bios))) { | ||
| 610 | if (dm_get_mapinfo(bio)->ptr == tc) | ||
| 611 | bio_endio(bio, DM_ENDIO_REQUEUE); | ||
| 612 | else | ||
| 613 | bio_list_add(master, bio); | ||
| 614 | } | ||
| 615 | } | ||
| 616 | |||
| 617 | static void requeue_io(struct thin_c *tc) | ||
| 618 | { | ||
| 619 | struct pool *pool = tc->pool; | ||
| 620 | unsigned long flags; | ||
| 621 | |||
| 622 | spin_lock_irqsave(&pool->lock, flags); | ||
| 623 | __requeue_bio_list(tc, &pool->deferred_bios); | ||
| 624 | __requeue_bio_list(tc, &pool->retry_on_resume_list); | ||
| 625 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 626 | } | ||
| 627 | |||
| 628 | /* | ||
| 629 | * This section of code contains the logic for processing a thin device's IO. | ||
| 630 | * Much of the code depends on pool object resources (lists, workqueues, etc) | ||
| 631 | * but most is exclusively called from the thin target rather than the thin-pool | ||
| 632 | * target. | ||
| 633 | */ | ||
| 634 | |||
| 635 | static dm_block_t get_bio_block(struct thin_c *tc, struct bio *bio) | ||
| 636 | { | ||
| 637 | return bio->bi_sector >> tc->pool->block_shift; | ||
| 638 | } | ||
| 639 | |||
| 640 | static void remap(struct thin_c *tc, struct bio *bio, dm_block_t block) | ||
| 641 | { | ||
| 642 | struct pool *pool = tc->pool; | ||
| 643 | |||
| 644 | bio->bi_bdev = tc->pool_dev->bdev; | ||
| 645 | bio->bi_sector = (block << pool->block_shift) + | ||
| 646 | (bio->bi_sector & pool->offset_mask); | ||
| 647 | } | ||
| 648 | |||
| 649 | static void remap_and_issue(struct thin_c *tc, struct bio *bio, | ||
| 650 | dm_block_t block) | ||
| 651 | { | ||
| 652 | struct pool *pool = tc->pool; | ||
| 653 | unsigned long flags; | ||
| 654 | |||
| 655 | remap(tc, bio, block); | ||
| 656 | |||
| 657 | /* | ||
| 658 | * Batch together any FUA/FLUSH bios we find and then issue | ||
| 659 | * a single commit for them in process_deferred_bios(). | ||
| 660 | */ | ||
| 661 | if (bio->bi_rw & (REQ_FLUSH | REQ_FUA)) { | ||
| 662 | spin_lock_irqsave(&pool->lock, flags); | ||
| 663 | bio_list_add(&pool->deferred_flush_bios, bio); | ||
| 664 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 665 | } else | ||
| 666 | generic_make_request(bio); | ||
| 667 | } | ||
| 668 | |||
| 669 | /* | ||
| 670 | * wake_worker() is used when new work is queued and when pool_resume is | ||
| 671 | * ready to continue deferred IO processing. | ||
| 672 | */ | ||
| 673 | static void wake_worker(struct pool *pool) | ||
| 674 | { | ||
| 675 | queue_work(pool->wq, &pool->worker); | ||
| 676 | } | ||
| 677 | |||
| 678 | /*----------------------------------------------------------------*/ | ||
| 679 | |||
| 680 | /* | ||
| 681 | * Bio endio functions. | ||
| 682 | */ | ||
| 683 | struct endio_hook { | ||
| 684 | struct thin_c *tc; | ||
| 685 | bio_end_io_t *saved_bi_end_io; | ||
| 686 | struct deferred_entry *entry; | ||
| 687 | }; | ||
| 688 | |||
| 689 | struct new_mapping { | ||
| 690 | struct list_head list; | ||
| 691 | |||
| 692 | int prepared; | ||
| 693 | |||
| 694 | struct thin_c *tc; | ||
| 695 | dm_block_t virt_block; | ||
| 696 | dm_block_t data_block; | ||
| 697 | struct cell *cell; | ||
| 698 | int err; | ||
| 699 | |||
| 700 | /* | ||
| 701 | * If the bio covers the whole area of a block then we can avoid | ||
| 702 | * zeroing or copying. Instead this bio is hooked. The bio will | ||
| 703 | * still be in the cell, so care has to be taken to avoid issuing | ||
| 704 | * the bio twice. | ||
| 705 | */ | ||
| 706 | struct bio *bio; | ||
| 707 | bio_end_io_t *saved_bi_end_io; | ||
| 708 | }; | ||
| 709 | |||
| 710 | static void __maybe_add_mapping(struct new_mapping *m) | ||
| 711 | { | ||
| 712 | struct pool *pool = m->tc->pool; | ||
| 713 | |||
| 714 | if (list_empty(&m->list) && m->prepared) { | ||
| 715 | list_add(&m->list, &pool->prepared_mappings); | ||
| 716 | wake_worker(pool); | ||
| 717 | } | ||
| 718 | } | ||
| 719 | |||
| 720 | static void copy_complete(int read_err, unsigned long write_err, void *context) | ||
| 721 | { | ||
| 722 | unsigned long flags; | ||
| 723 | struct new_mapping *m = context; | ||
| 724 | struct pool *pool = m->tc->pool; | ||
| 725 | |||
| 726 | m->err = read_err || write_err ? -EIO : 0; | ||
| 727 | |||
| 728 | spin_lock_irqsave(&pool->lock, flags); | ||
| 729 | m->prepared = 1; | ||
| 730 | __maybe_add_mapping(m); | ||
| 731 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 732 | } | ||
| 733 | |||
| 734 | static void overwrite_endio(struct bio *bio, int err) | ||
| 735 | { | ||
| 736 | unsigned long flags; | ||
| 737 | struct new_mapping *m = dm_get_mapinfo(bio)->ptr; | ||
| 738 | struct pool *pool = m->tc->pool; | ||
| 739 | |||
| 740 | m->err = err; | ||
| 741 | |||
| 742 | spin_lock_irqsave(&pool->lock, flags); | ||
| 743 | m->prepared = 1; | ||
| 744 | __maybe_add_mapping(m); | ||
| 745 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 746 | } | ||
| 747 | |||
| 748 | static void shared_read_endio(struct bio *bio, int err) | ||
| 749 | { | ||
| 750 | struct list_head mappings; | ||
| 751 | struct new_mapping *m, *tmp; | ||
| 752 | struct endio_hook *h = dm_get_mapinfo(bio)->ptr; | ||
| 753 | unsigned long flags; | ||
| 754 | struct pool *pool = h->tc->pool; | ||
| 755 | |||
| 756 | bio->bi_end_io = h->saved_bi_end_io; | ||
| 757 | bio_endio(bio, err); | ||
| 758 | |||
| 759 | INIT_LIST_HEAD(&mappings); | ||
| 760 | ds_dec(h->entry, &mappings); | ||
| 761 | |||
| 762 | spin_lock_irqsave(&pool->lock, flags); | ||
| 763 | list_for_each_entry_safe(m, tmp, &mappings, list) { | ||
| 764 | list_del(&m->list); | ||
| 765 | INIT_LIST_HEAD(&m->list); | ||
| 766 | __maybe_add_mapping(m); | ||
| 767 | } | ||
| 768 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 769 | |||
| 770 | mempool_free(h, pool->endio_hook_pool); | ||
| 771 | } | ||
| 772 | |||
| 773 | /*----------------------------------------------------------------*/ | ||
| 774 | |||
| 775 | /* | ||
| 776 | * Workqueue. | ||
| 777 | */ | ||
| 778 | |||
| 779 | /* | ||
| 780 | * Prepared mapping jobs. | ||
| 781 | */ | ||
| 782 | |||
| 783 | /* | ||
| 784 | * This sends the bios in the cell back to the deferred_bios list. | ||
| 785 | */ | ||
| 786 | static void cell_defer(struct thin_c *tc, struct cell *cell, | ||
| 787 | dm_block_t data_block) | ||
| 788 | { | ||
| 789 | struct pool *pool = tc->pool; | ||
| 790 | unsigned long flags; | ||
| 791 | |||
| 792 | spin_lock_irqsave(&pool->lock, flags); | ||
| 793 | cell_release(cell, &pool->deferred_bios); | ||
| 794 | spin_unlock_irqrestore(&tc->pool->lock, flags); | ||
| 795 | |||
| 796 | wake_worker(pool); | ||
| 797 | } | ||
| 798 | |||
| 799 | /* | ||
| 800 | * Same as cell_defer above, except it omits one particular detainee, | ||
| 801 | * a write bio that covers the block and has already been processed. | ||
| 802 | */ | ||
| 803 | static void cell_defer_except(struct thin_c *tc, struct cell *cell, | ||
| 804 | struct bio *exception) | ||
| 805 | { | ||
| 806 | struct bio_list bios; | ||
| 807 | struct bio *bio; | ||
| 808 | struct pool *pool = tc->pool; | ||
| 809 | unsigned long flags; | ||
| 810 | |||
| 811 | bio_list_init(&bios); | ||
| 812 | cell_release(cell, &bios); | ||
| 813 | |||
| 814 | spin_lock_irqsave(&pool->lock, flags); | ||
| 815 | while ((bio = bio_list_pop(&bios))) | ||
| 816 | if (bio != exception) | ||
| 817 | bio_list_add(&pool->deferred_bios, bio); | ||
| 818 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 819 | |||
| 820 | wake_worker(pool); | ||
| 821 | } | ||
| 822 | |||
| 823 | static void process_prepared_mapping(struct new_mapping *m) | ||
| 824 | { | ||
| 825 | struct thin_c *tc = m->tc; | ||
| 826 | struct bio *bio; | ||
| 827 | int r; | ||
| 828 | |||
| 829 | bio = m->bio; | ||
| 830 | if (bio) | ||
| 831 | bio->bi_end_io = m->saved_bi_end_io; | ||
| 832 | |||
| 833 | if (m->err) { | ||
| 834 | cell_error(m->cell); | ||
| 835 | return; | ||
| 836 | } | ||
| 837 | |||
| 838 | /* | ||
| 839 | * Commit the prepared block into the mapping btree. | ||
| 840 | * Any I/O for this block arriving after this point will get | ||
| 841 | * remapped to it directly. | ||
| 842 | */ | ||
| 843 | r = dm_thin_insert_block(tc->td, m->virt_block, m->data_block); | ||
| 844 | if (r) { | ||
| 845 | DMERR("dm_thin_insert_block() failed"); | ||
| 846 | cell_error(m->cell); | ||
| 847 | return; | ||
| 848 | } | ||
| 849 | |||
| 850 | /* | ||
| 851 | * Release any bios held while the block was being provisioned. | ||
| 852 | * If we are processing a write bio that completely covers the block, | ||
| 853 | * we already processed it so can ignore it now when processing | ||
| 854 | * the bios in the cell. | ||
| 855 | */ | ||
| 856 | if (bio) { | ||
| 857 | cell_defer_except(tc, m->cell, bio); | ||
| 858 | bio_endio(bio, 0); | ||
| 859 | } else | ||
| 860 | cell_defer(tc, m->cell, m->data_block); | ||
| 861 | |||
| 862 | list_del(&m->list); | ||
| 863 | mempool_free(m, tc->pool->mapping_pool); | ||
| 864 | } | ||
| 865 | |||
| 866 | static void process_prepared_mappings(struct pool *pool) | ||
| 867 | { | ||
| 868 | unsigned long flags; | ||
| 869 | struct list_head maps; | ||
| 870 | struct new_mapping *m, *tmp; | ||
| 871 | |||
| 872 | INIT_LIST_HEAD(&maps); | ||
| 873 | spin_lock_irqsave(&pool->lock, flags); | ||
| 874 | list_splice_init(&pool->prepared_mappings, &maps); | ||
| 875 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 876 | |||
| 877 | list_for_each_entry_safe(m, tmp, &maps, list) | ||
| 878 | process_prepared_mapping(m); | ||
| 879 | } | ||
| 880 | |||
| 881 | /* | ||
| 882 | * Deferred bio jobs. | ||
| 883 | */ | ||
| 884 | static int io_overwrites_block(struct pool *pool, struct bio *bio) | ||
| 885 | { | ||
| 886 | return ((bio_data_dir(bio) == WRITE) && | ||
| 887 | !(bio->bi_sector & pool->offset_mask)) && | ||
| 888 | (bio->bi_size == (pool->sectors_per_block << SECTOR_SHIFT)); | ||
| 889 | } | ||
| 890 | |||
| 891 | static void save_and_set_endio(struct bio *bio, bio_end_io_t **save, | ||
| 892 | bio_end_io_t *fn) | ||
| 893 | { | ||
| 894 | *save = bio->bi_end_io; | ||
| 895 | bio->bi_end_io = fn; | ||
| 896 | } | ||
| 897 | |||
| 898 | static int ensure_next_mapping(struct pool *pool) | ||
| 899 | { | ||
| 900 | if (pool->next_mapping) | ||
| 901 | return 0; | ||
| 902 | |||
| 903 | pool->next_mapping = mempool_alloc(pool->mapping_pool, GFP_ATOMIC); | ||
| 904 | |||
| 905 | return pool->next_mapping ? 0 : -ENOMEM; | ||
| 906 | } | ||
| 907 | |||
| 908 | static struct new_mapping *get_next_mapping(struct pool *pool) | ||
| 909 | { | ||
| 910 | struct new_mapping *r = pool->next_mapping; | ||
| 911 | |||
| 912 | BUG_ON(!pool->next_mapping); | ||
| 913 | |||
| 914 | pool->next_mapping = NULL; | ||
| 915 | |||
| 916 | return r; | ||
| 917 | } | ||
| 918 | |||
| 919 | static void schedule_copy(struct thin_c *tc, dm_block_t virt_block, | ||
| 920 | dm_block_t data_origin, dm_block_t data_dest, | ||
| 921 | struct cell *cell, struct bio *bio) | ||
| 922 | { | ||
| 923 | int r; | ||
| 924 | struct pool *pool = tc->pool; | ||
| 925 | struct new_mapping *m = get_next_mapping(pool); | ||
| 926 | |||
| 927 | INIT_LIST_HEAD(&m->list); | ||
| 928 | m->prepared = 0; | ||
| 929 | m->tc = tc; | ||
| 930 | m->virt_block = virt_block; | ||
| 931 | m->data_block = data_dest; | ||
| 932 | m->cell = cell; | ||
| 933 | m->err = 0; | ||
| 934 | m->bio = NULL; | ||
| 935 | |||
| 936 | ds_add_work(&pool->ds, &m->list); | ||
| 937 | |||
| 938 | /* | ||
| 939 | * IO to pool_dev remaps to the pool target's data_dev. | ||
| 940 | * | ||
| 941 | * If the whole block of data is being overwritten, we can issue the | ||
| 942 | * bio immediately. Otherwise we use kcopyd to clone the data first. | ||
| 943 | */ | ||
| 944 | if (io_overwrites_block(pool, bio)) { | ||
| 945 | m->bio = bio; | ||
| 946 | save_and_set_endio(bio, &m->saved_bi_end_io, overwrite_endio); | ||
| 947 | dm_get_mapinfo(bio)->ptr = m; | ||
| 948 | remap_and_issue(tc, bio, data_dest); | ||
| 949 | } else { | ||
| 950 | struct dm_io_region from, to; | ||
| 951 | |||
| 952 | from.bdev = tc->pool_dev->bdev; | ||
| 953 | from.sector = data_origin * pool->sectors_per_block; | ||
| 954 | from.count = pool->sectors_per_block; | ||
| 955 | |||
| 956 | to.bdev = tc->pool_dev->bdev; | ||
| 957 | to.sector = data_dest * pool->sectors_per_block; | ||
| 958 | to.count = pool->sectors_per_block; | ||
| 959 | |||
| 960 | r = dm_kcopyd_copy(pool->copier, &from, 1, &to, | ||
| 961 | 0, copy_complete, m); | ||
| 962 | if (r < 0) { | ||
| 963 | mempool_free(m, pool->mapping_pool); | ||
| 964 | DMERR("dm_kcopyd_copy() failed"); | ||
| 965 | cell_error(cell); | ||
| 966 | } | ||
| 967 | } | ||
| 968 | } | ||
| 969 | |||
| 970 | static void schedule_zero(struct thin_c *tc, dm_block_t virt_block, | ||
| 971 | dm_block_t data_block, struct cell *cell, | ||
| 972 | struct bio *bio) | ||
| 973 | { | ||
| 974 | struct pool *pool = tc->pool; | ||
| 975 | struct new_mapping *m = get_next_mapping(pool); | ||
| 976 | |||
| 977 | INIT_LIST_HEAD(&m->list); | ||
| 978 | m->prepared = 0; | ||
| 979 | m->tc = tc; | ||
| 980 | m->virt_block = virt_block; | ||
| 981 | m->data_block = data_block; | ||
| 982 | m->cell = cell; | ||
| 983 | m->err = 0; | ||
| 984 | m->bio = NULL; | ||
| 985 | |||
| 986 | /* | ||
| 987 | * If the whole block of data is being overwritten or we are not | ||
| 988 | * zeroing pre-existing data, we can issue the bio immediately. | ||
| 989 | * Otherwise we use kcopyd to zero the data first. | ||
| 990 | */ | ||
| 991 | if (!pool->zero_new_blocks) | ||
| 992 | process_prepared_mapping(m); | ||
| 993 | |||
| 994 | else if (io_overwrites_block(pool, bio)) { | ||
| 995 | m->bio = bio; | ||
| 996 | save_and_set_endio(bio, &m->saved_bi_end_io, overwrite_endio); | ||
| 997 | dm_get_mapinfo(bio)->ptr = m; | ||
| 998 | remap_and_issue(tc, bio, data_block); | ||
| 999 | |||
| 1000 | } else { | ||
| 1001 | int r; | ||
| 1002 | struct dm_io_region to; | ||
| 1003 | |||
| 1004 | to.bdev = tc->pool_dev->bdev; | ||
| 1005 | to.sector = data_block * pool->sectors_per_block; | ||
| 1006 | to.count = pool->sectors_per_block; | ||
| 1007 | |||
| 1008 | r = dm_kcopyd_zero(pool->copier, 1, &to, 0, copy_complete, m); | ||
| 1009 | if (r < 0) { | ||
| 1010 | mempool_free(m, pool->mapping_pool); | ||
| 1011 | DMERR("dm_kcopyd_zero() failed"); | ||
| 1012 | cell_error(cell); | ||
| 1013 | } | ||
| 1014 | } | ||
| 1015 | } | ||
| 1016 | |||
| 1017 | static int alloc_data_block(struct thin_c *tc, dm_block_t *result) | ||
| 1018 | { | ||
| 1019 | int r; | ||
| 1020 | dm_block_t free_blocks; | ||
| 1021 | unsigned long flags; | ||
| 1022 | struct pool *pool = tc->pool; | ||
| 1023 | |||
| 1024 | r = dm_pool_get_free_block_count(pool->pmd, &free_blocks); | ||
| 1025 | if (r) | ||
| 1026 | return r; | ||
| 1027 | |||
| 1028 | if (free_blocks <= pool->low_water_blocks && !pool->low_water_triggered) { | ||
| 1029 | DMWARN("%s: reached low water mark, sending event.", | ||
| 1030 | dm_device_name(pool->pool_md)); | ||
| 1031 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1032 | pool->low_water_triggered = 1; | ||
| 1033 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1034 | dm_table_event(pool->ti->table); | ||
| 1035 | } | ||
| 1036 | |||
| 1037 | if (!free_blocks) { | ||
| 1038 | if (pool->no_free_space) | ||
| 1039 | return -ENOSPC; | ||
| 1040 | else { | ||
| 1041 | /* | ||
| 1042 | * Try to commit to see if that will free up some | ||
| 1043 | * more space. | ||
| 1044 | */ | ||
| 1045 | r = dm_pool_commit_metadata(pool->pmd); | ||
| 1046 | if (r) { | ||
| 1047 | DMERR("%s: dm_pool_commit_metadata() failed, error = %d", | ||
| 1048 | __func__, r); | ||
| 1049 | return r; | ||
| 1050 | } | ||
| 1051 | |||
| 1052 | r = dm_pool_get_free_block_count(pool->pmd, &free_blocks); | ||
| 1053 | if (r) | ||
| 1054 | return r; | ||
| 1055 | |||
| 1056 | /* | ||
| 1057 | * If we still have no space we set a flag to avoid | ||
| 1058 | * doing all this checking and return -ENOSPC. | ||
| 1059 | */ | ||
| 1060 | if (!free_blocks) { | ||
| 1061 | DMWARN("%s: no free space available.", | ||
| 1062 | dm_device_name(pool->pool_md)); | ||
| 1063 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1064 | pool->no_free_space = 1; | ||
| 1065 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1066 | return -ENOSPC; | ||
| 1067 | } | ||
| 1068 | } | ||
| 1069 | } | ||
| 1070 | |||
| 1071 | r = dm_pool_alloc_data_block(pool->pmd, result); | ||
| 1072 | if (r) | ||
| 1073 | return r; | ||
| 1074 | |||
| 1075 | return 0; | ||
| 1076 | } | ||
| 1077 | |||
| 1078 | /* | ||
| 1079 | * If we have run out of space, queue bios until the device is | ||
| 1080 | * resumed, presumably after having been reloaded with more space. | ||
| 1081 | */ | ||
| 1082 | static void retry_on_resume(struct bio *bio) | ||
| 1083 | { | ||
| 1084 | struct thin_c *tc = dm_get_mapinfo(bio)->ptr; | ||
| 1085 | struct pool *pool = tc->pool; | ||
| 1086 | unsigned long flags; | ||
| 1087 | |||
| 1088 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1089 | bio_list_add(&pool->retry_on_resume_list, bio); | ||
| 1090 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1091 | } | ||
| 1092 | |||
| 1093 | static void no_space(struct cell *cell) | ||
| 1094 | { | ||
| 1095 | struct bio *bio; | ||
| 1096 | struct bio_list bios; | ||
| 1097 | |||
| 1098 | bio_list_init(&bios); | ||
| 1099 | cell_release(cell, &bios); | ||
| 1100 | |||
| 1101 | while ((bio = bio_list_pop(&bios))) | ||
| 1102 | retry_on_resume(bio); | ||
| 1103 | } | ||
| 1104 | |||
| 1105 | static void break_sharing(struct thin_c *tc, struct bio *bio, dm_block_t block, | ||
| 1106 | struct cell_key *key, | ||
| 1107 | struct dm_thin_lookup_result *lookup_result, | ||
| 1108 | struct cell *cell) | ||
| 1109 | { | ||
| 1110 | int r; | ||
| 1111 | dm_block_t data_block; | ||
| 1112 | |||
| 1113 | r = alloc_data_block(tc, &data_block); | ||
| 1114 | switch (r) { | ||
| 1115 | case 0: | ||
| 1116 | schedule_copy(tc, block, lookup_result->block, | ||
| 1117 | data_block, cell, bio); | ||
| 1118 | break; | ||
| 1119 | |||
| 1120 | case -ENOSPC: | ||
| 1121 | no_space(cell); | ||
| 1122 | break; | ||
| 1123 | |||
| 1124 | default: | ||
| 1125 | DMERR("%s: alloc_data_block() failed, error = %d", __func__, r); | ||
| 1126 | cell_error(cell); | ||
| 1127 | break; | ||
| 1128 | } | ||
| 1129 | } | ||
| 1130 | |||
| 1131 | static void process_shared_bio(struct thin_c *tc, struct bio *bio, | ||
| 1132 | dm_block_t block, | ||
| 1133 | struct dm_thin_lookup_result *lookup_result) | ||
| 1134 | { | ||
| 1135 | struct cell *cell; | ||
| 1136 | struct pool *pool = tc->pool; | ||
| 1137 | struct cell_key key; | ||
| 1138 | |||
| 1139 | /* | ||
| 1140 | * If cell is already occupied, then sharing is already in the process | ||
| 1141 | * of being broken so we have nothing further to do here. | ||
| 1142 | */ | ||
| 1143 | build_data_key(tc->td, lookup_result->block, &key); | ||
| 1144 | if (bio_detain(pool->prison, &key, bio, &cell)) | ||
| 1145 | return; | ||
| 1146 | |||
| 1147 | if (bio_data_dir(bio) == WRITE) | ||
| 1148 | break_sharing(tc, bio, block, &key, lookup_result, cell); | ||
| 1149 | else { | ||
| 1150 | struct endio_hook *h; | ||
| 1151 | h = mempool_alloc(pool->endio_hook_pool, GFP_NOIO); | ||
| 1152 | |||
| 1153 | h->tc = tc; | ||
| 1154 | h->entry = ds_inc(&pool->ds); | ||
| 1155 | save_and_set_endio(bio, &h->saved_bi_end_io, shared_read_endio); | ||
| 1156 | dm_get_mapinfo(bio)->ptr = h; | ||
| 1157 | |||
| 1158 | cell_release_singleton(cell, bio); | ||
| 1159 | remap_and_issue(tc, bio, lookup_result->block); | ||
| 1160 | } | ||
| 1161 | } | ||
| 1162 | |||
| 1163 | static void provision_block(struct thin_c *tc, struct bio *bio, dm_block_t block, | ||
| 1164 | struct cell *cell) | ||
| 1165 | { | ||
| 1166 | int r; | ||
| 1167 | dm_block_t data_block; | ||
| 1168 | |||
| 1169 | /* | ||
| 1170 | * Remap empty bios (flushes) immediately, without provisioning. | ||
| 1171 | */ | ||
| 1172 | if (!bio->bi_size) { | ||
| 1173 | cell_release_singleton(cell, bio); | ||
| 1174 | remap_and_issue(tc, bio, 0); | ||
| 1175 | return; | ||
| 1176 | } | ||
| 1177 | |||
| 1178 | /* | ||
| 1179 | * Fill read bios with zeroes and complete them immediately. | ||
| 1180 | */ | ||
| 1181 | if (bio_data_dir(bio) == READ) { | ||
| 1182 | zero_fill_bio(bio); | ||
| 1183 | cell_release_singleton(cell, bio); | ||
| 1184 | bio_endio(bio, 0); | ||
| 1185 | return; | ||
| 1186 | } | ||
| 1187 | |||
| 1188 | r = alloc_data_block(tc, &data_block); | ||
| 1189 | switch (r) { | ||
| 1190 | case 0: | ||
| 1191 | schedule_zero(tc, block, data_block, cell, bio); | ||
| 1192 | break; | ||
| 1193 | |||
| 1194 | case -ENOSPC: | ||
| 1195 | no_space(cell); | ||
| 1196 | break; | ||
| 1197 | |||
| 1198 | default: | ||
| 1199 | DMERR("%s: alloc_data_block() failed, error = %d", __func__, r); | ||
| 1200 | cell_error(cell); | ||
| 1201 | break; | ||
| 1202 | } | ||
| 1203 | } | ||
| 1204 | |||
| 1205 | static void process_bio(struct thin_c *tc, struct bio *bio) | ||
| 1206 | { | ||
| 1207 | int r; | ||
| 1208 | dm_block_t block = get_bio_block(tc, bio); | ||
| 1209 | struct cell *cell; | ||
| 1210 | struct cell_key key; | ||
| 1211 | struct dm_thin_lookup_result lookup_result; | ||
| 1212 | |||
| 1213 | /* | ||
| 1214 | * If cell is already occupied, then the block is already | ||
| 1215 | * being provisioned so we have nothing further to do here. | ||
| 1216 | */ | ||
| 1217 | build_virtual_key(tc->td, block, &key); | ||
| 1218 | if (bio_detain(tc->pool->prison, &key, bio, &cell)) | ||
| 1219 | return; | ||
| 1220 | |||
| 1221 | r = dm_thin_find_block(tc->td, block, 1, &lookup_result); | ||
| 1222 | switch (r) { | ||
| 1223 | case 0: | ||
| 1224 | /* | ||
| 1225 | * We can release this cell now. This thread is the only | ||
| 1226 | * one that puts bios into a cell, and we know there were | ||
| 1227 | * no preceding bios. | ||
| 1228 | */ | ||
| 1229 | /* | ||
| 1230 | * TODO: this will probably have to change when discard goes | ||
| 1231 | * back in. | ||
| 1232 | */ | ||
| 1233 | cell_release_singleton(cell, bio); | ||
| 1234 | |||
| 1235 | if (lookup_result.shared) | ||
| 1236 | process_shared_bio(tc, bio, block, &lookup_result); | ||
| 1237 | else | ||
| 1238 | remap_and_issue(tc, bio, lookup_result.block); | ||
| 1239 | break; | ||
| 1240 | |||
| 1241 | case -ENODATA: | ||
| 1242 | provision_block(tc, bio, block, cell); | ||
| 1243 | break; | ||
| 1244 | |||
| 1245 | default: | ||
| 1246 | DMERR("dm_thin_find_block() failed, error = %d", r); | ||
| 1247 | bio_io_error(bio); | ||
| 1248 | break; | ||
| 1249 | } | ||
| 1250 | } | ||
| 1251 | |||
| 1252 | static void process_deferred_bios(struct pool *pool) | ||
| 1253 | { | ||
| 1254 | unsigned long flags; | ||
| 1255 | struct bio *bio; | ||
| 1256 | struct bio_list bios; | ||
| 1257 | int r; | ||
| 1258 | |||
| 1259 | bio_list_init(&bios); | ||
| 1260 | |||
| 1261 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1262 | bio_list_merge(&bios, &pool->deferred_bios); | ||
| 1263 | bio_list_init(&pool->deferred_bios); | ||
| 1264 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1265 | |||
| 1266 | while ((bio = bio_list_pop(&bios))) { | ||
| 1267 | struct thin_c *tc = dm_get_mapinfo(bio)->ptr; | ||
| 1268 | /* | ||
| 1269 | * If we've got no free new_mapping structs, and processing | ||
| 1270 | * this bio might require one, we pause until there are some | ||
| 1271 | * prepared mappings to process. | ||
| 1272 | */ | ||
| 1273 | if (ensure_next_mapping(pool)) { | ||
| 1274 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1275 | bio_list_merge(&pool->deferred_bios, &bios); | ||
| 1276 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1277 | |||
| 1278 | break; | ||
| 1279 | } | ||
| 1280 | process_bio(tc, bio); | ||
| 1281 | } | ||
| 1282 | |||
| 1283 | /* | ||
| 1284 | * If there are any deferred flush bios, we must commit | ||
| 1285 | * the metadata before issuing them. | ||
| 1286 | */ | ||
| 1287 | bio_list_init(&bios); | ||
| 1288 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1289 | bio_list_merge(&bios, &pool->deferred_flush_bios); | ||
| 1290 | bio_list_init(&pool->deferred_flush_bios); | ||
| 1291 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1292 | |||
| 1293 | if (bio_list_empty(&bios)) | ||
| 1294 | return; | ||
| 1295 | |||
| 1296 | r = dm_pool_commit_metadata(pool->pmd); | ||
| 1297 | if (r) { | ||
| 1298 | DMERR("%s: dm_pool_commit_metadata() failed, error = %d", | ||
| 1299 | __func__, r); | ||
| 1300 | while ((bio = bio_list_pop(&bios))) | ||
| 1301 | bio_io_error(bio); | ||
| 1302 | return; | ||
| 1303 | } | ||
| 1304 | |||
| 1305 | while ((bio = bio_list_pop(&bios))) | ||
| 1306 | generic_make_request(bio); | ||
| 1307 | } | ||
| 1308 | |||
| 1309 | static void do_worker(struct work_struct *ws) | ||
| 1310 | { | ||
| 1311 | struct pool *pool = container_of(ws, struct pool, worker); | ||
| 1312 | |||
| 1313 | process_prepared_mappings(pool); | ||
| 1314 | process_deferred_bios(pool); | ||
| 1315 | } | ||
| 1316 | |||
| 1317 | /*----------------------------------------------------------------*/ | ||
| 1318 | |||
| 1319 | /* | ||
| 1320 | * Mapping functions. | ||
| 1321 | */ | ||
| 1322 | |||
| 1323 | /* | ||
| 1324 | * Called only while mapping a thin bio to hand it over to the workqueue. | ||
| 1325 | */ | ||
| 1326 | static void thin_defer_bio(struct thin_c *tc, struct bio *bio) | ||
| 1327 | { | ||
| 1328 | unsigned long flags; | ||
| 1329 | struct pool *pool = tc->pool; | ||
| 1330 | |||
| 1331 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1332 | bio_list_add(&pool->deferred_bios, bio); | ||
| 1333 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1334 | |||
| 1335 | wake_worker(pool); | ||
| 1336 | } | ||
| 1337 | |||
| 1338 | /* | ||
| 1339 | * Non-blocking function called from the thin target's map function. | ||
| 1340 | */ | ||
| 1341 | static int thin_bio_map(struct dm_target *ti, struct bio *bio, | ||
| 1342 | union map_info *map_context) | ||
| 1343 | { | ||
| 1344 | int r; | ||
| 1345 | struct thin_c *tc = ti->private; | ||
| 1346 | dm_block_t block = get_bio_block(tc, bio); | ||
| 1347 | struct dm_thin_device *td = tc->td; | ||
| 1348 | struct dm_thin_lookup_result result; | ||
| 1349 | |||
| 1350 | /* | ||
| 1351 | * Save the thin context for easy access from the deferred bio later. | ||
| 1352 | */ | ||
| 1353 | map_context->ptr = tc; | ||
| 1354 | |||
| 1355 | if (bio->bi_rw & (REQ_FLUSH | REQ_FUA)) { | ||
| 1356 | thin_defer_bio(tc, bio); | ||
| 1357 | return DM_MAPIO_SUBMITTED; | ||
| 1358 | } | ||
| 1359 | |||
| 1360 | r = dm_thin_find_block(td, block, 0, &result); | ||
| 1361 | |||
| 1362 | /* | ||
| 1363 | * Note that we defer readahead too. | ||
| 1364 | */ | ||
| 1365 | switch (r) { | ||
| 1366 | case 0: | ||
| 1367 | if (unlikely(result.shared)) { | ||
| 1368 | /* | ||
| 1369 | * We have a race condition here between the | ||
| 1370 | * result.shared value returned by the lookup and | ||
| 1371 | * snapshot creation, which may cause new | ||
| 1372 | * sharing. | ||
| 1373 | * | ||
| 1374 | * To avoid this always quiesce the origin before | ||
| 1375 | * taking the snap. You want to do this anyway to | ||
| 1376 | * ensure a consistent application view | ||
| 1377 | * (i.e. lockfs). | ||
| 1378 | * | ||
| 1379 | * More distant ancestors are irrelevant. The | ||
| 1380 | * shared flag will be set in their case. | ||
| 1381 | */ | ||
| 1382 | thin_defer_bio(tc, bio); | ||
| 1383 | r = DM_MAPIO_SUBMITTED; | ||
| 1384 | } else { | ||
| 1385 | remap(tc, bio, result.block); | ||
| 1386 | r = DM_MAPIO_REMAPPED; | ||
| 1387 | } | ||
| 1388 | break; | ||
| 1389 | |||
| 1390 | case -ENODATA: | ||
| 1391 | /* | ||
| 1392 | * In future, the failed dm_thin_find_block above could | ||
| 1393 | * provide the hint to load the metadata into cache. | ||
| 1394 | */ | ||
| 1395 | case -EWOULDBLOCK: | ||
| 1396 | thin_defer_bio(tc, bio); | ||
| 1397 | r = DM_MAPIO_SUBMITTED; | ||
| 1398 | break; | ||
| 1399 | } | ||
| 1400 | |||
| 1401 | return r; | ||
| 1402 | } | ||
| 1403 | |||
| 1404 | static int pool_is_congested(struct dm_target_callbacks *cb, int bdi_bits) | ||
| 1405 | { | ||
| 1406 | int r; | ||
| 1407 | unsigned long flags; | ||
| 1408 | struct pool_c *pt = container_of(cb, struct pool_c, callbacks); | ||
| 1409 | |||
| 1410 | spin_lock_irqsave(&pt->pool->lock, flags); | ||
| 1411 | r = !bio_list_empty(&pt->pool->retry_on_resume_list); | ||
| 1412 | spin_unlock_irqrestore(&pt->pool->lock, flags); | ||
| 1413 | |||
| 1414 | if (!r) { | ||
| 1415 | struct request_queue *q = bdev_get_queue(pt->data_dev->bdev); | ||
| 1416 | r = bdi_congested(&q->backing_dev_info, bdi_bits); | ||
| 1417 | } | ||
| 1418 | |||
| 1419 | return r; | ||
| 1420 | } | ||
| 1421 | |||
| 1422 | static void __requeue_bios(struct pool *pool) | ||
| 1423 | { | ||
| 1424 | bio_list_merge(&pool->deferred_bios, &pool->retry_on_resume_list); | ||
| 1425 | bio_list_init(&pool->retry_on_resume_list); | ||
| 1426 | } | ||
| 1427 | |||
| 1428 | /*---------------------------------------------------------------- | ||
| 1429 | * Binding of control targets to a pool object | ||
| 1430 | *--------------------------------------------------------------*/ | ||
| 1431 | static int bind_control_target(struct pool *pool, struct dm_target *ti) | ||
| 1432 | { | ||
| 1433 | struct pool_c *pt = ti->private; | ||
| 1434 | |||
| 1435 | pool->ti = ti; | ||
| 1436 | pool->low_water_blocks = pt->low_water_blocks; | ||
| 1437 | pool->zero_new_blocks = pt->zero_new_blocks; | ||
| 1438 | |||
| 1439 | return 0; | ||
| 1440 | } | ||
| 1441 | |||
| 1442 | static void unbind_control_target(struct pool *pool, struct dm_target *ti) | ||
| 1443 | { | ||
| 1444 | if (pool->ti == ti) | ||
| 1445 | pool->ti = NULL; | ||
| 1446 | } | ||
| 1447 | |||
| 1448 | /*---------------------------------------------------------------- | ||
| 1449 | * Pool creation | ||
| 1450 | *--------------------------------------------------------------*/ | ||
| 1451 | static void __pool_destroy(struct pool *pool) | ||
| 1452 | { | ||
| 1453 | __pool_table_remove(pool); | ||
| 1454 | |||
| 1455 | if (dm_pool_metadata_close(pool->pmd) < 0) | ||
| 1456 | DMWARN("%s: dm_pool_metadata_close() failed.", __func__); | ||
| 1457 | |||
| 1458 | prison_destroy(pool->prison); | ||
| 1459 | dm_kcopyd_client_destroy(pool->copier); | ||
| 1460 | |||
| 1461 | if (pool->wq) | ||
| 1462 | destroy_workqueue(pool->wq); | ||
| 1463 | |||
| 1464 | if (pool->next_mapping) | ||
| 1465 | mempool_free(pool->next_mapping, pool->mapping_pool); | ||
| 1466 | mempool_destroy(pool->mapping_pool); | ||
| 1467 | mempool_destroy(pool->endio_hook_pool); | ||
| 1468 | kfree(pool); | ||
| 1469 | } | ||
| 1470 | |||
| 1471 | static struct pool *pool_create(struct mapped_device *pool_md, | ||
| 1472 | struct block_device *metadata_dev, | ||
| 1473 | unsigned long block_size, char **error) | ||
| 1474 | { | ||
| 1475 | int r; | ||
| 1476 | void *err_p; | ||
| 1477 | struct pool *pool; | ||
| 1478 | struct dm_pool_metadata *pmd; | ||
| 1479 | |||
| 1480 | pmd = dm_pool_metadata_open(metadata_dev, block_size); | ||
| 1481 | if (IS_ERR(pmd)) { | ||
| 1482 | *error = "Error creating metadata object"; | ||
| 1483 | return (struct pool *)pmd; | ||
| 1484 | } | ||
| 1485 | |||
| 1486 | pool = kmalloc(sizeof(*pool), GFP_KERNEL); | ||
| 1487 | if (!pool) { | ||
| 1488 | *error = "Error allocating memory for pool"; | ||
| 1489 | err_p = ERR_PTR(-ENOMEM); | ||
| 1490 | goto bad_pool; | ||
| 1491 | } | ||
| 1492 | |||
| 1493 | pool->pmd = pmd; | ||
| 1494 | pool->sectors_per_block = block_size; | ||
| 1495 | pool->block_shift = ffs(block_size) - 1; | ||
| 1496 | pool->offset_mask = block_size - 1; | ||
| 1497 | pool->low_water_blocks = 0; | ||
| 1498 | pool->zero_new_blocks = 1; | ||
| 1499 | pool->prison = prison_create(PRISON_CELLS); | ||
| 1500 | if (!pool->prison) { | ||
| 1501 | *error = "Error creating pool's bio prison"; | ||
| 1502 | err_p = ERR_PTR(-ENOMEM); | ||
| 1503 | goto bad_prison; | ||
| 1504 | } | ||
| 1505 | |||
| 1506 | pool->copier = dm_kcopyd_client_create(); | ||
| 1507 | if (IS_ERR(pool->copier)) { | ||
| 1508 | r = PTR_ERR(pool->copier); | ||
| 1509 | *error = "Error creating pool's kcopyd client"; | ||
| 1510 | err_p = ERR_PTR(r); | ||
| 1511 | goto bad_kcopyd_client; | ||
| 1512 | } | ||
| 1513 | |||
| 1514 | /* | ||
| 1515 | * Create singlethreaded workqueue that will service all devices | ||
| 1516 | * that use this metadata. | ||
| 1517 | */ | ||
| 1518 | pool->wq = alloc_ordered_workqueue("dm-" DM_MSG_PREFIX, WQ_MEM_RECLAIM); | ||
| 1519 | if (!pool->wq) { | ||
| 1520 | *error = "Error creating pool's workqueue"; | ||
| 1521 | err_p = ERR_PTR(-ENOMEM); | ||
| 1522 | goto bad_wq; | ||
| 1523 | } | ||
| 1524 | |||
| 1525 | INIT_WORK(&pool->worker, do_worker); | ||
| 1526 | spin_lock_init(&pool->lock); | ||
| 1527 | bio_list_init(&pool->deferred_bios); | ||
| 1528 | bio_list_init(&pool->deferred_flush_bios); | ||
| 1529 | INIT_LIST_HEAD(&pool->prepared_mappings); | ||
| 1530 | pool->low_water_triggered = 0; | ||
| 1531 | pool->no_free_space = 0; | ||
| 1532 | bio_list_init(&pool->retry_on_resume_list); | ||
| 1533 | ds_init(&pool->ds); | ||
| 1534 | |||
| 1535 | pool->next_mapping = NULL; | ||
| 1536 | pool->mapping_pool = | ||
| 1537 | mempool_create_kmalloc_pool(MAPPING_POOL_SIZE, sizeof(struct new_mapping)); | ||
| 1538 | if (!pool->mapping_pool) { | ||
| 1539 | *error = "Error creating pool's mapping mempool"; | ||
| 1540 | err_p = ERR_PTR(-ENOMEM); | ||
| 1541 | goto bad_mapping_pool; | ||
| 1542 | } | ||
| 1543 | |||
| 1544 | pool->endio_hook_pool = | ||
| 1545 | mempool_create_kmalloc_pool(ENDIO_HOOK_POOL_SIZE, sizeof(struct endio_hook)); | ||
| 1546 | if (!pool->endio_hook_pool) { | ||
| 1547 | *error = "Error creating pool's endio_hook mempool"; | ||
| 1548 | err_p = ERR_PTR(-ENOMEM); | ||
| 1549 | goto bad_endio_hook_pool; | ||
| 1550 | } | ||
| 1551 | pool->ref_count = 1; | ||
| 1552 | pool->pool_md = pool_md; | ||
| 1553 | pool->md_dev = metadata_dev; | ||
| 1554 | __pool_table_insert(pool); | ||
| 1555 | |||
| 1556 | return pool; | ||
| 1557 | |||
| 1558 | bad_endio_hook_pool: | ||
| 1559 | mempool_destroy(pool->mapping_pool); | ||
| 1560 | bad_mapping_pool: | ||
| 1561 | destroy_workqueue(pool->wq); | ||
| 1562 | bad_wq: | ||
| 1563 | dm_kcopyd_client_destroy(pool->copier); | ||
| 1564 | bad_kcopyd_client: | ||
| 1565 | prison_destroy(pool->prison); | ||
| 1566 | bad_prison: | ||
| 1567 | kfree(pool); | ||
| 1568 | bad_pool: | ||
| 1569 | if (dm_pool_metadata_close(pmd)) | ||
| 1570 | DMWARN("%s: dm_pool_metadata_close() failed.", __func__); | ||
| 1571 | |||
| 1572 | return err_p; | ||
| 1573 | } | ||
| 1574 | |||
| 1575 | static void __pool_inc(struct pool *pool) | ||
| 1576 | { | ||
| 1577 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 1578 | pool->ref_count++; | ||
| 1579 | } | ||
| 1580 | |||
| 1581 | static void __pool_dec(struct pool *pool) | ||
| 1582 | { | ||
| 1583 | BUG_ON(!mutex_is_locked(&dm_thin_pool_table.mutex)); | ||
| 1584 | BUG_ON(!pool->ref_count); | ||
| 1585 | if (!--pool->ref_count) | ||
| 1586 | __pool_destroy(pool); | ||
| 1587 | } | ||
| 1588 | |||
| 1589 | static struct pool *__pool_find(struct mapped_device *pool_md, | ||
| 1590 | struct block_device *metadata_dev, | ||
| 1591 | unsigned long block_size, char **error) | ||
| 1592 | { | ||
| 1593 | struct pool *pool = __pool_table_lookup_metadata_dev(metadata_dev); | ||
| 1594 | |||
| 1595 | if (pool) { | ||
| 1596 | if (pool->pool_md != pool_md) | ||
| 1597 | return ERR_PTR(-EBUSY); | ||
| 1598 | __pool_inc(pool); | ||
| 1599 | |||
| 1600 | } else { | ||
| 1601 | pool = __pool_table_lookup(pool_md); | ||
| 1602 | if (pool) { | ||
| 1603 | if (pool->md_dev != metadata_dev) | ||
| 1604 | return ERR_PTR(-EINVAL); | ||
| 1605 | __pool_inc(pool); | ||
| 1606 | |||
| 1607 | } else | ||
| 1608 | pool = pool_create(pool_md, metadata_dev, block_size, error); | ||
| 1609 | } | ||
| 1610 | |||
| 1611 | return pool; | ||
| 1612 | } | ||
| 1613 | |||
| 1614 | /*---------------------------------------------------------------- | ||
| 1615 | * Pool target methods | ||
| 1616 | *--------------------------------------------------------------*/ | ||
| 1617 | static void pool_dtr(struct dm_target *ti) | ||
| 1618 | { | ||
| 1619 | struct pool_c *pt = ti->private; | ||
| 1620 | |||
| 1621 | mutex_lock(&dm_thin_pool_table.mutex); | ||
| 1622 | |||
| 1623 | unbind_control_target(pt->pool, ti); | ||
| 1624 | __pool_dec(pt->pool); | ||
| 1625 | dm_put_device(ti, pt->metadata_dev); | ||
| 1626 | dm_put_device(ti, pt->data_dev); | ||
| 1627 | kfree(pt); | ||
| 1628 | |||
| 1629 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 1630 | } | ||
| 1631 | |||
| 1632 | struct pool_features { | ||
| 1633 | unsigned zero_new_blocks:1; | ||
| 1634 | }; | ||
| 1635 | |||
| 1636 | static int parse_pool_features(struct dm_arg_set *as, struct pool_features *pf, | ||
| 1637 | struct dm_target *ti) | ||
| 1638 | { | ||
| 1639 | int r; | ||
| 1640 | unsigned argc; | ||
| 1641 | const char *arg_name; | ||
| 1642 | |||
| 1643 | static struct dm_arg _args[] = { | ||
| 1644 | {0, 1, "Invalid number of pool feature arguments"}, | ||
| 1645 | }; | ||
| 1646 | |||
| 1647 | /* | ||
| 1648 | * No feature arguments supplied. | ||
| 1649 | */ | ||
| 1650 | if (!as->argc) | ||
| 1651 | return 0; | ||
| 1652 | |||
| 1653 | r = dm_read_arg_group(_args, as, &argc, &ti->error); | ||
| 1654 | if (r) | ||
| 1655 | return -EINVAL; | ||
| 1656 | |||
| 1657 | while (argc && !r) { | ||
| 1658 | arg_name = dm_shift_arg(as); | ||
| 1659 | argc--; | ||
| 1660 | |||
| 1661 | if (!strcasecmp(arg_name, "skip_block_zeroing")) { | ||
| 1662 | pf->zero_new_blocks = 0; | ||
| 1663 | continue; | ||
| 1664 | } | ||
| 1665 | |||
| 1666 | ti->error = "Unrecognised pool feature requested"; | ||
| 1667 | r = -EINVAL; | ||
| 1668 | } | ||
| 1669 | |||
| 1670 | return r; | ||
| 1671 | } | ||
| 1672 | |||
| 1673 | /* | ||
| 1674 | * thin-pool <metadata dev> <data dev> | ||
| 1675 | * <data block size (sectors)> | ||
| 1676 | * <low water mark (blocks)> | ||
| 1677 | * [<#feature args> [<arg>]*] | ||
| 1678 | * | ||
| 1679 | * Optional feature arguments are: | ||
| 1680 | * skip_block_zeroing: skips the zeroing of newly-provisioned blocks. | ||
| 1681 | */ | ||
| 1682 | static int pool_ctr(struct dm_target *ti, unsigned argc, char **argv) | ||
| 1683 | { | ||
| 1684 | int r; | ||
| 1685 | struct pool_c *pt; | ||
| 1686 | struct pool *pool; | ||
| 1687 | struct pool_features pf; | ||
| 1688 | struct dm_arg_set as; | ||
| 1689 | struct dm_dev *data_dev; | ||
| 1690 | unsigned long block_size; | ||
| 1691 | dm_block_t low_water_blocks; | ||
| 1692 | struct dm_dev *metadata_dev; | ||
| 1693 | sector_t metadata_dev_size; | ||
| 1694 | |||
| 1695 | /* | ||
| 1696 | * FIXME Remove validation from scope of lock. | ||
| 1697 | */ | ||
| 1698 | mutex_lock(&dm_thin_pool_table.mutex); | ||
| 1699 | |||
| 1700 | if (argc < 4) { | ||
| 1701 | ti->error = "Invalid argument count"; | ||
| 1702 | r = -EINVAL; | ||
| 1703 | goto out_unlock; | ||
| 1704 | } | ||
| 1705 | as.argc = argc; | ||
| 1706 | as.argv = argv; | ||
| 1707 | |||
| 1708 | r = dm_get_device(ti, argv[0], FMODE_READ | FMODE_WRITE, &metadata_dev); | ||
| 1709 | if (r) { | ||
| 1710 | ti->error = "Error opening metadata block device"; | ||
| 1711 | goto out_unlock; | ||
| 1712 | } | ||
| 1713 | |||
| 1714 | metadata_dev_size = i_size_read(metadata_dev->bdev->bd_inode) >> SECTOR_SHIFT; | ||
| 1715 | if (metadata_dev_size > METADATA_DEV_MAX_SECTORS) { | ||
| 1716 | ti->error = "Metadata device is too large"; | ||
| 1717 | r = -EINVAL; | ||
| 1718 | goto out_metadata; | ||
| 1719 | } | ||
| 1720 | |||
| 1721 | r = dm_get_device(ti, argv[1], FMODE_READ | FMODE_WRITE, &data_dev); | ||
| 1722 | if (r) { | ||
| 1723 | ti->error = "Error getting data device"; | ||
| 1724 | goto out_metadata; | ||
| 1725 | } | ||
| 1726 | |||
| 1727 | if (kstrtoul(argv[2], 10, &block_size) || !block_size || | ||
| 1728 | block_size < DATA_DEV_BLOCK_SIZE_MIN_SECTORS || | ||
| 1729 | block_size > DATA_DEV_BLOCK_SIZE_MAX_SECTORS || | ||
| 1730 | !is_power_of_2(block_size)) { | ||
| 1731 | ti->error = "Invalid block size"; | ||
| 1732 | r = -EINVAL; | ||
| 1733 | goto out; | ||
| 1734 | } | ||
| 1735 | |||
| 1736 | if (kstrtoull(argv[3], 10, (unsigned long long *)&low_water_blocks)) { | ||
| 1737 | ti->error = "Invalid low water mark"; | ||
| 1738 | r = -EINVAL; | ||
| 1739 | goto out; | ||
| 1740 | } | ||
| 1741 | |||
| 1742 | /* | ||
| 1743 | * Set default pool features. | ||
| 1744 | */ | ||
| 1745 | memset(&pf, 0, sizeof(pf)); | ||
| 1746 | pf.zero_new_blocks = 1; | ||
| 1747 | |||
| 1748 | dm_consume_args(&as, 4); | ||
| 1749 | r = parse_pool_features(&as, &pf, ti); | ||
| 1750 | if (r) | ||
| 1751 | goto out; | ||
| 1752 | |||
| 1753 | pt = kzalloc(sizeof(*pt), GFP_KERNEL); | ||
| 1754 | if (!pt) { | ||
| 1755 | r = -ENOMEM; | ||
| 1756 | goto out; | ||
| 1757 | } | ||
| 1758 | |||
| 1759 | pool = __pool_find(dm_table_get_md(ti->table), metadata_dev->bdev, | ||
| 1760 | block_size, &ti->error); | ||
| 1761 | if (IS_ERR(pool)) { | ||
| 1762 | r = PTR_ERR(pool); | ||
| 1763 | goto out_free_pt; | ||
| 1764 | } | ||
| 1765 | |||
| 1766 | pt->pool = pool; | ||
| 1767 | pt->ti = ti; | ||
| 1768 | pt->metadata_dev = metadata_dev; | ||
| 1769 | pt->data_dev = data_dev; | ||
| 1770 | pt->low_water_blocks = low_water_blocks; | ||
| 1771 | pt->zero_new_blocks = pf.zero_new_blocks; | ||
| 1772 | ti->num_flush_requests = 1; | ||
| 1773 | ti->num_discard_requests = 0; | ||
| 1774 | ti->private = pt; | ||
| 1775 | |||
| 1776 | pt->callbacks.congested_fn = pool_is_congested; | ||
| 1777 | dm_table_add_target_callbacks(ti->table, &pt->callbacks); | ||
| 1778 | |||
| 1779 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 1780 | |||
| 1781 | return 0; | ||
| 1782 | |||
| 1783 | out_free_pt: | ||
| 1784 | kfree(pt); | ||
| 1785 | out: | ||
| 1786 | dm_put_device(ti, data_dev); | ||
| 1787 | out_metadata: | ||
| 1788 | dm_put_device(ti, metadata_dev); | ||
| 1789 | out_unlock: | ||
| 1790 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 1791 | |||
| 1792 | return r; | ||
| 1793 | } | ||
| 1794 | |||
| 1795 | static int pool_map(struct dm_target *ti, struct bio *bio, | ||
| 1796 | union map_info *map_context) | ||
| 1797 | { | ||
| 1798 | int r; | ||
| 1799 | struct pool_c *pt = ti->private; | ||
| 1800 | struct pool *pool = pt->pool; | ||
| 1801 | unsigned long flags; | ||
| 1802 | |||
| 1803 | /* | ||
| 1804 | * As this is a singleton target, ti->begin is always zero. | ||
| 1805 | */ | ||
| 1806 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1807 | bio->bi_bdev = pt->data_dev->bdev; | ||
| 1808 | r = DM_MAPIO_REMAPPED; | ||
| 1809 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1810 | |||
| 1811 | return r; | ||
| 1812 | } | ||
| 1813 | |||
| 1814 | /* | ||
| 1815 | * Retrieves the number of blocks of the data device from | ||
| 1816 | * the superblock and compares it to the actual device size, | ||
| 1817 | * thus resizing the data device in case it has grown. | ||
| 1818 | * | ||
| 1819 | * This both copes with opening preallocated data devices in the ctr | ||
| 1820 | * being followed by a resume | ||
| 1821 | * -and- | ||
| 1822 | * calling the resume method individually after userspace has | ||
| 1823 | * grown the data device in reaction to a table event. | ||
| 1824 | */ | ||
| 1825 | static int pool_preresume(struct dm_target *ti) | ||
| 1826 | { | ||
| 1827 | int r; | ||
| 1828 | struct pool_c *pt = ti->private; | ||
| 1829 | struct pool *pool = pt->pool; | ||
| 1830 | dm_block_t data_size, sb_data_size; | ||
| 1831 | |||
| 1832 | /* | ||
| 1833 | * Take control of the pool object. | ||
| 1834 | */ | ||
| 1835 | r = bind_control_target(pool, ti); | ||
| 1836 | if (r) | ||
| 1837 | return r; | ||
| 1838 | |||
| 1839 | data_size = ti->len >> pool->block_shift; | ||
| 1840 | r = dm_pool_get_data_dev_size(pool->pmd, &sb_data_size); | ||
| 1841 | if (r) { | ||
| 1842 | DMERR("failed to retrieve data device size"); | ||
| 1843 | return r; | ||
| 1844 | } | ||
| 1845 | |||
| 1846 | if (data_size < sb_data_size) { | ||
| 1847 | DMERR("pool target too small, is %llu blocks (expected %llu)", | ||
| 1848 | data_size, sb_data_size); | ||
| 1849 | return -EINVAL; | ||
| 1850 | |||
| 1851 | } else if (data_size > sb_data_size) { | ||
| 1852 | r = dm_pool_resize_data_dev(pool->pmd, data_size); | ||
| 1853 | if (r) { | ||
| 1854 | DMERR("failed to resize data device"); | ||
| 1855 | return r; | ||
| 1856 | } | ||
| 1857 | |||
| 1858 | r = dm_pool_commit_metadata(pool->pmd); | ||
| 1859 | if (r) { | ||
| 1860 | DMERR("%s: dm_pool_commit_metadata() failed, error = %d", | ||
| 1861 | __func__, r); | ||
| 1862 | return r; | ||
| 1863 | } | ||
| 1864 | } | ||
| 1865 | |||
| 1866 | return 0; | ||
| 1867 | } | ||
| 1868 | |||
| 1869 | static void pool_resume(struct dm_target *ti) | ||
| 1870 | { | ||
| 1871 | struct pool_c *pt = ti->private; | ||
| 1872 | struct pool *pool = pt->pool; | ||
| 1873 | unsigned long flags; | ||
| 1874 | |||
| 1875 | spin_lock_irqsave(&pool->lock, flags); | ||
| 1876 | pool->low_water_triggered = 0; | ||
| 1877 | pool->no_free_space = 0; | ||
| 1878 | __requeue_bios(pool); | ||
| 1879 | spin_unlock_irqrestore(&pool->lock, flags); | ||
| 1880 | |||
| 1881 | wake_worker(pool); | ||
| 1882 | } | ||
| 1883 | |||
| 1884 | static void pool_postsuspend(struct dm_target *ti) | ||
| 1885 | { | ||
| 1886 | int r; | ||
| 1887 | struct pool_c *pt = ti->private; | ||
| 1888 | struct pool *pool = pt->pool; | ||
| 1889 | |||
| 1890 | flush_workqueue(pool->wq); | ||
| 1891 | |||
| 1892 | r = dm_pool_commit_metadata(pool->pmd); | ||
| 1893 | if (r < 0) { | ||
| 1894 | DMERR("%s: dm_pool_commit_metadata() failed, error = %d", | ||
| 1895 | __func__, r); | ||
| 1896 | /* FIXME: invalidate device? error the next FUA or FLUSH bio ?*/ | ||
| 1897 | } | ||
| 1898 | } | ||
| 1899 | |||
| 1900 | static int check_arg_count(unsigned argc, unsigned args_required) | ||
| 1901 | { | ||
| 1902 | if (argc != args_required) { | ||
| 1903 | DMWARN("Message received with %u arguments instead of %u.", | ||
| 1904 | argc, args_required); | ||
| 1905 | return -EINVAL; | ||
| 1906 | } | ||
| 1907 | |||
| 1908 | return 0; | ||
| 1909 | } | ||
| 1910 | |||
| 1911 | static int read_dev_id(char *arg, dm_thin_id *dev_id, int warning) | ||
| 1912 | { | ||
| 1913 | if (!kstrtoull(arg, 10, (unsigned long long *)dev_id) && | ||
| 1914 | *dev_id <= MAX_DEV_ID) | ||
| 1915 | return 0; | ||
| 1916 | |||
| 1917 | if (warning) | ||
| 1918 | DMWARN("Message received with invalid device id: %s", arg); | ||
| 1919 | |||
| 1920 | return -EINVAL; | ||
| 1921 | } | ||
| 1922 | |||
| 1923 | static int process_create_thin_mesg(unsigned argc, char **argv, struct pool *pool) | ||
| 1924 | { | ||
| 1925 | dm_thin_id dev_id; | ||
| 1926 | int r; | ||
| 1927 | |||
| 1928 | r = check_arg_count(argc, 2); | ||
| 1929 | if (r) | ||
| 1930 | return r; | ||
| 1931 | |||
| 1932 | r = read_dev_id(argv[1], &dev_id, 1); | ||
| 1933 | if (r) | ||
| 1934 | return r; | ||
| 1935 | |||
| 1936 | r = dm_pool_create_thin(pool->pmd, dev_id); | ||
| 1937 | if (r) { | ||
| 1938 | DMWARN("Creation of new thinly-provisioned device with id %s failed.", | ||
| 1939 | argv[1]); | ||
| 1940 | return r; | ||
| 1941 | } | ||
| 1942 | |||
| 1943 | return 0; | ||
| 1944 | } | ||
| 1945 | |||
| 1946 | static int process_create_snap_mesg(unsigned argc, char **argv, struct pool *pool) | ||
| 1947 | { | ||
| 1948 | dm_thin_id dev_id; | ||
| 1949 | dm_thin_id origin_dev_id; | ||
| 1950 | int r; | ||
| 1951 | |||
| 1952 | r = check_arg_count(argc, 3); | ||
| 1953 | if (r) | ||
| 1954 | return r; | ||
| 1955 | |||
| 1956 | r = read_dev_id(argv[1], &dev_id, 1); | ||
| 1957 | if (r) | ||
| 1958 | return r; | ||
| 1959 | |||
| 1960 | r = read_dev_id(argv[2], &origin_dev_id, 1); | ||
| 1961 | if (r) | ||
| 1962 | return r; | ||
| 1963 | |||
| 1964 | r = dm_pool_create_snap(pool->pmd, dev_id, origin_dev_id); | ||
| 1965 | if (r) { | ||
| 1966 | DMWARN("Creation of new snapshot %s of device %s failed.", | ||
| 1967 | argv[1], argv[2]); | ||
| 1968 | return r; | ||
| 1969 | } | ||
| 1970 | |||
| 1971 | return 0; | ||
| 1972 | } | ||
| 1973 | |||
| 1974 | static int process_delete_mesg(unsigned argc, char **argv, struct pool *pool) | ||
| 1975 | { | ||
| 1976 | dm_thin_id dev_id; | ||
| 1977 | int r; | ||
| 1978 | |||
| 1979 | r = check_arg_count(argc, 2); | ||
| 1980 | if (r) | ||
| 1981 | return r; | ||
| 1982 | |||
| 1983 | r = read_dev_id(argv[1], &dev_id, 1); | ||
| 1984 | if (r) | ||
| 1985 | return r; | ||
| 1986 | |||
| 1987 | r = dm_pool_delete_thin_device(pool->pmd, dev_id); | ||
| 1988 | if (r) | ||
| 1989 | DMWARN("Deletion of thin device %s failed.", argv[1]); | ||
| 1990 | |||
| 1991 | return r; | ||
| 1992 | } | ||
| 1993 | |||
| 1994 | static int process_set_transaction_id_mesg(unsigned argc, char **argv, struct pool *pool) | ||
| 1995 | { | ||
| 1996 | dm_thin_id old_id, new_id; | ||
| 1997 | int r; | ||
| 1998 | |||
| 1999 | r = check_arg_count(argc, 3); | ||
| 2000 | if (r) | ||
| 2001 | return r; | ||
| 2002 | |||
| 2003 | if (kstrtoull(argv[1], 10, (unsigned long long *)&old_id)) { | ||
| 2004 | DMWARN("set_transaction_id message: Unrecognised id %s.", argv[1]); | ||
| 2005 | return -EINVAL; | ||
| 2006 | } | ||
| 2007 | |||
| 2008 | if (kstrtoull(argv[2], 10, (unsigned long long *)&new_id)) { | ||
| 2009 | DMWARN("set_transaction_id message: Unrecognised new id %s.", argv[2]); | ||
| 2010 | return -EINVAL; | ||
| 2011 | } | ||
| 2012 | |||
| 2013 | r = dm_pool_set_metadata_transaction_id(pool->pmd, old_id, new_id); | ||
| 2014 | if (r) { | ||
| 2015 | DMWARN("Failed to change transaction id from %s to %s.", | ||
| 2016 | argv[1], argv[2]); | ||
| 2017 | return r; | ||
| 2018 | } | ||
| 2019 | |||
| 2020 | return 0; | ||
| 2021 | } | ||
| 2022 | |||
| 2023 | /* | ||
| 2024 | * Messages supported: | ||
| 2025 | * create_thin <dev_id> | ||
| 2026 | * create_snap <dev_id> <origin_id> | ||
| 2027 | * delete <dev_id> | ||
| 2028 | * trim <dev_id> <new_size_in_sectors> | ||
| 2029 | * set_transaction_id <current_trans_id> <new_trans_id> | ||
| 2030 | */ | ||
| 2031 | static int pool_message(struct dm_target *ti, unsigned argc, char **argv) | ||
| 2032 | { | ||
| 2033 | int r = -EINVAL; | ||
| 2034 | struct pool_c *pt = ti->private; | ||
| 2035 | struct pool *pool = pt->pool; | ||
| 2036 | |||
| 2037 | if (!strcasecmp(argv[0], "create_thin")) | ||
| 2038 | r = process_create_thin_mesg(argc, argv, pool); | ||
| 2039 | |||
| 2040 | else if (!strcasecmp(argv[0], "create_snap")) | ||
| 2041 | r = process_create_snap_mesg(argc, argv, pool); | ||
| 2042 | |||
| 2043 | else if (!strcasecmp(argv[0], "delete")) | ||
| 2044 | r = process_delete_mesg(argc, argv, pool); | ||
| 2045 | |||
| 2046 | else if (!strcasecmp(argv[0], "set_transaction_id")) | ||
| 2047 | r = process_set_transaction_id_mesg(argc, argv, pool); | ||
| 2048 | |||
| 2049 | else | ||
| 2050 | DMWARN("Unrecognised thin pool target message received: %s", argv[0]); | ||
| 2051 | |||
| 2052 | if (!r) { | ||
| 2053 | r = dm_pool_commit_metadata(pool->pmd); | ||
| 2054 | if (r) | ||
| 2055 | DMERR("%s message: dm_pool_commit_metadata() failed, error = %d", | ||
| 2056 | argv[0], r); | ||
| 2057 | } | ||
| 2058 | |||
| 2059 | return r; | ||
| 2060 | } | ||
| 2061 | |||
| 2062 | /* | ||
| 2063 | * Status line is: | ||
| 2064 | * <transaction id> <used metadata sectors>/<total metadata sectors> | ||
| 2065 | * <used data sectors>/<total data sectors> <held metadata root> | ||
| 2066 | */ | ||
| 2067 | static int pool_status(struct dm_target *ti, status_type_t type, | ||
| 2068 | char *result, unsigned maxlen) | ||
| 2069 | { | ||
| 2070 | int r; | ||
| 2071 | unsigned sz = 0; | ||
| 2072 | uint64_t transaction_id; | ||
| 2073 | dm_block_t nr_free_blocks_data; | ||
| 2074 | dm_block_t nr_free_blocks_metadata; | ||
| 2075 | dm_block_t nr_blocks_data; | ||
| 2076 | dm_block_t nr_blocks_metadata; | ||
| 2077 | dm_block_t held_root; | ||
| 2078 | char buf[BDEVNAME_SIZE]; | ||
| 2079 | char buf2[BDEVNAME_SIZE]; | ||
| 2080 | struct pool_c *pt = ti->private; | ||
| 2081 | struct pool *pool = pt->pool; | ||
| 2082 | |||
| 2083 | switch (type) { | ||
| 2084 | case STATUSTYPE_INFO: | ||
| 2085 | r = dm_pool_get_metadata_transaction_id(pool->pmd, | ||
| 2086 | &transaction_id); | ||
| 2087 | if (r) | ||
| 2088 | return r; | ||
| 2089 | |||
| 2090 | r = dm_pool_get_free_metadata_block_count(pool->pmd, | ||
| 2091 | &nr_free_blocks_metadata); | ||
| 2092 | if (r) | ||
| 2093 | return r; | ||
| 2094 | |||
| 2095 | r = dm_pool_get_metadata_dev_size(pool->pmd, &nr_blocks_metadata); | ||
| 2096 | if (r) | ||
| 2097 | return r; | ||
| 2098 | |||
| 2099 | r = dm_pool_get_free_block_count(pool->pmd, | ||
| 2100 | &nr_free_blocks_data); | ||
| 2101 | if (r) | ||
| 2102 | return r; | ||
| 2103 | |||
| 2104 | r = dm_pool_get_data_dev_size(pool->pmd, &nr_blocks_data); | ||
| 2105 | if (r) | ||
| 2106 | return r; | ||
| 2107 | |||
| 2108 | r = dm_pool_get_held_metadata_root(pool->pmd, &held_root); | ||
| 2109 | if (r) | ||
| 2110 | return r; | ||
| 2111 | |||
| 2112 | DMEMIT("%llu %llu/%llu %llu/%llu ", | ||
| 2113 | (unsigned long long)transaction_id, | ||
| 2114 | (unsigned long long)(nr_blocks_metadata - nr_free_blocks_metadata), | ||
| 2115 | (unsigned long long)nr_blocks_metadata, | ||
| 2116 | (unsigned long long)(nr_blocks_data - nr_free_blocks_data), | ||
| 2117 | (unsigned long long)nr_blocks_data); | ||
| 2118 | |||
| 2119 | if (held_root) | ||
| 2120 | DMEMIT("%llu", held_root); | ||
| 2121 | else | ||
| 2122 | DMEMIT("-"); | ||
| 2123 | |||
| 2124 | break; | ||
| 2125 | |||
| 2126 | case STATUSTYPE_TABLE: | ||
| 2127 | DMEMIT("%s %s %lu %llu ", | ||
| 2128 | format_dev_t(buf, pt->metadata_dev->bdev->bd_dev), | ||
| 2129 | format_dev_t(buf2, pt->data_dev->bdev->bd_dev), | ||
| 2130 | (unsigned long)pool->sectors_per_block, | ||
| 2131 | (unsigned long long)pt->low_water_blocks); | ||
| 2132 | |||
| 2133 | DMEMIT("%u ", !pool->zero_new_blocks); | ||
| 2134 | |||
| 2135 | if (!pool->zero_new_blocks) | ||
| 2136 | DMEMIT("skip_block_zeroing "); | ||
| 2137 | break; | ||
| 2138 | } | ||
| 2139 | |||
| 2140 | return 0; | ||
| 2141 | } | ||
| 2142 | |||
| 2143 | static int pool_iterate_devices(struct dm_target *ti, | ||
| 2144 | iterate_devices_callout_fn fn, void *data) | ||
| 2145 | { | ||
| 2146 | struct pool_c *pt = ti->private; | ||
| 2147 | |||
| 2148 | return fn(ti, pt->data_dev, 0, ti->len, data); | ||
| 2149 | } | ||
| 2150 | |||
| 2151 | static int pool_merge(struct dm_target *ti, struct bvec_merge_data *bvm, | ||
| 2152 | struct bio_vec *biovec, int max_size) | ||
| 2153 | { | ||
| 2154 | struct pool_c *pt = ti->private; | ||
| 2155 | struct request_queue *q = bdev_get_queue(pt->data_dev->bdev); | ||
| 2156 | |||
| 2157 | if (!q->merge_bvec_fn) | ||
| 2158 | return max_size; | ||
| 2159 | |||
| 2160 | bvm->bi_bdev = pt->data_dev->bdev; | ||
| 2161 | |||
| 2162 | return min(max_size, q->merge_bvec_fn(q, bvm, biovec)); | ||
| 2163 | } | ||
| 2164 | |||
| 2165 | static void pool_io_hints(struct dm_target *ti, struct queue_limits *limits) | ||
| 2166 | { | ||
| 2167 | struct pool_c *pt = ti->private; | ||
| 2168 | struct pool *pool = pt->pool; | ||
| 2169 | |||
| 2170 | blk_limits_io_min(limits, 0); | ||
| 2171 | blk_limits_io_opt(limits, pool->sectors_per_block << SECTOR_SHIFT); | ||
| 2172 | } | ||
| 2173 | |||
| 2174 | static struct target_type pool_target = { | ||
| 2175 | .name = "thin-pool", | ||
| 2176 | .features = DM_TARGET_SINGLETON | DM_TARGET_ALWAYS_WRITEABLE | | ||
| 2177 | DM_TARGET_IMMUTABLE, | ||
| 2178 | .version = {1, 0, 0}, | ||
| 2179 | .module = THIS_MODULE, | ||
| 2180 | .ctr = pool_ctr, | ||
| 2181 | .dtr = pool_dtr, | ||
| 2182 | .map = pool_map, | ||
| 2183 | .postsuspend = pool_postsuspend, | ||
| 2184 | .preresume = pool_preresume, | ||
| 2185 | .resume = pool_resume, | ||
| 2186 | .message = pool_message, | ||
| 2187 | .status = pool_status, | ||
| 2188 | .merge = pool_merge, | ||
| 2189 | .iterate_devices = pool_iterate_devices, | ||
| 2190 | .io_hints = pool_io_hints, | ||
| 2191 | }; | ||
| 2192 | |||
| 2193 | /*---------------------------------------------------------------- | ||
| 2194 | * Thin target methods | ||
| 2195 | *--------------------------------------------------------------*/ | ||
| 2196 | static void thin_dtr(struct dm_target *ti) | ||
| 2197 | { | ||
| 2198 | struct thin_c *tc = ti->private; | ||
| 2199 | |||
| 2200 | mutex_lock(&dm_thin_pool_table.mutex); | ||
| 2201 | |||
| 2202 | __pool_dec(tc->pool); | ||
| 2203 | dm_pool_close_thin_device(tc->td); | ||
| 2204 | dm_put_device(ti, tc->pool_dev); | ||
| 2205 | kfree(tc); | ||
| 2206 | |||
| 2207 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 2208 | } | ||
| 2209 | |||
| 2210 | /* | ||
| 2211 | * Thin target parameters: | ||
| 2212 | * | ||
| 2213 | * <pool_dev> <dev_id> | ||
| 2214 | * | ||
| 2215 | * pool_dev: the path to the pool (eg, /dev/mapper/my_pool) | ||
| 2216 | * dev_id: the internal device identifier | ||
| 2217 | */ | ||
| 2218 | static int thin_ctr(struct dm_target *ti, unsigned argc, char **argv) | ||
| 2219 | { | ||
| 2220 | int r; | ||
| 2221 | struct thin_c *tc; | ||
| 2222 | struct dm_dev *pool_dev; | ||
| 2223 | struct mapped_device *pool_md; | ||
| 2224 | |||
| 2225 | mutex_lock(&dm_thin_pool_table.mutex); | ||
| 2226 | |||
| 2227 | if (argc != 2) { | ||
| 2228 | ti->error = "Invalid argument count"; | ||
| 2229 | r = -EINVAL; | ||
| 2230 | goto out_unlock; | ||
| 2231 | } | ||
| 2232 | |||
| 2233 | tc = ti->private = kzalloc(sizeof(*tc), GFP_KERNEL); | ||
| 2234 | if (!tc) { | ||
| 2235 | ti->error = "Out of memory"; | ||
| 2236 | r = -ENOMEM; | ||
| 2237 | goto out_unlock; | ||
| 2238 | } | ||
| 2239 | |||
| 2240 | r = dm_get_device(ti, argv[0], dm_table_get_mode(ti->table), &pool_dev); | ||
| 2241 | if (r) { | ||
| 2242 | ti->error = "Error opening pool device"; | ||
| 2243 | goto bad_pool_dev; | ||
| 2244 | } | ||
| 2245 | tc->pool_dev = pool_dev; | ||
| 2246 | |||
| 2247 | if (read_dev_id(argv[1], (unsigned long long *)&tc->dev_id, 0)) { | ||
| 2248 | ti->error = "Invalid device id"; | ||
| 2249 | r = -EINVAL; | ||
| 2250 | goto bad_common; | ||
| 2251 | } | ||
| 2252 | |||
| 2253 | pool_md = dm_get_md(tc->pool_dev->bdev->bd_dev); | ||
| 2254 | if (!pool_md) { | ||
| 2255 | ti->error = "Couldn't get pool mapped device"; | ||
| 2256 | r = -EINVAL; | ||
| 2257 | goto bad_common; | ||
| 2258 | } | ||
| 2259 | |||
| 2260 | tc->pool = __pool_table_lookup(pool_md); | ||
| 2261 | if (!tc->pool) { | ||
| 2262 | ti->error = "Couldn't find pool object"; | ||
| 2263 | r = -EINVAL; | ||
| 2264 | goto bad_pool_lookup; | ||
| 2265 | } | ||
| 2266 | __pool_inc(tc->pool); | ||
| 2267 | |||
| 2268 | r = dm_pool_open_thin_device(tc->pool->pmd, tc->dev_id, &tc->td); | ||
| 2269 | if (r) { | ||
| 2270 | ti->error = "Couldn't open thin internal device"; | ||
| 2271 | goto bad_thin_open; | ||
| 2272 | } | ||
| 2273 | |||
| 2274 | ti->split_io = tc->pool->sectors_per_block; | ||
| 2275 | ti->num_flush_requests = 1; | ||
| 2276 | ti->num_discard_requests = 0; | ||
| 2277 | ti->discards_supported = 0; | ||
| 2278 | |||
| 2279 | dm_put(pool_md); | ||
| 2280 | |||
| 2281 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 2282 | |||
| 2283 | return 0; | ||
| 2284 | |||
| 2285 | bad_thin_open: | ||
| 2286 | __pool_dec(tc->pool); | ||
| 2287 | bad_pool_lookup: | ||
| 2288 | dm_put(pool_md); | ||
| 2289 | bad_common: | ||
| 2290 | dm_put_device(ti, tc->pool_dev); | ||
| 2291 | bad_pool_dev: | ||
| 2292 | kfree(tc); | ||
| 2293 | out_unlock: | ||
| 2294 | mutex_unlock(&dm_thin_pool_table.mutex); | ||
| 2295 | |||
| 2296 | return r; | ||
| 2297 | } | ||
| 2298 | |||
| 2299 | static int thin_map(struct dm_target *ti, struct bio *bio, | ||
| 2300 | union map_info *map_context) | ||
| 2301 | { | ||
| 2302 | bio->bi_sector -= ti->begin; | ||
| 2303 | |||
| 2304 | return thin_bio_map(ti, bio, map_context); | ||
| 2305 | } | ||
| 2306 | |||
| 2307 | static void thin_postsuspend(struct dm_target *ti) | ||
| 2308 | { | ||
| 2309 | if (dm_noflush_suspending(ti)) | ||
| 2310 | requeue_io((struct thin_c *)ti->private); | ||
| 2311 | } | ||
| 2312 | |||
| 2313 | /* | ||
| 2314 | * <nr mapped sectors> <highest mapped sector> | ||
| 2315 | */ | ||
| 2316 | static int thin_status(struct dm_target *ti, status_type_t type, | ||
| 2317 | char *result, unsigned maxlen) | ||
| 2318 | { | ||
| 2319 | int r; | ||
| 2320 | ssize_t sz = 0; | ||
| 2321 | dm_block_t mapped, highest; | ||
| 2322 | char buf[BDEVNAME_SIZE]; | ||
| 2323 | struct thin_c *tc = ti->private; | ||
| 2324 | |||
| 2325 | if (!tc->td) | ||
| 2326 | DMEMIT("-"); | ||
| 2327 | else { | ||
| 2328 | switch (type) { | ||
| 2329 | case STATUSTYPE_INFO: | ||
| 2330 | r = dm_thin_get_mapped_count(tc->td, &mapped); | ||
| 2331 | if (r) | ||
| 2332 | return r; | ||
| 2333 | |||
| 2334 | r = dm_thin_get_highest_mapped_block(tc->td, &highest); | ||
| 2335 | if (r < 0) | ||
| 2336 | return r; | ||
| 2337 | |||
| 2338 | DMEMIT("%llu ", mapped * tc->pool->sectors_per_block); | ||
| 2339 | if (r) | ||
| 2340 | DMEMIT("%llu", ((highest + 1) * | ||
| 2341 | tc->pool->sectors_per_block) - 1); | ||
| 2342 | else | ||
| 2343 | DMEMIT("-"); | ||
| 2344 | break; | ||
| 2345 | |||
| 2346 | case STATUSTYPE_TABLE: | ||
| 2347 | DMEMIT("%s %lu", | ||
| 2348 | format_dev_t(buf, tc->pool_dev->bdev->bd_dev), | ||
| 2349 | (unsigned long) tc->dev_id); | ||
| 2350 | break; | ||
| 2351 | } | ||
| 2352 | } | ||
| 2353 | |||
| 2354 | return 0; | ||
| 2355 | } | ||
| 2356 | |||
| 2357 | static int thin_iterate_devices(struct dm_target *ti, | ||
| 2358 | iterate_devices_callout_fn fn, void *data) | ||
| 2359 | { | ||
| 2360 | dm_block_t blocks; | ||
| 2361 | struct thin_c *tc = ti->private; | ||
| 2362 | |||
| 2363 | /* | ||
| 2364 | * We can't call dm_pool_get_data_dev_size() since that blocks. So | ||
| 2365 | * we follow a more convoluted path through to the pool's target. | ||
| 2366 | */ | ||
| 2367 | if (!tc->pool->ti) | ||
| 2368 | return 0; /* nothing is bound */ | ||
| 2369 | |||
| 2370 | blocks = tc->pool->ti->len >> tc->pool->block_shift; | ||
| 2371 | if (blocks) | ||
| 2372 | return fn(ti, tc->pool_dev, 0, tc->pool->sectors_per_block * blocks, data); | ||
| 2373 | |||
| 2374 | return 0; | ||
| 2375 | } | ||
| 2376 | |||
| 2377 | static void thin_io_hints(struct dm_target *ti, struct queue_limits *limits) | ||
| 2378 | { | ||
| 2379 | struct thin_c *tc = ti->private; | ||
| 2380 | |||
| 2381 | blk_limits_io_min(limits, 0); | ||
| 2382 | blk_limits_io_opt(limits, tc->pool->sectors_per_block << SECTOR_SHIFT); | ||
| 2383 | } | ||
| 2384 | |||
| 2385 | static struct target_type thin_target = { | ||
| 2386 | .name = "thin", | ||
| 2387 | .version = {1, 0, 0}, | ||
| 2388 | .module = THIS_MODULE, | ||
| 2389 | .ctr = thin_ctr, | ||
| 2390 | .dtr = thin_dtr, | ||
| 2391 | .map = thin_map, | ||
| 2392 | .postsuspend = thin_postsuspend, | ||
| 2393 | .status = thin_status, | ||
| 2394 | .iterate_devices = thin_iterate_devices, | ||
| 2395 | .io_hints = thin_io_hints, | ||
| 2396 | }; | ||
| 2397 | |||
| 2398 | /*----------------------------------------------------------------*/ | ||
| 2399 | |||
| 2400 | static int __init dm_thin_init(void) | ||
| 2401 | { | ||
| 2402 | int r; | ||
| 2403 | |||
| 2404 | pool_table_init(); | ||
| 2405 | |||
| 2406 | r = dm_register_target(&thin_target); | ||
| 2407 | if (r) | ||
| 2408 | return r; | ||
| 2409 | |||
| 2410 | r = dm_register_target(&pool_target); | ||
| 2411 | if (r) | ||
| 2412 | dm_unregister_target(&thin_target); | ||
| 2413 | |||
| 2414 | return r; | ||
| 2415 | } | ||
| 2416 | |||
| 2417 | static void dm_thin_exit(void) | ||
| 2418 | { | ||
| 2419 | dm_unregister_target(&thin_target); | ||
| 2420 | dm_unregister_target(&pool_target); | ||
| 2421 | } | ||
| 2422 | |||
| 2423 | module_init(dm_thin_init); | ||
| 2424 | module_exit(dm_thin_exit); | ||
| 2425 | |||
| 2426 | MODULE_DESCRIPTION(DM_NAME "device-mapper thin provisioning target"); | ||
| 2427 | MODULE_AUTHOR("Joe Thornber <dm-devel@redhat.com>"); | ||
| 2428 | MODULE_LICENSE("GPL"); | ||
diff --git a/drivers/md/dm.c b/drivers/md/dm.c index 52b39f335bb3..6b6616a41baa 100644 --- a/drivers/md/dm.c +++ b/drivers/md/dm.c | |||
| @@ -25,6 +25,16 @@ | |||
| 25 | 25 | ||
| 26 | #define DM_MSG_PREFIX "core" | 26 | #define DM_MSG_PREFIX "core" |
| 27 | 27 | ||
| 28 | #ifdef CONFIG_PRINTK | ||
| 29 | /* | ||
| 30 | * ratelimit state to be used in DMXXX_LIMIT(). | ||
| 31 | */ | ||
| 32 | DEFINE_RATELIMIT_STATE(dm_ratelimit_state, | ||
| 33 | DEFAULT_RATELIMIT_INTERVAL, | ||
| 34 | DEFAULT_RATELIMIT_BURST); | ||
| 35 | EXPORT_SYMBOL(dm_ratelimit_state); | ||
| 36 | #endif | ||
| 37 | |||
| 28 | /* | 38 | /* |
| 29 | * Cookies are numeric values sent with CHANGE and REMOVE | 39 | * Cookies are numeric values sent with CHANGE and REMOVE |
| 30 | * uevents while resuming, removing or renaming the device. | 40 | * uevents while resuming, removing or renaming the device. |
| @@ -130,6 +140,8 @@ struct mapped_device { | |||
| 130 | /* Protect queue and type against concurrent access. */ | 140 | /* Protect queue and type against concurrent access. */ |
| 131 | struct mutex type_lock; | 141 | struct mutex type_lock; |
| 132 | 142 | ||
| 143 | struct target_type *immutable_target_type; | ||
| 144 | |||
| 133 | struct gendisk *disk; | 145 | struct gendisk *disk; |
| 134 | char name[16]; | 146 | char name[16]; |
| 135 | 147 | ||
| @@ -2086,6 +2098,8 @@ static struct dm_table *__bind(struct mapped_device *md, struct dm_table *t, | |||
| 2086 | write_lock_irqsave(&md->map_lock, flags); | 2098 | write_lock_irqsave(&md->map_lock, flags); |
| 2087 | old_map = md->map; | 2099 | old_map = md->map; |
| 2088 | md->map = t; | 2100 | md->map = t; |
| 2101 | md->immutable_target_type = dm_table_get_immutable_target_type(t); | ||
| 2102 | |||
| 2089 | dm_table_set_restrictions(t, q, limits); | 2103 | dm_table_set_restrictions(t, q, limits); |
| 2090 | if (merge_is_optional) | 2104 | if (merge_is_optional) |
| 2091 | set_bit(DMF_MERGE_IS_OPTIONAL, &md->flags); | 2105 | set_bit(DMF_MERGE_IS_OPTIONAL, &md->flags); |
| @@ -2156,6 +2170,11 @@ unsigned dm_get_md_type(struct mapped_device *md) | |||
| 2156 | return md->type; | 2170 | return md->type; |
| 2157 | } | 2171 | } |
| 2158 | 2172 | ||
| 2173 | struct target_type *dm_get_immutable_target_type(struct mapped_device *md) | ||
| 2174 | { | ||
| 2175 | return md->immutable_target_type; | ||
| 2176 | } | ||
| 2177 | |||
| 2159 | /* | 2178 | /* |
| 2160 | * Fully initialize a request-based queue (->elevator, ->request_fn, etc). | 2179 | * Fully initialize a request-based queue (->elevator, ->request_fn, etc). |
| 2161 | */ | 2180 | */ |
| @@ -2231,6 +2250,7 @@ struct mapped_device *dm_get_md(dev_t dev) | |||
| 2231 | 2250 | ||
| 2232 | return md; | 2251 | return md; |
| 2233 | } | 2252 | } |
| 2253 | EXPORT_SYMBOL_GPL(dm_get_md); | ||
| 2234 | 2254 | ||
| 2235 | void *dm_get_mdptr(struct mapped_device *md) | 2255 | void *dm_get_mdptr(struct mapped_device *md) |
| 2236 | { | 2256 | { |
| @@ -2316,7 +2336,6 @@ static int dm_wait_for_completion(struct mapped_device *md, int interruptible) | |||
| 2316 | while (1) { | 2336 | while (1) { |
| 2317 | set_current_state(interruptible); | 2337 | set_current_state(interruptible); |
| 2318 | 2338 | ||
| 2319 | smp_mb(); | ||
| 2320 | if (!md_in_flight(md)) | 2339 | if (!md_in_flight(md)) |
| 2321 | break; | 2340 | break; |
| 2322 | 2341 | ||
diff --git a/drivers/md/dm.h b/drivers/md/dm.h index 6745dbd278a4..b7dacd59d8d7 100644 --- a/drivers/md/dm.h +++ b/drivers/md/dm.h | |||
| @@ -60,6 +60,7 @@ int dm_table_resume_targets(struct dm_table *t); | |||
| 60 | int dm_table_any_congested(struct dm_table *t, int bdi_bits); | 60 | int dm_table_any_congested(struct dm_table *t, int bdi_bits); |
| 61 | int dm_table_any_busy_target(struct dm_table *t); | 61 | int dm_table_any_busy_target(struct dm_table *t); |
| 62 | unsigned dm_table_get_type(struct dm_table *t); | 62 | unsigned dm_table_get_type(struct dm_table *t); |
| 63 | struct target_type *dm_table_get_immutable_target_type(struct dm_table *t); | ||
| 63 | bool dm_table_request_based(struct dm_table *t); | 64 | bool dm_table_request_based(struct dm_table *t); |
| 64 | bool dm_table_supports_discards(struct dm_table *t); | 65 | bool dm_table_supports_discards(struct dm_table *t); |
| 65 | int dm_table_alloc_md_mempools(struct dm_table *t); | 66 | int dm_table_alloc_md_mempools(struct dm_table *t); |
| @@ -72,6 +73,7 @@ void dm_lock_md_type(struct mapped_device *md); | |||
| 72 | void dm_unlock_md_type(struct mapped_device *md); | 73 | void dm_unlock_md_type(struct mapped_device *md); |
| 73 | void dm_set_md_type(struct mapped_device *md, unsigned type); | 74 | void dm_set_md_type(struct mapped_device *md, unsigned type); |
| 74 | unsigned dm_get_md_type(struct mapped_device *md); | 75 | unsigned dm_get_md_type(struct mapped_device *md); |
| 76 | struct target_type *dm_get_immutable_target_type(struct mapped_device *md); | ||
| 75 | 77 | ||
| 76 | int dm_setup_md_queue(struct mapped_device *md); | 78 | int dm_setup_md_queue(struct mapped_device *md); |
| 77 | 79 | ||
diff --git a/drivers/md/persistent-data/Kconfig b/drivers/md/persistent-data/Kconfig new file mode 100644 index 000000000000..ceb359050a59 --- /dev/null +++ b/drivers/md/persistent-data/Kconfig | |||
| @@ -0,0 +1,8 @@ | |||
| 1 | config DM_PERSISTENT_DATA | ||
| 2 | tristate | ||
| 3 | depends on BLK_DEV_DM && EXPERIMENTAL | ||
| 4 | select LIBCRC32C | ||
| 5 | select DM_BUFIO | ||
| 6 | ---help--- | ||
| 7 | Library providing immutable on-disk data structure support for | ||
| 8 | device-mapper targets such as the thin provisioning target. | ||
diff --git a/drivers/md/persistent-data/Makefile b/drivers/md/persistent-data/Makefile new file mode 100644 index 000000000000..cfa95f662230 --- /dev/null +++ b/drivers/md/persistent-data/Makefile | |||
| @@ -0,0 +1,11 @@ | |||
| 1 | obj-$(CONFIG_DM_PERSISTENT_DATA) += dm-persistent-data.o | ||
| 2 | dm-persistent-data-objs := \ | ||
| 3 | dm-block-manager.o \ | ||
| 4 | dm-space-map-checker.o \ | ||
| 5 | dm-space-map-common.o \ | ||
| 6 | dm-space-map-disk.o \ | ||
| 7 | dm-space-map-metadata.o \ | ||
| 8 | dm-transaction-manager.o \ | ||
| 9 | dm-btree.o \ | ||
| 10 | dm-btree-remove.o \ | ||
| 11 | dm-btree-spine.o | ||
diff --git a/drivers/md/persistent-data/dm-block-manager.c b/drivers/md/persistent-data/dm-block-manager.c new file mode 100644 index 000000000000..0317ecdc6e53 --- /dev/null +++ b/drivers/md/persistent-data/dm-block-manager.c | |||
| @@ -0,0 +1,620 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | #include "dm-block-manager.h" | ||
| 7 | #include "dm-persistent-data-internal.h" | ||
| 8 | #include "../dm-bufio.h" | ||
| 9 | |||
| 10 | #include <linux/crc32c.h> | ||
| 11 | #include <linux/module.h> | ||
| 12 | #include <linux/slab.h> | ||
| 13 | #include <linux/rwsem.h> | ||
| 14 | #include <linux/device-mapper.h> | ||
| 15 | #include <linux/stacktrace.h> | ||
| 16 | |||
| 17 | #define DM_MSG_PREFIX "block manager" | ||
| 18 | |||
| 19 | /*----------------------------------------------------------------*/ | ||
| 20 | |||
| 21 | /* | ||
| 22 | * This is a read/write semaphore with a couple of differences. | ||
| 23 | * | ||
| 24 | * i) There is a restriction on the number of concurrent read locks that | ||
| 25 | * may be held at once. This is just an implementation detail. | ||
| 26 | * | ||
| 27 | * ii) Recursive locking attempts are detected and return EINVAL. A stack | ||
| 28 | * trace is also emitted for the previous lock aquisition. | ||
| 29 | * | ||
| 30 | * iii) Priority is given to write locks. | ||
| 31 | */ | ||
| 32 | #define MAX_HOLDERS 4 | ||
| 33 | #define MAX_STACK 10 | ||
| 34 | |||
| 35 | typedef unsigned long stack_entries[MAX_STACK]; | ||
| 36 | |||
| 37 | struct block_lock { | ||
| 38 | spinlock_t lock; | ||
| 39 | __s32 count; | ||
| 40 | struct list_head waiters; | ||
| 41 | struct task_struct *holders[MAX_HOLDERS]; | ||
| 42 | |||
| 43 | #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING | ||
| 44 | struct stack_trace traces[MAX_HOLDERS]; | ||
| 45 | stack_entries entries[MAX_HOLDERS]; | ||
| 46 | #endif | ||
| 47 | }; | ||
| 48 | |||
| 49 | struct waiter { | ||
| 50 | struct list_head list; | ||
| 51 | struct task_struct *task; | ||
| 52 | int wants_write; | ||
| 53 | }; | ||
| 54 | |||
| 55 | static unsigned __find_holder(struct block_lock *lock, | ||
| 56 | struct task_struct *task) | ||
| 57 | { | ||
| 58 | unsigned i; | ||
| 59 | |||
| 60 | for (i = 0; i < MAX_HOLDERS; i++) | ||
| 61 | if (lock->holders[i] == task) | ||
| 62 | break; | ||
| 63 | |||
| 64 | BUG_ON(i == MAX_HOLDERS); | ||
| 65 | return i; | ||
| 66 | } | ||
| 67 | |||
| 68 | /* call this *after* you increment lock->count */ | ||
| 69 | static void __add_holder(struct block_lock *lock, struct task_struct *task) | ||
| 70 | { | ||
| 71 | unsigned h = __find_holder(lock, NULL); | ||
| 72 | #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING | ||
| 73 | struct stack_trace *t; | ||
| 74 | #endif | ||
| 75 | |||
| 76 | get_task_struct(task); | ||
| 77 | lock->holders[h] = task; | ||
| 78 | |||
| 79 | #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING | ||
| 80 | t = lock->traces + h; | ||
| 81 | t->nr_entries = 0; | ||
| 82 | t->max_entries = MAX_STACK; | ||
| 83 | t->entries = lock->entries[h]; | ||
| 84 | t->skip = 2; | ||
| 85 | save_stack_trace(t); | ||
| 86 | #endif | ||
| 87 | } | ||
| 88 | |||
| 89 | /* call this *before* you decrement lock->count */ | ||
| 90 | static void __del_holder(struct block_lock *lock, struct task_struct *task) | ||
| 91 | { | ||
| 92 | unsigned h = __find_holder(lock, task); | ||
| 93 | lock->holders[h] = NULL; | ||
| 94 | put_task_struct(task); | ||
| 95 | } | ||
| 96 | |||
| 97 | static int __check_holder(struct block_lock *lock) | ||
| 98 | { | ||
| 99 | unsigned i; | ||
| 100 | #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING | ||
| 101 | static struct stack_trace t; | ||
| 102 | static stack_entries entries; | ||
| 103 | #endif | ||
| 104 | |||
| 105 | for (i = 0; i < MAX_HOLDERS; i++) { | ||
| 106 | if (lock->holders[i] == current) { | ||
| 107 | DMERR("recursive lock detected in pool metadata"); | ||
| 108 | #ifdef CONFIG_DM_DEBUG_BLOCK_STACK_TRACING | ||
| 109 | DMERR("previously held here:"); | ||
| 110 | print_stack_trace(lock->traces + i, 4); | ||
| 111 | |||
| 112 | DMERR("subsequent aquisition attempted here:"); | ||
| 113 | t.nr_entries = 0; | ||
| 114 | t.max_entries = MAX_STACK; | ||
| 115 | t.entries = entries; | ||
| 116 | t.skip = 3; | ||
| 117 | save_stack_trace(&t); | ||
| 118 | print_stack_trace(&t, 4); | ||
| 119 | #endif | ||
| 120 | return -EINVAL; | ||
| 121 | } | ||
| 122 | } | ||
| 123 | |||
| 124 | return 0; | ||
| 125 | } | ||
| 126 | |||
| 127 | static void __wait(struct waiter *w) | ||
| 128 | { | ||
| 129 | for (;;) { | ||
| 130 | set_task_state(current, TASK_UNINTERRUPTIBLE); | ||
| 131 | |||
| 132 | if (!w->task) | ||
| 133 | break; | ||
| 134 | |||
| 135 | schedule(); | ||
| 136 | } | ||
| 137 | |||
| 138 | set_task_state(current, TASK_RUNNING); | ||
| 139 | } | ||
| 140 | |||
| 141 | static void __wake_waiter(struct waiter *w) | ||
| 142 | { | ||
| 143 | struct task_struct *task; | ||
| 144 | |||
| 145 | list_del(&w->list); | ||
| 146 | task = w->task; | ||
| 147 | smp_mb(); | ||
| 148 | w->task = NULL; | ||
| 149 | wake_up_process(task); | ||
| 150 | } | ||
| 151 | |||
| 152 | /* | ||
| 153 | * We either wake a few readers or a single writer. | ||
| 154 | */ | ||
| 155 | static void __wake_many(struct block_lock *lock) | ||
| 156 | { | ||
| 157 | struct waiter *w, *tmp; | ||
| 158 | |||
| 159 | BUG_ON(lock->count < 0); | ||
| 160 | list_for_each_entry_safe(w, tmp, &lock->waiters, list) { | ||
| 161 | if (lock->count >= MAX_HOLDERS) | ||
| 162 | return; | ||
| 163 | |||
| 164 | if (w->wants_write) { | ||
| 165 | if (lock->count > 0) | ||
| 166 | return; /* still read locked */ | ||
| 167 | |||
| 168 | lock->count = -1; | ||
| 169 | __add_holder(lock, w->task); | ||
| 170 | __wake_waiter(w); | ||
| 171 | return; | ||
| 172 | } | ||
| 173 | |||
| 174 | lock->count++; | ||
| 175 | __add_holder(lock, w->task); | ||
| 176 | __wake_waiter(w); | ||
| 177 | } | ||
| 178 | } | ||
| 179 | |||
| 180 | static void bl_init(struct block_lock *lock) | ||
| 181 | { | ||
| 182 | int i; | ||
| 183 | |||
| 184 | spin_lock_init(&lock->lock); | ||
| 185 | lock->count = 0; | ||
| 186 | INIT_LIST_HEAD(&lock->waiters); | ||
| 187 | for (i = 0; i < MAX_HOLDERS; i++) | ||
| 188 | lock->holders[i] = NULL; | ||
| 189 | } | ||
| 190 | |||
| 191 | static int __available_for_read(struct block_lock *lock) | ||
| 192 | { | ||
| 193 | return lock->count >= 0 && | ||
| 194 | lock->count < MAX_HOLDERS && | ||
| 195 | list_empty(&lock->waiters); | ||
| 196 | } | ||
| 197 | |||
| 198 | static int bl_down_read(struct block_lock *lock) | ||
| 199 | { | ||
| 200 | int r; | ||
| 201 | struct waiter w; | ||
| 202 | |||
| 203 | spin_lock(&lock->lock); | ||
| 204 | r = __check_holder(lock); | ||
| 205 | if (r) { | ||
| 206 | spin_unlock(&lock->lock); | ||
| 207 | return r; | ||
| 208 | } | ||
| 209 | |||
| 210 | if (__available_for_read(lock)) { | ||
| 211 | lock->count++; | ||
| 212 | __add_holder(lock, current); | ||
| 213 | spin_unlock(&lock->lock); | ||
| 214 | return 0; | ||
| 215 | } | ||
| 216 | |||
| 217 | get_task_struct(current); | ||
| 218 | |||
| 219 | w.task = current; | ||
| 220 | w.wants_write = 0; | ||
| 221 | list_add_tail(&w.list, &lock->waiters); | ||
| 222 | spin_unlock(&lock->lock); | ||
| 223 | |||
| 224 | __wait(&w); | ||
| 225 | put_task_struct(current); | ||
| 226 | return 0; | ||
| 227 | } | ||
| 228 | |||
| 229 | static int bl_down_read_nonblock(struct block_lock *lock) | ||
| 230 | { | ||
| 231 | int r; | ||
| 232 | |||
| 233 | spin_lock(&lock->lock); | ||
| 234 | r = __check_holder(lock); | ||
| 235 | if (r) | ||
| 236 | goto out; | ||
| 237 | |||
| 238 | if (__available_for_read(lock)) { | ||
| 239 | lock->count++; | ||
| 240 | __add_holder(lock, current); | ||
| 241 | r = 0; | ||
| 242 | } else | ||
| 243 | r = -EWOULDBLOCK; | ||
| 244 | |||
| 245 | out: | ||
| 246 | spin_unlock(&lock->lock); | ||
| 247 | return r; | ||
| 248 | } | ||
| 249 | |||
| 250 | static void bl_up_read(struct block_lock *lock) | ||
| 251 | { | ||
| 252 | spin_lock(&lock->lock); | ||
| 253 | BUG_ON(lock->count <= 0); | ||
| 254 | __del_holder(lock, current); | ||
| 255 | --lock->count; | ||
| 256 | if (!list_empty(&lock->waiters)) | ||
| 257 | __wake_many(lock); | ||
| 258 | spin_unlock(&lock->lock); | ||
| 259 | } | ||
| 260 | |||
| 261 | static int bl_down_write(struct block_lock *lock) | ||
| 262 | { | ||
| 263 | int r; | ||
| 264 | struct waiter w; | ||
| 265 | |||
| 266 | spin_lock(&lock->lock); | ||
| 267 | r = __check_holder(lock); | ||
| 268 | if (r) { | ||
| 269 | spin_unlock(&lock->lock); | ||
| 270 | return r; | ||
| 271 | } | ||
| 272 | |||
| 273 | if (lock->count == 0 && list_empty(&lock->waiters)) { | ||
| 274 | lock->count = -1; | ||
| 275 | __add_holder(lock, current); | ||
| 276 | spin_unlock(&lock->lock); | ||
| 277 | return 0; | ||
| 278 | } | ||
| 279 | |||
| 280 | get_task_struct(current); | ||
| 281 | w.task = current; | ||
| 282 | w.wants_write = 1; | ||
| 283 | |||
| 284 | /* | ||
| 285 | * Writers given priority. We know there's only one mutator in the | ||
| 286 | * system, so ignoring the ordering reversal. | ||
| 287 | */ | ||
| 288 | list_add(&w.list, &lock->waiters); | ||
| 289 | spin_unlock(&lock->lock); | ||
| 290 | |||
| 291 | __wait(&w); | ||
| 292 | put_task_struct(current); | ||
| 293 | |||
| 294 | return 0; | ||
| 295 | } | ||
| 296 | |||
| 297 | static void bl_up_write(struct block_lock *lock) | ||
| 298 | { | ||
| 299 | spin_lock(&lock->lock); | ||
| 300 | __del_holder(lock, current); | ||
| 301 | lock->count = 0; | ||
| 302 | if (!list_empty(&lock->waiters)) | ||
| 303 | __wake_many(lock); | ||
| 304 | spin_unlock(&lock->lock); | ||
| 305 | } | ||
| 306 | |||
| 307 | static void report_recursive_bug(dm_block_t b, int r) | ||
| 308 | { | ||
| 309 | if (r == -EINVAL) | ||
| 310 | DMERR("recursive acquisition of block %llu requested.", | ||
| 311 | (unsigned long long) b); | ||
| 312 | } | ||
| 313 | |||
| 314 | /*----------------------------------------------------------------*/ | ||
| 315 | |||
| 316 | /* | ||
| 317 | * Block manager is currently implemented using dm-bufio. struct | ||
| 318 | * dm_block_manager and struct dm_block map directly onto a couple of | ||
| 319 | * structs in the bufio interface. I want to retain the freedom to move | ||
| 320 | * away from bufio in the future. So these structs are just cast within | ||
| 321 | * this .c file, rather than making it through to the public interface. | ||
| 322 | */ | ||
| 323 | static struct dm_buffer *to_buffer(struct dm_block *b) | ||
| 324 | { | ||
| 325 | return (struct dm_buffer *) b; | ||
| 326 | } | ||
| 327 | |||
| 328 | static struct dm_bufio_client *to_bufio(struct dm_block_manager *bm) | ||
| 329 | { | ||
| 330 | return (struct dm_bufio_client *) bm; | ||
| 331 | } | ||
| 332 | |||
| 333 | dm_block_t dm_block_location(struct dm_block *b) | ||
| 334 | { | ||
| 335 | return dm_bufio_get_block_number(to_buffer(b)); | ||
| 336 | } | ||
| 337 | EXPORT_SYMBOL_GPL(dm_block_location); | ||
| 338 | |||
| 339 | void *dm_block_data(struct dm_block *b) | ||
| 340 | { | ||
| 341 | return dm_bufio_get_block_data(to_buffer(b)); | ||
| 342 | } | ||
| 343 | EXPORT_SYMBOL_GPL(dm_block_data); | ||
| 344 | |||
| 345 | struct buffer_aux { | ||
| 346 | struct dm_block_validator *validator; | ||
| 347 | struct block_lock lock; | ||
| 348 | int write_locked; | ||
| 349 | }; | ||
| 350 | |||
| 351 | static void dm_block_manager_alloc_callback(struct dm_buffer *buf) | ||
| 352 | { | ||
| 353 | struct buffer_aux *aux = dm_bufio_get_aux_data(buf); | ||
| 354 | aux->validator = NULL; | ||
| 355 | bl_init(&aux->lock); | ||
| 356 | } | ||
| 357 | |||
| 358 | static void dm_block_manager_write_callback(struct dm_buffer *buf) | ||
| 359 | { | ||
| 360 | struct buffer_aux *aux = dm_bufio_get_aux_data(buf); | ||
| 361 | if (aux->validator) { | ||
| 362 | aux->validator->prepare_for_write(aux->validator, (struct dm_block *) buf, | ||
| 363 | dm_bufio_get_block_size(dm_bufio_get_client(buf))); | ||
| 364 | } | ||
| 365 | } | ||
| 366 | |||
| 367 | /*---------------------------------------------------------------- | ||
| 368 | * Public interface | ||
| 369 | *--------------------------------------------------------------*/ | ||
| 370 | struct dm_block_manager *dm_block_manager_create(struct block_device *bdev, | ||
| 371 | unsigned block_size, | ||
| 372 | unsigned cache_size, | ||
| 373 | unsigned max_held_per_thread) | ||
| 374 | { | ||
| 375 | return (struct dm_block_manager *) | ||
| 376 | dm_bufio_client_create(bdev, block_size, max_held_per_thread, | ||
| 377 | sizeof(struct buffer_aux), | ||
| 378 | dm_block_manager_alloc_callback, | ||
| 379 | dm_block_manager_write_callback); | ||
| 380 | } | ||
| 381 | EXPORT_SYMBOL_GPL(dm_block_manager_create); | ||
| 382 | |||
| 383 | void dm_block_manager_destroy(struct dm_block_manager *bm) | ||
| 384 | { | ||
| 385 | return dm_bufio_client_destroy(to_bufio(bm)); | ||
| 386 | } | ||
| 387 | EXPORT_SYMBOL_GPL(dm_block_manager_destroy); | ||
| 388 | |||
| 389 | unsigned dm_bm_block_size(struct dm_block_manager *bm) | ||
| 390 | { | ||
| 391 | return dm_bufio_get_block_size(to_bufio(bm)); | ||
| 392 | } | ||
| 393 | EXPORT_SYMBOL_GPL(dm_bm_block_size); | ||
| 394 | |||
| 395 | dm_block_t dm_bm_nr_blocks(struct dm_block_manager *bm) | ||
| 396 | { | ||
| 397 | return dm_bufio_get_device_size(to_bufio(bm)); | ||
| 398 | } | ||
| 399 | |||
| 400 | static int dm_bm_validate_buffer(struct dm_block_manager *bm, | ||
| 401 | struct dm_buffer *buf, | ||
| 402 | struct buffer_aux *aux, | ||
| 403 | struct dm_block_validator *v) | ||
| 404 | { | ||
| 405 | if (unlikely(!aux->validator)) { | ||
| 406 | int r; | ||
| 407 | if (!v) | ||
| 408 | return 0; | ||
| 409 | r = v->check(v, (struct dm_block *) buf, dm_bufio_get_block_size(to_bufio(bm))); | ||
| 410 | if (unlikely(r)) | ||
| 411 | return r; | ||
| 412 | aux->validator = v; | ||
| 413 | } else { | ||
| 414 | if (unlikely(aux->validator != v)) { | ||
| 415 | DMERR("validator mismatch (old=%s vs new=%s) for block %llu", | ||
| 416 | aux->validator->name, v ? v->name : "NULL", | ||
| 417 | (unsigned long long) | ||
| 418 | dm_bufio_get_block_number(buf)); | ||
| 419 | return -EINVAL; | ||
| 420 | } | ||
| 421 | } | ||
| 422 | |||
| 423 | return 0; | ||
| 424 | } | ||
| 425 | int dm_bm_read_lock(struct dm_block_manager *bm, dm_block_t b, | ||
| 426 | struct dm_block_validator *v, | ||
| 427 | struct dm_block **result) | ||
| 428 | { | ||
| 429 | struct buffer_aux *aux; | ||
| 430 | void *p; | ||
| 431 | int r; | ||
| 432 | |||
| 433 | p = dm_bufio_read(to_bufio(bm), b, (struct dm_buffer **) result); | ||
| 434 | if (unlikely(IS_ERR(p))) | ||
| 435 | return PTR_ERR(p); | ||
| 436 | |||
| 437 | aux = dm_bufio_get_aux_data(to_buffer(*result)); | ||
| 438 | r = bl_down_read(&aux->lock); | ||
| 439 | if (unlikely(r)) { | ||
| 440 | dm_bufio_release(to_buffer(*result)); | ||
| 441 | report_recursive_bug(b, r); | ||
| 442 | return r; | ||
| 443 | } | ||
| 444 | |||
| 445 | aux->write_locked = 0; | ||
| 446 | |||
| 447 | r = dm_bm_validate_buffer(bm, to_buffer(*result), aux, v); | ||
| 448 | if (unlikely(r)) { | ||
| 449 | bl_up_read(&aux->lock); | ||
| 450 | dm_bufio_release(to_buffer(*result)); | ||
| 451 | return r; | ||
| 452 | } | ||
| 453 | |||
| 454 | return 0; | ||
| 455 | } | ||
| 456 | EXPORT_SYMBOL_GPL(dm_bm_read_lock); | ||
| 457 | |||
| 458 | int dm_bm_write_lock(struct dm_block_manager *bm, | ||
| 459 | dm_block_t b, struct dm_block_validator *v, | ||
| 460 | struct dm_block **result) | ||
| 461 | { | ||
| 462 | struct buffer_aux *aux; | ||
| 463 | void *p; | ||
| 464 | int r; | ||
| 465 | |||
| 466 | p = dm_bufio_read(to_bufio(bm), b, (struct dm_buffer **) result); | ||
| 467 | if (unlikely(IS_ERR(p))) | ||
| 468 | return PTR_ERR(p); | ||
| 469 | |||
| 470 | aux = dm_bufio_get_aux_data(to_buffer(*result)); | ||
| 471 | r = bl_down_write(&aux->lock); | ||
| 472 | if (r) { | ||
| 473 | dm_bufio_release(to_buffer(*result)); | ||
| 474 | report_recursive_bug(b, r); | ||
| 475 | return r; | ||
| 476 | } | ||
| 477 | |||
| 478 | aux->write_locked = 1; | ||
| 479 | |||
| 480 | r = dm_bm_validate_buffer(bm, to_buffer(*result), aux, v); | ||
| 481 | if (unlikely(r)) { | ||
| 482 | bl_up_write(&aux->lock); | ||
| 483 | dm_bufio_release(to_buffer(*result)); | ||
| 484 | return r; | ||
| 485 | } | ||
| 486 | |||
| 487 | return 0; | ||
| 488 | } | ||
| 489 | EXPORT_SYMBOL_GPL(dm_bm_write_lock); | ||
| 490 | |||
| 491 | int dm_bm_read_try_lock(struct dm_block_manager *bm, | ||
| 492 | dm_block_t b, struct dm_block_validator *v, | ||
| 493 | struct dm_block **result) | ||
| 494 | { | ||
| 495 | struct buffer_aux *aux; | ||
| 496 | void *p; | ||
| 497 | int r; | ||
| 498 | |||
| 499 | p = dm_bufio_get(to_bufio(bm), b, (struct dm_buffer **) result); | ||
| 500 | if (unlikely(IS_ERR(p))) | ||
| 501 | return PTR_ERR(p); | ||
| 502 | if (unlikely(!p)) | ||
| 503 | return -EWOULDBLOCK; | ||
| 504 | |||
| 505 | aux = dm_bufio_get_aux_data(to_buffer(*result)); | ||
| 506 | r = bl_down_read_nonblock(&aux->lock); | ||
| 507 | if (r < 0) { | ||
| 508 | dm_bufio_release(to_buffer(*result)); | ||
| 509 | report_recursive_bug(b, r); | ||
| 510 | return r; | ||
| 511 | } | ||
| 512 | aux->write_locked = 0; | ||
| 513 | |||
| 514 | r = dm_bm_validate_buffer(bm, to_buffer(*result), aux, v); | ||
| 515 | if (unlikely(r)) { | ||
| 516 | bl_up_read(&aux->lock); | ||
| 517 | dm_bufio_release(to_buffer(*result)); | ||
| 518 | return r; | ||
| 519 | } | ||
| 520 | |||
| 521 | return 0; | ||
| 522 | } | ||
| 523 | |||
| 524 | int dm_bm_write_lock_zero(struct dm_block_manager *bm, | ||
| 525 | dm_block_t b, struct dm_block_validator *v, | ||
| 526 | struct dm_block **result) | ||
| 527 | { | ||
| 528 | int r; | ||
| 529 | struct buffer_aux *aux; | ||
| 530 | void *p; | ||
| 531 | |||
| 532 | p = dm_bufio_new(to_bufio(bm), b, (struct dm_buffer **) result); | ||
| 533 | if (unlikely(IS_ERR(p))) | ||
| 534 | return PTR_ERR(p); | ||
| 535 | |||
| 536 | memset(p, 0, dm_bm_block_size(bm)); | ||
| 537 | |||
| 538 | aux = dm_bufio_get_aux_data(to_buffer(*result)); | ||
| 539 | r = bl_down_write(&aux->lock); | ||
| 540 | if (r) { | ||
| 541 | dm_bufio_release(to_buffer(*result)); | ||
| 542 | return r; | ||
| 543 | } | ||
| 544 | |||
| 545 | aux->write_locked = 1; | ||
| 546 | aux->validator = v; | ||
| 547 | |||
| 548 | return 0; | ||
| 549 | } | ||
| 550 | |||
| 551 | int dm_bm_unlock(struct dm_block *b) | ||
| 552 | { | ||
| 553 | struct buffer_aux *aux; | ||
| 554 | aux = dm_bufio_get_aux_data(to_buffer(b)); | ||
| 555 | |||
| 556 | if (aux->write_locked) { | ||
| 557 | dm_bufio_mark_buffer_dirty(to_buffer(b)); | ||
| 558 | bl_up_write(&aux->lock); | ||
| 559 | } else | ||
| 560 | bl_up_read(&aux->lock); | ||
| 561 | |||
| 562 | dm_bufio_release(to_buffer(b)); | ||
| 563 | |||
| 564 | return 0; | ||
| 565 | } | ||
| 566 | EXPORT_SYMBOL_GPL(dm_bm_unlock); | ||
| 567 | |||
| 568 | int dm_bm_unlock_move(struct dm_block *b, dm_block_t n) | ||
| 569 | { | ||
| 570 | struct buffer_aux *aux; | ||
| 571 | |||
| 572 | aux = dm_bufio_get_aux_data(to_buffer(b)); | ||
| 573 | |||
| 574 | if (aux->write_locked) { | ||
| 575 | dm_bufio_mark_buffer_dirty(to_buffer(b)); | ||
| 576 | bl_up_write(&aux->lock); | ||
| 577 | } else | ||
| 578 | bl_up_read(&aux->lock); | ||
| 579 | |||
| 580 | dm_bufio_release_move(to_buffer(b), n); | ||
| 581 | return 0; | ||
| 582 | } | ||
| 583 | |||
| 584 | int dm_bm_flush_and_unlock(struct dm_block_manager *bm, | ||
| 585 | struct dm_block *superblock) | ||
| 586 | { | ||
| 587 | int r; | ||
| 588 | |||
| 589 | r = dm_bufio_write_dirty_buffers(to_bufio(bm)); | ||
| 590 | if (unlikely(r)) | ||
| 591 | return r; | ||
| 592 | r = dm_bufio_issue_flush(to_bufio(bm)); | ||
| 593 | if (unlikely(r)) | ||
| 594 | return r; | ||
| 595 | |||
| 596 | dm_bm_unlock(superblock); | ||
| 597 | |||
| 598 | r = dm_bufio_write_dirty_buffers(to_bufio(bm)); | ||
| 599 | if (unlikely(r)) | ||
| 600 | return r; | ||
| 601 | r = dm_bufio_issue_flush(to_bufio(bm)); | ||
| 602 | if (unlikely(r)) | ||
| 603 | return r; | ||
| 604 | |||
| 605 | return 0; | ||
| 606 | } | ||
| 607 | |||
| 608 | u32 dm_bm_checksum(const void *data, size_t len, u32 init_xor) | ||
| 609 | { | ||
| 610 | return crc32c(~(u32) 0, data, len) ^ init_xor; | ||
| 611 | } | ||
| 612 | EXPORT_SYMBOL_GPL(dm_bm_checksum); | ||
| 613 | |||
| 614 | /*----------------------------------------------------------------*/ | ||
| 615 | |||
| 616 | MODULE_LICENSE("GPL"); | ||
| 617 | MODULE_AUTHOR("Joe Thornber <dm-devel@redhat.com>"); | ||
| 618 | MODULE_DESCRIPTION("Immutable metadata library for dm"); | ||
| 619 | |||
| 620 | /*----------------------------------------------------------------*/ | ||
diff --git a/drivers/md/persistent-data/dm-block-manager.h b/drivers/md/persistent-data/dm-block-manager.h new file mode 100644 index 000000000000..924833d2dfa6 --- /dev/null +++ b/drivers/md/persistent-data/dm-block-manager.h | |||
| @@ -0,0 +1,123 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef _LINUX_DM_BLOCK_MANAGER_H | ||
| 8 | #define _LINUX_DM_BLOCK_MANAGER_H | ||
| 9 | |||
| 10 | #include <linux/types.h> | ||
| 11 | #include <linux/blkdev.h> | ||
| 12 | |||
| 13 | /*----------------------------------------------------------------*/ | ||
| 14 | |||
| 15 | /* | ||
| 16 | * Block number. | ||
| 17 | */ | ||
| 18 | typedef uint64_t dm_block_t; | ||
| 19 | struct dm_block; | ||
| 20 | |||
| 21 | dm_block_t dm_block_location(struct dm_block *b); | ||
| 22 | void *dm_block_data(struct dm_block *b); | ||
| 23 | |||
| 24 | /*----------------------------------------------------------------*/ | ||
| 25 | |||
| 26 | /* | ||
| 27 | * @name should be a unique identifier for the block manager, no longer | ||
| 28 | * than 32 chars. | ||
| 29 | * | ||
| 30 | * @max_held_per_thread should be the maximum number of locks, read or | ||
| 31 | * write, that an individual thread holds at any one time. | ||
| 32 | */ | ||
| 33 | struct dm_block_manager; | ||
| 34 | struct dm_block_manager *dm_block_manager_create( | ||
| 35 | struct block_device *bdev, unsigned block_size, | ||
| 36 | unsigned cache_size, unsigned max_held_per_thread); | ||
| 37 | void dm_block_manager_destroy(struct dm_block_manager *bm); | ||
| 38 | |||
| 39 | unsigned dm_bm_block_size(struct dm_block_manager *bm); | ||
| 40 | dm_block_t dm_bm_nr_blocks(struct dm_block_manager *bm); | ||
| 41 | |||
| 42 | /*----------------------------------------------------------------*/ | ||
| 43 | |||
| 44 | /* | ||
| 45 | * The validator allows the caller to verify newly-read data and modify | ||
| 46 | * the data just before writing, e.g. to calculate checksums. It's | ||
| 47 | * important to be consistent with your use of validators. The only time | ||
| 48 | * you can change validators is if you call dm_bm_write_lock_zero. | ||
| 49 | */ | ||
| 50 | struct dm_block_validator { | ||
| 51 | const char *name; | ||
| 52 | void (*prepare_for_write)(struct dm_block_validator *v, struct dm_block *b, size_t block_size); | ||
| 53 | |||
| 54 | /* | ||
| 55 | * Return 0 if the checksum is valid or < 0 on error. | ||
| 56 | */ | ||
| 57 | int (*check)(struct dm_block_validator *v, struct dm_block *b, size_t block_size); | ||
| 58 | }; | ||
| 59 | |||
| 60 | /*----------------------------------------------------------------*/ | ||
| 61 | |||
| 62 | /* | ||
| 63 | * You can have multiple concurrent readers or a single writer holding a | ||
| 64 | * block lock. | ||
| 65 | */ | ||
| 66 | |||
| 67 | /* | ||
| 68 | * dm_bm_lock() locks a block and returns through @result a pointer to | ||
| 69 | * memory that holds a copy of that block. If you have write-locked the | ||
| 70 | * block then any changes you make to memory pointed to by @result will be | ||
| 71 | * written back to the disk sometime after dm_bm_unlock is called. | ||
| 72 | */ | ||
| 73 | int dm_bm_read_lock(struct dm_block_manager *bm, dm_block_t b, | ||
| 74 | struct dm_block_validator *v, | ||
| 75 | struct dm_block **result); | ||
| 76 | |||
| 77 | int dm_bm_write_lock(struct dm_block_manager *bm, dm_block_t b, | ||
| 78 | struct dm_block_validator *v, | ||
| 79 | struct dm_block **result); | ||
| 80 | |||
| 81 | /* | ||
| 82 | * The *_try_lock variants return -EWOULDBLOCK if the block isn't | ||
| 83 | * available immediately. | ||
| 84 | */ | ||
| 85 | int dm_bm_read_try_lock(struct dm_block_manager *bm, dm_block_t b, | ||
| 86 | struct dm_block_validator *v, | ||
| 87 | struct dm_block **result); | ||
| 88 | |||
| 89 | /* | ||
| 90 | * Use dm_bm_write_lock_zero() when you know you're going to | ||
| 91 | * overwrite the block completely. It saves a disk read. | ||
| 92 | */ | ||
| 93 | int dm_bm_write_lock_zero(struct dm_block_manager *bm, dm_block_t b, | ||
| 94 | struct dm_block_validator *v, | ||
| 95 | struct dm_block **result); | ||
| 96 | |||
| 97 | int dm_bm_unlock(struct dm_block *b); | ||
| 98 | |||
| 99 | /* | ||
| 100 | * An optimisation; we often want to copy a block's contents to a new | ||
| 101 | * block. eg, as part of the shadowing operation. It's far better for | ||
| 102 | * bufio to do this move behind the scenes than hold 2 locks and memcpy the | ||
| 103 | * data. | ||
| 104 | */ | ||
| 105 | int dm_bm_unlock_move(struct dm_block *b, dm_block_t n); | ||
| 106 | |||
| 107 | /* | ||
| 108 | * It's a common idiom to have a superblock that should be committed last. | ||
| 109 | * | ||
| 110 | * @superblock should be write-locked on entry. It will be unlocked during | ||
| 111 | * this function. All dirty blocks are guaranteed to be written and flushed | ||
| 112 | * before the superblock. | ||
| 113 | * | ||
| 114 | * This method always blocks. | ||
| 115 | */ | ||
| 116 | int dm_bm_flush_and_unlock(struct dm_block_manager *bm, | ||
| 117 | struct dm_block *superblock); | ||
| 118 | |||
| 119 | u32 dm_bm_checksum(const void *data, size_t len, u32 init_xor); | ||
| 120 | |||
| 121 | /*----------------------------------------------------------------*/ | ||
| 122 | |||
| 123 | #endif /* _LINUX_DM_BLOCK_MANAGER_H */ | ||
diff --git a/drivers/md/persistent-data/dm-btree-internal.h b/drivers/md/persistent-data/dm-btree-internal.h new file mode 100644 index 000000000000..d279c768f8f1 --- /dev/null +++ b/drivers/md/persistent-data/dm-btree-internal.h | |||
| @@ -0,0 +1,137 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef DM_BTREE_INTERNAL_H | ||
| 8 | #define DM_BTREE_INTERNAL_H | ||
| 9 | |||
| 10 | #include "dm-btree.h" | ||
| 11 | |||
| 12 | /*----------------------------------------------------------------*/ | ||
| 13 | |||
| 14 | /* | ||
| 15 | * We'll need 2 accessor functions for n->csum and n->blocknr | ||
| 16 | * to support dm-btree-spine.c in that case. | ||
| 17 | */ | ||
| 18 | |||
| 19 | enum node_flags { | ||
| 20 | INTERNAL_NODE = 1, | ||
| 21 | LEAF_NODE = 1 << 1 | ||
| 22 | }; | ||
| 23 | |||
| 24 | /* | ||
| 25 | * Every btree node begins with this structure. Make sure it's a multiple | ||
| 26 | * of 8-bytes in size, otherwise the 64bit keys will be mis-aligned. | ||
| 27 | */ | ||
| 28 | struct node_header { | ||
| 29 | __le32 csum; | ||
| 30 | __le32 flags; | ||
| 31 | __le64 blocknr; /* Block this node is supposed to live in. */ | ||
| 32 | |||
| 33 | __le32 nr_entries; | ||
| 34 | __le32 max_entries; | ||
| 35 | __le32 value_size; | ||
| 36 | __le32 padding; | ||
| 37 | } __packed; | ||
| 38 | |||
| 39 | struct node { | ||
| 40 | struct node_header header; | ||
| 41 | __le64 keys[0]; | ||
| 42 | } __packed; | ||
| 43 | |||
| 44 | |||
| 45 | void inc_children(struct dm_transaction_manager *tm, struct node *n, | ||
| 46 | struct dm_btree_value_type *vt); | ||
| 47 | |||
| 48 | int new_block(struct dm_btree_info *info, struct dm_block **result); | ||
| 49 | int unlock_block(struct dm_btree_info *info, struct dm_block *b); | ||
| 50 | |||
| 51 | /* | ||
| 52 | * Spines keep track of the rolling locks. There are 2 variants, read-only | ||
| 53 | * and one that uses shadowing. These are separate structs to allow the | ||
| 54 | * type checker to spot misuse, for example accidentally calling read_lock | ||
| 55 | * on a shadow spine. | ||
| 56 | */ | ||
| 57 | struct ro_spine { | ||
| 58 | struct dm_btree_info *info; | ||
| 59 | |||
| 60 | int count; | ||
| 61 | struct dm_block *nodes[2]; | ||
| 62 | }; | ||
| 63 | |||
| 64 | void init_ro_spine(struct ro_spine *s, struct dm_btree_info *info); | ||
| 65 | int exit_ro_spine(struct ro_spine *s); | ||
| 66 | int ro_step(struct ro_spine *s, dm_block_t new_child); | ||
| 67 | struct node *ro_node(struct ro_spine *s); | ||
| 68 | |||
| 69 | struct shadow_spine { | ||
| 70 | struct dm_btree_info *info; | ||
| 71 | |||
| 72 | int count; | ||
| 73 | struct dm_block *nodes[2]; | ||
| 74 | |||
| 75 | dm_block_t root; | ||
| 76 | }; | ||
| 77 | |||
| 78 | void init_shadow_spine(struct shadow_spine *s, struct dm_btree_info *info); | ||
| 79 | int exit_shadow_spine(struct shadow_spine *s); | ||
| 80 | |||
| 81 | int shadow_step(struct shadow_spine *s, dm_block_t b, | ||
| 82 | struct dm_btree_value_type *vt); | ||
| 83 | |||
| 84 | /* | ||
| 85 | * The spine must have at least one entry before calling this. | ||
| 86 | */ | ||
| 87 | struct dm_block *shadow_current(struct shadow_spine *s); | ||
| 88 | |||
| 89 | /* | ||
| 90 | * The spine must have at least two entries before calling this. | ||
| 91 | */ | ||
| 92 | struct dm_block *shadow_parent(struct shadow_spine *s); | ||
| 93 | |||
| 94 | int shadow_has_parent(struct shadow_spine *s); | ||
| 95 | |||
| 96 | int shadow_root(struct shadow_spine *s); | ||
| 97 | |||
| 98 | /* | ||
| 99 | * Some inlines. | ||
| 100 | */ | ||
| 101 | static inline __le64 *key_ptr(struct node *n, uint32_t index) | ||
| 102 | { | ||
| 103 | return n->keys + index; | ||
| 104 | } | ||
| 105 | |||
| 106 | static inline void *value_base(struct node *n) | ||
| 107 | { | ||
| 108 | return &n->keys[le32_to_cpu(n->header.max_entries)]; | ||
| 109 | } | ||
| 110 | |||
| 111 | /* | ||
| 112 | * FIXME: Now that value size is stored in node we don't need the third parm. | ||
| 113 | */ | ||
| 114 | static inline void *value_ptr(struct node *n, uint32_t index, size_t value_size) | ||
| 115 | { | ||
| 116 | BUG_ON(value_size != le32_to_cpu(n->header.value_size)); | ||
| 117 | return value_base(n) + (value_size * index); | ||
| 118 | } | ||
| 119 | |||
| 120 | /* | ||
| 121 | * Assumes the values are suitably-aligned and converts to core format. | ||
| 122 | */ | ||
| 123 | static inline uint64_t value64(struct node *n, uint32_t index) | ||
| 124 | { | ||
| 125 | __le64 *values_le = value_base(n); | ||
| 126 | |||
| 127 | return le64_to_cpu(values_le[index]); | ||
| 128 | } | ||
| 129 | |||
| 130 | /* | ||
| 131 | * Searching for a key within a single node. | ||
| 132 | */ | ||
| 133 | int lower_bound(struct node *n, uint64_t key); | ||
| 134 | |||
| 135 | extern struct dm_block_validator btree_node_validator; | ||
| 136 | |||
| 137 | #endif /* DM_BTREE_INTERNAL_H */ | ||
diff --git a/drivers/md/persistent-data/dm-btree-remove.c b/drivers/md/persistent-data/dm-btree-remove.c new file mode 100644 index 000000000000..65fd85ec6514 --- /dev/null +++ b/drivers/md/persistent-data/dm-btree-remove.c | |||
| @@ -0,0 +1,566 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-btree.h" | ||
| 8 | #include "dm-btree-internal.h" | ||
| 9 | #include "dm-transaction-manager.h" | ||
| 10 | |||
| 11 | #include <linux/module.h> | ||
| 12 | |||
| 13 | /* | ||
| 14 | * Removing an entry from a btree | ||
| 15 | * ============================== | ||
| 16 | * | ||
| 17 | * A very important constraint for our btree is that no node, except the | ||
| 18 | * root, may have fewer than a certain number of entries. | ||
| 19 | * (MIN_ENTRIES <= nr_entries <= MAX_ENTRIES). | ||
| 20 | * | ||
| 21 | * Ensuring this is complicated by the way we want to only ever hold the | ||
| 22 | * locks on 2 nodes concurrently, and only change nodes in a top to bottom | ||
| 23 | * fashion. | ||
| 24 | * | ||
| 25 | * Each node may have a left or right sibling. When decending the spine, | ||
| 26 | * if a node contains only MIN_ENTRIES then we try and increase this to at | ||
| 27 | * least MIN_ENTRIES + 1. We do this in the following ways: | ||
| 28 | * | ||
| 29 | * [A] No siblings => this can only happen if the node is the root, in which | ||
| 30 | * case we copy the childs contents over the root. | ||
| 31 | * | ||
| 32 | * [B] No left sibling | ||
| 33 | * ==> rebalance(node, right sibling) | ||
| 34 | * | ||
| 35 | * [C] No right sibling | ||
| 36 | * ==> rebalance(left sibling, node) | ||
| 37 | * | ||
| 38 | * [D] Both siblings, total_entries(left, node, right) <= DEL_THRESHOLD | ||
| 39 | * ==> delete node adding it's contents to left and right | ||
| 40 | * | ||
| 41 | * [E] Both siblings, total_entries(left, node, right) > DEL_THRESHOLD | ||
| 42 | * ==> rebalance(left, node, right) | ||
| 43 | * | ||
| 44 | * After these operations it's possible that the our original node no | ||
| 45 | * longer contains the desired sub tree. For this reason this rebalancing | ||
| 46 | * is performed on the children of the current node. This also avoids | ||
| 47 | * having a special case for the root. | ||
| 48 | * | ||
| 49 | * Once this rebalancing has occurred we can then step into the child node | ||
| 50 | * for internal nodes. Or delete the entry for leaf nodes. | ||
| 51 | */ | ||
| 52 | |||
| 53 | /* | ||
| 54 | * Some little utilities for moving node data around. | ||
| 55 | */ | ||
| 56 | static void node_shift(struct node *n, int shift) | ||
| 57 | { | ||
| 58 | uint32_t nr_entries = le32_to_cpu(n->header.nr_entries); | ||
| 59 | uint32_t value_size = le32_to_cpu(n->header.value_size); | ||
| 60 | |||
| 61 | if (shift < 0) { | ||
| 62 | shift = -shift; | ||
| 63 | BUG_ON(shift > nr_entries); | ||
| 64 | BUG_ON((void *) key_ptr(n, shift) >= value_ptr(n, shift, value_size)); | ||
| 65 | memmove(key_ptr(n, 0), | ||
| 66 | key_ptr(n, shift), | ||
| 67 | (nr_entries - shift) * sizeof(__le64)); | ||
| 68 | memmove(value_ptr(n, 0, value_size), | ||
| 69 | value_ptr(n, shift, value_size), | ||
| 70 | (nr_entries - shift) * value_size); | ||
| 71 | } else { | ||
| 72 | BUG_ON(nr_entries + shift > le32_to_cpu(n->header.max_entries)); | ||
| 73 | memmove(key_ptr(n, shift), | ||
| 74 | key_ptr(n, 0), | ||
| 75 | nr_entries * sizeof(__le64)); | ||
| 76 | memmove(value_ptr(n, shift, value_size), | ||
| 77 | value_ptr(n, 0, value_size), | ||
| 78 | nr_entries * value_size); | ||
| 79 | } | ||
| 80 | } | ||
| 81 | |||
| 82 | static void node_copy(struct node *left, struct node *right, int shift) | ||
| 83 | { | ||
| 84 | uint32_t nr_left = le32_to_cpu(left->header.nr_entries); | ||
| 85 | uint32_t value_size = le32_to_cpu(left->header.value_size); | ||
| 86 | BUG_ON(value_size != le32_to_cpu(right->header.value_size)); | ||
| 87 | |||
| 88 | if (shift < 0) { | ||
| 89 | shift = -shift; | ||
| 90 | BUG_ON(nr_left + shift > le32_to_cpu(left->header.max_entries)); | ||
| 91 | memcpy(key_ptr(left, nr_left), | ||
| 92 | key_ptr(right, 0), | ||
| 93 | shift * sizeof(__le64)); | ||
| 94 | memcpy(value_ptr(left, nr_left, value_size), | ||
| 95 | value_ptr(right, 0, value_size), | ||
| 96 | shift * value_size); | ||
| 97 | } else { | ||
| 98 | BUG_ON(shift > le32_to_cpu(right->header.max_entries)); | ||
| 99 | memcpy(key_ptr(right, 0), | ||
| 100 | key_ptr(left, nr_left - shift), | ||
| 101 | shift * sizeof(__le64)); | ||
| 102 | memcpy(value_ptr(right, 0, value_size), | ||
| 103 | value_ptr(left, nr_left - shift, value_size), | ||
| 104 | shift * value_size); | ||
| 105 | } | ||
| 106 | } | ||
| 107 | |||
| 108 | /* | ||
| 109 | * Delete a specific entry from a leaf node. | ||
| 110 | */ | ||
| 111 | static void delete_at(struct node *n, unsigned index) | ||
| 112 | { | ||
| 113 | unsigned nr_entries = le32_to_cpu(n->header.nr_entries); | ||
| 114 | unsigned nr_to_copy = nr_entries - (index + 1); | ||
| 115 | uint32_t value_size = le32_to_cpu(n->header.value_size); | ||
| 116 | BUG_ON(index >= nr_entries); | ||
| 117 | |||
| 118 | if (nr_to_copy) { | ||
| 119 | memmove(key_ptr(n, index), | ||
| 120 | key_ptr(n, index + 1), | ||
| 121 | nr_to_copy * sizeof(__le64)); | ||
| 122 | |||
| 123 | memmove(value_ptr(n, index, value_size), | ||
| 124 | value_ptr(n, index + 1, value_size), | ||
| 125 | nr_to_copy * value_size); | ||
| 126 | } | ||
| 127 | |||
| 128 | n->header.nr_entries = cpu_to_le32(nr_entries - 1); | ||
| 129 | } | ||
| 130 | |||
| 131 | static unsigned del_threshold(struct node *n) | ||
| 132 | { | ||
| 133 | return le32_to_cpu(n->header.max_entries) / 3; | ||
| 134 | } | ||
| 135 | |||
| 136 | static unsigned merge_threshold(struct node *n) | ||
| 137 | { | ||
| 138 | /* | ||
| 139 | * The extra one is because we know we're potentially going to | ||
| 140 | * delete an entry. | ||
| 141 | */ | ||
| 142 | return 2 * (le32_to_cpu(n->header.max_entries) / 3) + 1; | ||
| 143 | } | ||
| 144 | |||
| 145 | struct child { | ||
| 146 | unsigned index; | ||
| 147 | struct dm_block *block; | ||
| 148 | struct node *n; | ||
| 149 | }; | ||
| 150 | |||
| 151 | static struct dm_btree_value_type le64_type = { | ||
| 152 | .context = NULL, | ||
| 153 | .size = sizeof(__le64), | ||
| 154 | .inc = NULL, | ||
| 155 | .dec = NULL, | ||
| 156 | .equal = NULL | ||
| 157 | }; | ||
| 158 | |||
| 159 | static int init_child(struct dm_btree_info *info, struct node *parent, | ||
| 160 | unsigned index, struct child *result) | ||
| 161 | { | ||
| 162 | int r, inc; | ||
| 163 | dm_block_t root; | ||
| 164 | |||
| 165 | result->index = index; | ||
| 166 | root = value64(parent, index); | ||
| 167 | |||
| 168 | r = dm_tm_shadow_block(info->tm, root, &btree_node_validator, | ||
| 169 | &result->block, &inc); | ||
| 170 | if (r) | ||
| 171 | return r; | ||
| 172 | |||
| 173 | result->n = dm_block_data(result->block); | ||
| 174 | |||
| 175 | if (inc) | ||
| 176 | inc_children(info->tm, result->n, &le64_type); | ||
| 177 | |||
| 178 | *((__le64 *) value_ptr(parent, index, sizeof(__le64))) = | ||
| 179 | cpu_to_le64(dm_block_location(result->block)); | ||
| 180 | |||
| 181 | return 0; | ||
| 182 | } | ||
| 183 | |||
| 184 | static int exit_child(struct dm_btree_info *info, struct child *c) | ||
| 185 | { | ||
| 186 | return dm_tm_unlock(info->tm, c->block); | ||
| 187 | } | ||
| 188 | |||
| 189 | static void shift(struct node *left, struct node *right, int count) | ||
| 190 | { | ||
| 191 | if (!count) | ||
| 192 | return; | ||
| 193 | |||
| 194 | if (count > 0) { | ||
| 195 | node_shift(right, count); | ||
| 196 | node_copy(left, right, count); | ||
| 197 | } else { | ||
| 198 | node_copy(left, right, count); | ||
| 199 | node_shift(right, count); | ||
| 200 | } | ||
| 201 | |||
| 202 | left->header.nr_entries = | ||
| 203 | cpu_to_le32(le32_to_cpu(left->header.nr_entries) - count); | ||
| 204 | BUG_ON(le32_to_cpu(left->header.nr_entries) > le32_to_cpu(left->header.max_entries)); | ||
| 205 | |||
| 206 | right->header.nr_entries = | ||
| 207 | cpu_to_le32(le32_to_cpu(right->header.nr_entries) + count); | ||
| 208 | BUG_ON(le32_to_cpu(right->header.nr_entries) > le32_to_cpu(right->header.max_entries)); | ||
| 209 | } | ||
| 210 | |||
| 211 | static void __rebalance2(struct dm_btree_info *info, struct node *parent, | ||
| 212 | struct child *l, struct child *r) | ||
| 213 | { | ||
| 214 | struct node *left = l->n; | ||
| 215 | struct node *right = r->n; | ||
| 216 | uint32_t nr_left = le32_to_cpu(left->header.nr_entries); | ||
| 217 | uint32_t nr_right = le32_to_cpu(right->header.nr_entries); | ||
| 218 | |||
| 219 | if (nr_left + nr_right <= merge_threshold(left)) { | ||
| 220 | /* | ||
| 221 | * Merge | ||
| 222 | */ | ||
| 223 | node_copy(left, right, -nr_right); | ||
| 224 | left->header.nr_entries = cpu_to_le32(nr_left + nr_right); | ||
| 225 | delete_at(parent, r->index); | ||
| 226 | |||
| 227 | /* | ||
| 228 | * We need to decrement the right block, but not it's | ||
| 229 | * children, since they're still referenced by left. | ||
| 230 | */ | ||
| 231 | dm_tm_dec(info->tm, dm_block_location(r->block)); | ||
| 232 | } else { | ||
| 233 | /* | ||
| 234 | * Rebalance. | ||
| 235 | */ | ||
| 236 | unsigned target_left = (nr_left + nr_right) / 2; | ||
| 237 | unsigned shift_ = nr_left - target_left; | ||
| 238 | BUG_ON(le32_to_cpu(left->header.max_entries) <= nr_left - shift_); | ||
| 239 | BUG_ON(le32_to_cpu(right->header.max_entries) <= nr_right + shift_); | ||
| 240 | shift(left, right, nr_left - target_left); | ||
| 241 | *key_ptr(parent, r->index) = right->keys[0]; | ||
| 242 | } | ||
| 243 | } | ||
| 244 | |||
| 245 | static int rebalance2(struct shadow_spine *s, struct dm_btree_info *info, | ||
| 246 | unsigned left_index) | ||
| 247 | { | ||
| 248 | int r; | ||
| 249 | struct node *parent; | ||
| 250 | struct child left, right; | ||
| 251 | |||
| 252 | parent = dm_block_data(shadow_current(s)); | ||
| 253 | |||
| 254 | r = init_child(info, parent, left_index, &left); | ||
| 255 | if (r) | ||
| 256 | return r; | ||
| 257 | |||
| 258 | r = init_child(info, parent, left_index + 1, &right); | ||
| 259 | if (r) { | ||
| 260 | exit_child(info, &left); | ||
| 261 | return r; | ||
| 262 | } | ||
| 263 | |||
| 264 | __rebalance2(info, parent, &left, &right); | ||
| 265 | |||
| 266 | r = exit_child(info, &left); | ||
| 267 | if (r) { | ||
| 268 | exit_child(info, &right); | ||
| 269 | return r; | ||
| 270 | } | ||
| 271 | |||
| 272 | return exit_child(info, &right); | ||
| 273 | } | ||
| 274 | |||
| 275 | static void __rebalance3(struct dm_btree_info *info, struct node *parent, | ||
| 276 | struct child *l, struct child *c, struct child *r) | ||
| 277 | { | ||
| 278 | struct node *left = l->n; | ||
| 279 | struct node *center = c->n; | ||
| 280 | struct node *right = r->n; | ||
| 281 | |||
| 282 | uint32_t nr_left = le32_to_cpu(left->header.nr_entries); | ||
| 283 | uint32_t nr_center = le32_to_cpu(center->header.nr_entries); | ||
| 284 | uint32_t nr_right = le32_to_cpu(right->header.nr_entries); | ||
| 285 | uint32_t max_entries = le32_to_cpu(left->header.max_entries); | ||
| 286 | |||
| 287 | unsigned target; | ||
| 288 | |||
| 289 | BUG_ON(left->header.max_entries != center->header.max_entries); | ||
| 290 | BUG_ON(center->header.max_entries != right->header.max_entries); | ||
| 291 | |||
| 292 | if (((nr_left + nr_center + nr_right) / 2) < merge_threshold(center)) { | ||
| 293 | /* | ||
| 294 | * Delete center node: | ||
| 295 | * | ||
| 296 | * We dump as many entries from center as possible into | ||
| 297 | * left, then the rest in right, then rebalance2. This | ||
| 298 | * wastes some cpu, but I want something simple atm. | ||
| 299 | */ | ||
| 300 | unsigned shift = min(max_entries - nr_left, nr_center); | ||
| 301 | |||
| 302 | BUG_ON(nr_left + shift > max_entries); | ||
| 303 | node_copy(left, center, -shift); | ||
| 304 | left->header.nr_entries = cpu_to_le32(nr_left + shift); | ||
| 305 | |||
| 306 | if (shift != nr_center) { | ||
| 307 | shift = nr_center - shift; | ||
| 308 | BUG_ON((nr_right + shift) >= max_entries); | ||
| 309 | node_shift(right, shift); | ||
| 310 | node_copy(center, right, shift); | ||
| 311 | right->header.nr_entries = cpu_to_le32(nr_right + shift); | ||
| 312 | } | ||
| 313 | *key_ptr(parent, r->index) = right->keys[0]; | ||
| 314 | |||
| 315 | delete_at(parent, c->index); | ||
| 316 | r->index--; | ||
| 317 | |||
| 318 | dm_tm_dec(info->tm, dm_block_location(c->block)); | ||
| 319 | __rebalance2(info, parent, l, r); | ||
| 320 | |||
| 321 | return; | ||
| 322 | } | ||
| 323 | |||
| 324 | /* | ||
| 325 | * Rebalance | ||
| 326 | */ | ||
| 327 | target = (nr_left + nr_center + nr_right) / 3; | ||
| 328 | BUG_ON(target > max_entries); | ||
| 329 | |||
| 330 | /* | ||
| 331 | * Adjust the left node | ||
| 332 | */ | ||
| 333 | shift(left, center, nr_left - target); | ||
| 334 | |||
| 335 | /* | ||
| 336 | * Adjust the right node | ||
| 337 | */ | ||
| 338 | shift(center, right, target - nr_right); | ||
| 339 | *key_ptr(parent, c->index) = center->keys[0]; | ||
| 340 | *key_ptr(parent, r->index) = right->keys[0]; | ||
| 341 | } | ||
| 342 | |||
| 343 | static int rebalance3(struct shadow_spine *s, struct dm_btree_info *info, | ||
| 344 | unsigned left_index) | ||
| 345 | { | ||
| 346 | int r; | ||
| 347 | struct node *parent = dm_block_data(shadow_current(s)); | ||
| 348 | struct child left, center, right; | ||
| 349 | |||
| 350 | /* | ||
| 351 | * FIXME: fill out an array? | ||
| 352 | */ | ||
| 353 | r = init_child(info, parent, left_index, &left); | ||
| 354 | if (r) | ||
| 355 | return r; | ||
| 356 | |||
| 357 | r = init_child(info, parent, left_index + 1, ¢er); | ||
| 358 | if (r) { | ||
| 359 | exit_child(info, &left); | ||
| 360 | return r; | ||
| 361 | } | ||
| 362 | |||
| 363 | r = init_child(info, parent, left_index + 2, &right); | ||
| 364 | if (r) { | ||
| 365 | exit_child(info, &left); | ||
| 366 | exit_child(info, ¢er); | ||
| 367 | return r; | ||
| 368 | } | ||
| 369 | |||
| 370 | __rebalance3(info, parent, &left, ¢er, &right); | ||
| 371 | |||
| 372 | r = exit_child(info, &left); | ||
| 373 | if (r) { | ||
| 374 | exit_child(info, ¢er); | ||
| 375 | exit_child(info, &right); | ||
| 376 | return r; | ||
| 377 | } | ||
| 378 | |||
| 379 | r = exit_child(info, ¢er); | ||
| 380 | if (r) { | ||
| 381 | exit_child(info, &right); | ||
| 382 | return r; | ||
| 383 | } | ||
| 384 | |||
| 385 | r = exit_child(info, &right); | ||
| 386 | if (r) | ||
| 387 | return r; | ||
| 388 | |||
| 389 | return 0; | ||
| 390 | } | ||
| 391 | |||
| 392 | static int get_nr_entries(struct dm_transaction_manager *tm, | ||
| 393 | dm_block_t b, uint32_t *result) | ||
| 394 | { | ||
| 395 | int r; | ||
| 396 | struct dm_block *block; | ||
| 397 | struct node *n; | ||
| 398 | |||
| 399 | r = dm_tm_read_lock(tm, b, &btree_node_validator, &block); | ||
| 400 | if (r) | ||
| 401 | return r; | ||
| 402 | |||
| 403 | n = dm_block_data(block); | ||
| 404 | *result = le32_to_cpu(n->header.nr_entries); | ||
| 405 | |||
| 406 | return dm_tm_unlock(tm, block); | ||
| 407 | } | ||
| 408 | |||
| 409 | static int rebalance_children(struct shadow_spine *s, | ||
| 410 | struct dm_btree_info *info, uint64_t key) | ||
| 411 | { | ||
| 412 | int i, r, has_left_sibling, has_right_sibling; | ||
| 413 | uint32_t child_entries; | ||
| 414 | struct node *n; | ||
| 415 | |||
| 416 | n = dm_block_data(shadow_current(s)); | ||
| 417 | |||
| 418 | if (le32_to_cpu(n->header.nr_entries) == 1) { | ||
| 419 | struct dm_block *child; | ||
| 420 | dm_block_t b = value64(n, 0); | ||
| 421 | |||
| 422 | r = dm_tm_read_lock(info->tm, b, &btree_node_validator, &child); | ||
| 423 | if (r) | ||
| 424 | return r; | ||
| 425 | |||
| 426 | memcpy(n, dm_block_data(child), | ||
| 427 | dm_bm_block_size(dm_tm_get_bm(info->tm))); | ||
| 428 | r = dm_tm_unlock(info->tm, child); | ||
| 429 | if (r) | ||
| 430 | return r; | ||
| 431 | |||
| 432 | dm_tm_dec(info->tm, dm_block_location(child)); | ||
| 433 | return 0; | ||
| 434 | } | ||
| 435 | |||
| 436 | i = lower_bound(n, key); | ||
| 437 | if (i < 0) | ||
| 438 | return -ENODATA; | ||
| 439 | |||
| 440 | r = get_nr_entries(info->tm, value64(n, i), &child_entries); | ||
| 441 | if (r) | ||
| 442 | return r; | ||
| 443 | |||
| 444 | if (child_entries > del_threshold(n)) | ||
| 445 | return 0; | ||
| 446 | |||
| 447 | has_left_sibling = i > 0; | ||
| 448 | has_right_sibling = i < (le32_to_cpu(n->header.nr_entries) - 1); | ||
| 449 | |||
| 450 | if (!has_left_sibling) | ||
| 451 | r = rebalance2(s, info, i); | ||
| 452 | |||
| 453 | else if (!has_right_sibling) | ||
| 454 | r = rebalance2(s, info, i - 1); | ||
| 455 | |||
| 456 | else | ||
| 457 | r = rebalance3(s, info, i - 1); | ||
| 458 | |||
| 459 | return r; | ||
| 460 | } | ||
| 461 | |||
| 462 | static int do_leaf(struct node *n, uint64_t key, unsigned *index) | ||
| 463 | { | ||
| 464 | int i = lower_bound(n, key); | ||
| 465 | |||
| 466 | if ((i < 0) || | ||
| 467 | (i >= le32_to_cpu(n->header.nr_entries)) || | ||
| 468 | (le64_to_cpu(n->keys[i]) != key)) | ||
| 469 | return -ENODATA; | ||
| 470 | |||
| 471 | *index = i; | ||
| 472 | |||
| 473 | return 0; | ||
| 474 | } | ||
| 475 | |||
| 476 | /* | ||
| 477 | * Prepares for removal from one level of the hierarchy. The caller must | ||
| 478 | * call delete_at() to remove the entry at index. | ||
| 479 | */ | ||
| 480 | static int remove_raw(struct shadow_spine *s, struct dm_btree_info *info, | ||
| 481 | struct dm_btree_value_type *vt, dm_block_t root, | ||
| 482 | uint64_t key, unsigned *index) | ||
| 483 | { | ||
| 484 | int i = *index, r; | ||
| 485 | struct node *n; | ||
| 486 | |||
| 487 | for (;;) { | ||
| 488 | r = shadow_step(s, root, vt); | ||
| 489 | if (r < 0) | ||
| 490 | break; | ||
| 491 | |||
| 492 | /* | ||
| 493 | * We have to patch up the parent node, ugly, but I don't | ||
| 494 | * see a way to do this automatically as part of the spine | ||
| 495 | * op. | ||
| 496 | */ | ||
| 497 | if (shadow_has_parent(s)) { | ||
| 498 | __le64 location = cpu_to_le64(dm_block_location(shadow_current(s))); | ||
| 499 | memcpy(value_ptr(dm_block_data(shadow_parent(s)), i, sizeof(__le64)), | ||
| 500 | &location, sizeof(__le64)); | ||
| 501 | } | ||
| 502 | |||
| 503 | n = dm_block_data(shadow_current(s)); | ||
| 504 | |||
| 505 | if (le32_to_cpu(n->header.flags) & LEAF_NODE) | ||
| 506 | return do_leaf(n, key, index); | ||
| 507 | |||
| 508 | r = rebalance_children(s, info, key); | ||
| 509 | if (r) | ||
| 510 | break; | ||
| 511 | |||
| 512 | n = dm_block_data(shadow_current(s)); | ||
| 513 | if (le32_to_cpu(n->header.flags) & LEAF_NODE) | ||
| 514 | return do_leaf(n, key, index); | ||
| 515 | |||
| 516 | i = lower_bound(n, key); | ||
| 517 | |||
| 518 | /* | ||
| 519 | * We know the key is present, or else | ||
| 520 | * rebalance_children would have returned | ||
| 521 | * -ENODATA | ||
| 522 | */ | ||
| 523 | root = value64(n, i); | ||
| 524 | } | ||
| 525 | |||
| 526 | return r; | ||
| 527 | } | ||
| 528 | |||
| 529 | int dm_btree_remove(struct dm_btree_info *info, dm_block_t root, | ||
| 530 | uint64_t *keys, dm_block_t *new_root) | ||
| 531 | { | ||
| 532 | unsigned level, last_level = info->levels - 1; | ||
| 533 | int index = 0, r = 0; | ||
| 534 | struct shadow_spine spine; | ||
| 535 | struct node *n; | ||
| 536 | |||
| 537 | init_shadow_spine(&spine, info); | ||
| 538 | for (level = 0; level < info->levels; level++) { | ||
| 539 | r = remove_raw(&spine, info, | ||
| 540 | (level == last_level ? | ||
| 541 | &info->value_type : &le64_type), | ||
| 542 | root, keys[level], (unsigned *)&index); | ||
| 543 | if (r < 0) | ||
| 544 | break; | ||
| 545 | |||
| 546 | n = dm_block_data(shadow_current(&spine)); | ||
| 547 | if (level != last_level) { | ||
| 548 | root = value64(n, index); | ||
| 549 | continue; | ||
| 550 | } | ||
| 551 | |||
| 552 | BUG_ON(index < 0 || index >= le32_to_cpu(n->header.nr_entries)); | ||
| 553 | |||
| 554 | if (info->value_type.dec) | ||
| 555 | info->value_type.dec(info->value_type.context, | ||
| 556 | value_ptr(n, index, info->value_type.size)); | ||
| 557 | |||
| 558 | delete_at(n, index); | ||
| 559 | } | ||
| 560 | |||
| 561 | *new_root = shadow_root(&spine); | ||
| 562 | exit_shadow_spine(&spine); | ||
| 563 | |||
| 564 | return r; | ||
| 565 | } | ||
| 566 | EXPORT_SYMBOL_GPL(dm_btree_remove); | ||
diff --git a/drivers/md/persistent-data/dm-btree-spine.c b/drivers/md/persistent-data/dm-btree-spine.c new file mode 100644 index 000000000000..d9a7912ee8ee --- /dev/null +++ b/drivers/md/persistent-data/dm-btree-spine.c | |||
| @@ -0,0 +1,244 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-btree-internal.h" | ||
| 8 | #include "dm-transaction-manager.h" | ||
| 9 | |||
| 10 | #include <linux/device-mapper.h> | ||
| 11 | |||
| 12 | #define DM_MSG_PREFIX "btree spine" | ||
| 13 | |||
| 14 | /*----------------------------------------------------------------*/ | ||
| 15 | |||
| 16 | #define BTREE_CSUM_XOR 121107 | ||
| 17 | |||
| 18 | static int node_check(struct dm_block_validator *v, | ||
| 19 | struct dm_block *b, | ||
| 20 | size_t block_size); | ||
| 21 | |||
| 22 | static void node_prepare_for_write(struct dm_block_validator *v, | ||
| 23 | struct dm_block *b, | ||
| 24 | size_t block_size) | ||
| 25 | { | ||
| 26 | struct node *n = dm_block_data(b); | ||
| 27 | struct node_header *h = &n->header; | ||
| 28 | |||
| 29 | h->blocknr = cpu_to_le64(dm_block_location(b)); | ||
| 30 | h->csum = cpu_to_le32(dm_bm_checksum(&h->flags, | ||
| 31 | block_size - sizeof(__le32), | ||
| 32 | BTREE_CSUM_XOR)); | ||
| 33 | |||
| 34 | BUG_ON(node_check(v, b, 4096)); | ||
| 35 | } | ||
| 36 | |||
| 37 | static int node_check(struct dm_block_validator *v, | ||
| 38 | struct dm_block *b, | ||
| 39 | size_t block_size) | ||
| 40 | { | ||
| 41 | struct node *n = dm_block_data(b); | ||
| 42 | struct node_header *h = &n->header; | ||
| 43 | size_t value_size; | ||
| 44 | __le32 csum_disk; | ||
| 45 | uint32_t flags; | ||
| 46 | |||
| 47 | if (dm_block_location(b) != le64_to_cpu(h->blocknr)) { | ||
| 48 | DMERR("node_check failed blocknr %llu wanted %llu", | ||
| 49 | le64_to_cpu(h->blocknr), dm_block_location(b)); | ||
| 50 | return -ENOTBLK; | ||
| 51 | } | ||
| 52 | |||
| 53 | csum_disk = cpu_to_le32(dm_bm_checksum(&h->flags, | ||
| 54 | block_size - sizeof(__le32), | ||
| 55 | BTREE_CSUM_XOR)); | ||
| 56 | if (csum_disk != h->csum) { | ||
| 57 | DMERR("node_check failed csum %u wanted %u", | ||
| 58 | le32_to_cpu(csum_disk), le32_to_cpu(h->csum)); | ||
| 59 | return -EILSEQ; | ||
| 60 | } | ||
| 61 | |||
| 62 | value_size = le32_to_cpu(h->value_size); | ||
| 63 | |||
| 64 | if (sizeof(struct node_header) + | ||
| 65 | (sizeof(__le64) + value_size) * le32_to_cpu(h->max_entries) > block_size) { | ||
| 66 | DMERR("node_check failed: max_entries too large"); | ||
| 67 | return -EILSEQ; | ||
| 68 | } | ||
| 69 | |||
| 70 | if (le32_to_cpu(h->nr_entries) > le32_to_cpu(h->max_entries)) { | ||
| 71 | DMERR("node_check failed, too many entries"); | ||
| 72 | return -EILSEQ; | ||
| 73 | } | ||
| 74 | |||
| 75 | /* | ||
| 76 | * The node must be either INTERNAL or LEAF. | ||
| 77 | */ | ||
| 78 | flags = le32_to_cpu(h->flags); | ||
| 79 | if (!(flags & INTERNAL_NODE) && !(flags & LEAF_NODE)) { | ||
| 80 | DMERR("node_check failed, node is neither INTERNAL or LEAF"); | ||
| 81 | return -EILSEQ; | ||
| 82 | } | ||
| 83 | |||
| 84 | return 0; | ||
| 85 | } | ||
| 86 | |||
| 87 | struct dm_block_validator btree_node_validator = { | ||
| 88 | .name = "btree_node", | ||
| 89 | .prepare_for_write = node_prepare_for_write, | ||
| 90 | .check = node_check | ||
| 91 | }; | ||
| 92 | |||
| 93 | /*----------------------------------------------------------------*/ | ||
| 94 | |||
| 95 | static int bn_read_lock(struct dm_btree_info *info, dm_block_t b, | ||
| 96 | struct dm_block **result) | ||
| 97 | { | ||
| 98 | return dm_tm_read_lock(info->tm, b, &btree_node_validator, result); | ||
| 99 | } | ||
| 100 | |||
| 101 | static int bn_shadow(struct dm_btree_info *info, dm_block_t orig, | ||
| 102 | struct dm_btree_value_type *vt, | ||
| 103 | struct dm_block **result) | ||
| 104 | { | ||
| 105 | int r, inc; | ||
| 106 | |||
| 107 | r = dm_tm_shadow_block(info->tm, orig, &btree_node_validator, | ||
| 108 | result, &inc); | ||
| 109 | if (!r && inc) | ||
| 110 | inc_children(info->tm, dm_block_data(*result), vt); | ||
| 111 | |||
| 112 | return r; | ||
| 113 | } | ||
| 114 | |||
| 115 | int new_block(struct dm_btree_info *info, struct dm_block **result) | ||
| 116 | { | ||
| 117 | return dm_tm_new_block(info->tm, &btree_node_validator, result); | ||
| 118 | } | ||
| 119 | |||
| 120 | int unlock_block(struct dm_btree_info *info, struct dm_block *b) | ||
| 121 | { | ||
| 122 | return dm_tm_unlock(info->tm, b); | ||
| 123 | } | ||
| 124 | |||
| 125 | /*----------------------------------------------------------------*/ | ||
| 126 | |||
| 127 | void init_ro_spine(struct ro_spine *s, struct dm_btree_info *info) | ||
| 128 | { | ||
| 129 | s->info = info; | ||
| 130 | s->count = 0; | ||
| 131 | s->nodes[0] = NULL; | ||
| 132 | s->nodes[1] = NULL; | ||
| 133 | } | ||
| 134 | |||
| 135 | int exit_ro_spine(struct ro_spine *s) | ||
| 136 | { | ||
| 137 | int r = 0, i; | ||
| 138 | |||
| 139 | for (i = 0; i < s->count; i++) { | ||
| 140 | int r2 = unlock_block(s->info, s->nodes[i]); | ||
| 141 | if (r2 < 0) | ||
| 142 | r = r2; | ||
| 143 | } | ||
| 144 | |||
| 145 | return r; | ||
| 146 | } | ||
| 147 | |||
| 148 | int ro_step(struct ro_spine *s, dm_block_t new_child) | ||
| 149 | { | ||
| 150 | int r; | ||
| 151 | |||
| 152 | if (s->count == 2) { | ||
| 153 | r = unlock_block(s->info, s->nodes[0]); | ||
| 154 | if (r < 0) | ||
| 155 | return r; | ||
| 156 | s->nodes[0] = s->nodes[1]; | ||
| 157 | s->count--; | ||
| 158 | } | ||
| 159 | |||
| 160 | r = bn_read_lock(s->info, new_child, s->nodes + s->count); | ||
| 161 | if (!r) | ||
| 162 | s->count++; | ||
| 163 | |||
| 164 | return r; | ||
| 165 | } | ||
| 166 | |||
| 167 | struct node *ro_node(struct ro_spine *s) | ||
| 168 | { | ||
| 169 | struct dm_block *block; | ||
| 170 | |||
| 171 | BUG_ON(!s->count); | ||
| 172 | block = s->nodes[s->count - 1]; | ||
| 173 | |||
| 174 | return dm_block_data(block); | ||
| 175 | } | ||
| 176 | |||
| 177 | /*----------------------------------------------------------------*/ | ||
| 178 | |||
| 179 | void init_shadow_spine(struct shadow_spine *s, struct dm_btree_info *info) | ||
| 180 | { | ||
| 181 | s->info = info; | ||
| 182 | s->count = 0; | ||
| 183 | } | ||
| 184 | |||
| 185 | int exit_shadow_spine(struct shadow_spine *s) | ||
| 186 | { | ||
| 187 | int r = 0, i; | ||
| 188 | |||
| 189 | for (i = 0; i < s->count; i++) { | ||
| 190 | int r2 = unlock_block(s->info, s->nodes[i]); | ||
| 191 | if (r2 < 0) | ||
| 192 | r = r2; | ||
| 193 | } | ||
| 194 | |||
| 195 | return r; | ||
| 196 | } | ||
| 197 | |||
| 198 | int shadow_step(struct shadow_spine *s, dm_block_t b, | ||
| 199 | struct dm_btree_value_type *vt) | ||
| 200 | { | ||
| 201 | int r; | ||
| 202 | |||
| 203 | if (s->count == 2) { | ||
| 204 | r = unlock_block(s->info, s->nodes[0]); | ||
| 205 | if (r < 0) | ||
| 206 | return r; | ||
| 207 | s->nodes[0] = s->nodes[1]; | ||
| 208 | s->count--; | ||
| 209 | } | ||
| 210 | |||
| 211 | r = bn_shadow(s->info, b, vt, s->nodes + s->count); | ||
| 212 | if (!r) { | ||
| 213 | if (!s->count) | ||
| 214 | s->root = dm_block_location(s->nodes[0]); | ||
| 215 | |||
| 216 | s->count++; | ||
| 217 | } | ||
| 218 | |||
| 219 | return r; | ||
| 220 | } | ||
| 221 | |||
| 222 | struct dm_block *shadow_current(struct shadow_spine *s) | ||
| 223 | { | ||
| 224 | BUG_ON(!s->count); | ||
| 225 | |||
| 226 | return s->nodes[s->count - 1]; | ||
| 227 | } | ||
| 228 | |||
| 229 | struct dm_block *shadow_parent(struct shadow_spine *s) | ||
| 230 | { | ||
| 231 | BUG_ON(s->count != 2); | ||
| 232 | |||
| 233 | return s->count == 2 ? s->nodes[0] : NULL; | ||
| 234 | } | ||
| 235 | |||
| 236 | int shadow_has_parent(struct shadow_spine *s) | ||
| 237 | { | ||
| 238 | return s->count >= 2; | ||
| 239 | } | ||
| 240 | |||
| 241 | int shadow_root(struct shadow_spine *s) | ||
| 242 | { | ||
| 243 | return s->root; | ||
| 244 | } | ||
diff --git a/drivers/md/persistent-data/dm-btree.c b/drivers/md/persistent-data/dm-btree.c new file mode 100644 index 000000000000..e0638be53ea4 --- /dev/null +++ b/drivers/md/persistent-data/dm-btree.c | |||
| @@ -0,0 +1,805 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-btree-internal.h" | ||
| 8 | #include "dm-space-map.h" | ||
| 9 | #include "dm-transaction-manager.h" | ||
| 10 | |||
| 11 | #include <linux/module.h> | ||
| 12 | #include <linux/device-mapper.h> | ||
| 13 | |||
| 14 | #define DM_MSG_PREFIX "btree" | ||
| 15 | |||
| 16 | /*---------------------------------------------------------------- | ||
| 17 | * Array manipulation | ||
| 18 | *--------------------------------------------------------------*/ | ||
| 19 | static void memcpy_disk(void *dest, const void *src, size_t len) | ||
| 20 | __dm_written_to_disk(src) | ||
| 21 | { | ||
| 22 | memcpy(dest, src, len); | ||
| 23 | __dm_unbless_for_disk(src); | ||
| 24 | } | ||
| 25 | |||
| 26 | static void array_insert(void *base, size_t elt_size, unsigned nr_elts, | ||
| 27 | unsigned index, void *elt) | ||
| 28 | __dm_written_to_disk(elt) | ||
| 29 | { | ||
| 30 | if (index < nr_elts) | ||
| 31 | memmove(base + (elt_size * (index + 1)), | ||
| 32 | base + (elt_size * index), | ||
| 33 | (nr_elts - index) * elt_size); | ||
| 34 | |||
| 35 | memcpy_disk(base + (elt_size * index), elt, elt_size); | ||
| 36 | } | ||
| 37 | |||
| 38 | /*----------------------------------------------------------------*/ | ||
| 39 | |||
| 40 | /* makes the assumption that no two keys are the same. */ | ||
| 41 | static int bsearch(struct node *n, uint64_t key, int want_hi) | ||
| 42 | { | ||
| 43 | int lo = -1, hi = le32_to_cpu(n->header.nr_entries); | ||
| 44 | |||
| 45 | while (hi - lo > 1) { | ||
| 46 | int mid = lo + ((hi - lo) / 2); | ||
| 47 | uint64_t mid_key = le64_to_cpu(n->keys[mid]); | ||
| 48 | |||
| 49 | if (mid_key == key) | ||
| 50 | return mid; | ||
| 51 | |||
| 52 | if (mid_key < key) | ||
| 53 | lo = mid; | ||
| 54 | else | ||
| 55 | hi = mid; | ||
| 56 | } | ||
| 57 | |||
| 58 | return want_hi ? hi : lo; | ||
| 59 | } | ||
| 60 | |||
| 61 | int lower_bound(struct node *n, uint64_t key) | ||
| 62 | { | ||
| 63 | return bsearch(n, key, 0); | ||
| 64 | } | ||
| 65 | |||
| 66 | void inc_children(struct dm_transaction_manager *tm, struct node *n, | ||
| 67 | struct dm_btree_value_type *vt) | ||
| 68 | { | ||
| 69 | unsigned i; | ||
| 70 | uint32_t nr_entries = le32_to_cpu(n->header.nr_entries); | ||
| 71 | |||
| 72 | if (le32_to_cpu(n->header.flags) & INTERNAL_NODE) | ||
| 73 | for (i = 0; i < nr_entries; i++) | ||
| 74 | dm_tm_inc(tm, value64(n, i)); | ||
| 75 | else if (vt->inc) | ||
| 76 | for (i = 0; i < nr_entries; i++) | ||
| 77 | vt->inc(vt->context, | ||
| 78 | value_ptr(n, i, vt->size)); | ||
| 79 | } | ||
| 80 | |||
| 81 | static int insert_at(size_t value_size, struct node *node, unsigned index, | ||
| 82 | uint64_t key, void *value) | ||
| 83 | __dm_written_to_disk(value) | ||
| 84 | { | ||
| 85 | uint32_t nr_entries = le32_to_cpu(node->header.nr_entries); | ||
| 86 | __le64 key_le = cpu_to_le64(key); | ||
| 87 | |||
| 88 | if (index > nr_entries || | ||
| 89 | index >= le32_to_cpu(node->header.max_entries)) { | ||
| 90 | DMERR("too many entries in btree node for insert"); | ||
| 91 | __dm_unbless_for_disk(value); | ||
| 92 | return -ENOMEM; | ||
| 93 | } | ||
| 94 | |||
| 95 | __dm_bless_for_disk(&key_le); | ||
| 96 | |||
| 97 | array_insert(node->keys, sizeof(*node->keys), nr_entries, index, &key_le); | ||
| 98 | array_insert(value_base(node), value_size, nr_entries, index, value); | ||
| 99 | node->header.nr_entries = cpu_to_le32(nr_entries + 1); | ||
| 100 | |||
| 101 | return 0; | ||
| 102 | } | ||
| 103 | |||
| 104 | /*----------------------------------------------------------------*/ | ||
| 105 | |||
| 106 | /* | ||
| 107 | * We want 3n entries (for some n). This works more nicely for repeated | ||
| 108 | * insert remove loops than (2n + 1). | ||
| 109 | */ | ||
| 110 | static uint32_t calc_max_entries(size_t value_size, size_t block_size) | ||
| 111 | { | ||
| 112 | uint32_t total, n; | ||
| 113 | size_t elt_size = sizeof(uint64_t) + value_size; /* key + value */ | ||
| 114 | |||
| 115 | block_size -= sizeof(struct node_header); | ||
| 116 | total = block_size / elt_size; | ||
| 117 | n = total / 3; /* rounds down */ | ||
| 118 | |||
| 119 | return 3 * n; | ||
| 120 | } | ||
| 121 | |||
| 122 | int dm_btree_empty(struct dm_btree_info *info, dm_block_t *root) | ||
| 123 | { | ||
| 124 | int r; | ||
| 125 | struct dm_block *b; | ||
| 126 | struct node *n; | ||
| 127 | size_t block_size; | ||
| 128 | uint32_t max_entries; | ||
| 129 | |||
| 130 | r = new_block(info, &b); | ||
| 131 | if (r < 0) | ||
| 132 | return r; | ||
| 133 | |||
| 134 | block_size = dm_bm_block_size(dm_tm_get_bm(info->tm)); | ||
| 135 | max_entries = calc_max_entries(info->value_type.size, block_size); | ||
| 136 | |||
| 137 | n = dm_block_data(b); | ||
| 138 | memset(n, 0, block_size); | ||
| 139 | n->header.flags = cpu_to_le32(LEAF_NODE); | ||
| 140 | n->header.nr_entries = cpu_to_le32(0); | ||
| 141 | n->header.max_entries = cpu_to_le32(max_entries); | ||
| 142 | n->header.value_size = cpu_to_le32(info->value_type.size); | ||
| 143 | |||
| 144 | *root = dm_block_location(b); | ||
| 145 | return unlock_block(info, b); | ||
| 146 | } | ||
| 147 | EXPORT_SYMBOL_GPL(dm_btree_empty); | ||
| 148 | |||
| 149 | /*----------------------------------------------------------------*/ | ||
| 150 | |||
| 151 | /* | ||
| 152 | * Deletion uses a recursive algorithm, since we have limited stack space | ||
| 153 | * we explicitly manage our own stack on the heap. | ||
| 154 | */ | ||
| 155 | #define MAX_SPINE_DEPTH 64 | ||
| 156 | struct frame { | ||
| 157 | struct dm_block *b; | ||
| 158 | struct node *n; | ||
| 159 | unsigned level; | ||
| 160 | unsigned nr_children; | ||
| 161 | unsigned current_child; | ||
| 162 | }; | ||
| 163 | |||
| 164 | struct del_stack { | ||
| 165 | struct dm_transaction_manager *tm; | ||
| 166 | int top; | ||
| 167 | struct frame spine[MAX_SPINE_DEPTH]; | ||
| 168 | }; | ||
| 169 | |||
| 170 | static int top_frame(struct del_stack *s, struct frame **f) | ||
| 171 | { | ||
| 172 | if (s->top < 0) { | ||
| 173 | DMERR("btree deletion stack empty"); | ||
| 174 | return -EINVAL; | ||
| 175 | } | ||
| 176 | |||
| 177 | *f = s->spine + s->top; | ||
| 178 | |||
| 179 | return 0; | ||
| 180 | } | ||
| 181 | |||
| 182 | static int unprocessed_frames(struct del_stack *s) | ||
| 183 | { | ||
| 184 | return s->top >= 0; | ||
| 185 | } | ||
| 186 | |||
| 187 | static int push_frame(struct del_stack *s, dm_block_t b, unsigned level) | ||
| 188 | { | ||
| 189 | int r; | ||
| 190 | uint32_t ref_count; | ||
| 191 | |||
| 192 | if (s->top >= MAX_SPINE_DEPTH - 1) { | ||
| 193 | DMERR("btree deletion stack out of memory"); | ||
| 194 | return -ENOMEM; | ||
| 195 | } | ||
| 196 | |||
| 197 | r = dm_tm_ref(s->tm, b, &ref_count); | ||
| 198 | if (r) | ||
| 199 | return r; | ||
| 200 | |||
| 201 | if (ref_count > 1) | ||
| 202 | /* | ||
| 203 | * This is a shared node, so we can just decrement it's | ||
| 204 | * reference counter and leave the children. | ||
| 205 | */ | ||
| 206 | dm_tm_dec(s->tm, b); | ||
| 207 | |||
| 208 | else { | ||
| 209 | struct frame *f = s->spine + ++s->top; | ||
| 210 | |||
| 211 | r = dm_tm_read_lock(s->tm, b, &btree_node_validator, &f->b); | ||
| 212 | if (r) { | ||
| 213 | s->top--; | ||
| 214 | return r; | ||
| 215 | } | ||
| 216 | |||
| 217 | f->n = dm_block_data(f->b); | ||
| 218 | f->level = level; | ||
| 219 | f->nr_children = le32_to_cpu(f->n->header.nr_entries); | ||
| 220 | f->current_child = 0; | ||
| 221 | } | ||
| 222 | |||
| 223 | return 0; | ||
| 224 | } | ||
| 225 | |||
| 226 | static void pop_frame(struct del_stack *s) | ||
| 227 | { | ||
| 228 | struct frame *f = s->spine + s->top--; | ||
| 229 | |||
| 230 | dm_tm_dec(s->tm, dm_block_location(f->b)); | ||
| 231 | dm_tm_unlock(s->tm, f->b); | ||
| 232 | } | ||
| 233 | |||
| 234 | int dm_btree_del(struct dm_btree_info *info, dm_block_t root) | ||
| 235 | { | ||
| 236 | int r; | ||
| 237 | struct del_stack *s; | ||
| 238 | |||
| 239 | s = kmalloc(sizeof(*s), GFP_KERNEL); | ||
| 240 | if (!s) | ||
| 241 | return -ENOMEM; | ||
| 242 | s->tm = info->tm; | ||
| 243 | s->top = -1; | ||
| 244 | |||
| 245 | r = push_frame(s, root, 1); | ||
| 246 | if (r) | ||
| 247 | goto out; | ||
| 248 | |||
| 249 | while (unprocessed_frames(s)) { | ||
| 250 | uint32_t flags; | ||
| 251 | struct frame *f; | ||
| 252 | dm_block_t b; | ||
| 253 | |||
| 254 | r = top_frame(s, &f); | ||
| 255 | if (r) | ||
| 256 | goto out; | ||
| 257 | |||
| 258 | if (f->current_child >= f->nr_children) { | ||
| 259 | pop_frame(s); | ||
| 260 | continue; | ||
| 261 | } | ||
| 262 | |||
| 263 | flags = le32_to_cpu(f->n->header.flags); | ||
| 264 | if (flags & INTERNAL_NODE) { | ||
| 265 | b = value64(f->n, f->current_child); | ||
| 266 | f->current_child++; | ||
| 267 | r = push_frame(s, b, f->level); | ||
| 268 | if (r) | ||
| 269 | goto out; | ||
| 270 | |||
| 271 | } else if (f->level != (info->levels - 1)) { | ||
| 272 | b = value64(f->n, f->current_child); | ||
| 273 | f->current_child++; | ||
| 274 | r = push_frame(s, b, f->level + 1); | ||
| 275 | if (r) | ||
| 276 | goto out; | ||
| 277 | |||
| 278 | } else { | ||
| 279 | if (info->value_type.dec) { | ||
| 280 | unsigned i; | ||
| 281 | |||
| 282 | for (i = 0; i < f->nr_children; i++) | ||
| 283 | info->value_type.dec(info->value_type.context, | ||
| 284 | value_ptr(f->n, i, info->value_type.size)); | ||
| 285 | } | ||
| 286 | f->current_child = f->nr_children; | ||
| 287 | } | ||
| 288 | } | ||
| 289 | |||
| 290 | out: | ||
| 291 | kfree(s); | ||
| 292 | return r; | ||
| 293 | } | ||
| 294 | EXPORT_SYMBOL_GPL(dm_btree_del); | ||
| 295 | |||
| 296 | /*----------------------------------------------------------------*/ | ||
| 297 | |||
| 298 | static int btree_lookup_raw(struct ro_spine *s, dm_block_t block, uint64_t key, | ||
| 299 | int (*search_fn)(struct node *, uint64_t), | ||
| 300 | uint64_t *result_key, void *v, size_t value_size) | ||
| 301 | { | ||
| 302 | int i, r; | ||
| 303 | uint32_t flags, nr_entries; | ||
| 304 | |||
| 305 | do { | ||
| 306 | r = ro_step(s, block); | ||
| 307 | if (r < 0) | ||
| 308 | return r; | ||
| 309 | |||
| 310 | i = search_fn(ro_node(s), key); | ||
| 311 | |||
| 312 | flags = le32_to_cpu(ro_node(s)->header.flags); | ||
| 313 | nr_entries = le32_to_cpu(ro_node(s)->header.nr_entries); | ||
| 314 | if (i < 0 || i >= nr_entries) | ||
| 315 | return -ENODATA; | ||
| 316 | |||
| 317 | if (flags & INTERNAL_NODE) | ||
| 318 | block = value64(ro_node(s), i); | ||
| 319 | |||
| 320 | } while (!(flags & LEAF_NODE)); | ||
| 321 | |||
| 322 | *result_key = le64_to_cpu(ro_node(s)->keys[i]); | ||
| 323 | memcpy(v, value_ptr(ro_node(s), i, value_size), value_size); | ||
| 324 | |||
| 325 | return 0; | ||
| 326 | } | ||
| 327 | |||
| 328 | int dm_btree_lookup(struct dm_btree_info *info, dm_block_t root, | ||
| 329 | uint64_t *keys, void *value_le) | ||
| 330 | { | ||
| 331 | unsigned level, last_level = info->levels - 1; | ||
| 332 | int r = -ENODATA; | ||
| 333 | uint64_t rkey; | ||
| 334 | __le64 internal_value_le; | ||
| 335 | struct ro_spine spine; | ||
| 336 | |||
| 337 | init_ro_spine(&spine, info); | ||
| 338 | for (level = 0; level < info->levels; level++) { | ||
| 339 | size_t size; | ||
| 340 | void *value_p; | ||
| 341 | |||
| 342 | if (level == last_level) { | ||
| 343 | value_p = value_le; | ||
| 344 | size = info->value_type.size; | ||
| 345 | |||
| 346 | } else { | ||
| 347 | value_p = &internal_value_le; | ||
| 348 | size = sizeof(uint64_t); | ||
| 349 | } | ||
| 350 | |||
| 351 | r = btree_lookup_raw(&spine, root, keys[level], | ||
| 352 | lower_bound, &rkey, | ||
| 353 | value_p, size); | ||
| 354 | |||
| 355 | if (!r) { | ||
| 356 | if (rkey != keys[level]) { | ||
| 357 | exit_ro_spine(&spine); | ||
| 358 | return -ENODATA; | ||
| 359 | } | ||
| 360 | } else { | ||
| 361 | exit_ro_spine(&spine); | ||
| 362 | return r; | ||
| 363 | } | ||
| 364 | |||
| 365 | root = le64_to_cpu(internal_value_le); | ||
| 366 | } | ||
| 367 | exit_ro_spine(&spine); | ||
| 368 | |||
| 369 | return r; | ||
| 370 | } | ||
| 371 | EXPORT_SYMBOL_GPL(dm_btree_lookup); | ||
| 372 | |||
| 373 | /* | ||
| 374 | * Splits a node by creating a sibling node and shifting half the nodes | ||
| 375 | * contents across. Assumes there is a parent node, and it has room for | ||
| 376 | * another child. | ||
| 377 | * | ||
| 378 | * Before: | ||
| 379 | * +--------+ | ||
| 380 | * | Parent | | ||
| 381 | * +--------+ | ||
| 382 | * | | ||
| 383 | * v | ||
| 384 | * +----------+ | ||
| 385 | * | A ++++++ | | ||
| 386 | * +----------+ | ||
| 387 | * | ||
| 388 | * | ||
| 389 | * After: | ||
| 390 | * +--------+ | ||
| 391 | * | Parent | | ||
| 392 | * +--------+ | ||
| 393 | * | | | ||
| 394 | * v +------+ | ||
| 395 | * +---------+ | | ||
| 396 | * | A* +++ | v | ||
| 397 | * +---------+ +-------+ | ||
| 398 | * | B +++ | | ||
| 399 | * +-------+ | ||
| 400 | * | ||
| 401 | * Where A* is a shadow of A. | ||
| 402 | */ | ||
| 403 | static int btree_split_sibling(struct shadow_spine *s, dm_block_t root, | ||
| 404 | unsigned parent_index, uint64_t key) | ||
| 405 | { | ||
| 406 | int r; | ||
| 407 | size_t size; | ||
| 408 | unsigned nr_left, nr_right; | ||
| 409 | struct dm_block *left, *right, *parent; | ||
| 410 | struct node *ln, *rn, *pn; | ||
| 411 | __le64 location; | ||
| 412 | |||
| 413 | left = shadow_current(s); | ||
| 414 | |||
| 415 | r = new_block(s->info, &right); | ||
| 416 | if (r < 0) | ||
| 417 | return r; | ||
| 418 | |||
| 419 | ln = dm_block_data(left); | ||
| 420 | rn = dm_block_data(right); | ||
| 421 | |||
| 422 | nr_left = le32_to_cpu(ln->header.nr_entries) / 2; | ||
| 423 | nr_right = le32_to_cpu(ln->header.nr_entries) - nr_left; | ||
| 424 | |||
| 425 | ln->header.nr_entries = cpu_to_le32(nr_left); | ||
| 426 | |||
| 427 | rn->header.flags = ln->header.flags; | ||
| 428 | rn->header.nr_entries = cpu_to_le32(nr_right); | ||
| 429 | rn->header.max_entries = ln->header.max_entries; | ||
| 430 | rn->header.value_size = ln->header.value_size; | ||
| 431 | memcpy(rn->keys, ln->keys + nr_left, nr_right * sizeof(rn->keys[0])); | ||
| 432 | |||
| 433 | size = le32_to_cpu(ln->header.flags) & INTERNAL_NODE ? | ||
| 434 | sizeof(uint64_t) : s->info->value_type.size; | ||
| 435 | memcpy(value_ptr(rn, 0, size), value_ptr(ln, nr_left, size), | ||
| 436 | size * nr_right); | ||
| 437 | |||
| 438 | /* | ||
| 439 | * Patch up the parent | ||
| 440 | */ | ||
| 441 | parent = shadow_parent(s); | ||
| 442 | |||
| 443 | pn = dm_block_data(parent); | ||
| 444 | location = cpu_to_le64(dm_block_location(left)); | ||
| 445 | __dm_bless_for_disk(&location); | ||
| 446 | memcpy_disk(value_ptr(pn, parent_index, sizeof(__le64)), | ||
| 447 | &location, sizeof(__le64)); | ||
| 448 | |||
| 449 | location = cpu_to_le64(dm_block_location(right)); | ||
| 450 | __dm_bless_for_disk(&location); | ||
| 451 | |||
| 452 | r = insert_at(sizeof(__le64), pn, parent_index + 1, | ||
| 453 | le64_to_cpu(rn->keys[0]), &location); | ||
| 454 | if (r) | ||
| 455 | return r; | ||
| 456 | |||
| 457 | if (key < le64_to_cpu(rn->keys[0])) { | ||
| 458 | unlock_block(s->info, right); | ||
| 459 | s->nodes[1] = left; | ||
| 460 | } else { | ||
| 461 | unlock_block(s->info, left); | ||
| 462 | s->nodes[1] = right; | ||
| 463 | } | ||
| 464 | |||
| 465 | return 0; | ||
| 466 | } | ||
| 467 | |||
| 468 | /* | ||
| 469 | * Splits a node by creating two new children beneath the given node. | ||
| 470 | * | ||
| 471 | * Before: | ||
| 472 | * +----------+ | ||
| 473 | * | A ++++++ | | ||
| 474 | * +----------+ | ||
| 475 | * | ||
| 476 | * | ||
| 477 | * After: | ||
| 478 | * +------------+ | ||
| 479 | * | A (shadow) | | ||
| 480 | * +------------+ | ||
| 481 | * | | | ||
| 482 | * +------+ +----+ | ||
| 483 | * | | | ||
| 484 | * v v | ||
| 485 | * +-------+ +-------+ | ||
| 486 | * | B +++ | | C +++ | | ||
| 487 | * +-------+ +-------+ | ||
| 488 | */ | ||
| 489 | static int btree_split_beneath(struct shadow_spine *s, uint64_t key) | ||
| 490 | { | ||
| 491 | int r; | ||
| 492 | size_t size; | ||
| 493 | unsigned nr_left, nr_right; | ||
| 494 | struct dm_block *left, *right, *new_parent; | ||
| 495 | struct node *pn, *ln, *rn; | ||
| 496 | __le64 val; | ||
| 497 | |||
| 498 | new_parent = shadow_current(s); | ||
| 499 | |||
| 500 | r = new_block(s->info, &left); | ||
| 501 | if (r < 0) | ||
| 502 | return r; | ||
| 503 | |||
| 504 | r = new_block(s->info, &right); | ||
| 505 | if (r < 0) { | ||
| 506 | /* FIXME: put left */ | ||
| 507 | return r; | ||
| 508 | } | ||
| 509 | |||
| 510 | pn = dm_block_data(new_parent); | ||
| 511 | ln = dm_block_data(left); | ||
| 512 | rn = dm_block_data(right); | ||
| 513 | |||
| 514 | nr_left = le32_to_cpu(pn->header.nr_entries) / 2; | ||
| 515 | nr_right = le32_to_cpu(pn->header.nr_entries) - nr_left; | ||
| 516 | |||
| 517 | ln->header.flags = pn->header.flags; | ||
| 518 | ln->header.nr_entries = cpu_to_le32(nr_left); | ||
| 519 | ln->header.max_entries = pn->header.max_entries; | ||
| 520 | ln->header.value_size = pn->header.value_size; | ||
| 521 | |||
| 522 | rn->header.flags = pn->header.flags; | ||
| 523 | rn->header.nr_entries = cpu_to_le32(nr_right); | ||
| 524 | rn->header.max_entries = pn->header.max_entries; | ||
| 525 | rn->header.value_size = pn->header.value_size; | ||
| 526 | |||
| 527 | memcpy(ln->keys, pn->keys, nr_left * sizeof(pn->keys[0])); | ||
| 528 | memcpy(rn->keys, pn->keys + nr_left, nr_right * sizeof(pn->keys[0])); | ||
| 529 | |||
| 530 | size = le32_to_cpu(pn->header.flags) & INTERNAL_NODE ? | ||
| 531 | sizeof(__le64) : s->info->value_type.size; | ||
| 532 | memcpy(value_ptr(ln, 0, size), value_ptr(pn, 0, size), nr_left * size); | ||
| 533 | memcpy(value_ptr(rn, 0, size), value_ptr(pn, nr_left, size), | ||
| 534 | nr_right * size); | ||
| 535 | |||
| 536 | /* new_parent should just point to l and r now */ | ||
| 537 | pn->header.flags = cpu_to_le32(INTERNAL_NODE); | ||
| 538 | pn->header.nr_entries = cpu_to_le32(2); | ||
| 539 | pn->header.max_entries = cpu_to_le32( | ||
| 540 | calc_max_entries(sizeof(__le64), | ||
| 541 | dm_bm_block_size( | ||
| 542 | dm_tm_get_bm(s->info->tm)))); | ||
| 543 | pn->header.value_size = cpu_to_le32(sizeof(__le64)); | ||
| 544 | |||
| 545 | val = cpu_to_le64(dm_block_location(left)); | ||
| 546 | __dm_bless_for_disk(&val); | ||
| 547 | pn->keys[0] = ln->keys[0]; | ||
| 548 | memcpy_disk(value_ptr(pn, 0, sizeof(__le64)), &val, sizeof(__le64)); | ||
| 549 | |||
| 550 | val = cpu_to_le64(dm_block_location(right)); | ||
| 551 | __dm_bless_for_disk(&val); | ||
| 552 | pn->keys[1] = rn->keys[0]; | ||
| 553 | memcpy_disk(value_ptr(pn, 1, sizeof(__le64)), &val, sizeof(__le64)); | ||
| 554 | |||
| 555 | /* | ||
| 556 | * rejig the spine. This is ugly, since it knows too | ||
| 557 | * much about the spine | ||
| 558 | */ | ||
| 559 | if (s->nodes[0] != new_parent) { | ||
| 560 | unlock_block(s->info, s->nodes[0]); | ||
| 561 | s->nodes[0] = new_parent; | ||
| 562 | } | ||
| 563 | if (key < le64_to_cpu(rn->keys[0])) { | ||
| 564 | unlock_block(s->info, right); | ||
| 565 | s->nodes[1] = left; | ||
| 566 | } else { | ||
| 567 | unlock_block(s->info, left); | ||
| 568 | s->nodes[1] = right; | ||
| 569 | } | ||
| 570 | s->count = 2; | ||
| 571 | |||
| 572 | return 0; | ||
| 573 | } | ||
| 574 | |||
| 575 | static int btree_insert_raw(struct shadow_spine *s, dm_block_t root, | ||
| 576 | struct dm_btree_value_type *vt, | ||
| 577 | uint64_t key, unsigned *index) | ||
| 578 | { | ||
| 579 | int r, i = *index, top = 1; | ||
| 580 | struct node *node; | ||
| 581 | |||
| 582 | for (;;) { | ||
| 583 | r = shadow_step(s, root, vt); | ||
| 584 | if (r < 0) | ||
| 585 | return r; | ||
| 586 | |||
| 587 | node = dm_block_data(shadow_current(s)); | ||
| 588 | |||
| 589 | /* | ||
| 590 | * We have to patch up the parent node, ugly, but I don't | ||
| 591 | * see a way to do this automatically as part of the spine | ||
| 592 | * op. | ||
| 593 | */ | ||
| 594 | if (shadow_has_parent(s) && i >= 0) { /* FIXME: second clause unness. */ | ||
| 595 | __le64 location = cpu_to_le64(dm_block_location(shadow_current(s))); | ||
| 596 | |||
| 597 | __dm_bless_for_disk(&location); | ||
| 598 | memcpy_disk(value_ptr(dm_block_data(shadow_parent(s)), i, sizeof(uint64_t)), | ||
| 599 | &location, sizeof(__le64)); | ||
| 600 | } | ||
| 601 | |||
| 602 | node = dm_block_data(shadow_current(s)); | ||
| 603 | |||
| 604 | if (node->header.nr_entries == node->header.max_entries) { | ||
| 605 | if (top) | ||
| 606 | r = btree_split_beneath(s, key); | ||
| 607 | else | ||
| 608 | r = btree_split_sibling(s, root, i, key); | ||
| 609 | |||
| 610 | if (r < 0) | ||
| 611 | return r; | ||
| 612 | } | ||
| 613 | |||
| 614 | node = dm_block_data(shadow_current(s)); | ||
| 615 | |||
| 616 | i = lower_bound(node, key); | ||
| 617 | |||
| 618 | if (le32_to_cpu(node->header.flags) & LEAF_NODE) | ||
| 619 | break; | ||
| 620 | |||
| 621 | if (i < 0) { | ||
| 622 | /* change the bounds on the lowest key */ | ||
| 623 | node->keys[0] = cpu_to_le64(key); | ||
| 624 | i = 0; | ||
| 625 | } | ||
| 626 | |||
| 627 | root = value64(node, i); | ||
| 628 | top = 0; | ||
| 629 | } | ||
| 630 | |||
| 631 | if (i < 0 || le64_to_cpu(node->keys[i]) != key) | ||
| 632 | i++; | ||
| 633 | |||
| 634 | *index = i; | ||
| 635 | return 0; | ||
| 636 | } | ||
| 637 | |||
| 638 | static int insert(struct dm_btree_info *info, dm_block_t root, | ||
| 639 | uint64_t *keys, void *value, dm_block_t *new_root, | ||
| 640 | int *inserted) | ||
| 641 | __dm_written_to_disk(value) | ||
| 642 | { | ||
| 643 | int r, need_insert; | ||
| 644 | unsigned level, index = -1, last_level = info->levels - 1; | ||
| 645 | dm_block_t block = root; | ||
| 646 | struct shadow_spine spine; | ||
| 647 | struct node *n; | ||
| 648 | struct dm_btree_value_type le64_type; | ||
| 649 | |||
| 650 | le64_type.context = NULL; | ||
| 651 | le64_type.size = sizeof(__le64); | ||
| 652 | le64_type.inc = NULL; | ||
| 653 | le64_type.dec = NULL; | ||
| 654 | le64_type.equal = NULL; | ||
| 655 | |||
| 656 | init_shadow_spine(&spine, info); | ||
| 657 | |||
| 658 | for (level = 0; level < (info->levels - 1); level++) { | ||
| 659 | r = btree_insert_raw(&spine, block, &le64_type, keys[level], &index); | ||
| 660 | if (r < 0) | ||
| 661 | goto bad; | ||
| 662 | |||
| 663 | n = dm_block_data(shadow_current(&spine)); | ||
| 664 | need_insert = ((index >= le32_to_cpu(n->header.nr_entries)) || | ||
| 665 | (le64_to_cpu(n->keys[index]) != keys[level])); | ||
| 666 | |||
| 667 | if (need_insert) { | ||
| 668 | dm_block_t new_tree; | ||
| 669 | __le64 new_le; | ||
| 670 | |||
| 671 | r = dm_btree_empty(info, &new_tree); | ||
| 672 | if (r < 0) | ||
| 673 | goto bad; | ||
| 674 | |||
| 675 | new_le = cpu_to_le64(new_tree); | ||
| 676 | __dm_bless_for_disk(&new_le); | ||
| 677 | |||
| 678 | r = insert_at(sizeof(uint64_t), n, index, | ||
| 679 | keys[level], &new_le); | ||
| 680 | if (r) | ||
| 681 | goto bad; | ||
| 682 | } | ||
| 683 | |||
| 684 | if (level < last_level) | ||
| 685 | block = value64(n, index); | ||
| 686 | } | ||
| 687 | |||
| 688 | r = btree_insert_raw(&spine, block, &info->value_type, | ||
| 689 | keys[level], &index); | ||
| 690 | if (r < 0) | ||
| 691 | goto bad; | ||
| 692 | |||
| 693 | n = dm_block_data(shadow_current(&spine)); | ||
| 694 | need_insert = ((index >= le32_to_cpu(n->header.nr_entries)) || | ||
| 695 | (le64_to_cpu(n->keys[index]) != keys[level])); | ||
| 696 | |||
| 697 | if (need_insert) { | ||
| 698 | if (inserted) | ||
| 699 | *inserted = 1; | ||
| 700 | |||
| 701 | r = insert_at(info->value_type.size, n, index, | ||
| 702 | keys[level], value); | ||
| 703 | if (r) | ||
| 704 | goto bad_unblessed; | ||
| 705 | } else { | ||
| 706 | if (inserted) | ||
| 707 | *inserted = 0; | ||
| 708 | |||
| 709 | if (info->value_type.dec && | ||
| 710 | (!info->value_type.equal || | ||
| 711 | !info->value_type.equal( | ||
| 712 | info->value_type.context, | ||
| 713 | value_ptr(n, index, info->value_type.size), | ||
| 714 | value))) { | ||
| 715 | info->value_type.dec(info->value_type.context, | ||
| 716 | value_ptr(n, index, info->value_type.size)); | ||
| 717 | } | ||
| 718 | memcpy_disk(value_ptr(n, index, info->value_type.size), | ||
| 719 | value, info->value_type.size); | ||
| 720 | } | ||
| 721 | |||
| 722 | *new_root = shadow_root(&spine); | ||
| 723 | exit_shadow_spine(&spine); | ||
| 724 | |||
| 725 | return 0; | ||
| 726 | |||
| 727 | bad: | ||
| 728 | __dm_unbless_for_disk(value); | ||
| 729 | bad_unblessed: | ||
| 730 | exit_shadow_spine(&spine); | ||
| 731 | return r; | ||
| 732 | } | ||
| 733 | |||
| 734 | int dm_btree_insert(struct dm_btree_info *info, dm_block_t root, | ||
| 735 | uint64_t *keys, void *value, dm_block_t *new_root) | ||
| 736 | __dm_written_to_disk(value) | ||
| 737 | { | ||
| 738 | return insert(info, root, keys, value, new_root, NULL); | ||
| 739 | } | ||
| 740 | EXPORT_SYMBOL_GPL(dm_btree_insert); | ||
| 741 | |||
| 742 | int dm_btree_insert_notify(struct dm_btree_info *info, dm_block_t root, | ||
| 743 | uint64_t *keys, void *value, dm_block_t *new_root, | ||
| 744 | int *inserted) | ||
| 745 | __dm_written_to_disk(value) | ||
| 746 | { | ||
| 747 | return insert(info, root, keys, value, new_root, inserted); | ||
| 748 | } | ||
| 749 | EXPORT_SYMBOL_GPL(dm_btree_insert_notify); | ||
| 750 | |||
| 751 | /*----------------------------------------------------------------*/ | ||
| 752 | |||
| 753 | static int find_highest_key(struct ro_spine *s, dm_block_t block, | ||
| 754 | uint64_t *result_key, dm_block_t *next_block) | ||
| 755 | { | ||
| 756 | int i, r; | ||
| 757 | uint32_t flags; | ||
| 758 | |||
| 759 | do { | ||
| 760 | r = ro_step(s, block); | ||
| 761 | if (r < 0) | ||
| 762 | return r; | ||
| 763 | |||
| 764 | flags = le32_to_cpu(ro_node(s)->header.flags); | ||
| 765 | i = le32_to_cpu(ro_node(s)->header.nr_entries); | ||
| 766 | if (!i) | ||
| 767 | return -ENODATA; | ||
| 768 | else | ||
| 769 | i--; | ||
| 770 | |||
| 771 | *result_key = le64_to_cpu(ro_node(s)->keys[i]); | ||
| 772 | if (next_block || flags & INTERNAL_NODE) | ||
| 773 | block = value64(ro_node(s), i); | ||
| 774 | |||
| 775 | } while (flags & INTERNAL_NODE); | ||
| 776 | |||
| 777 | if (next_block) | ||
| 778 | *next_block = block; | ||
| 779 | return 0; | ||
| 780 | } | ||
| 781 | |||
| 782 | int dm_btree_find_highest_key(struct dm_btree_info *info, dm_block_t root, | ||
| 783 | uint64_t *result_keys) | ||
| 784 | { | ||
| 785 | int r = 0, count = 0, level; | ||
| 786 | struct ro_spine spine; | ||
| 787 | |||
| 788 | init_ro_spine(&spine, info); | ||
| 789 | for (level = 0; level < info->levels; level++) { | ||
| 790 | r = find_highest_key(&spine, root, result_keys + level, | ||
| 791 | level == info->levels - 1 ? NULL : &root); | ||
| 792 | if (r == -ENODATA) { | ||
| 793 | r = 0; | ||
| 794 | break; | ||
| 795 | |||
| 796 | } else if (r) | ||
| 797 | break; | ||
| 798 | |||
| 799 | count++; | ||
| 800 | } | ||
| 801 | exit_ro_spine(&spine); | ||
| 802 | |||
| 803 | return r ? r : count; | ||
| 804 | } | ||
| 805 | EXPORT_SYMBOL_GPL(dm_btree_find_highest_key); | ||
diff --git a/drivers/md/persistent-data/dm-btree.h b/drivers/md/persistent-data/dm-btree.h new file mode 100644 index 000000000000..ae02c84410ff --- /dev/null +++ b/drivers/md/persistent-data/dm-btree.h | |||
| @@ -0,0 +1,145 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | #ifndef _LINUX_DM_BTREE_H | ||
| 7 | #define _LINUX_DM_BTREE_H | ||
| 8 | |||
| 9 | #include "dm-block-manager.h" | ||
| 10 | |||
| 11 | struct dm_transaction_manager; | ||
| 12 | |||
| 13 | /*----------------------------------------------------------------*/ | ||
| 14 | |||
| 15 | /* | ||
| 16 | * Annotations used to check on-disk metadata is handled as little-endian. | ||
| 17 | */ | ||
| 18 | #ifdef __CHECKER__ | ||
| 19 | # define __dm_written_to_disk(x) __releases(x) | ||
| 20 | # define __dm_reads_from_disk(x) __acquires(x) | ||
| 21 | # define __dm_bless_for_disk(x) __acquire(x) | ||
| 22 | # define __dm_unbless_for_disk(x) __release(x) | ||
| 23 | #else | ||
| 24 | # define __dm_written_to_disk(x) | ||
| 25 | # define __dm_reads_from_disk(x) | ||
| 26 | # define __dm_bless_for_disk(x) | ||
| 27 | # define __dm_unbless_for_disk(x) | ||
| 28 | #endif | ||
| 29 | |||
| 30 | /*----------------------------------------------------------------*/ | ||
| 31 | |||
| 32 | /* | ||
| 33 | * Manipulates hierarchical B+ trees with 64-bit keys and arbitrary-sized | ||
| 34 | * values. | ||
| 35 | */ | ||
| 36 | |||
| 37 | /* | ||
| 38 | * Infomation about the values stored within the btree. | ||
| 39 | */ | ||
| 40 | struct dm_btree_value_type { | ||
| 41 | void *context; | ||
| 42 | |||
| 43 | /* | ||
| 44 | * The size in bytes of each value. | ||
| 45 | */ | ||
| 46 | uint32_t size; | ||
| 47 | |||
| 48 | /* | ||
| 49 | * Any of these methods can be safely set to NULL if you do not | ||
| 50 | * need the corresponding feature. | ||
| 51 | */ | ||
| 52 | |||
| 53 | /* | ||
| 54 | * The btree is making a duplicate of the value, for instance | ||
| 55 | * because previously-shared btree nodes have now diverged. | ||
| 56 | * @value argument is the new copy that the copy function may modify. | ||
| 57 | * (Probably it just wants to increment a reference count | ||
| 58 | * somewhere.) This method is _not_ called for insertion of a new | ||
| 59 | * value: It is assumed the ref count is already 1. | ||
| 60 | */ | ||
| 61 | void (*inc)(void *context, void *value); | ||
| 62 | |||
| 63 | /* | ||
| 64 | * This value is being deleted. The btree takes care of freeing | ||
| 65 | * the memory pointed to by @value. Often the del function just | ||
| 66 | * needs to decrement a reference count somewhere. | ||
| 67 | */ | ||
| 68 | void (*dec)(void *context, void *value); | ||
| 69 | |||
| 70 | /* | ||
| 71 | * A test for equality between two values. When a value is | ||
| 72 | * overwritten with a new one, the old one has the dec method | ||
| 73 | * called _unless_ the new and old value are deemed equal. | ||
| 74 | */ | ||
| 75 | int (*equal)(void *context, void *value1, void *value2); | ||
| 76 | }; | ||
| 77 | |||
| 78 | /* | ||
| 79 | * The shape and contents of a btree. | ||
| 80 | */ | ||
| 81 | struct dm_btree_info { | ||
| 82 | struct dm_transaction_manager *tm; | ||
| 83 | |||
| 84 | /* | ||
| 85 | * Number of nested btrees. (Not the depth of a single tree.) | ||
| 86 | */ | ||
| 87 | unsigned levels; | ||
| 88 | struct dm_btree_value_type value_type; | ||
| 89 | }; | ||
| 90 | |||
| 91 | /* | ||
| 92 | * Set up an empty tree. O(1). | ||
| 93 | */ | ||
| 94 | int dm_btree_empty(struct dm_btree_info *info, dm_block_t *root); | ||
| 95 | |||
| 96 | /* | ||
| 97 | * Delete a tree. O(n) - this is the slow one! It can also block, so | ||
| 98 | * please don't call it on an IO path. | ||
| 99 | */ | ||
| 100 | int dm_btree_del(struct dm_btree_info *info, dm_block_t root); | ||
| 101 | |||
| 102 | /* | ||
| 103 | * All the lookup functions return -ENODATA if the key cannot be found. | ||
| 104 | */ | ||
| 105 | |||
| 106 | /* | ||
| 107 | * Tries to find a key that matches exactly. O(ln(n)) | ||
| 108 | */ | ||
| 109 | int dm_btree_lookup(struct dm_btree_info *info, dm_block_t root, | ||
| 110 | uint64_t *keys, void *value_le); | ||
| 111 | |||
| 112 | /* | ||
| 113 | * Insertion (or overwrite an existing value). O(ln(n)) | ||
| 114 | */ | ||
| 115 | int dm_btree_insert(struct dm_btree_info *info, dm_block_t root, | ||
| 116 | uint64_t *keys, void *value, dm_block_t *new_root) | ||
| 117 | __dm_written_to_disk(value); | ||
| 118 | |||
| 119 | /* | ||
| 120 | * A variant of insert that indicates whether it actually inserted or just | ||
| 121 | * overwrote. Useful if you're keeping track of the number of entries in a | ||
| 122 | * tree. | ||
| 123 | */ | ||
| 124 | int dm_btree_insert_notify(struct dm_btree_info *info, dm_block_t root, | ||
| 125 | uint64_t *keys, void *value, dm_block_t *new_root, | ||
| 126 | int *inserted) | ||
| 127 | __dm_written_to_disk(value); | ||
| 128 | |||
| 129 | /* | ||
| 130 | * Remove a key if present. This doesn't remove empty sub trees. Normally | ||
| 131 | * subtrees represent a separate entity, like a snapshot map, so this is | ||
| 132 | * correct behaviour. O(ln(n)). | ||
| 133 | */ | ||
| 134 | int dm_btree_remove(struct dm_btree_info *info, dm_block_t root, | ||
| 135 | uint64_t *keys, dm_block_t *new_root); | ||
| 136 | |||
| 137 | /* | ||
| 138 | * Returns < 0 on failure. Otherwise the number of key entries that have | ||
| 139 | * been filled out. Remember trees can have zero entries, and as such have | ||
| 140 | * no highest key. | ||
| 141 | */ | ||
| 142 | int dm_btree_find_highest_key(struct dm_btree_info *info, dm_block_t root, | ||
| 143 | uint64_t *result_keys); | ||
| 144 | |||
| 145 | #endif /* _LINUX_DM_BTREE_H */ | ||
diff --git a/drivers/md/persistent-data/dm-persistent-data-internal.h b/drivers/md/persistent-data/dm-persistent-data-internal.h new file mode 100644 index 000000000000..c49e26fff36c --- /dev/null +++ b/drivers/md/persistent-data/dm-persistent-data-internal.h | |||
| @@ -0,0 +1,19 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef _DM_PERSISTENT_DATA_INTERNAL_H | ||
| 8 | #define _DM_PERSISTENT_DATA_INTERNAL_H | ||
| 9 | |||
| 10 | #include "dm-block-manager.h" | ||
| 11 | |||
| 12 | static inline unsigned dm_hash_block(dm_block_t b, unsigned hash_mask) | ||
| 13 | { | ||
| 14 | const unsigned BIG_PRIME = 4294967291UL; | ||
| 15 | |||
| 16 | return (((unsigned) b) * BIG_PRIME) & hash_mask; | ||
| 17 | } | ||
| 18 | |||
| 19 | #endif /* _PERSISTENT_DATA_INTERNAL_H */ | ||
diff --git a/drivers/md/persistent-data/dm-space-map-checker.c b/drivers/md/persistent-data/dm-space-map-checker.c new file mode 100644 index 000000000000..bb44a937fe63 --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-checker.c | |||
| @@ -0,0 +1,437 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-space-map-checker.h" | ||
| 8 | |||
| 9 | #include <linux/device-mapper.h> | ||
| 10 | |||
| 11 | #ifdef CONFIG_DM_DEBUG_SPACE_MAPS | ||
| 12 | |||
| 13 | #define DM_MSG_PREFIX "space map checker" | ||
| 14 | |||
| 15 | /*----------------------------------------------------------------*/ | ||
| 16 | |||
| 17 | struct count_array { | ||
| 18 | dm_block_t nr; | ||
| 19 | dm_block_t nr_free; | ||
| 20 | |||
| 21 | uint32_t *counts; | ||
| 22 | }; | ||
| 23 | |||
| 24 | static int ca_get_count(struct count_array *ca, dm_block_t b, uint32_t *count) | ||
| 25 | { | ||
| 26 | if (b >= ca->nr) | ||
| 27 | return -EINVAL; | ||
| 28 | |||
| 29 | *count = ca->counts[b]; | ||
| 30 | return 0; | ||
| 31 | } | ||
| 32 | |||
| 33 | static int ca_count_more_than_one(struct count_array *ca, dm_block_t b, int *r) | ||
| 34 | { | ||
| 35 | if (b >= ca->nr) | ||
| 36 | return -EINVAL; | ||
| 37 | |||
| 38 | *r = ca->counts[b] > 1; | ||
| 39 | return 0; | ||
| 40 | } | ||
| 41 | |||
| 42 | static int ca_set_count(struct count_array *ca, dm_block_t b, uint32_t count) | ||
| 43 | { | ||
| 44 | uint32_t old_count; | ||
| 45 | |||
| 46 | if (b >= ca->nr) | ||
| 47 | return -EINVAL; | ||
| 48 | |||
| 49 | old_count = ca->counts[b]; | ||
| 50 | |||
| 51 | if (!count && old_count) | ||
| 52 | ca->nr_free++; | ||
| 53 | |||
| 54 | else if (count && !old_count) | ||
| 55 | ca->nr_free--; | ||
| 56 | |||
| 57 | ca->counts[b] = count; | ||
| 58 | return 0; | ||
| 59 | } | ||
| 60 | |||
| 61 | static int ca_inc_block(struct count_array *ca, dm_block_t b) | ||
| 62 | { | ||
| 63 | if (b >= ca->nr) | ||
| 64 | return -EINVAL; | ||
| 65 | |||
| 66 | ca_set_count(ca, b, ca->counts[b] + 1); | ||
| 67 | return 0; | ||
| 68 | } | ||
| 69 | |||
| 70 | static int ca_dec_block(struct count_array *ca, dm_block_t b) | ||
| 71 | { | ||
| 72 | if (b >= ca->nr) | ||
| 73 | return -EINVAL; | ||
| 74 | |||
| 75 | BUG_ON(ca->counts[b] == 0); | ||
| 76 | ca_set_count(ca, b, ca->counts[b] - 1); | ||
| 77 | return 0; | ||
| 78 | } | ||
| 79 | |||
| 80 | static int ca_create(struct count_array *ca, struct dm_space_map *sm) | ||
| 81 | { | ||
| 82 | int r; | ||
| 83 | dm_block_t nr_blocks; | ||
| 84 | |||
| 85 | r = dm_sm_get_nr_blocks(sm, &nr_blocks); | ||
| 86 | if (r) | ||
| 87 | return r; | ||
| 88 | |||
| 89 | ca->nr = nr_blocks; | ||
| 90 | ca->nr_free = nr_blocks; | ||
| 91 | ca->counts = kzalloc(sizeof(*ca->counts) * nr_blocks, GFP_KERNEL); | ||
| 92 | if (!ca->counts) | ||
| 93 | return -ENOMEM; | ||
| 94 | |||
| 95 | return 0; | ||
| 96 | } | ||
| 97 | |||
| 98 | static int ca_load(struct count_array *ca, struct dm_space_map *sm) | ||
| 99 | { | ||
| 100 | int r; | ||
| 101 | uint32_t count; | ||
| 102 | dm_block_t nr_blocks, i; | ||
| 103 | |||
| 104 | r = dm_sm_get_nr_blocks(sm, &nr_blocks); | ||
| 105 | if (r) | ||
| 106 | return r; | ||
| 107 | |||
| 108 | BUG_ON(ca->nr != nr_blocks); | ||
| 109 | |||
| 110 | DMWARN("Loading debug space map from disk. This may take some time"); | ||
| 111 | for (i = 0; i < nr_blocks; i++) { | ||
| 112 | r = dm_sm_get_count(sm, i, &count); | ||
| 113 | if (r) { | ||
| 114 | DMERR("load failed"); | ||
| 115 | return r; | ||
| 116 | } | ||
| 117 | |||
| 118 | ca_set_count(ca, i, count); | ||
| 119 | } | ||
| 120 | DMWARN("Load complete"); | ||
| 121 | |||
| 122 | return 0; | ||
| 123 | } | ||
| 124 | |||
| 125 | static int ca_extend(struct count_array *ca, dm_block_t extra_blocks) | ||
| 126 | { | ||
| 127 | dm_block_t nr_blocks = ca->nr + extra_blocks; | ||
| 128 | uint32_t *counts = kzalloc(sizeof(*counts) * nr_blocks, GFP_KERNEL); | ||
| 129 | if (!counts) | ||
| 130 | return -ENOMEM; | ||
| 131 | |||
| 132 | memcpy(counts, ca->counts, sizeof(*counts) * ca->nr); | ||
| 133 | kfree(ca->counts); | ||
| 134 | ca->nr = nr_blocks; | ||
| 135 | ca->nr_free += extra_blocks; | ||
| 136 | ca->counts = counts; | ||
| 137 | return 0; | ||
| 138 | } | ||
| 139 | |||
| 140 | static int ca_commit(struct count_array *old, struct count_array *new) | ||
| 141 | { | ||
| 142 | if (old->nr != new->nr) { | ||
| 143 | BUG_ON(old->nr > new->nr); | ||
| 144 | ca_extend(old, new->nr - old->nr); | ||
| 145 | } | ||
| 146 | |||
| 147 | BUG_ON(old->nr != new->nr); | ||
| 148 | old->nr_free = new->nr_free; | ||
| 149 | memcpy(old->counts, new->counts, sizeof(*old->counts) * old->nr); | ||
| 150 | return 0; | ||
| 151 | } | ||
| 152 | |||
| 153 | static void ca_destroy(struct count_array *ca) | ||
| 154 | { | ||
| 155 | kfree(ca->counts); | ||
| 156 | } | ||
| 157 | |||
| 158 | /*----------------------------------------------------------------*/ | ||
| 159 | |||
| 160 | struct sm_checker { | ||
| 161 | struct dm_space_map sm; | ||
| 162 | |||
| 163 | struct count_array old_counts; | ||
| 164 | struct count_array counts; | ||
| 165 | |||
| 166 | struct dm_space_map *real_sm; | ||
| 167 | }; | ||
| 168 | |||
| 169 | static void sm_checker_destroy(struct dm_space_map *sm) | ||
| 170 | { | ||
| 171 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 172 | |||
| 173 | dm_sm_destroy(smc->real_sm); | ||
| 174 | ca_destroy(&smc->old_counts); | ||
| 175 | ca_destroy(&smc->counts); | ||
| 176 | kfree(smc); | ||
| 177 | } | ||
| 178 | |||
| 179 | static int sm_checker_get_nr_blocks(struct dm_space_map *sm, dm_block_t *count) | ||
| 180 | { | ||
| 181 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 182 | int r = dm_sm_get_nr_blocks(smc->real_sm, count); | ||
| 183 | if (!r) | ||
| 184 | BUG_ON(smc->old_counts.nr != *count); | ||
| 185 | return r; | ||
| 186 | } | ||
| 187 | |||
| 188 | static int sm_checker_get_nr_free(struct dm_space_map *sm, dm_block_t *count) | ||
| 189 | { | ||
| 190 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 191 | int r = dm_sm_get_nr_free(smc->real_sm, count); | ||
| 192 | if (!r) { | ||
| 193 | /* | ||
| 194 | * Slow, but we know it's correct. | ||
| 195 | */ | ||
| 196 | dm_block_t b, n = 0; | ||
| 197 | for (b = 0; b < smc->old_counts.nr; b++) | ||
| 198 | if (smc->old_counts.counts[b] == 0 && | ||
| 199 | smc->counts.counts[b] == 0) | ||
| 200 | n++; | ||
| 201 | |||
| 202 | if (n != *count) | ||
| 203 | DMERR("free block counts differ, checker %u, sm-disk:%u", | ||
| 204 | (unsigned) n, (unsigned) *count); | ||
| 205 | } | ||
| 206 | return r; | ||
| 207 | } | ||
| 208 | |||
| 209 | static int sm_checker_new_block(struct dm_space_map *sm, dm_block_t *b) | ||
| 210 | { | ||
| 211 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 212 | int r = dm_sm_new_block(smc->real_sm, b); | ||
| 213 | |||
| 214 | if (!r) { | ||
| 215 | BUG_ON(*b >= smc->old_counts.nr); | ||
| 216 | BUG_ON(smc->old_counts.counts[*b] != 0); | ||
| 217 | BUG_ON(*b >= smc->counts.nr); | ||
| 218 | BUG_ON(smc->counts.counts[*b] != 0); | ||
| 219 | ca_set_count(&smc->counts, *b, 1); | ||
| 220 | } | ||
| 221 | |||
| 222 | return r; | ||
| 223 | } | ||
| 224 | |||
| 225 | static int sm_checker_inc_block(struct dm_space_map *sm, dm_block_t b) | ||
| 226 | { | ||
| 227 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 228 | int r = dm_sm_inc_block(smc->real_sm, b); | ||
| 229 | int r2 = ca_inc_block(&smc->counts, b); | ||
| 230 | BUG_ON(r != r2); | ||
| 231 | return r; | ||
| 232 | } | ||
| 233 | |||
| 234 | static int sm_checker_dec_block(struct dm_space_map *sm, dm_block_t b) | ||
| 235 | { | ||
| 236 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 237 | int r = dm_sm_dec_block(smc->real_sm, b); | ||
| 238 | int r2 = ca_dec_block(&smc->counts, b); | ||
| 239 | BUG_ON(r != r2); | ||
| 240 | return r; | ||
| 241 | } | ||
| 242 | |||
| 243 | static int sm_checker_get_count(struct dm_space_map *sm, dm_block_t b, uint32_t *result) | ||
| 244 | { | ||
| 245 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 246 | uint32_t result2 = 0; | ||
| 247 | int r = dm_sm_get_count(smc->real_sm, b, result); | ||
| 248 | int r2 = ca_get_count(&smc->counts, b, &result2); | ||
| 249 | |||
| 250 | BUG_ON(r != r2); | ||
| 251 | if (!r) | ||
| 252 | BUG_ON(*result != result2); | ||
| 253 | return r; | ||
| 254 | } | ||
| 255 | |||
| 256 | static int sm_checker_count_more_than_one(struct dm_space_map *sm, dm_block_t b, int *result) | ||
| 257 | { | ||
| 258 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 259 | int result2 = 0; | ||
| 260 | int r = dm_sm_count_is_more_than_one(smc->real_sm, b, result); | ||
| 261 | int r2 = ca_count_more_than_one(&smc->counts, b, &result2); | ||
| 262 | |||
| 263 | BUG_ON(r != r2); | ||
| 264 | if (!r) | ||
| 265 | BUG_ON(!(*result) && result2); | ||
| 266 | return r; | ||
| 267 | } | ||
| 268 | |||
| 269 | static int sm_checker_set_count(struct dm_space_map *sm, dm_block_t b, uint32_t count) | ||
| 270 | { | ||
| 271 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 272 | uint32_t old_rc; | ||
| 273 | int r = dm_sm_set_count(smc->real_sm, b, count); | ||
| 274 | int r2; | ||
| 275 | |||
| 276 | BUG_ON(b >= smc->counts.nr); | ||
| 277 | old_rc = smc->counts.counts[b]; | ||
| 278 | r2 = ca_set_count(&smc->counts, b, count); | ||
| 279 | BUG_ON(r != r2); | ||
| 280 | |||
| 281 | return r; | ||
| 282 | } | ||
| 283 | |||
| 284 | static int sm_checker_commit(struct dm_space_map *sm) | ||
| 285 | { | ||
| 286 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 287 | int r; | ||
| 288 | |||
| 289 | r = dm_sm_commit(smc->real_sm); | ||
| 290 | if (r) | ||
| 291 | return r; | ||
| 292 | |||
| 293 | r = ca_commit(&smc->old_counts, &smc->counts); | ||
| 294 | if (r) | ||
| 295 | return r; | ||
| 296 | |||
| 297 | return 0; | ||
| 298 | } | ||
| 299 | |||
| 300 | static int sm_checker_extend(struct dm_space_map *sm, dm_block_t extra_blocks) | ||
| 301 | { | ||
| 302 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 303 | int r = dm_sm_extend(smc->real_sm, extra_blocks); | ||
| 304 | if (r) | ||
| 305 | return r; | ||
| 306 | |||
| 307 | return ca_extend(&smc->counts, extra_blocks); | ||
| 308 | } | ||
| 309 | |||
| 310 | static int sm_checker_root_size(struct dm_space_map *sm, size_t *result) | ||
| 311 | { | ||
| 312 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 313 | return dm_sm_root_size(smc->real_sm, result); | ||
| 314 | } | ||
| 315 | |||
| 316 | static int sm_checker_copy_root(struct dm_space_map *sm, void *copy_to_here_le, size_t len) | ||
| 317 | { | ||
| 318 | struct sm_checker *smc = container_of(sm, struct sm_checker, sm); | ||
| 319 | return dm_sm_copy_root(smc->real_sm, copy_to_here_le, len); | ||
| 320 | } | ||
| 321 | |||
| 322 | /*----------------------------------------------------------------*/ | ||
| 323 | |||
| 324 | static struct dm_space_map ops_ = { | ||
| 325 | .destroy = sm_checker_destroy, | ||
| 326 | .get_nr_blocks = sm_checker_get_nr_blocks, | ||
| 327 | .get_nr_free = sm_checker_get_nr_free, | ||
| 328 | .inc_block = sm_checker_inc_block, | ||
| 329 | .dec_block = sm_checker_dec_block, | ||
| 330 | .new_block = sm_checker_new_block, | ||
| 331 | .get_count = sm_checker_get_count, | ||
| 332 | .count_is_more_than_one = sm_checker_count_more_than_one, | ||
| 333 | .set_count = sm_checker_set_count, | ||
| 334 | .commit = sm_checker_commit, | ||
| 335 | .extend = sm_checker_extend, | ||
| 336 | .root_size = sm_checker_root_size, | ||
| 337 | .copy_root = sm_checker_copy_root | ||
| 338 | }; | ||
| 339 | |||
| 340 | struct dm_space_map *dm_sm_checker_create(struct dm_space_map *sm) | ||
| 341 | { | ||
| 342 | int r; | ||
| 343 | struct sm_checker *smc; | ||
| 344 | |||
| 345 | if (!sm) | ||
| 346 | return NULL; | ||
| 347 | |||
| 348 | smc = kmalloc(sizeof(*smc), GFP_KERNEL); | ||
| 349 | if (!smc) | ||
| 350 | return NULL; | ||
| 351 | |||
| 352 | memcpy(&smc->sm, &ops_, sizeof(smc->sm)); | ||
| 353 | r = ca_create(&smc->old_counts, sm); | ||
| 354 | if (r) { | ||
| 355 | kfree(smc); | ||
| 356 | return NULL; | ||
| 357 | } | ||
| 358 | |||
| 359 | r = ca_create(&smc->counts, sm); | ||
| 360 | if (r) { | ||
| 361 | ca_destroy(&smc->old_counts); | ||
| 362 | kfree(smc); | ||
| 363 | return NULL; | ||
| 364 | } | ||
| 365 | |||
| 366 | smc->real_sm = sm; | ||
| 367 | |||
| 368 | r = ca_load(&smc->counts, sm); | ||
| 369 | if (r) { | ||
| 370 | ca_destroy(&smc->counts); | ||
| 371 | ca_destroy(&smc->old_counts); | ||
| 372 | kfree(smc); | ||
| 373 | return NULL; | ||
| 374 | } | ||
| 375 | |||
| 376 | r = ca_commit(&smc->old_counts, &smc->counts); | ||
| 377 | if (r) { | ||
| 378 | ca_destroy(&smc->counts); | ||
| 379 | ca_destroy(&smc->old_counts); | ||
| 380 | kfree(smc); | ||
| 381 | return NULL; | ||
| 382 | } | ||
| 383 | |||
| 384 | return &smc->sm; | ||
| 385 | } | ||
| 386 | EXPORT_SYMBOL_GPL(dm_sm_checker_create); | ||
| 387 | |||
| 388 | struct dm_space_map *dm_sm_checker_create_fresh(struct dm_space_map *sm) | ||
| 389 | { | ||
| 390 | int r; | ||
| 391 | struct sm_checker *smc; | ||
| 392 | |||
| 393 | if (!sm) | ||
| 394 | return NULL; | ||
| 395 | |||
| 396 | smc = kmalloc(sizeof(*smc), GFP_KERNEL); | ||
| 397 | if (!smc) | ||
| 398 | return NULL; | ||
| 399 | |||
| 400 | memcpy(&smc->sm, &ops_, sizeof(smc->sm)); | ||
| 401 | r = ca_create(&smc->old_counts, sm); | ||
| 402 | if (r) { | ||
| 403 | kfree(smc); | ||
| 404 | return NULL; | ||
| 405 | } | ||
| 406 | |||
| 407 | r = ca_create(&smc->counts, sm); | ||
| 408 | if (r) { | ||
| 409 | ca_destroy(&smc->old_counts); | ||
| 410 | kfree(smc); | ||
| 411 | return NULL; | ||
| 412 | } | ||
| 413 | |||
| 414 | smc->real_sm = sm; | ||
| 415 | return &smc->sm; | ||
| 416 | } | ||
| 417 | EXPORT_SYMBOL_GPL(dm_sm_checker_create_fresh); | ||
| 418 | |||
| 419 | /*----------------------------------------------------------------*/ | ||
| 420 | |||
| 421 | #else | ||
| 422 | |||
| 423 | struct dm_space_map *dm_sm_checker_create(struct dm_space_map *sm) | ||
| 424 | { | ||
| 425 | return sm; | ||
| 426 | } | ||
| 427 | EXPORT_SYMBOL_GPL(dm_sm_checker_create); | ||
| 428 | |||
| 429 | struct dm_space_map *dm_sm_checker_create_fresh(struct dm_space_map *sm) | ||
| 430 | { | ||
| 431 | return sm; | ||
| 432 | } | ||
| 433 | EXPORT_SYMBOL_GPL(dm_sm_checker_create_fresh); | ||
| 434 | |||
| 435 | /*----------------------------------------------------------------*/ | ||
| 436 | |||
| 437 | #endif | ||
diff --git a/drivers/md/persistent-data/dm-space-map-checker.h b/drivers/md/persistent-data/dm-space-map-checker.h new file mode 100644 index 000000000000..444dccf6688c --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-checker.h | |||
| @@ -0,0 +1,26 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef SNAPSHOTS_SPACE_MAP_CHECKER_H | ||
| 8 | #define SNAPSHOTS_SPACE_MAP_CHECKER_H | ||
| 9 | |||
| 10 | #include "dm-space-map.h" | ||
| 11 | |||
| 12 | /*----------------------------------------------------------------*/ | ||
| 13 | |||
| 14 | /* | ||
| 15 | * This space map wraps a real on-disk space map, and verifies all of its | ||
| 16 | * operations. It uses a lot of memory, so only use if you have a specific | ||
| 17 | * problem that you're debugging. | ||
| 18 | * | ||
| 19 | * Ownership of @sm passes. | ||
| 20 | */ | ||
| 21 | struct dm_space_map *dm_sm_checker_create(struct dm_space_map *sm); | ||
| 22 | struct dm_space_map *dm_sm_checker_create_fresh(struct dm_space_map *sm); | ||
| 23 | |||
| 24 | /*----------------------------------------------------------------*/ | ||
| 25 | |||
| 26 | #endif | ||
diff --git a/drivers/md/persistent-data/dm-space-map-common.c b/drivers/md/persistent-data/dm-space-map-common.c new file mode 100644 index 000000000000..df2494c06cdc --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-common.c | |||
| @@ -0,0 +1,705 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-space-map-common.h" | ||
| 8 | #include "dm-transaction-manager.h" | ||
| 9 | |||
| 10 | #include <linux/bitops.h> | ||
| 11 | #include <linux/device-mapper.h> | ||
| 12 | |||
| 13 | #define DM_MSG_PREFIX "space map common" | ||
| 14 | |||
| 15 | /*----------------------------------------------------------------*/ | ||
| 16 | |||
| 17 | /* | ||
| 18 | * Index validator. | ||
| 19 | */ | ||
| 20 | #define INDEX_CSUM_XOR 160478 | ||
| 21 | |||
| 22 | static void index_prepare_for_write(struct dm_block_validator *v, | ||
| 23 | struct dm_block *b, | ||
| 24 | size_t block_size) | ||
| 25 | { | ||
| 26 | struct disk_metadata_index *mi_le = dm_block_data(b); | ||
| 27 | |||
| 28 | mi_le->blocknr = cpu_to_le64(dm_block_location(b)); | ||
| 29 | mi_le->csum = cpu_to_le32(dm_bm_checksum(&mi_le->padding, | ||
| 30 | block_size - sizeof(__le32), | ||
| 31 | INDEX_CSUM_XOR)); | ||
| 32 | } | ||
| 33 | |||
| 34 | static int index_check(struct dm_block_validator *v, | ||
| 35 | struct dm_block *b, | ||
| 36 | size_t block_size) | ||
| 37 | { | ||
| 38 | struct disk_metadata_index *mi_le = dm_block_data(b); | ||
| 39 | __le32 csum_disk; | ||
| 40 | |||
| 41 | if (dm_block_location(b) != le64_to_cpu(mi_le->blocknr)) { | ||
| 42 | DMERR("index_check failed blocknr %llu wanted %llu", | ||
| 43 | le64_to_cpu(mi_le->blocknr), dm_block_location(b)); | ||
| 44 | return -ENOTBLK; | ||
| 45 | } | ||
| 46 | |||
| 47 | csum_disk = cpu_to_le32(dm_bm_checksum(&mi_le->padding, | ||
| 48 | block_size - sizeof(__le32), | ||
| 49 | INDEX_CSUM_XOR)); | ||
| 50 | if (csum_disk != mi_le->csum) { | ||
| 51 | DMERR("index_check failed csum %u wanted %u", | ||
| 52 | le32_to_cpu(csum_disk), le32_to_cpu(mi_le->csum)); | ||
| 53 | return -EILSEQ; | ||
| 54 | } | ||
| 55 | |||
| 56 | return 0; | ||
| 57 | } | ||
| 58 | |||
| 59 | static struct dm_block_validator index_validator = { | ||
| 60 | .name = "index", | ||
| 61 | .prepare_for_write = index_prepare_for_write, | ||
| 62 | .check = index_check | ||
| 63 | }; | ||
| 64 | |||
| 65 | /*----------------------------------------------------------------*/ | ||
| 66 | |||
| 67 | /* | ||
| 68 | * Bitmap validator | ||
| 69 | */ | ||
| 70 | #define BITMAP_CSUM_XOR 240779 | ||
| 71 | |||
| 72 | static void bitmap_prepare_for_write(struct dm_block_validator *v, | ||
| 73 | struct dm_block *b, | ||
| 74 | size_t block_size) | ||
| 75 | { | ||
| 76 | struct disk_bitmap_header *disk_header = dm_block_data(b); | ||
| 77 | |||
| 78 | disk_header->blocknr = cpu_to_le64(dm_block_location(b)); | ||
| 79 | disk_header->csum = cpu_to_le32(dm_bm_checksum(&disk_header->not_used, | ||
| 80 | block_size - sizeof(__le32), | ||
| 81 | BITMAP_CSUM_XOR)); | ||
| 82 | } | ||
| 83 | |||
| 84 | static int bitmap_check(struct dm_block_validator *v, | ||
| 85 | struct dm_block *b, | ||
| 86 | size_t block_size) | ||
| 87 | { | ||
| 88 | struct disk_bitmap_header *disk_header = dm_block_data(b); | ||
| 89 | __le32 csum_disk; | ||
| 90 | |||
| 91 | if (dm_block_location(b) != le64_to_cpu(disk_header->blocknr)) { | ||
| 92 | DMERR("bitmap check failed blocknr %llu wanted %llu", | ||
| 93 | le64_to_cpu(disk_header->blocknr), dm_block_location(b)); | ||
| 94 | return -ENOTBLK; | ||
| 95 | } | ||
| 96 | |||
| 97 | csum_disk = cpu_to_le32(dm_bm_checksum(&disk_header->not_used, | ||
| 98 | block_size - sizeof(__le32), | ||
| 99 | BITMAP_CSUM_XOR)); | ||
| 100 | if (csum_disk != disk_header->csum) { | ||
| 101 | DMERR("bitmap check failed csum %u wanted %u", | ||
| 102 | le32_to_cpu(csum_disk), le32_to_cpu(disk_header->csum)); | ||
| 103 | return -EILSEQ; | ||
| 104 | } | ||
| 105 | |||
| 106 | return 0; | ||
| 107 | } | ||
| 108 | |||
| 109 | static struct dm_block_validator dm_sm_bitmap_validator = { | ||
| 110 | .name = "sm_bitmap", | ||
| 111 | .prepare_for_write = bitmap_prepare_for_write, | ||
| 112 | .check = bitmap_check | ||
| 113 | }; | ||
| 114 | |||
| 115 | /*----------------------------------------------------------------*/ | ||
| 116 | |||
| 117 | #define ENTRIES_PER_WORD 32 | ||
| 118 | #define ENTRIES_SHIFT 5 | ||
| 119 | |||
| 120 | static void *dm_bitmap_data(struct dm_block *b) | ||
| 121 | { | ||
| 122 | return dm_block_data(b) + sizeof(struct disk_bitmap_header); | ||
| 123 | } | ||
| 124 | |||
| 125 | #define WORD_MASK_HIGH 0xAAAAAAAAAAAAAAAAULL | ||
| 126 | |||
| 127 | static unsigned bitmap_word_used(void *addr, unsigned b) | ||
| 128 | { | ||
| 129 | __le64 *words_le = addr; | ||
| 130 | __le64 *w_le = words_le + (b >> ENTRIES_SHIFT); | ||
| 131 | |||
| 132 | uint64_t bits = le64_to_cpu(*w_le); | ||
| 133 | uint64_t mask = (bits + WORD_MASK_HIGH + 1) & WORD_MASK_HIGH; | ||
| 134 | |||
| 135 | return !(~bits & mask); | ||
| 136 | } | ||
| 137 | |||
| 138 | static unsigned sm_lookup_bitmap(void *addr, unsigned b) | ||
| 139 | { | ||
| 140 | __le64 *words_le = addr; | ||
| 141 | __le64 *w_le = words_le + (b >> ENTRIES_SHIFT); | ||
| 142 | unsigned hi, lo; | ||
| 143 | |||
| 144 | b = (b & (ENTRIES_PER_WORD - 1)) << 1; | ||
| 145 | hi = !!test_bit_le(b, (void *) w_le); | ||
| 146 | lo = !!test_bit_le(b + 1, (void *) w_le); | ||
| 147 | return (hi << 1) | lo; | ||
| 148 | } | ||
| 149 | |||
| 150 | static void sm_set_bitmap(void *addr, unsigned b, unsigned val) | ||
| 151 | { | ||
| 152 | __le64 *words_le = addr; | ||
| 153 | __le64 *w_le = words_le + (b >> ENTRIES_SHIFT); | ||
| 154 | |||
| 155 | b = (b & (ENTRIES_PER_WORD - 1)) << 1; | ||
| 156 | |||
| 157 | if (val & 2) | ||
| 158 | __set_bit_le(b, (void *) w_le); | ||
| 159 | else | ||
| 160 | __clear_bit_le(b, (void *) w_le); | ||
| 161 | |||
| 162 | if (val & 1) | ||
| 163 | __set_bit_le(b + 1, (void *) w_le); | ||
| 164 | else | ||
| 165 | __clear_bit_le(b + 1, (void *) w_le); | ||
| 166 | } | ||
| 167 | |||
| 168 | static int sm_find_free(void *addr, unsigned begin, unsigned end, | ||
| 169 | unsigned *result) | ||
| 170 | { | ||
| 171 | while (begin < end) { | ||
| 172 | if (!(begin & (ENTRIES_PER_WORD - 1)) && | ||
| 173 | bitmap_word_used(addr, begin)) { | ||
| 174 | begin += ENTRIES_PER_WORD; | ||
| 175 | continue; | ||
| 176 | } | ||
| 177 | |||
| 178 | if (!sm_lookup_bitmap(addr, begin)) { | ||
| 179 | *result = begin; | ||
| 180 | return 0; | ||
| 181 | } | ||
| 182 | |||
| 183 | begin++; | ||
| 184 | } | ||
| 185 | |||
| 186 | return -ENOSPC; | ||
| 187 | } | ||
| 188 | |||
| 189 | /*----------------------------------------------------------------*/ | ||
| 190 | |||
| 191 | static int sm_ll_init(struct ll_disk *ll, struct dm_transaction_manager *tm) | ||
| 192 | { | ||
| 193 | ll->tm = tm; | ||
| 194 | |||
| 195 | ll->bitmap_info.tm = tm; | ||
| 196 | ll->bitmap_info.levels = 1; | ||
| 197 | |||
| 198 | /* | ||
| 199 | * Because the new bitmap blocks are created via a shadow | ||
| 200 | * operation, the old entry has already had its reference count | ||
| 201 | * decremented and we don't need the btree to do any bookkeeping. | ||
| 202 | */ | ||
| 203 | ll->bitmap_info.value_type.size = sizeof(struct disk_index_entry); | ||
| 204 | ll->bitmap_info.value_type.inc = NULL; | ||
| 205 | ll->bitmap_info.value_type.dec = NULL; | ||
| 206 | ll->bitmap_info.value_type.equal = NULL; | ||
| 207 | |||
| 208 | ll->ref_count_info.tm = tm; | ||
| 209 | ll->ref_count_info.levels = 1; | ||
| 210 | ll->ref_count_info.value_type.size = sizeof(uint32_t); | ||
| 211 | ll->ref_count_info.value_type.inc = NULL; | ||
| 212 | ll->ref_count_info.value_type.dec = NULL; | ||
| 213 | ll->ref_count_info.value_type.equal = NULL; | ||
| 214 | |||
| 215 | ll->block_size = dm_bm_block_size(dm_tm_get_bm(tm)); | ||
| 216 | |||
| 217 | if (ll->block_size > (1 << 30)) { | ||
| 218 | DMERR("block size too big to hold bitmaps"); | ||
| 219 | return -EINVAL; | ||
| 220 | } | ||
| 221 | |||
| 222 | ll->entries_per_block = (ll->block_size - sizeof(struct disk_bitmap_header)) * | ||
| 223 | ENTRIES_PER_BYTE; | ||
| 224 | ll->nr_blocks = 0; | ||
| 225 | ll->bitmap_root = 0; | ||
| 226 | ll->ref_count_root = 0; | ||
| 227 | |||
| 228 | return 0; | ||
| 229 | } | ||
| 230 | |||
| 231 | int sm_ll_extend(struct ll_disk *ll, dm_block_t extra_blocks) | ||
| 232 | { | ||
| 233 | int r; | ||
| 234 | dm_block_t i, nr_blocks, nr_indexes; | ||
| 235 | unsigned old_blocks, blocks; | ||
| 236 | |||
| 237 | nr_blocks = ll->nr_blocks + extra_blocks; | ||
| 238 | old_blocks = dm_sector_div_up(ll->nr_blocks, ll->entries_per_block); | ||
| 239 | blocks = dm_sector_div_up(nr_blocks, ll->entries_per_block); | ||
| 240 | |||
| 241 | nr_indexes = dm_sector_div_up(nr_blocks, ll->entries_per_block); | ||
| 242 | if (nr_indexes > ll->max_entries(ll)) { | ||
| 243 | DMERR("space map too large"); | ||
| 244 | return -EINVAL; | ||
| 245 | } | ||
| 246 | |||
| 247 | for (i = old_blocks; i < blocks; i++) { | ||
| 248 | struct dm_block *b; | ||
| 249 | struct disk_index_entry idx; | ||
| 250 | |||
| 251 | r = dm_tm_new_block(ll->tm, &dm_sm_bitmap_validator, &b); | ||
| 252 | if (r < 0) | ||
| 253 | return r; | ||
| 254 | idx.blocknr = cpu_to_le64(dm_block_location(b)); | ||
| 255 | |||
| 256 | r = dm_tm_unlock(ll->tm, b); | ||
| 257 | if (r < 0) | ||
| 258 | return r; | ||
| 259 | |||
| 260 | idx.nr_free = cpu_to_le32(ll->entries_per_block); | ||
| 261 | idx.none_free_before = 0; | ||
| 262 | |||
| 263 | r = ll->save_ie(ll, i, &idx); | ||
| 264 | if (r < 0) | ||
| 265 | return r; | ||
| 266 | } | ||
| 267 | |||
| 268 | ll->nr_blocks = nr_blocks; | ||
| 269 | return 0; | ||
| 270 | } | ||
| 271 | |||
| 272 | int sm_ll_lookup_bitmap(struct ll_disk *ll, dm_block_t b, uint32_t *result) | ||
| 273 | { | ||
| 274 | int r; | ||
| 275 | dm_block_t index = b; | ||
| 276 | struct disk_index_entry ie_disk; | ||
| 277 | struct dm_block *blk; | ||
| 278 | |||
| 279 | b = do_div(index, ll->entries_per_block); | ||
| 280 | r = ll->load_ie(ll, index, &ie_disk); | ||
| 281 | if (r < 0) | ||
| 282 | return r; | ||
| 283 | |||
| 284 | r = dm_tm_read_lock(ll->tm, le64_to_cpu(ie_disk.blocknr), | ||
| 285 | &dm_sm_bitmap_validator, &blk); | ||
| 286 | if (r < 0) | ||
| 287 | return r; | ||
| 288 | |||
| 289 | *result = sm_lookup_bitmap(dm_bitmap_data(blk), b); | ||
| 290 | |||
| 291 | return dm_tm_unlock(ll->tm, blk); | ||
| 292 | } | ||
| 293 | |||
| 294 | int sm_ll_lookup(struct ll_disk *ll, dm_block_t b, uint32_t *result) | ||
| 295 | { | ||
| 296 | __le32 le_rc; | ||
| 297 | int r = sm_ll_lookup_bitmap(ll, b, result); | ||
| 298 | |||
| 299 | if (r) | ||
| 300 | return r; | ||
| 301 | |||
| 302 | if (*result != 3) | ||
| 303 | return r; | ||
| 304 | |||
| 305 | r = dm_btree_lookup(&ll->ref_count_info, ll->ref_count_root, &b, &le_rc); | ||
| 306 | if (r < 0) | ||
| 307 | return r; | ||
| 308 | |||
| 309 | *result = le32_to_cpu(le_rc); | ||
| 310 | |||
| 311 | return r; | ||
| 312 | } | ||
| 313 | |||
| 314 | int sm_ll_find_free_block(struct ll_disk *ll, dm_block_t begin, | ||
| 315 | dm_block_t end, dm_block_t *result) | ||
| 316 | { | ||
| 317 | int r; | ||
| 318 | struct disk_index_entry ie_disk; | ||
| 319 | dm_block_t i, index_begin = begin; | ||
| 320 | dm_block_t index_end = dm_sector_div_up(end, ll->entries_per_block); | ||
| 321 | |||
| 322 | /* | ||
| 323 | * FIXME: Use shifts | ||
| 324 | */ | ||
| 325 | begin = do_div(index_begin, ll->entries_per_block); | ||
| 326 | end = do_div(end, ll->entries_per_block); | ||
| 327 | |||
| 328 | for (i = index_begin; i < index_end; i++, begin = 0) { | ||
| 329 | struct dm_block *blk; | ||
| 330 | unsigned position; | ||
| 331 | uint32_t bit_end; | ||
| 332 | |||
| 333 | r = ll->load_ie(ll, i, &ie_disk); | ||
| 334 | if (r < 0) | ||
| 335 | return r; | ||
| 336 | |||
| 337 | if (le32_to_cpu(ie_disk.nr_free) == 0) | ||
| 338 | continue; | ||
| 339 | |||
| 340 | r = dm_tm_read_lock(ll->tm, le64_to_cpu(ie_disk.blocknr), | ||
| 341 | &dm_sm_bitmap_validator, &blk); | ||
| 342 | if (r < 0) | ||
| 343 | return r; | ||
| 344 | |||
| 345 | bit_end = (i == index_end - 1) ? end : ll->entries_per_block; | ||
| 346 | |||
| 347 | r = sm_find_free(dm_bitmap_data(blk), | ||
| 348 | max_t(unsigned, begin, le32_to_cpu(ie_disk.none_free_before)), | ||
| 349 | bit_end, &position); | ||
| 350 | if (r == -ENOSPC) { | ||
| 351 | /* | ||
| 352 | * This might happen because we started searching | ||
| 353 | * part way through the bitmap. | ||
| 354 | */ | ||
| 355 | dm_tm_unlock(ll->tm, blk); | ||
| 356 | continue; | ||
| 357 | |||
| 358 | } else if (r < 0) { | ||
| 359 | dm_tm_unlock(ll->tm, blk); | ||
| 360 | return r; | ||
| 361 | } | ||
| 362 | |||
| 363 | r = dm_tm_unlock(ll->tm, blk); | ||
| 364 | if (r < 0) | ||
| 365 | return r; | ||
| 366 | |||
| 367 | *result = i * ll->entries_per_block + (dm_block_t) position; | ||
| 368 | return 0; | ||
| 369 | } | ||
| 370 | |||
| 371 | return -ENOSPC; | ||
| 372 | } | ||
| 373 | |||
| 374 | int sm_ll_insert(struct ll_disk *ll, dm_block_t b, | ||
| 375 | uint32_t ref_count, enum allocation_event *ev) | ||
| 376 | { | ||
| 377 | int r; | ||
| 378 | uint32_t bit, old; | ||
| 379 | struct dm_block *nb; | ||
| 380 | dm_block_t index = b; | ||
| 381 | struct disk_index_entry ie_disk; | ||
| 382 | void *bm_le; | ||
| 383 | int inc; | ||
| 384 | |||
| 385 | bit = do_div(index, ll->entries_per_block); | ||
| 386 | r = ll->load_ie(ll, index, &ie_disk); | ||
| 387 | if (r < 0) | ||
| 388 | return r; | ||
| 389 | |||
| 390 | r = dm_tm_shadow_block(ll->tm, le64_to_cpu(ie_disk.blocknr), | ||
| 391 | &dm_sm_bitmap_validator, &nb, &inc); | ||
| 392 | if (r < 0) { | ||
| 393 | DMERR("dm_tm_shadow_block() failed"); | ||
| 394 | return r; | ||
| 395 | } | ||
| 396 | ie_disk.blocknr = cpu_to_le64(dm_block_location(nb)); | ||
| 397 | |||
| 398 | bm_le = dm_bitmap_data(nb); | ||
| 399 | old = sm_lookup_bitmap(bm_le, bit); | ||
| 400 | |||
| 401 | if (ref_count <= 2) { | ||
| 402 | sm_set_bitmap(bm_le, bit, ref_count); | ||
| 403 | |||
| 404 | r = dm_tm_unlock(ll->tm, nb); | ||
| 405 | if (r < 0) | ||
| 406 | return r; | ||
| 407 | |||
| 408 | #if 0 | ||
| 409 | /* FIXME: dm_btree_remove doesn't handle this yet */ | ||
| 410 | if (old > 2) { | ||
| 411 | r = dm_btree_remove(&ll->ref_count_info, | ||
| 412 | ll->ref_count_root, | ||
| 413 | &b, &ll->ref_count_root); | ||
| 414 | if (r) | ||
| 415 | return r; | ||
| 416 | } | ||
| 417 | #endif | ||
| 418 | |||
| 419 | } else { | ||
| 420 | __le32 le_rc = cpu_to_le32(ref_count); | ||
| 421 | |||
| 422 | sm_set_bitmap(bm_le, bit, 3); | ||
| 423 | r = dm_tm_unlock(ll->tm, nb); | ||
| 424 | if (r < 0) | ||
| 425 | return r; | ||
| 426 | |||
| 427 | __dm_bless_for_disk(&le_rc); | ||
| 428 | r = dm_btree_insert(&ll->ref_count_info, ll->ref_count_root, | ||
| 429 | &b, &le_rc, &ll->ref_count_root); | ||
| 430 | if (r < 0) { | ||
| 431 | DMERR("ref count insert failed"); | ||
| 432 | return r; | ||
| 433 | } | ||
| 434 | } | ||
| 435 | |||
| 436 | if (ref_count && !old) { | ||
| 437 | *ev = SM_ALLOC; | ||
| 438 | ll->nr_allocated++; | ||
| 439 | ie_disk.nr_free = cpu_to_le32(le32_to_cpu(ie_disk.nr_free) - 1); | ||
| 440 | if (le32_to_cpu(ie_disk.none_free_before) == bit) | ||
| 441 | ie_disk.none_free_before = cpu_to_le32(bit + 1); | ||
| 442 | |||
| 443 | } else if (old && !ref_count) { | ||
| 444 | *ev = SM_FREE; | ||
| 445 | ll->nr_allocated--; | ||
| 446 | ie_disk.nr_free = cpu_to_le32(le32_to_cpu(ie_disk.nr_free) + 1); | ||
| 447 | ie_disk.none_free_before = cpu_to_le32(min(le32_to_cpu(ie_disk.none_free_before), bit)); | ||
| 448 | } | ||
| 449 | |||
| 450 | return ll->save_ie(ll, index, &ie_disk); | ||
| 451 | } | ||
| 452 | |||
| 453 | int sm_ll_inc(struct ll_disk *ll, dm_block_t b, enum allocation_event *ev) | ||
| 454 | { | ||
| 455 | int r; | ||
| 456 | uint32_t rc; | ||
| 457 | |||
| 458 | r = sm_ll_lookup(ll, b, &rc); | ||
| 459 | if (r) | ||
| 460 | return r; | ||
| 461 | |||
| 462 | return sm_ll_insert(ll, b, rc + 1, ev); | ||
| 463 | } | ||
| 464 | |||
| 465 | int sm_ll_dec(struct ll_disk *ll, dm_block_t b, enum allocation_event *ev) | ||
| 466 | { | ||
| 467 | int r; | ||
| 468 | uint32_t rc; | ||
| 469 | |||
| 470 | r = sm_ll_lookup(ll, b, &rc); | ||
| 471 | if (r) | ||
| 472 | return r; | ||
| 473 | |||
| 474 | if (!rc) | ||
| 475 | return -EINVAL; | ||
| 476 | |||
| 477 | return sm_ll_insert(ll, b, rc - 1, ev); | ||
| 478 | } | ||
| 479 | |||
| 480 | int sm_ll_commit(struct ll_disk *ll) | ||
| 481 | { | ||
| 482 | return ll->commit(ll); | ||
| 483 | } | ||
| 484 | |||
| 485 | /*----------------------------------------------------------------*/ | ||
| 486 | |||
| 487 | static int metadata_ll_load_ie(struct ll_disk *ll, dm_block_t index, | ||
| 488 | struct disk_index_entry *ie) | ||
| 489 | { | ||
| 490 | memcpy(ie, ll->mi_le.index + index, sizeof(*ie)); | ||
| 491 | return 0; | ||
| 492 | } | ||
| 493 | |||
| 494 | static int metadata_ll_save_ie(struct ll_disk *ll, dm_block_t index, | ||
| 495 | struct disk_index_entry *ie) | ||
| 496 | { | ||
| 497 | memcpy(ll->mi_le.index + index, ie, sizeof(*ie)); | ||
| 498 | return 0; | ||
| 499 | } | ||
| 500 | |||
| 501 | static int metadata_ll_init_index(struct ll_disk *ll) | ||
| 502 | { | ||
| 503 | int r; | ||
| 504 | struct dm_block *b; | ||
| 505 | |||
| 506 | r = dm_tm_new_block(ll->tm, &index_validator, &b); | ||
| 507 | if (r < 0) | ||
| 508 | return r; | ||
| 509 | |||
| 510 | memcpy(dm_block_data(b), &ll->mi_le, sizeof(ll->mi_le)); | ||
| 511 | ll->bitmap_root = dm_block_location(b); | ||
| 512 | |||
| 513 | return dm_tm_unlock(ll->tm, b); | ||
| 514 | } | ||
| 515 | |||
| 516 | static int metadata_ll_open(struct ll_disk *ll) | ||
| 517 | { | ||
| 518 | int r; | ||
| 519 | struct dm_block *block; | ||
| 520 | |||
| 521 | r = dm_tm_read_lock(ll->tm, ll->bitmap_root, | ||
| 522 | &index_validator, &block); | ||
| 523 | if (r) | ||
| 524 | return r; | ||
| 525 | |||
| 526 | memcpy(&ll->mi_le, dm_block_data(block), sizeof(ll->mi_le)); | ||
| 527 | return dm_tm_unlock(ll->tm, block); | ||
| 528 | } | ||
| 529 | |||
| 530 | static dm_block_t metadata_ll_max_entries(struct ll_disk *ll) | ||
| 531 | { | ||
| 532 | return MAX_METADATA_BITMAPS; | ||
| 533 | } | ||
| 534 | |||
| 535 | static int metadata_ll_commit(struct ll_disk *ll) | ||
| 536 | { | ||
| 537 | int r, inc; | ||
| 538 | struct dm_block *b; | ||
| 539 | |||
| 540 | r = dm_tm_shadow_block(ll->tm, ll->bitmap_root, &index_validator, &b, &inc); | ||
| 541 | if (r) | ||
| 542 | return r; | ||
| 543 | |||
| 544 | memcpy(dm_block_data(b), &ll->mi_le, sizeof(ll->mi_le)); | ||
| 545 | ll->bitmap_root = dm_block_location(b); | ||
| 546 | |||
| 547 | return dm_tm_unlock(ll->tm, b); | ||
| 548 | } | ||
| 549 | |||
| 550 | int sm_ll_new_metadata(struct ll_disk *ll, struct dm_transaction_manager *tm) | ||
| 551 | { | ||
| 552 | int r; | ||
| 553 | |||
| 554 | r = sm_ll_init(ll, tm); | ||
| 555 | if (r < 0) | ||
| 556 | return r; | ||
| 557 | |||
| 558 | ll->load_ie = metadata_ll_load_ie; | ||
| 559 | ll->save_ie = metadata_ll_save_ie; | ||
| 560 | ll->init_index = metadata_ll_init_index; | ||
| 561 | ll->open_index = metadata_ll_open; | ||
| 562 | ll->max_entries = metadata_ll_max_entries; | ||
| 563 | ll->commit = metadata_ll_commit; | ||
| 564 | |||
| 565 | ll->nr_blocks = 0; | ||
| 566 | ll->nr_allocated = 0; | ||
| 567 | |||
| 568 | r = ll->init_index(ll); | ||
| 569 | if (r < 0) | ||
| 570 | return r; | ||
| 571 | |||
| 572 | r = dm_btree_empty(&ll->ref_count_info, &ll->ref_count_root); | ||
| 573 | if (r < 0) | ||
| 574 | return r; | ||
| 575 | |||
| 576 | return 0; | ||
| 577 | } | ||
| 578 | |||
| 579 | int sm_ll_open_metadata(struct ll_disk *ll, struct dm_transaction_manager *tm, | ||
| 580 | void *root_le, size_t len) | ||
| 581 | { | ||
| 582 | int r; | ||
| 583 | struct disk_sm_root *smr = root_le; | ||
| 584 | |||
| 585 | if (len < sizeof(struct disk_sm_root)) { | ||
| 586 | DMERR("sm_metadata root too small"); | ||
| 587 | return -ENOMEM; | ||
| 588 | } | ||
| 589 | |||
| 590 | r = sm_ll_init(ll, tm); | ||
| 591 | if (r < 0) | ||
| 592 | return r; | ||
| 593 | |||
| 594 | ll->load_ie = metadata_ll_load_ie; | ||
| 595 | ll->save_ie = metadata_ll_save_ie; | ||
| 596 | ll->init_index = metadata_ll_init_index; | ||
| 597 | ll->open_index = metadata_ll_open; | ||
| 598 | ll->max_entries = metadata_ll_max_entries; | ||
| 599 | ll->commit = metadata_ll_commit; | ||
| 600 | |||
| 601 | ll->nr_blocks = le64_to_cpu(smr->nr_blocks); | ||
| 602 | ll->nr_allocated = le64_to_cpu(smr->nr_allocated); | ||
| 603 | ll->bitmap_root = le64_to_cpu(smr->bitmap_root); | ||
| 604 | ll->ref_count_root = le64_to_cpu(smr->ref_count_root); | ||
| 605 | |||
| 606 | return ll->open_index(ll); | ||
| 607 | } | ||
| 608 | |||
| 609 | /*----------------------------------------------------------------*/ | ||
| 610 | |||
| 611 | static int disk_ll_load_ie(struct ll_disk *ll, dm_block_t index, | ||
| 612 | struct disk_index_entry *ie) | ||
| 613 | { | ||
| 614 | return dm_btree_lookup(&ll->bitmap_info, ll->bitmap_root, &index, ie); | ||
| 615 | } | ||
| 616 | |||
| 617 | static int disk_ll_save_ie(struct ll_disk *ll, dm_block_t index, | ||
| 618 | struct disk_index_entry *ie) | ||
| 619 | { | ||
| 620 | __dm_bless_for_disk(ie); | ||
| 621 | return dm_btree_insert(&ll->bitmap_info, ll->bitmap_root, | ||
| 622 | &index, ie, &ll->bitmap_root); | ||
| 623 | } | ||
| 624 | |||
| 625 | static int disk_ll_init_index(struct ll_disk *ll) | ||
| 626 | { | ||
| 627 | return dm_btree_empty(&ll->bitmap_info, &ll->bitmap_root); | ||
| 628 | } | ||
| 629 | |||
| 630 | static int disk_ll_open(struct ll_disk *ll) | ||
| 631 | { | ||
| 632 | /* nothing to do */ | ||
| 633 | return 0; | ||
| 634 | } | ||
| 635 | |||
| 636 | static dm_block_t disk_ll_max_entries(struct ll_disk *ll) | ||
| 637 | { | ||
| 638 | return -1ULL; | ||
| 639 | } | ||
| 640 | |||
| 641 | static int disk_ll_commit(struct ll_disk *ll) | ||
| 642 | { | ||
| 643 | return 0; | ||
| 644 | } | ||
| 645 | |||
| 646 | int sm_ll_new_disk(struct ll_disk *ll, struct dm_transaction_manager *tm) | ||
| 647 | { | ||
| 648 | int r; | ||
| 649 | |||
| 650 | r = sm_ll_init(ll, tm); | ||
| 651 | if (r < 0) | ||
| 652 | return r; | ||
| 653 | |||
| 654 | ll->load_ie = disk_ll_load_ie; | ||
| 655 | ll->save_ie = disk_ll_save_ie; | ||
| 656 | ll->init_index = disk_ll_init_index; | ||
| 657 | ll->open_index = disk_ll_open; | ||
| 658 | ll->max_entries = disk_ll_max_entries; | ||
| 659 | ll->commit = disk_ll_commit; | ||
| 660 | |||
| 661 | ll->nr_blocks = 0; | ||
| 662 | ll->nr_allocated = 0; | ||
| 663 | |||
| 664 | r = ll->init_index(ll); | ||
| 665 | if (r < 0) | ||
| 666 | return r; | ||
| 667 | |||
| 668 | r = dm_btree_empty(&ll->ref_count_info, &ll->ref_count_root); | ||
| 669 | if (r < 0) | ||
| 670 | return r; | ||
| 671 | |||
| 672 | return 0; | ||
| 673 | } | ||
| 674 | |||
| 675 | int sm_ll_open_disk(struct ll_disk *ll, struct dm_transaction_manager *tm, | ||
| 676 | void *root_le, size_t len) | ||
| 677 | { | ||
| 678 | int r; | ||
| 679 | struct disk_sm_root *smr = root_le; | ||
| 680 | |||
| 681 | if (len < sizeof(struct disk_sm_root)) { | ||
| 682 | DMERR("sm_metadata root too small"); | ||
| 683 | return -ENOMEM; | ||
| 684 | } | ||
| 685 | |||
| 686 | r = sm_ll_init(ll, tm); | ||
| 687 | if (r < 0) | ||
| 688 | return r; | ||
| 689 | |||
| 690 | ll->load_ie = disk_ll_load_ie; | ||
| 691 | ll->save_ie = disk_ll_save_ie; | ||
| 692 | ll->init_index = disk_ll_init_index; | ||
| 693 | ll->open_index = disk_ll_open; | ||
| 694 | ll->max_entries = disk_ll_max_entries; | ||
| 695 | ll->commit = disk_ll_commit; | ||
| 696 | |||
| 697 | ll->nr_blocks = le64_to_cpu(smr->nr_blocks); | ||
| 698 | ll->nr_allocated = le64_to_cpu(smr->nr_allocated); | ||
| 699 | ll->bitmap_root = le64_to_cpu(smr->bitmap_root); | ||
| 700 | ll->ref_count_root = le64_to_cpu(smr->ref_count_root); | ||
| 701 | |||
| 702 | return ll->open_index(ll); | ||
| 703 | } | ||
| 704 | |||
| 705 | /*----------------------------------------------------------------*/ | ||
diff --git a/drivers/md/persistent-data/dm-space-map-common.h b/drivers/md/persistent-data/dm-space-map-common.h new file mode 100644 index 000000000000..8f220821a9a9 --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-common.h | |||
| @@ -0,0 +1,126 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef DM_SPACE_MAP_COMMON_H | ||
| 8 | #define DM_SPACE_MAP_COMMON_H | ||
| 9 | |||
| 10 | #include "dm-btree.h" | ||
| 11 | |||
| 12 | /*----------------------------------------------------------------*/ | ||
| 13 | |||
| 14 | /* | ||
| 15 | * Low level disk format | ||
| 16 | * | ||
| 17 | * Bitmap btree | ||
| 18 | * ------------ | ||
| 19 | * | ||
| 20 | * Each value stored in the btree is an index_entry. This points to a | ||
| 21 | * block that is used as a bitmap. Within the bitmap hold 2 bits per | ||
| 22 | * entry, which represent UNUSED = 0, REF_COUNT = 1, REF_COUNT = 2 and | ||
| 23 | * REF_COUNT = many. | ||
| 24 | * | ||
| 25 | * Refcount btree | ||
| 26 | * -------------- | ||
| 27 | * | ||
| 28 | * Any entry that has a ref count higher than 2 gets entered in the ref | ||
| 29 | * count tree. The leaf values for this tree is the 32-bit ref count. | ||
| 30 | */ | ||
| 31 | |||
| 32 | struct disk_index_entry { | ||
| 33 | __le64 blocknr; | ||
| 34 | __le32 nr_free; | ||
| 35 | __le32 none_free_before; | ||
| 36 | } __packed; | ||
| 37 | |||
| 38 | |||
| 39 | #define MAX_METADATA_BITMAPS 255 | ||
| 40 | struct disk_metadata_index { | ||
| 41 | __le32 csum; | ||
| 42 | __le32 padding; | ||
| 43 | __le64 blocknr; | ||
| 44 | |||
| 45 | struct disk_index_entry index[MAX_METADATA_BITMAPS]; | ||
| 46 | } __packed; | ||
| 47 | |||
| 48 | struct ll_disk; | ||
| 49 | |||
| 50 | typedef int (*load_ie_fn)(struct ll_disk *ll, dm_block_t index, struct disk_index_entry *result); | ||
| 51 | typedef int (*save_ie_fn)(struct ll_disk *ll, dm_block_t index, struct disk_index_entry *ie); | ||
| 52 | typedef int (*init_index_fn)(struct ll_disk *ll); | ||
| 53 | typedef int (*open_index_fn)(struct ll_disk *ll); | ||
| 54 | typedef dm_block_t (*max_index_entries_fn)(struct ll_disk *ll); | ||
| 55 | typedef int (*commit_fn)(struct ll_disk *ll); | ||
| 56 | |||
| 57 | struct ll_disk { | ||
| 58 | struct dm_transaction_manager *tm; | ||
| 59 | struct dm_btree_info bitmap_info; | ||
| 60 | struct dm_btree_info ref_count_info; | ||
| 61 | |||
| 62 | uint32_t block_size; | ||
| 63 | uint32_t entries_per_block; | ||
| 64 | dm_block_t nr_blocks; | ||
| 65 | dm_block_t nr_allocated; | ||
| 66 | |||
| 67 | /* | ||
| 68 | * bitmap_root may be a btree root or a simple index. | ||
| 69 | */ | ||
| 70 | dm_block_t bitmap_root; | ||
| 71 | |||
| 72 | dm_block_t ref_count_root; | ||
| 73 | |||
| 74 | struct disk_metadata_index mi_le; | ||
| 75 | load_ie_fn load_ie; | ||
| 76 | save_ie_fn save_ie; | ||
| 77 | init_index_fn init_index; | ||
| 78 | open_index_fn open_index; | ||
| 79 | max_index_entries_fn max_entries; | ||
| 80 | commit_fn commit; | ||
| 81 | }; | ||
| 82 | |||
| 83 | struct disk_sm_root { | ||
| 84 | __le64 nr_blocks; | ||
| 85 | __le64 nr_allocated; | ||
| 86 | __le64 bitmap_root; | ||
| 87 | __le64 ref_count_root; | ||
| 88 | } __packed; | ||
| 89 | |||
| 90 | #define ENTRIES_PER_BYTE 4 | ||
| 91 | |||
| 92 | struct disk_bitmap_header { | ||
| 93 | __le32 csum; | ||
| 94 | __le32 not_used; | ||
| 95 | __le64 blocknr; | ||
| 96 | } __packed; | ||
| 97 | |||
| 98 | enum allocation_event { | ||
| 99 | SM_NONE, | ||
| 100 | SM_ALLOC, | ||
| 101 | SM_FREE, | ||
| 102 | }; | ||
| 103 | |||
| 104 | /*----------------------------------------------------------------*/ | ||
| 105 | |||
| 106 | int sm_ll_extend(struct ll_disk *ll, dm_block_t extra_blocks); | ||
| 107 | int sm_ll_lookup_bitmap(struct ll_disk *ll, dm_block_t b, uint32_t *result); | ||
| 108 | int sm_ll_lookup(struct ll_disk *ll, dm_block_t b, uint32_t *result); | ||
| 109 | int sm_ll_find_free_block(struct ll_disk *ll, dm_block_t begin, | ||
| 110 | dm_block_t end, dm_block_t *result); | ||
| 111 | int sm_ll_insert(struct ll_disk *ll, dm_block_t b, uint32_t ref_count, enum allocation_event *ev); | ||
| 112 | int sm_ll_inc(struct ll_disk *ll, dm_block_t b, enum allocation_event *ev); | ||
| 113 | int sm_ll_dec(struct ll_disk *ll, dm_block_t b, enum allocation_event *ev); | ||
| 114 | int sm_ll_commit(struct ll_disk *ll); | ||
| 115 | |||
| 116 | int sm_ll_new_metadata(struct ll_disk *ll, struct dm_transaction_manager *tm); | ||
| 117 | int sm_ll_open_metadata(struct ll_disk *ll, struct dm_transaction_manager *tm, | ||
| 118 | void *root_le, size_t len); | ||
| 119 | |||
| 120 | int sm_ll_new_disk(struct ll_disk *ll, struct dm_transaction_manager *tm); | ||
| 121 | int sm_ll_open_disk(struct ll_disk *ll, struct dm_transaction_manager *tm, | ||
| 122 | void *root_le, size_t len); | ||
| 123 | |||
| 124 | /*----------------------------------------------------------------*/ | ||
| 125 | |||
| 126 | #endif /* DM_SPACE_MAP_COMMON_H */ | ||
diff --git a/drivers/md/persistent-data/dm-space-map-disk.c b/drivers/md/persistent-data/dm-space-map-disk.c new file mode 100644 index 000000000000..aeff7852cf79 --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-disk.c | |||
| @@ -0,0 +1,335 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-space-map-checker.h" | ||
| 8 | #include "dm-space-map-common.h" | ||
| 9 | #include "dm-space-map-disk.h" | ||
| 10 | #include "dm-space-map.h" | ||
| 11 | #include "dm-transaction-manager.h" | ||
| 12 | |||
| 13 | #include <linux/list.h> | ||
| 14 | #include <linux/slab.h> | ||
| 15 | #include <linux/module.h> | ||
| 16 | #include <linux/device-mapper.h> | ||
| 17 | |||
| 18 | #define DM_MSG_PREFIX "space map disk" | ||
| 19 | |||
| 20 | /*----------------------------------------------------------------*/ | ||
| 21 | |||
| 22 | /* | ||
| 23 | * Space map interface. | ||
| 24 | */ | ||
| 25 | struct sm_disk { | ||
| 26 | struct dm_space_map sm; | ||
| 27 | |||
| 28 | struct ll_disk ll; | ||
| 29 | struct ll_disk old_ll; | ||
| 30 | |||
| 31 | dm_block_t begin; | ||
| 32 | dm_block_t nr_allocated_this_transaction; | ||
| 33 | }; | ||
| 34 | |||
| 35 | static void sm_disk_destroy(struct dm_space_map *sm) | ||
| 36 | { | ||
| 37 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 38 | |||
| 39 | kfree(smd); | ||
| 40 | } | ||
| 41 | |||
| 42 | static int sm_disk_extend(struct dm_space_map *sm, dm_block_t extra_blocks) | ||
| 43 | { | ||
| 44 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 45 | |||
| 46 | return sm_ll_extend(&smd->ll, extra_blocks); | ||
| 47 | } | ||
| 48 | |||
| 49 | static int sm_disk_get_nr_blocks(struct dm_space_map *sm, dm_block_t *count) | ||
| 50 | { | ||
| 51 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 52 | *count = smd->old_ll.nr_blocks; | ||
| 53 | |||
| 54 | return 0; | ||
| 55 | } | ||
| 56 | |||
| 57 | static int sm_disk_get_nr_free(struct dm_space_map *sm, dm_block_t *count) | ||
| 58 | { | ||
| 59 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 60 | *count = (smd->old_ll.nr_blocks - smd->old_ll.nr_allocated) - smd->nr_allocated_this_transaction; | ||
| 61 | |||
| 62 | return 0; | ||
| 63 | } | ||
| 64 | |||
| 65 | static int sm_disk_get_count(struct dm_space_map *sm, dm_block_t b, | ||
| 66 | uint32_t *result) | ||
| 67 | { | ||
| 68 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 69 | return sm_ll_lookup(&smd->ll, b, result); | ||
| 70 | } | ||
| 71 | |||
| 72 | static int sm_disk_count_is_more_than_one(struct dm_space_map *sm, dm_block_t b, | ||
| 73 | int *result) | ||
| 74 | { | ||
| 75 | int r; | ||
| 76 | uint32_t count; | ||
| 77 | |||
| 78 | r = sm_disk_get_count(sm, b, &count); | ||
| 79 | if (r) | ||
| 80 | return r; | ||
| 81 | |||
| 82 | return count > 1; | ||
| 83 | } | ||
| 84 | |||
| 85 | static int sm_disk_set_count(struct dm_space_map *sm, dm_block_t b, | ||
| 86 | uint32_t count) | ||
| 87 | { | ||
| 88 | int r; | ||
| 89 | uint32_t old_count; | ||
| 90 | enum allocation_event ev; | ||
| 91 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 92 | |||
| 93 | r = sm_ll_insert(&smd->ll, b, count, &ev); | ||
| 94 | if (!r) { | ||
| 95 | switch (ev) { | ||
| 96 | case SM_NONE: | ||
| 97 | break; | ||
| 98 | |||
| 99 | case SM_ALLOC: | ||
| 100 | /* | ||
| 101 | * This _must_ be free in the prior transaction | ||
| 102 | * otherwise we've lost atomicity. | ||
| 103 | */ | ||
| 104 | smd->nr_allocated_this_transaction++; | ||
| 105 | break; | ||
| 106 | |||
| 107 | case SM_FREE: | ||
| 108 | /* | ||
| 109 | * It's only free if it's also free in the last | ||
| 110 | * transaction. | ||
| 111 | */ | ||
| 112 | r = sm_ll_lookup(&smd->old_ll, b, &old_count); | ||
| 113 | if (r) | ||
| 114 | return r; | ||
| 115 | |||
| 116 | if (!old_count) | ||
| 117 | smd->nr_allocated_this_transaction--; | ||
| 118 | break; | ||
| 119 | } | ||
| 120 | } | ||
| 121 | |||
| 122 | return r; | ||
| 123 | } | ||
| 124 | |||
| 125 | static int sm_disk_inc_block(struct dm_space_map *sm, dm_block_t b) | ||
| 126 | { | ||
| 127 | int r; | ||
| 128 | enum allocation_event ev; | ||
| 129 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 130 | |||
| 131 | r = sm_ll_inc(&smd->ll, b, &ev); | ||
| 132 | if (!r && (ev == SM_ALLOC)) | ||
| 133 | /* | ||
| 134 | * This _must_ be free in the prior transaction | ||
| 135 | * otherwise we've lost atomicity. | ||
| 136 | */ | ||
| 137 | smd->nr_allocated_this_transaction++; | ||
| 138 | |||
| 139 | return r; | ||
| 140 | } | ||
| 141 | |||
| 142 | static int sm_disk_dec_block(struct dm_space_map *sm, dm_block_t b) | ||
| 143 | { | ||
| 144 | int r; | ||
| 145 | uint32_t old_count; | ||
| 146 | enum allocation_event ev; | ||
| 147 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 148 | |||
| 149 | r = sm_ll_dec(&smd->ll, b, &ev); | ||
| 150 | if (!r && (ev == SM_FREE)) { | ||
| 151 | /* | ||
| 152 | * It's only free if it's also free in the last | ||
| 153 | * transaction. | ||
| 154 | */ | ||
| 155 | r = sm_ll_lookup(&smd->old_ll, b, &old_count); | ||
| 156 | if (r) | ||
| 157 | return r; | ||
| 158 | |||
| 159 | if (!old_count) | ||
| 160 | smd->nr_allocated_this_transaction--; | ||
| 161 | } | ||
| 162 | |||
| 163 | return r; | ||
| 164 | } | ||
| 165 | |||
| 166 | static int sm_disk_new_block(struct dm_space_map *sm, dm_block_t *b) | ||
| 167 | { | ||
| 168 | int r; | ||
| 169 | enum allocation_event ev; | ||
| 170 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 171 | |||
| 172 | /* FIXME: we should loop round a couple of times */ | ||
| 173 | r = sm_ll_find_free_block(&smd->old_ll, smd->begin, smd->old_ll.nr_blocks, b); | ||
| 174 | if (r) | ||
| 175 | return r; | ||
| 176 | |||
| 177 | smd->begin = *b + 1; | ||
| 178 | r = sm_ll_inc(&smd->ll, *b, &ev); | ||
| 179 | if (!r) { | ||
| 180 | BUG_ON(ev != SM_ALLOC); | ||
| 181 | smd->nr_allocated_this_transaction++; | ||
| 182 | } | ||
| 183 | |||
| 184 | return r; | ||
| 185 | } | ||
| 186 | |||
| 187 | static int sm_disk_commit(struct dm_space_map *sm) | ||
| 188 | { | ||
| 189 | int r; | ||
| 190 | dm_block_t nr_free; | ||
| 191 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 192 | |||
| 193 | r = sm_disk_get_nr_free(sm, &nr_free); | ||
| 194 | if (r) | ||
| 195 | return r; | ||
| 196 | |||
| 197 | r = sm_ll_commit(&smd->ll); | ||
| 198 | if (r) | ||
| 199 | return r; | ||
| 200 | |||
| 201 | memcpy(&smd->old_ll, &smd->ll, sizeof(smd->old_ll)); | ||
| 202 | smd->begin = 0; | ||
| 203 | smd->nr_allocated_this_transaction = 0; | ||
| 204 | |||
| 205 | r = sm_disk_get_nr_free(sm, &nr_free); | ||
| 206 | if (r) | ||
| 207 | return r; | ||
| 208 | |||
| 209 | return 0; | ||
| 210 | } | ||
| 211 | |||
| 212 | static int sm_disk_root_size(struct dm_space_map *sm, size_t *result) | ||
| 213 | { | ||
| 214 | *result = sizeof(struct disk_sm_root); | ||
| 215 | |||
| 216 | return 0; | ||
| 217 | } | ||
| 218 | |||
| 219 | static int sm_disk_copy_root(struct dm_space_map *sm, void *where_le, size_t max) | ||
| 220 | { | ||
| 221 | struct sm_disk *smd = container_of(sm, struct sm_disk, sm); | ||
| 222 | struct disk_sm_root root_le; | ||
| 223 | |||
| 224 | root_le.nr_blocks = cpu_to_le64(smd->ll.nr_blocks); | ||
| 225 | root_le.nr_allocated = cpu_to_le64(smd->ll.nr_allocated); | ||
| 226 | root_le.bitmap_root = cpu_to_le64(smd->ll.bitmap_root); | ||
| 227 | root_le.ref_count_root = cpu_to_le64(smd->ll.ref_count_root); | ||
| 228 | |||
| 229 | if (max < sizeof(root_le)) | ||
| 230 | return -ENOSPC; | ||
| 231 | |||
| 232 | memcpy(where_le, &root_le, sizeof(root_le)); | ||
| 233 | |||
| 234 | return 0; | ||
| 235 | } | ||
| 236 | |||
| 237 | /*----------------------------------------------------------------*/ | ||
| 238 | |||
| 239 | static struct dm_space_map ops = { | ||
| 240 | .destroy = sm_disk_destroy, | ||
| 241 | .extend = sm_disk_extend, | ||
| 242 | .get_nr_blocks = sm_disk_get_nr_blocks, | ||
| 243 | .get_nr_free = sm_disk_get_nr_free, | ||
| 244 | .get_count = sm_disk_get_count, | ||
| 245 | .count_is_more_than_one = sm_disk_count_is_more_than_one, | ||
| 246 | .set_count = sm_disk_set_count, | ||
| 247 | .inc_block = sm_disk_inc_block, | ||
| 248 | .dec_block = sm_disk_dec_block, | ||
| 249 | .new_block = sm_disk_new_block, | ||
| 250 | .commit = sm_disk_commit, | ||
| 251 | .root_size = sm_disk_root_size, | ||
| 252 | .copy_root = sm_disk_copy_root | ||
| 253 | }; | ||
| 254 | |||
| 255 | static struct dm_space_map *dm_sm_disk_create_real( | ||
| 256 | struct dm_transaction_manager *tm, | ||
| 257 | dm_block_t nr_blocks) | ||
| 258 | { | ||
| 259 | int r; | ||
| 260 | struct sm_disk *smd; | ||
| 261 | |||
| 262 | smd = kmalloc(sizeof(*smd), GFP_KERNEL); | ||
| 263 | if (!smd) | ||
| 264 | return ERR_PTR(-ENOMEM); | ||
| 265 | |||
| 266 | smd->begin = 0; | ||
| 267 | smd->nr_allocated_this_transaction = 0; | ||
| 268 | memcpy(&smd->sm, &ops, sizeof(smd->sm)); | ||
| 269 | |||
| 270 | r = sm_ll_new_disk(&smd->ll, tm); | ||
| 271 | if (r) | ||
| 272 | goto bad; | ||
| 273 | |||
| 274 | r = sm_ll_extend(&smd->ll, nr_blocks); | ||
| 275 | if (r) | ||
| 276 | goto bad; | ||
| 277 | |||
| 278 | r = sm_disk_commit(&smd->sm); | ||
| 279 | if (r) | ||
| 280 | goto bad; | ||
| 281 | |||
| 282 | return &smd->sm; | ||
| 283 | |||
| 284 | bad: | ||
| 285 | kfree(smd); | ||
| 286 | return ERR_PTR(r); | ||
| 287 | } | ||
| 288 | |||
| 289 | struct dm_space_map *dm_sm_disk_create(struct dm_transaction_manager *tm, | ||
| 290 | dm_block_t nr_blocks) | ||
| 291 | { | ||
| 292 | struct dm_space_map *sm = dm_sm_disk_create_real(tm, nr_blocks); | ||
| 293 | return dm_sm_checker_create_fresh(sm); | ||
| 294 | } | ||
| 295 | EXPORT_SYMBOL_GPL(dm_sm_disk_create); | ||
| 296 | |||
| 297 | static struct dm_space_map *dm_sm_disk_open_real( | ||
| 298 | struct dm_transaction_manager *tm, | ||
| 299 | void *root_le, size_t len) | ||
| 300 | { | ||
| 301 | int r; | ||
| 302 | struct sm_disk *smd; | ||
| 303 | |||
| 304 | smd = kmalloc(sizeof(*smd), GFP_KERNEL); | ||
| 305 | if (!smd) | ||
| 306 | return ERR_PTR(-ENOMEM); | ||
| 307 | |||
| 308 | smd->begin = 0; | ||
| 309 | smd->nr_allocated_this_transaction = 0; | ||
| 310 | memcpy(&smd->sm, &ops, sizeof(smd->sm)); | ||
| 311 | |||
| 312 | r = sm_ll_open_disk(&smd->ll, tm, root_le, len); | ||
| 313 | if (r) | ||
| 314 | goto bad; | ||
| 315 | |||
| 316 | r = sm_disk_commit(&smd->sm); | ||
| 317 | if (r) | ||
| 318 | goto bad; | ||
| 319 | |||
| 320 | return &smd->sm; | ||
| 321 | |||
| 322 | bad: | ||
| 323 | kfree(smd); | ||
| 324 | return ERR_PTR(r); | ||
| 325 | } | ||
| 326 | |||
| 327 | struct dm_space_map *dm_sm_disk_open(struct dm_transaction_manager *tm, | ||
| 328 | void *root_le, size_t len) | ||
| 329 | { | ||
| 330 | return dm_sm_checker_create( | ||
| 331 | dm_sm_disk_open_real(tm, root_le, len)); | ||
| 332 | } | ||
| 333 | EXPORT_SYMBOL_GPL(dm_sm_disk_open); | ||
| 334 | |||
| 335 | /*----------------------------------------------------------------*/ | ||
diff --git a/drivers/md/persistent-data/dm-space-map-disk.h b/drivers/md/persistent-data/dm-space-map-disk.h new file mode 100644 index 000000000000..447a0a9a2d9f --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-disk.h | |||
| @@ -0,0 +1,25 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef _LINUX_DM_SPACE_MAP_DISK_H | ||
| 8 | #define _LINUX_DM_SPACE_MAP_DISK_H | ||
| 9 | |||
| 10 | #include "dm-block-manager.h" | ||
| 11 | |||
| 12 | struct dm_space_map; | ||
| 13 | struct dm_transaction_manager; | ||
| 14 | |||
| 15 | /* | ||
| 16 | * Unfortunately we have to use two-phase construction due to the cycle | ||
| 17 | * between the tm and sm. | ||
| 18 | */ | ||
| 19 | struct dm_space_map *dm_sm_disk_create(struct dm_transaction_manager *tm, | ||
| 20 | dm_block_t nr_blocks); | ||
| 21 | |||
| 22 | struct dm_space_map *dm_sm_disk_open(struct dm_transaction_manager *tm, | ||
| 23 | void *root, size_t len); | ||
| 24 | |||
| 25 | #endif /* _LINUX_DM_SPACE_MAP_DISK_H */ | ||
diff --git a/drivers/md/persistent-data/dm-space-map-metadata.c b/drivers/md/persistent-data/dm-space-map-metadata.c new file mode 100644 index 000000000000..e89ae5e7a519 --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-metadata.c | |||
| @@ -0,0 +1,596 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #include "dm-space-map.h" | ||
| 8 | #include "dm-space-map-common.h" | ||
| 9 | #include "dm-space-map-metadata.h" | ||
| 10 | |||
| 11 | #include <linux/list.h> | ||
| 12 | #include <linux/slab.h> | ||
| 13 | #include <linux/device-mapper.h> | ||
| 14 | |||
| 15 | #define DM_MSG_PREFIX "space map metadata" | ||
| 16 | |||
| 17 | /*----------------------------------------------------------------*/ | ||
| 18 | |||
| 19 | /* | ||
| 20 | * Space map interface. | ||
| 21 | * | ||
| 22 | * The low level disk format is written using the standard btree and | ||
| 23 | * transaction manager. This means that performing disk operations may | ||
| 24 | * cause us to recurse into the space map in order to allocate new blocks. | ||
| 25 | * For this reason we have a pool of pre-allocated blocks large enough to | ||
| 26 | * service any metadata_ll_disk operation. | ||
| 27 | */ | ||
| 28 | |||
| 29 | /* | ||
| 30 | * FIXME: we should calculate this based on the size of the device. | ||
| 31 | * Only the metadata space map needs this functionality. | ||
| 32 | */ | ||
| 33 | #define MAX_RECURSIVE_ALLOCATIONS 1024 | ||
| 34 | |||
| 35 | enum block_op_type { | ||
| 36 | BOP_INC, | ||
| 37 | BOP_DEC | ||
| 38 | }; | ||
| 39 | |||
| 40 | struct block_op { | ||
| 41 | enum block_op_type type; | ||
| 42 | dm_block_t block; | ||
| 43 | }; | ||
| 44 | |||
| 45 | struct sm_metadata { | ||
| 46 | struct dm_space_map sm; | ||
| 47 | |||
| 48 | struct ll_disk ll; | ||
| 49 | struct ll_disk old_ll; | ||
| 50 | |||
| 51 | dm_block_t begin; | ||
| 52 | |||
| 53 | unsigned recursion_count; | ||
| 54 | unsigned allocated_this_transaction; | ||
| 55 | unsigned nr_uncommitted; | ||
| 56 | struct block_op uncommitted[MAX_RECURSIVE_ALLOCATIONS]; | ||
| 57 | }; | ||
| 58 | |||
| 59 | static int add_bop(struct sm_metadata *smm, enum block_op_type type, dm_block_t b) | ||
| 60 | { | ||
| 61 | struct block_op *op; | ||
| 62 | |||
| 63 | if (smm->nr_uncommitted == MAX_RECURSIVE_ALLOCATIONS) { | ||
| 64 | DMERR("too many recursive allocations"); | ||
| 65 | return -ENOMEM; | ||
| 66 | } | ||
| 67 | |||
| 68 | op = smm->uncommitted + smm->nr_uncommitted++; | ||
| 69 | op->type = type; | ||
| 70 | op->block = b; | ||
| 71 | |||
| 72 | return 0; | ||
| 73 | } | ||
| 74 | |||
| 75 | static int commit_bop(struct sm_metadata *smm, struct block_op *op) | ||
| 76 | { | ||
| 77 | int r = 0; | ||
| 78 | enum allocation_event ev; | ||
| 79 | |||
| 80 | switch (op->type) { | ||
| 81 | case BOP_INC: | ||
| 82 | r = sm_ll_inc(&smm->ll, op->block, &ev); | ||
| 83 | break; | ||
| 84 | |||
| 85 | case BOP_DEC: | ||
| 86 | r = sm_ll_dec(&smm->ll, op->block, &ev); | ||
| 87 | break; | ||
| 88 | } | ||
| 89 | |||
| 90 | return r; | ||
| 91 | } | ||
| 92 | |||
| 93 | static void in(struct sm_metadata *smm) | ||
| 94 | { | ||
| 95 | smm->recursion_count++; | ||
| 96 | } | ||
| 97 | |||
| 98 | static int out(struct sm_metadata *smm) | ||
| 99 | { | ||
| 100 | int r = 0; | ||
| 101 | |||
| 102 | /* | ||
| 103 | * If we're not recursing then very bad things are happening. | ||
| 104 | */ | ||
| 105 | if (!smm->recursion_count) { | ||
| 106 | DMERR("lost track of recursion depth"); | ||
| 107 | return -ENOMEM; | ||
| 108 | } | ||
| 109 | |||
| 110 | if (smm->recursion_count == 1 && smm->nr_uncommitted) { | ||
| 111 | while (smm->nr_uncommitted && !r) { | ||
| 112 | smm->nr_uncommitted--; | ||
| 113 | r = commit_bop(smm, smm->uncommitted + | ||
| 114 | smm->nr_uncommitted); | ||
| 115 | if (r) | ||
| 116 | break; | ||
| 117 | } | ||
| 118 | } | ||
| 119 | |||
| 120 | smm->recursion_count--; | ||
| 121 | |||
| 122 | return r; | ||
| 123 | } | ||
| 124 | |||
| 125 | /* | ||
| 126 | * When using the out() function above, we often want to combine an error | ||
| 127 | * code for the operation run in the recursive context with that from | ||
| 128 | * out(). | ||
| 129 | */ | ||
| 130 | static int combine_errors(int r1, int r2) | ||
| 131 | { | ||
| 132 | return r1 ? r1 : r2; | ||
| 133 | } | ||
| 134 | |||
| 135 | static int recursing(struct sm_metadata *smm) | ||
| 136 | { | ||
| 137 | return smm->recursion_count; | ||
| 138 | } | ||
| 139 | |||
| 140 | static void sm_metadata_destroy(struct dm_space_map *sm) | ||
| 141 | { | ||
| 142 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 143 | |||
| 144 | kfree(smm); | ||
| 145 | } | ||
| 146 | |||
| 147 | static int sm_metadata_extend(struct dm_space_map *sm, dm_block_t extra_blocks) | ||
| 148 | { | ||
| 149 | DMERR("doesn't support extend"); | ||
| 150 | return -EINVAL; | ||
| 151 | } | ||
| 152 | |||
| 153 | static int sm_metadata_get_nr_blocks(struct dm_space_map *sm, dm_block_t *count) | ||
| 154 | { | ||
| 155 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 156 | |||
| 157 | *count = smm->ll.nr_blocks; | ||
| 158 | |||
| 159 | return 0; | ||
| 160 | } | ||
| 161 | |||
| 162 | static int sm_metadata_get_nr_free(struct dm_space_map *sm, dm_block_t *count) | ||
| 163 | { | ||
| 164 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 165 | |||
| 166 | *count = smm->old_ll.nr_blocks - smm->old_ll.nr_allocated - | ||
| 167 | smm->allocated_this_transaction; | ||
| 168 | |||
| 169 | return 0; | ||
| 170 | } | ||
| 171 | |||
| 172 | static int sm_metadata_get_count(struct dm_space_map *sm, dm_block_t b, | ||
| 173 | uint32_t *result) | ||
| 174 | { | ||
| 175 | int r, i; | ||
| 176 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 177 | unsigned adjustment = 0; | ||
| 178 | |||
| 179 | /* | ||
| 180 | * We may have some uncommitted adjustments to add. This list | ||
| 181 | * should always be really short. | ||
| 182 | */ | ||
| 183 | for (i = 0; i < smm->nr_uncommitted; i++) { | ||
| 184 | struct block_op *op = smm->uncommitted + i; | ||
| 185 | |||
| 186 | if (op->block != b) | ||
| 187 | continue; | ||
| 188 | |||
| 189 | switch (op->type) { | ||
| 190 | case BOP_INC: | ||
| 191 | adjustment++; | ||
| 192 | break; | ||
| 193 | |||
| 194 | case BOP_DEC: | ||
| 195 | adjustment--; | ||
| 196 | break; | ||
| 197 | } | ||
| 198 | } | ||
| 199 | |||
| 200 | r = sm_ll_lookup(&smm->ll, b, result); | ||
| 201 | if (r) | ||
| 202 | return r; | ||
| 203 | |||
| 204 | *result += adjustment; | ||
| 205 | |||
| 206 | return 0; | ||
| 207 | } | ||
| 208 | |||
| 209 | static int sm_metadata_count_is_more_than_one(struct dm_space_map *sm, | ||
| 210 | dm_block_t b, int *result) | ||
| 211 | { | ||
| 212 | int r, i, adjustment = 0; | ||
| 213 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 214 | uint32_t rc; | ||
| 215 | |||
| 216 | /* | ||
| 217 | * We may have some uncommitted adjustments to add. This list | ||
| 218 | * should always be really short. | ||
| 219 | */ | ||
| 220 | for (i = 0; i < smm->nr_uncommitted; i++) { | ||
| 221 | struct block_op *op = smm->uncommitted + i; | ||
| 222 | |||
| 223 | if (op->block != b) | ||
| 224 | continue; | ||
| 225 | |||
| 226 | switch (op->type) { | ||
| 227 | case BOP_INC: | ||
| 228 | adjustment++; | ||
| 229 | break; | ||
| 230 | |||
| 231 | case BOP_DEC: | ||
| 232 | adjustment--; | ||
| 233 | break; | ||
| 234 | } | ||
| 235 | } | ||
| 236 | |||
| 237 | if (adjustment > 1) { | ||
| 238 | *result = 1; | ||
| 239 | return 0; | ||
| 240 | } | ||
| 241 | |||
| 242 | r = sm_ll_lookup_bitmap(&smm->ll, b, &rc); | ||
| 243 | if (r) | ||
| 244 | return r; | ||
| 245 | |||
| 246 | if (rc == 3) | ||
| 247 | /* | ||
| 248 | * We err on the side of caution, and always return true. | ||
| 249 | */ | ||
| 250 | *result = 1; | ||
| 251 | else | ||
| 252 | *result = rc + adjustment > 1; | ||
| 253 | |||
| 254 | return 0; | ||
| 255 | } | ||
| 256 | |||
| 257 | static int sm_metadata_set_count(struct dm_space_map *sm, dm_block_t b, | ||
| 258 | uint32_t count) | ||
| 259 | { | ||
| 260 | int r, r2; | ||
| 261 | enum allocation_event ev; | ||
| 262 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 263 | |||
| 264 | if (smm->recursion_count) { | ||
| 265 | DMERR("cannot recurse set_count()"); | ||
| 266 | return -EINVAL; | ||
| 267 | } | ||
| 268 | |||
| 269 | in(smm); | ||
| 270 | r = sm_ll_insert(&smm->ll, b, count, &ev); | ||
| 271 | r2 = out(smm); | ||
| 272 | |||
| 273 | return combine_errors(r, r2); | ||
| 274 | } | ||
| 275 | |||
| 276 | static int sm_metadata_inc_block(struct dm_space_map *sm, dm_block_t b) | ||
| 277 | { | ||
| 278 | int r, r2 = 0; | ||
| 279 | enum allocation_event ev; | ||
| 280 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 281 | |||
| 282 | if (recursing(smm)) | ||
| 283 | r = add_bop(smm, BOP_INC, b); | ||
| 284 | else { | ||
| 285 | in(smm); | ||
| 286 | r = sm_ll_inc(&smm->ll, b, &ev); | ||
| 287 | r2 = out(smm); | ||
| 288 | } | ||
| 289 | |||
| 290 | return combine_errors(r, r2); | ||
| 291 | } | ||
| 292 | |||
| 293 | static int sm_metadata_dec_block(struct dm_space_map *sm, dm_block_t b) | ||
| 294 | { | ||
| 295 | int r, r2 = 0; | ||
| 296 | enum allocation_event ev; | ||
| 297 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 298 | |||
| 299 | if (recursing(smm)) | ||
| 300 | r = add_bop(smm, BOP_DEC, b); | ||
| 301 | else { | ||
| 302 | in(smm); | ||
| 303 | r = sm_ll_dec(&smm->ll, b, &ev); | ||
| 304 | r2 = out(smm); | ||
| 305 | } | ||
| 306 | |||
| 307 | return combine_errors(r, r2); | ||
| 308 | } | ||
| 309 | |||
| 310 | static int sm_metadata_new_block_(struct dm_space_map *sm, dm_block_t *b) | ||
| 311 | { | ||
| 312 | int r, r2 = 0; | ||
| 313 | enum allocation_event ev; | ||
| 314 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 315 | |||
| 316 | r = sm_ll_find_free_block(&smm->old_ll, smm->begin, smm->old_ll.nr_blocks, b); | ||
| 317 | if (r) | ||
| 318 | return r; | ||
| 319 | |||
| 320 | smm->begin = *b + 1; | ||
| 321 | |||
| 322 | if (recursing(smm)) | ||
| 323 | r = add_bop(smm, BOP_INC, *b); | ||
| 324 | else { | ||
| 325 | in(smm); | ||
| 326 | r = sm_ll_inc(&smm->ll, *b, &ev); | ||
| 327 | r2 = out(smm); | ||
| 328 | } | ||
| 329 | |||
| 330 | if (!r) | ||
| 331 | smm->allocated_this_transaction++; | ||
| 332 | |||
| 333 | return combine_errors(r, r2); | ||
| 334 | } | ||
| 335 | |||
| 336 | static int sm_metadata_new_block(struct dm_space_map *sm, dm_block_t *b) | ||
| 337 | { | ||
| 338 | int r = sm_metadata_new_block_(sm, b); | ||
| 339 | if (r) | ||
| 340 | DMERR("out of metadata space"); | ||
| 341 | return r; | ||
| 342 | } | ||
| 343 | |||
| 344 | static int sm_metadata_commit(struct dm_space_map *sm) | ||
| 345 | { | ||
| 346 | int r; | ||
| 347 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 348 | |||
| 349 | r = sm_ll_commit(&smm->ll); | ||
| 350 | if (r) | ||
| 351 | return r; | ||
| 352 | |||
| 353 | memcpy(&smm->old_ll, &smm->ll, sizeof(smm->old_ll)); | ||
| 354 | smm->begin = 0; | ||
| 355 | smm->allocated_this_transaction = 0; | ||
| 356 | |||
| 357 | return 0; | ||
| 358 | } | ||
| 359 | |||
| 360 | static int sm_metadata_root_size(struct dm_space_map *sm, size_t *result) | ||
| 361 | { | ||
| 362 | *result = sizeof(struct disk_sm_root); | ||
| 363 | |||
| 364 | return 0; | ||
| 365 | } | ||
| 366 | |||
| 367 | static int sm_metadata_copy_root(struct dm_space_map *sm, void *where_le, size_t max) | ||
| 368 | { | ||
| 369 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 370 | struct disk_sm_root root_le; | ||
| 371 | |||
| 372 | root_le.nr_blocks = cpu_to_le64(smm->ll.nr_blocks); | ||
| 373 | root_le.nr_allocated = cpu_to_le64(smm->ll.nr_allocated); | ||
| 374 | root_le.bitmap_root = cpu_to_le64(smm->ll.bitmap_root); | ||
| 375 | root_le.ref_count_root = cpu_to_le64(smm->ll.ref_count_root); | ||
| 376 | |||
| 377 | if (max < sizeof(root_le)) | ||
| 378 | return -ENOSPC; | ||
| 379 | |||
| 380 | memcpy(where_le, &root_le, sizeof(root_le)); | ||
| 381 | |||
| 382 | return 0; | ||
| 383 | } | ||
| 384 | |||
| 385 | static struct dm_space_map ops = { | ||
| 386 | .destroy = sm_metadata_destroy, | ||
| 387 | .extend = sm_metadata_extend, | ||
| 388 | .get_nr_blocks = sm_metadata_get_nr_blocks, | ||
| 389 | .get_nr_free = sm_metadata_get_nr_free, | ||
| 390 | .get_count = sm_metadata_get_count, | ||
| 391 | .count_is_more_than_one = sm_metadata_count_is_more_than_one, | ||
| 392 | .set_count = sm_metadata_set_count, | ||
| 393 | .inc_block = sm_metadata_inc_block, | ||
| 394 | .dec_block = sm_metadata_dec_block, | ||
| 395 | .new_block = sm_metadata_new_block, | ||
| 396 | .commit = sm_metadata_commit, | ||
| 397 | .root_size = sm_metadata_root_size, | ||
| 398 | .copy_root = sm_metadata_copy_root | ||
| 399 | }; | ||
| 400 | |||
| 401 | /*----------------------------------------------------------------*/ | ||
| 402 | |||
| 403 | /* | ||
| 404 | * When a new space map is created that manages its own space. We use | ||
| 405 | * this tiny bootstrap allocator. | ||
| 406 | */ | ||
| 407 | static void sm_bootstrap_destroy(struct dm_space_map *sm) | ||
| 408 | { | ||
| 409 | } | ||
| 410 | |||
| 411 | static int sm_bootstrap_extend(struct dm_space_map *sm, dm_block_t extra_blocks) | ||
| 412 | { | ||
| 413 | DMERR("boostrap doesn't support extend"); | ||
| 414 | |||
| 415 | return -EINVAL; | ||
| 416 | } | ||
| 417 | |||
| 418 | static int sm_bootstrap_get_nr_blocks(struct dm_space_map *sm, dm_block_t *count) | ||
| 419 | { | ||
| 420 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 421 | |||
| 422 | return smm->ll.nr_blocks; | ||
| 423 | } | ||
| 424 | |||
| 425 | static int sm_bootstrap_get_nr_free(struct dm_space_map *sm, dm_block_t *count) | ||
| 426 | { | ||
| 427 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 428 | |||
| 429 | *count = smm->ll.nr_blocks - smm->begin; | ||
| 430 | |||
| 431 | return 0; | ||
| 432 | } | ||
| 433 | |||
| 434 | static int sm_bootstrap_get_count(struct dm_space_map *sm, dm_block_t b, | ||
| 435 | uint32_t *result) | ||
| 436 | { | ||
| 437 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 438 | |||
| 439 | return b < smm->begin ? 1 : 0; | ||
| 440 | } | ||
| 441 | |||
| 442 | static int sm_bootstrap_count_is_more_than_one(struct dm_space_map *sm, | ||
| 443 | dm_block_t b, int *result) | ||
| 444 | { | ||
| 445 | *result = 0; | ||
| 446 | |||
| 447 | return 0; | ||
| 448 | } | ||
| 449 | |||
| 450 | static int sm_bootstrap_set_count(struct dm_space_map *sm, dm_block_t b, | ||
| 451 | uint32_t count) | ||
| 452 | { | ||
| 453 | DMERR("boostrap doesn't support set_count"); | ||
| 454 | |||
| 455 | return -EINVAL; | ||
| 456 | } | ||
| 457 | |||
| 458 | static int sm_bootstrap_new_block(struct dm_space_map *sm, dm_block_t *b) | ||
| 459 | { | ||
| 460 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 461 | |||
| 462 | /* | ||
| 463 | * We know the entire device is unused. | ||
| 464 | */ | ||
| 465 | if (smm->begin == smm->ll.nr_blocks) | ||
| 466 | return -ENOSPC; | ||
| 467 | |||
| 468 | *b = smm->begin++; | ||
| 469 | |||
| 470 | return 0; | ||
| 471 | } | ||
| 472 | |||
| 473 | static int sm_bootstrap_inc_block(struct dm_space_map *sm, dm_block_t b) | ||
| 474 | { | ||
| 475 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 476 | |||
| 477 | return add_bop(smm, BOP_INC, b); | ||
| 478 | } | ||
| 479 | |||
| 480 | static int sm_bootstrap_dec_block(struct dm_space_map *sm, dm_block_t b) | ||
| 481 | { | ||
| 482 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 483 | |||
| 484 | return add_bop(smm, BOP_DEC, b); | ||
| 485 | } | ||
| 486 | |||
| 487 | static int sm_bootstrap_commit(struct dm_space_map *sm) | ||
| 488 | { | ||
| 489 | return 0; | ||
| 490 | } | ||
| 491 | |||
| 492 | static int sm_bootstrap_root_size(struct dm_space_map *sm, size_t *result) | ||
| 493 | { | ||
| 494 | DMERR("boostrap doesn't support root_size"); | ||
| 495 | |||
| 496 | return -EINVAL; | ||
| 497 | } | ||
| 498 | |||
| 499 | static int sm_bootstrap_copy_root(struct dm_space_map *sm, void *where, | ||
| 500 | size_t max) | ||
| 501 | { | ||
| 502 | DMERR("boostrap doesn't support copy_root"); | ||
| 503 | |||
| 504 | return -EINVAL; | ||
| 505 | } | ||
| 506 | |||
| 507 | static struct dm_space_map bootstrap_ops = { | ||
| 508 | .destroy = sm_bootstrap_destroy, | ||
| 509 | .extend = sm_bootstrap_extend, | ||
| 510 | .get_nr_blocks = sm_bootstrap_get_nr_blocks, | ||
| 511 | .get_nr_free = sm_bootstrap_get_nr_free, | ||
| 512 | .get_count = sm_bootstrap_get_count, | ||
| 513 | .count_is_more_than_one = sm_bootstrap_count_is_more_than_one, | ||
| 514 | .set_count = sm_bootstrap_set_count, | ||
| 515 | .inc_block = sm_bootstrap_inc_block, | ||
| 516 | .dec_block = sm_bootstrap_dec_block, | ||
| 517 | .new_block = sm_bootstrap_new_block, | ||
| 518 | .commit = sm_bootstrap_commit, | ||
| 519 | .root_size = sm_bootstrap_root_size, | ||
| 520 | .copy_root = sm_bootstrap_copy_root | ||
| 521 | }; | ||
| 522 | |||
| 523 | /*----------------------------------------------------------------*/ | ||
| 524 | |||
| 525 | struct dm_space_map *dm_sm_metadata_init(void) | ||
| 526 | { | ||
| 527 | struct sm_metadata *smm; | ||
| 528 | |||
| 529 | smm = kmalloc(sizeof(*smm), GFP_KERNEL); | ||
| 530 | if (!smm) | ||
| 531 | return ERR_PTR(-ENOMEM); | ||
| 532 | |||
| 533 | memcpy(&smm->sm, &ops, sizeof(smm->sm)); | ||
| 534 | |||
| 535 | return &smm->sm; | ||
| 536 | } | ||
| 537 | |||
| 538 | int dm_sm_metadata_create(struct dm_space_map *sm, | ||
| 539 | struct dm_transaction_manager *tm, | ||
| 540 | dm_block_t nr_blocks, | ||
| 541 | dm_block_t superblock) | ||
| 542 | { | ||
| 543 | int r; | ||
| 544 | dm_block_t i; | ||
| 545 | enum allocation_event ev; | ||
| 546 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 547 | |||
| 548 | smm->begin = superblock + 1; | ||
| 549 | smm->recursion_count = 0; | ||
| 550 | smm->allocated_this_transaction = 0; | ||
| 551 | smm->nr_uncommitted = 0; | ||
| 552 | |||
| 553 | memcpy(&smm->sm, &bootstrap_ops, sizeof(smm->sm)); | ||
| 554 | |||
| 555 | r = sm_ll_new_metadata(&smm->ll, tm); | ||
| 556 | if (r) | ||
| 557 | return r; | ||
| 558 | |||
| 559 | r = sm_ll_extend(&smm->ll, nr_blocks); | ||
| 560 | if (r) | ||
| 561 | return r; | ||
| 562 | |||
| 563 | memcpy(&smm->sm, &ops, sizeof(smm->sm)); | ||
| 564 | |||
| 565 | /* | ||
| 566 | * Now we need to update the newly created data structures with the | ||
| 567 | * allocated blocks that they were built from. | ||
| 568 | */ | ||
| 569 | for (i = superblock; !r && i < smm->begin; i++) | ||
| 570 | r = sm_ll_inc(&smm->ll, i, &ev); | ||
| 571 | |||
| 572 | if (r) | ||
| 573 | return r; | ||
| 574 | |||
| 575 | return sm_metadata_commit(sm); | ||
| 576 | } | ||
| 577 | |||
| 578 | int dm_sm_metadata_open(struct dm_space_map *sm, | ||
| 579 | struct dm_transaction_manager *tm, | ||
| 580 | void *root_le, size_t len) | ||
| 581 | { | ||
| 582 | int r; | ||
| 583 | struct sm_metadata *smm = container_of(sm, struct sm_metadata, sm); | ||
| 584 | |||
| 585 | r = sm_ll_open_metadata(&smm->ll, tm, root_le, len); | ||
| 586 | if (r) | ||
| 587 | return r; | ||
| 588 | |||
| 589 | smm->begin = 0; | ||
| 590 | smm->recursion_count = 0; | ||
| 591 | smm->allocated_this_transaction = 0; | ||
| 592 | smm->nr_uncommitted = 0; | ||
| 593 | |||
| 594 | memcpy(&smm->old_ll, &smm->ll, sizeof(smm->old_ll)); | ||
| 595 | return 0; | ||
| 596 | } | ||
diff --git a/drivers/md/persistent-data/dm-space-map-metadata.h b/drivers/md/persistent-data/dm-space-map-metadata.h new file mode 100644 index 000000000000..39bba0801cf2 --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map-metadata.h | |||
| @@ -0,0 +1,33 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef DM_SPACE_MAP_METADATA_H | ||
| 8 | #define DM_SPACE_MAP_METADATA_H | ||
| 9 | |||
| 10 | #include "dm-transaction-manager.h" | ||
| 11 | |||
| 12 | /* | ||
| 13 | * Unfortunately we have to use two-phase construction due to the cycle | ||
| 14 | * between the tm and sm. | ||
| 15 | */ | ||
| 16 | struct dm_space_map *dm_sm_metadata_init(void); | ||
| 17 | |||
| 18 | /* | ||
| 19 | * Create a fresh space map. | ||
| 20 | */ | ||
| 21 | int dm_sm_metadata_create(struct dm_space_map *sm, | ||
| 22 | struct dm_transaction_manager *tm, | ||
| 23 | dm_block_t nr_blocks, | ||
| 24 | dm_block_t superblock); | ||
| 25 | |||
| 26 | /* | ||
| 27 | * Open from a previously-recorded root. | ||
| 28 | */ | ||
| 29 | int dm_sm_metadata_open(struct dm_space_map *sm, | ||
| 30 | struct dm_transaction_manager *tm, | ||
| 31 | void *root_le, size_t len); | ||
| 32 | |||
| 33 | #endif /* DM_SPACE_MAP_METADATA_H */ | ||
diff --git a/drivers/md/persistent-data/dm-space-map.h b/drivers/md/persistent-data/dm-space-map.h new file mode 100644 index 000000000000..1cbfc6b1638a --- /dev/null +++ b/drivers/md/persistent-data/dm-space-map.h | |||
| @@ -0,0 +1,134 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef _LINUX_DM_SPACE_MAP_H | ||
| 8 | #define _LINUX_DM_SPACE_MAP_H | ||
| 9 | |||
| 10 | #include "dm-block-manager.h" | ||
| 11 | |||
| 12 | /* | ||
| 13 | * struct dm_space_map keeps a record of how many times each block in a device | ||
| 14 | * is referenced. It needs to be fixed on disk as part of the transaction. | ||
| 15 | */ | ||
| 16 | struct dm_space_map { | ||
| 17 | void (*destroy)(struct dm_space_map *sm); | ||
| 18 | |||
| 19 | /* | ||
| 20 | * You must commit before allocating the newly added space. | ||
| 21 | */ | ||
| 22 | int (*extend)(struct dm_space_map *sm, dm_block_t extra_blocks); | ||
| 23 | |||
| 24 | /* | ||
| 25 | * Extensions do not appear in this count until after commit has | ||
| 26 | * been called. | ||
| 27 | */ | ||
| 28 | int (*get_nr_blocks)(struct dm_space_map *sm, dm_block_t *count); | ||
| 29 | |||
| 30 | /* | ||
| 31 | * Space maps must never allocate a block from the previous | ||
| 32 | * transaction, in case we need to rollback. This complicates the | ||
| 33 | * semantics of get_nr_free(), it should return the number of blocks | ||
| 34 | * that are available for allocation _now_. For instance you may | ||
| 35 | * have blocks with a zero reference count that will not be | ||
| 36 | * available for allocation until after the next commit. | ||
| 37 | */ | ||
| 38 | int (*get_nr_free)(struct dm_space_map *sm, dm_block_t *count); | ||
| 39 | |||
| 40 | int (*get_count)(struct dm_space_map *sm, dm_block_t b, uint32_t *result); | ||
| 41 | int (*count_is_more_than_one)(struct dm_space_map *sm, dm_block_t b, | ||
| 42 | int *result); | ||
| 43 | int (*set_count)(struct dm_space_map *sm, dm_block_t b, uint32_t count); | ||
| 44 | |||
| 45 | int (*commit)(struct dm_space_map *sm); | ||
| 46 | |||
| 47 | int (*inc_block)(struct dm_space_map *sm, dm_block_t b); | ||
| 48 | int (*dec_block)(struct dm_space_map *sm, dm_block_t b); | ||
| 49 | |||
| 50 | /* | ||
| 51 | * new_block will increment the returned block. | ||
| 52 | */ | ||
| 53 | int (*new_block)(struct dm_space_map *sm, dm_block_t *b); | ||
| 54 | |||
| 55 | /* | ||
| 56 | * The root contains all the information needed to fix the space map. | ||
| 57 | * Generally this info is small, so squirrel it away in a disk block | ||
| 58 | * along with other info. | ||
| 59 | */ | ||
| 60 | int (*root_size)(struct dm_space_map *sm, size_t *result); | ||
| 61 | int (*copy_root)(struct dm_space_map *sm, void *copy_to_here_le, size_t len); | ||
| 62 | }; | ||
| 63 | |||
| 64 | /*----------------------------------------------------------------*/ | ||
| 65 | |||
| 66 | static inline void dm_sm_destroy(struct dm_space_map *sm) | ||
| 67 | { | ||
| 68 | sm->destroy(sm); | ||
| 69 | } | ||
| 70 | |||
| 71 | static inline int dm_sm_extend(struct dm_space_map *sm, dm_block_t extra_blocks) | ||
| 72 | { | ||
| 73 | return sm->extend(sm, extra_blocks); | ||
| 74 | } | ||
| 75 | |||
| 76 | static inline int dm_sm_get_nr_blocks(struct dm_space_map *sm, dm_block_t *count) | ||
| 77 | { | ||
| 78 | return sm->get_nr_blocks(sm, count); | ||
| 79 | } | ||
| 80 | |||
| 81 | static inline int dm_sm_get_nr_free(struct dm_space_map *sm, dm_block_t *count) | ||
| 82 | { | ||
| 83 | return sm->get_nr_free(sm, count); | ||
| 84 | } | ||
| 85 | |||
| 86 | static inline int dm_sm_get_count(struct dm_space_map *sm, dm_block_t b, | ||
| 87 | uint32_t *result) | ||
| 88 | { | ||
| 89 | return sm->get_count(sm, b, result); | ||
| 90 | } | ||
| 91 | |||
| 92 | static inline int dm_sm_count_is_more_than_one(struct dm_space_map *sm, | ||
| 93 | dm_block_t b, int *result) | ||
| 94 | { | ||
| 95 | return sm->count_is_more_than_one(sm, b, result); | ||
| 96 | } | ||
| 97 | |||
| 98 | static inline int dm_sm_set_count(struct dm_space_map *sm, dm_block_t b, | ||
| 99 | uint32_t count) | ||
| 100 | { | ||
| 101 | return sm->set_count(sm, b, count); | ||
| 102 | } | ||
| 103 | |||
| 104 | static inline int dm_sm_commit(struct dm_space_map *sm) | ||
| 105 | { | ||
| 106 | return sm->commit(sm); | ||
| 107 | } | ||
| 108 | |||
| 109 | static inline int dm_sm_inc_block(struct dm_space_map *sm, dm_block_t b) | ||
| 110 | { | ||
| 111 | return sm->inc_block(sm, b); | ||
| 112 | } | ||
| 113 | |||
| 114 | static inline int dm_sm_dec_block(struct dm_space_map *sm, dm_block_t b) | ||
| 115 | { | ||
| 116 | return sm->dec_block(sm, b); | ||
| 117 | } | ||
| 118 | |||
| 119 | static inline int dm_sm_new_block(struct dm_space_map *sm, dm_block_t *b) | ||
| 120 | { | ||
| 121 | return sm->new_block(sm, b); | ||
| 122 | } | ||
| 123 | |||
| 124 | static inline int dm_sm_root_size(struct dm_space_map *sm, size_t *result) | ||
| 125 | { | ||
| 126 | return sm->root_size(sm, result); | ||
| 127 | } | ||
| 128 | |||
| 129 | static inline int dm_sm_copy_root(struct dm_space_map *sm, void *copy_to_here_le, size_t len) | ||
| 130 | { | ||
| 131 | return sm->copy_root(sm, copy_to_here_le, len); | ||
| 132 | } | ||
| 133 | |||
| 134 | #endif /* _LINUX_DM_SPACE_MAP_H */ | ||
diff --git a/drivers/md/persistent-data/dm-transaction-manager.c b/drivers/md/persistent-data/dm-transaction-manager.c new file mode 100644 index 000000000000..728e89a3f978 --- /dev/null +++ b/drivers/md/persistent-data/dm-transaction-manager.c | |||
| @@ -0,0 +1,400 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | #include "dm-transaction-manager.h" | ||
| 7 | #include "dm-space-map.h" | ||
| 8 | #include "dm-space-map-checker.h" | ||
| 9 | #include "dm-space-map-disk.h" | ||
| 10 | #include "dm-space-map-metadata.h" | ||
| 11 | #include "dm-persistent-data-internal.h" | ||
| 12 | |||
| 13 | #include <linux/module.h> | ||
| 14 | #include <linux/slab.h> | ||
| 15 | #include <linux/device-mapper.h> | ||
| 16 | |||
| 17 | #define DM_MSG_PREFIX "transaction manager" | ||
| 18 | |||
| 19 | /*----------------------------------------------------------------*/ | ||
| 20 | |||
| 21 | struct shadow_info { | ||
| 22 | struct hlist_node hlist; | ||
| 23 | dm_block_t where; | ||
| 24 | }; | ||
| 25 | |||
| 26 | /* | ||
| 27 | * It would be nice if we scaled with the size of transaction. | ||
| 28 | */ | ||
| 29 | #define HASH_SIZE 256 | ||
| 30 | #define HASH_MASK (HASH_SIZE - 1) | ||
| 31 | |||
| 32 | struct dm_transaction_manager { | ||
| 33 | int is_clone; | ||
| 34 | struct dm_transaction_manager *real; | ||
| 35 | |||
| 36 | struct dm_block_manager *bm; | ||
| 37 | struct dm_space_map *sm; | ||
| 38 | |||
| 39 | spinlock_t lock; | ||
| 40 | struct hlist_head buckets[HASH_SIZE]; | ||
| 41 | }; | ||
| 42 | |||
| 43 | /*----------------------------------------------------------------*/ | ||
| 44 | |||
| 45 | static int is_shadow(struct dm_transaction_manager *tm, dm_block_t b) | ||
| 46 | { | ||
| 47 | int r = 0; | ||
| 48 | unsigned bucket = dm_hash_block(b, HASH_MASK); | ||
| 49 | struct shadow_info *si; | ||
| 50 | struct hlist_node *n; | ||
| 51 | |||
| 52 | spin_lock(&tm->lock); | ||
| 53 | hlist_for_each_entry(si, n, tm->buckets + bucket, hlist) | ||
| 54 | if (si->where == b) { | ||
| 55 | r = 1; | ||
| 56 | break; | ||
| 57 | } | ||
| 58 | spin_unlock(&tm->lock); | ||
| 59 | |||
| 60 | return r; | ||
| 61 | } | ||
| 62 | |||
| 63 | /* | ||
| 64 | * This can silently fail if there's no memory. We're ok with this since | ||
| 65 | * creating redundant shadows causes no harm. | ||
| 66 | */ | ||
| 67 | static void insert_shadow(struct dm_transaction_manager *tm, dm_block_t b) | ||
| 68 | { | ||
| 69 | unsigned bucket; | ||
| 70 | struct shadow_info *si; | ||
| 71 | |||
| 72 | si = kmalloc(sizeof(*si), GFP_NOIO); | ||
| 73 | if (si) { | ||
| 74 | si->where = b; | ||
| 75 | bucket = dm_hash_block(b, HASH_MASK); | ||
| 76 | spin_lock(&tm->lock); | ||
| 77 | hlist_add_head(&si->hlist, tm->buckets + bucket); | ||
| 78 | spin_unlock(&tm->lock); | ||
| 79 | } | ||
| 80 | } | ||
| 81 | |||
| 82 | static void wipe_shadow_table(struct dm_transaction_manager *tm) | ||
| 83 | { | ||
| 84 | struct shadow_info *si; | ||
| 85 | struct hlist_node *n, *tmp; | ||
| 86 | struct hlist_head *bucket; | ||
| 87 | int i; | ||
| 88 | |||
| 89 | spin_lock(&tm->lock); | ||
| 90 | for (i = 0; i < HASH_SIZE; i++) { | ||
| 91 | bucket = tm->buckets + i; | ||
| 92 | hlist_for_each_entry_safe(si, n, tmp, bucket, hlist) | ||
| 93 | kfree(si); | ||
| 94 | |||
| 95 | INIT_HLIST_HEAD(bucket); | ||
| 96 | } | ||
| 97 | |||
| 98 | spin_unlock(&tm->lock); | ||
| 99 | } | ||
| 100 | |||
| 101 | /*----------------------------------------------------------------*/ | ||
| 102 | |||
| 103 | static struct dm_transaction_manager *dm_tm_create(struct dm_block_manager *bm, | ||
| 104 | struct dm_space_map *sm) | ||
| 105 | { | ||
| 106 | int i; | ||
| 107 | struct dm_transaction_manager *tm; | ||
| 108 | |||
| 109 | tm = kmalloc(sizeof(*tm), GFP_KERNEL); | ||
| 110 | if (!tm) | ||
| 111 | return ERR_PTR(-ENOMEM); | ||
| 112 | |||
| 113 | tm->is_clone = 0; | ||
| 114 | tm->real = NULL; | ||
| 115 | tm->bm = bm; | ||
| 116 | tm->sm = sm; | ||
| 117 | |||
| 118 | spin_lock_init(&tm->lock); | ||
| 119 | for (i = 0; i < HASH_SIZE; i++) | ||
| 120 | INIT_HLIST_HEAD(tm->buckets + i); | ||
| 121 | |||
| 122 | return tm; | ||
| 123 | } | ||
| 124 | |||
| 125 | struct dm_transaction_manager *dm_tm_create_non_blocking_clone(struct dm_transaction_manager *real) | ||
| 126 | { | ||
| 127 | struct dm_transaction_manager *tm; | ||
| 128 | |||
| 129 | tm = kmalloc(sizeof(*tm), GFP_KERNEL); | ||
| 130 | if (tm) { | ||
| 131 | tm->is_clone = 1; | ||
| 132 | tm->real = real; | ||
| 133 | } | ||
| 134 | |||
| 135 | return tm; | ||
| 136 | } | ||
| 137 | EXPORT_SYMBOL_GPL(dm_tm_create_non_blocking_clone); | ||
| 138 | |||
| 139 | void dm_tm_destroy(struct dm_transaction_manager *tm) | ||
| 140 | { | ||
| 141 | kfree(tm); | ||
| 142 | } | ||
| 143 | EXPORT_SYMBOL_GPL(dm_tm_destroy); | ||
| 144 | |||
| 145 | int dm_tm_pre_commit(struct dm_transaction_manager *tm) | ||
| 146 | { | ||
| 147 | int r; | ||
| 148 | |||
| 149 | if (tm->is_clone) | ||
| 150 | return -EWOULDBLOCK; | ||
| 151 | |||
| 152 | r = dm_sm_commit(tm->sm); | ||
| 153 | if (r < 0) | ||
| 154 | return r; | ||
| 155 | |||
| 156 | return 0; | ||
| 157 | } | ||
| 158 | EXPORT_SYMBOL_GPL(dm_tm_pre_commit); | ||
| 159 | |||
| 160 | int dm_tm_commit(struct dm_transaction_manager *tm, struct dm_block *root) | ||
| 161 | { | ||
| 162 | if (tm->is_clone) | ||
| 163 | return -EWOULDBLOCK; | ||
| 164 | |||
| 165 | wipe_shadow_table(tm); | ||
| 166 | |||
| 167 | return dm_bm_flush_and_unlock(tm->bm, root); | ||
| 168 | } | ||
| 169 | EXPORT_SYMBOL_GPL(dm_tm_commit); | ||
| 170 | |||
| 171 | int dm_tm_new_block(struct dm_transaction_manager *tm, | ||
| 172 | struct dm_block_validator *v, | ||
| 173 | struct dm_block **result) | ||
| 174 | { | ||
| 175 | int r; | ||
| 176 | dm_block_t new_block; | ||
| 177 | |||
| 178 | if (tm->is_clone) | ||
| 179 | return -EWOULDBLOCK; | ||
| 180 | |||
| 181 | r = dm_sm_new_block(tm->sm, &new_block); | ||
| 182 | if (r < 0) | ||
| 183 | return r; | ||
| 184 | |||
| 185 | r = dm_bm_write_lock_zero(tm->bm, new_block, v, result); | ||
| 186 | if (r < 0) { | ||
| 187 | dm_sm_dec_block(tm->sm, new_block); | ||
| 188 | return r; | ||
| 189 | } | ||
| 190 | |||
| 191 | /* | ||
| 192 | * New blocks count as shadows in that they don't need to be | ||
| 193 | * shadowed again. | ||
| 194 | */ | ||
| 195 | insert_shadow(tm, new_block); | ||
| 196 | |||
| 197 | return 0; | ||
| 198 | } | ||
| 199 | |||
| 200 | static int __shadow_block(struct dm_transaction_manager *tm, dm_block_t orig, | ||
| 201 | struct dm_block_validator *v, | ||
| 202 | struct dm_block **result) | ||
| 203 | { | ||
| 204 | int r; | ||
| 205 | dm_block_t new; | ||
| 206 | struct dm_block *orig_block; | ||
| 207 | |||
| 208 | r = dm_sm_new_block(tm->sm, &new); | ||
| 209 | if (r < 0) | ||
| 210 | return r; | ||
| 211 | |||
| 212 | r = dm_sm_dec_block(tm->sm, orig); | ||
| 213 | if (r < 0) | ||
| 214 | return r; | ||
| 215 | |||
| 216 | r = dm_bm_read_lock(tm->bm, orig, v, &orig_block); | ||
| 217 | if (r < 0) | ||
| 218 | return r; | ||
| 219 | |||
| 220 | r = dm_bm_unlock_move(orig_block, new); | ||
| 221 | if (r < 0) { | ||
| 222 | dm_bm_unlock(orig_block); | ||
| 223 | return r; | ||
| 224 | } | ||
| 225 | |||
| 226 | return dm_bm_write_lock(tm->bm, new, v, result); | ||
| 227 | } | ||
| 228 | |||
| 229 | int dm_tm_shadow_block(struct dm_transaction_manager *tm, dm_block_t orig, | ||
| 230 | struct dm_block_validator *v, struct dm_block **result, | ||
| 231 | int *inc_children) | ||
| 232 | { | ||
| 233 | int r; | ||
| 234 | |||
| 235 | if (tm->is_clone) | ||
| 236 | return -EWOULDBLOCK; | ||
| 237 | |||
| 238 | r = dm_sm_count_is_more_than_one(tm->sm, orig, inc_children); | ||
| 239 | if (r < 0) | ||
| 240 | return r; | ||
| 241 | |||
| 242 | if (is_shadow(tm, orig) && !*inc_children) | ||
| 243 | return dm_bm_write_lock(tm->bm, orig, v, result); | ||
| 244 | |||
| 245 | r = __shadow_block(tm, orig, v, result); | ||
| 246 | if (r < 0) | ||
| 247 | return r; | ||
| 248 | insert_shadow(tm, dm_block_location(*result)); | ||
| 249 | |||
| 250 | return r; | ||
| 251 | } | ||
| 252 | |||
| 253 | int dm_tm_read_lock(struct dm_transaction_manager *tm, dm_block_t b, | ||
| 254 | struct dm_block_validator *v, | ||
| 255 | struct dm_block **blk) | ||
| 256 | { | ||
| 257 | if (tm->is_clone) | ||
| 258 | return dm_bm_read_try_lock(tm->real->bm, b, v, blk); | ||
| 259 | |||
| 260 | return dm_bm_read_lock(tm->bm, b, v, blk); | ||
| 261 | } | ||
| 262 | |||
| 263 | int dm_tm_unlock(struct dm_transaction_manager *tm, struct dm_block *b) | ||
| 264 | { | ||
| 265 | return dm_bm_unlock(b); | ||
| 266 | } | ||
| 267 | EXPORT_SYMBOL_GPL(dm_tm_unlock); | ||
| 268 | |||
| 269 | void dm_tm_inc(struct dm_transaction_manager *tm, dm_block_t b) | ||
| 270 | { | ||
| 271 | /* | ||
| 272 | * The non-blocking clone doesn't support this. | ||
| 273 | */ | ||
| 274 | BUG_ON(tm->is_clone); | ||
| 275 | |||
| 276 | dm_sm_inc_block(tm->sm, b); | ||
| 277 | } | ||
| 278 | EXPORT_SYMBOL_GPL(dm_tm_inc); | ||
| 279 | |||
| 280 | void dm_tm_dec(struct dm_transaction_manager *tm, dm_block_t b) | ||
| 281 | { | ||
| 282 | /* | ||
| 283 | * The non-blocking clone doesn't support this. | ||
| 284 | */ | ||
| 285 | BUG_ON(tm->is_clone); | ||
| 286 | |||
| 287 | dm_sm_dec_block(tm->sm, b); | ||
| 288 | } | ||
| 289 | EXPORT_SYMBOL_GPL(dm_tm_dec); | ||
| 290 | |||
| 291 | int dm_tm_ref(struct dm_transaction_manager *tm, dm_block_t b, | ||
| 292 | uint32_t *result) | ||
| 293 | { | ||
| 294 | if (tm->is_clone) | ||
| 295 | return -EWOULDBLOCK; | ||
| 296 | |||
| 297 | return dm_sm_get_count(tm->sm, b, result); | ||
| 298 | } | ||
| 299 | |||
| 300 | struct dm_block_manager *dm_tm_get_bm(struct dm_transaction_manager *tm) | ||
| 301 | { | ||
| 302 | return tm->bm; | ||
| 303 | } | ||
| 304 | |||
| 305 | /*----------------------------------------------------------------*/ | ||
| 306 | |||
| 307 | static int dm_tm_create_internal(struct dm_block_manager *bm, | ||
| 308 | dm_block_t sb_location, | ||
| 309 | struct dm_block_validator *sb_validator, | ||
| 310 | size_t root_offset, size_t root_max_len, | ||
| 311 | struct dm_transaction_manager **tm, | ||
| 312 | struct dm_space_map **sm, | ||
| 313 | struct dm_block **sblock, | ||
| 314 | int create) | ||
| 315 | { | ||
| 316 | int r; | ||
| 317 | struct dm_space_map *inner; | ||
| 318 | |||
| 319 | inner = dm_sm_metadata_init(); | ||
| 320 | if (IS_ERR(inner)) | ||
| 321 | return PTR_ERR(inner); | ||
| 322 | |||
| 323 | *tm = dm_tm_create(bm, inner); | ||
| 324 | if (IS_ERR(*tm)) { | ||
| 325 | dm_sm_destroy(inner); | ||
| 326 | return PTR_ERR(*tm); | ||
| 327 | } | ||
| 328 | |||
| 329 | if (create) { | ||
| 330 | r = dm_bm_write_lock_zero(dm_tm_get_bm(*tm), sb_location, | ||
| 331 | sb_validator, sblock); | ||
| 332 | if (r < 0) { | ||
| 333 | DMERR("couldn't lock superblock"); | ||
| 334 | goto bad1; | ||
| 335 | } | ||
| 336 | |||
| 337 | r = dm_sm_metadata_create(inner, *tm, dm_bm_nr_blocks(bm), | ||
| 338 | sb_location); | ||
| 339 | if (r) { | ||
| 340 | DMERR("couldn't create metadata space map"); | ||
| 341 | goto bad2; | ||
| 342 | } | ||
| 343 | |||
| 344 | *sm = dm_sm_checker_create(inner); | ||
| 345 | if (!*sm) | ||
| 346 | goto bad2; | ||
| 347 | |||
| 348 | } else { | ||
| 349 | r = dm_bm_write_lock(dm_tm_get_bm(*tm), sb_location, | ||
| 350 | sb_validator, sblock); | ||
| 351 | if (r < 0) { | ||
| 352 | DMERR("couldn't lock superblock"); | ||
| 353 | goto bad1; | ||
| 354 | } | ||
| 355 | |||
| 356 | r = dm_sm_metadata_open(inner, *tm, | ||
| 357 | dm_block_data(*sblock) + root_offset, | ||
| 358 | root_max_len); | ||
| 359 | if (r) { | ||
| 360 | DMERR("couldn't open metadata space map"); | ||
| 361 | goto bad2; | ||
| 362 | } | ||
| 363 | |||
| 364 | *sm = dm_sm_checker_create(inner); | ||
| 365 | if (!*sm) | ||
| 366 | goto bad2; | ||
| 367 | } | ||
| 368 | |||
| 369 | return 0; | ||
| 370 | |||
| 371 | bad2: | ||
| 372 | dm_tm_unlock(*tm, *sblock); | ||
| 373 | bad1: | ||
| 374 | dm_tm_destroy(*tm); | ||
| 375 | dm_sm_destroy(inner); | ||
| 376 | return r; | ||
| 377 | } | ||
| 378 | |||
| 379 | int dm_tm_create_with_sm(struct dm_block_manager *bm, dm_block_t sb_location, | ||
| 380 | struct dm_block_validator *sb_validator, | ||
| 381 | struct dm_transaction_manager **tm, | ||
| 382 | struct dm_space_map **sm, struct dm_block **sblock) | ||
| 383 | { | ||
| 384 | return dm_tm_create_internal(bm, sb_location, sb_validator, | ||
| 385 | 0, 0, tm, sm, sblock, 1); | ||
| 386 | } | ||
| 387 | EXPORT_SYMBOL_GPL(dm_tm_create_with_sm); | ||
| 388 | |||
| 389 | int dm_tm_open_with_sm(struct dm_block_manager *bm, dm_block_t sb_location, | ||
| 390 | struct dm_block_validator *sb_validator, | ||
| 391 | size_t root_offset, size_t root_max_len, | ||
| 392 | struct dm_transaction_manager **tm, | ||
| 393 | struct dm_space_map **sm, struct dm_block **sblock) | ||
| 394 | { | ||
| 395 | return dm_tm_create_internal(bm, sb_location, sb_validator, root_offset, | ||
| 396 | root_max_len, tm, sm, sblock, 0); | ||
| 397 | } | ||
| 398 | EXPORT_SYMBOL_GPL(dm_tm_open_with_sm); | ||
| 399 | |||
| 400 | /*----------------------------------------------------------------*/ | ||
diff --git a/drivers/md/persistent-data/dm-transaction-manager.h b/drivers/md/persistent-data/dm-transaction-manager.h new file mode 100644 index 000000000000..6da784871db4 --- /dev/null +++ b/drivers/md/persistent-data/dm-transaction-manager.h | |||
| @@ -0,0 +1,130 @@ | |||
| 1 | /* | ||
| 2 | * Copyright (C) 2011 Red Hat, Inc. | ||
| 3 | * | ||
| 4 | * This file is released under the GPL. | ||
| 5 | */ | ||
| 6 | |||
| 7 | #ifndef _LINUX_DM_TRANSACTION_MANAGER_H | ||
| 8 | #define _LINUX_DM_TRANSACTION_MANAGER_H | ||
| 9 | |||
| 10 | #include "dm-block-manager.h" | ||
| 11 | |||
| 12 | struct dm_transaction_manager; | ||
| 13 | struct dm_space_map; | ||
| 14 | |||
| 15 | /*----------------------------------------------------------------*/ | ||
| 16 | |||
| 17 | /* | ||
| 18 | * This manages the scope of a transaction. It also enforces immutability | ||
| 19 | * of the on-disk data structures by limiting access to writeable blocks. | ||
| 20 | * | ||
| 21 | * Clients should not fiddle with the block manager directly. | ||
| 22 | */ | ||
| 23 | |||
| 24 | void dm_tm_destroy(struct dm_transaction_manager *tm); | ||
| 25 | |||
| 26 | /* | ||
| 27 | * The non-blocking version of a transaction manager is intended for use in | ||
| 28 | * fast path code that needs to do lookups e.g. a dm mapping function. | ||
| 29 | * You create the non-blocking variant from a normal tm. The interface is | ||
| 30 | * the same, except that most functions will just return -EWOULDBLOCK. | ||
| 31 | * Methods that return void yet may block should not be called on a clone | ||
| 32 | * viz. dm_tm_inc, dm_tm_dec. Call dm_tm_destroy() as you would with a normal | ||
| 33 | * tm when you've finished with it. You may not destroy the original prior | ||
| 34 | * to clones. | ||
| 35 | */ | ||
| 36 | struct dm_transaction_manager *dm_tm_create_non_blocking_clone(struct dm_transaction_manager *real); | ||
| 37 | |||
| 38 | /* | ||
| 39 | * We use a 2-phase commit here. | ||
| 40 | * | ||
| 41 | * i) In the first phase the block manager is told to start flushing, and | ||
| 42 | * the changes to the space map are written to disk. You should interrogate | ||
| 43 | * your particular space map to get detail of its root node etc. to be | ||
| 44 | * included in your superblock. | ||
| 45 | * | ||
| 46 | * ii) @root will be committed last. You shouldn't use more than the | ||
| 47 | * first 512 bytes of @root if you wish the transaction to survive a power | ||
| 48 | * failure. You *must* have a write lock held on @root for both stage (i) | ||
| 49 | * and (ii). The commit will drop the write lock. | ||
| 50 | */ | ||
| 51 | int dm_tm_pre_commit(struct dm_transaction_manager *tm); | ||
| 52 | int dm_tm_commit(struct dm_transaction_manager *tm, struct dm_block *root); | ||
| 53 | |||
| 54 | /* | ||
| 55 | * These methods are the only way to get hold of a writeable block. | ||
| 56 | */ | ||
| 57 | |||
| 58 | /* | ||
| 59 | * dm_tm_new_block() is pretty self-explanatory. Make sure you do actually | ||
| 60 | * write to the whole of @data before you unlock, otherwise you could get | ||
| 61 | * a data leak. (The other option is for tm_new_block() to zero new blocks | ||
| 62 | * before handing them out, which will be redundant in most, if not all, | ||
| 63 | * cases). | ||
| 64 | * Zeroes the new block and returns with write lock held. | ||
| 65 | */ | ||
| 66 | int dm_tm_new_block(struct dm_transaction_manager *tm, | ||
| 67 | struct dm_block_validator *v, | ||
| 68 | struct dm_block **result); | ||
| 69 | |||
| 70 | /* | ||
| 71 | * dm_tm_shadow_block() allocates a new block and copies the data from @orig | ||
| 72 | * to it. It then decrements the reference count on original block. Use | ||
| 73 | * this to update the contents of a block in a data structure, don't | ||
| 74 | * confuse this with a clone - you shouldn't access the orig block after | ||
| 75 | * this operation. Because the tm knows the scope of the transaction it | ||
| 76 | * can optimise requests for a shadow of a shadow to a no-op. Don't forget | ||
| 77 | * to unlock when you've finished with the shadow. | ||
| 78 | * | ||
| 79 | * The @inc_children flag is used to tell the caller whether it needs to | ||
| 80 | * adjust reference counts for children. (Data in the block may refer to | ||
| 81 | * other blocks.) | ||
| 82 | * | ||
| 83 | * Shadowing implicitly drops a reference on @orig so you must not have | ||
| 84 | * it locked when you call this. | ||
| 85 | */ | ||
| 86 | int dm_tm_shadow_block(struct dm_transaction_manager *tm, dm_block_t orig, | ||
| 87 | struct dm_block_validator *v, | ||
| 88 | struct dm_block **result, int *inc_children); | ||
| 89 | |||
| 90 | /* | ||
| 91 | * Read access. You can lock any block you want. If there's a write lock | ||
| 92 | * on it outstanding then it'll block. | ||
| 93 | */ | ||
| 94 | int dm_tm_read_lock(struct dm_transaction_manager *tm, dm_block_t b, | ||
| 95 | struct dm_block_validator *v, | ||
| 96 | struct dm_block **result); | ||
| 97 | |||
| 98 | int dm_tm_unlock(struct dm_transaction_manager *tm, struct dm_block *b); | ||
| 99 | |||
| 100 | /* | ||
| 101 | * Functions for altering the reference count of a block directly. | ||
| 102 | */ | ||
| 103 | void dm_tm_inc(struct dm_transaction_manager *tm, dm_block_t b); | ||
| 104 | |||
| 105 | void dm_tm_dec(struct dm_transaction_manager *tm, dm_block_t b); | ||
| 106 | |||
| 107 | int dm_tm_ref(struct dm_transaction_manager *tm, dm_block_t b, | ||
| 108 | uint32_t *result); | ||
| 109 | |||
| 110 | struct dm_block_manager *dm_tm_get_bm(struct dm_transaction_manager *tm); | ||
| 111 | |||
| 112 | /* | ||
| 113 | * A little utility that ties the knot by producing a transaction manager | ||
| 114 | * that has a space map managed by the transaction manager... | ||
| 115 | * | ||
| 116 | * Returns a tm that has an open transaction to write the new disk sm. | ||
| 117 | * Caller should store the new sm root and commit. | ||
| 118 | */ | ||
| 119 | int dm_tm_create_with_sm(struct dm_block_manager *bm, dm_block_t sb_location, | ||
| 120 | struct dm_block_validator *sb_validator, | ||
| 121 | struct dm_transaction_manager **tm, | ||
| 122 | struct dm_space_map **sm, struct dm_block **sblock); | ||
| 123 | |||
| 124 | int dm_tm_open_with_sm(struct dm_block_manager *bm, dm_block_t sb_location, | ||
| 125 | struct dm_block_validator *sb_validator, | ||
| 126 | size_t root_offset, size_t root_max_len, | ||
| 127 | struct dm_transaction_manager **tm, | ||
| 128 | struct dm_space_map **sm, struct dm_block **sblock); | ||
| 129 | |||
| 130 | #endif /* _LINUX_DM_TRANSACTION_MANAGER_H */ | ||
diff --git a/include/linux/device-mapper.h b/include/linux/device-mapper.h index 99e3e50b5c57..98f34b886f95 100644 --- a/include/linux/device-mapper.h +++ b/include/linux/device-mapper.h | |||
| @@ -10,6 +10,7 @@ | |||
| 10 | 10 | ||
| 11 | #include <linux/bio.h> | 11 | #include <linux/bio.h> |
| 12 | #include <linux/blkdev.h> | 12 | #include <linux/blkdev.h> |
| 13 | #include <linux/ratelimit.h> | ||
| 13 | 14 | ||
| 14 | struct dm_dev; | 15 | struct dm_dev; |
| 15 | struct dm_target; | 16 | struct dm_target; |
| @@ -127,10 +128,6 @@ void dm_put_device(struct dm_target *ti, struct dm_dev *d); | |||
| 127 | * Information about a target type | 128 | * Information about a target type |
| 128 | */ | 129 | */ |
| 129 | 130 | ||
| 130 | /* | ||
| 131 | * Target features | ||
| 132 | */ | ||
| 133 | |||
| 134 | struct target_type { | 131 | struct target_type { |
| 135 | uint64_t features; | 132 | uint64_t features; |
| 136 | const char *name; | 133 | const char *name; |
| @@ -159,6 +156,30 @@ struct target_type { | |||
| 159 | struct list_head list; | 156 | struct list_head list; |
| 160 | }; | 157 | }; |
| 161 | 158 | ||
| 159 | /* | ||
| 160 | * Target features | ||
| 161 | */ | ||
| 162 | |||
| 163 | /* | ||
| 164 | * Any table that contains an instance of this target must have only one. | ||
| 165 | */ | ||
| 166 | #define DM_TARGET_SINGLETON 0x00000001 | ||
| 167 | #define dm_target_needs_singleton(type) ((type)->features & DM_TARGET_SINGLETON) | ||
| 168 | |||
| 169 | /* | ||
| 170 | * Indicates that a target does not support read-only devices. | ||
| 171 | */ | ||
| 172 | #define DM_TARGET_ALWAYS_WRITEABLE 0x00000002 | ||
| 173 | #define dm_target_always_writeable(type) \ | ||
| 174 | ((type)->features & DM_TARGET_ALWAYS_WRITEABLE) | ||
| 175 | |||
| 176 | /* | ||
| 177 | * Any device that contains a table with an instance of this target may never | ||
| 178 | * have tables containing any different target type. | ||
| 179 | */ | ||
| 180 | #define DM_TARGET_IMMUTABLE 0x00000004 | ||
| 181 | #define dm_target_is_immutable(type) ((type)->features & DM_TARGET_IMMUTABLE) | ||
| 182 | |||
| 162 | struct dm_target { | 183 | struct dm_target { |
| 163 | struct dm_table *table; | 184 | struct dm_table *table; |
| 164 | struct target_type *type; | 185 | struct target_type *type; |
| @@ -375,6 +396,14 @@ void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size); | |||
| 375 | *---------------------------------------------------------------*/ | 396 | *---------------------------------------------------------------*/ |
| 376 | #define DM_NAME "device-mapper" | 397 | #define DM_NAME "device-mapper" |
| 377 | 398 | ||
| 399 | #ifdef CONFIG_PRINTK | ||
| 400 | extern struct ratelimit_state dm_ratelimit_state; | ||
| 401 | |||
| 402 | #define dm_ratelimit() __ratelimit(&dm_ratelimit_state) | ||
| 403 | #else | ||
| 404 | #define dm_ratelimit() 0 | ||
| 405 | #endif | ||
| 406 | |||
| 378 | #define DMCRIT(f, arg...) \ | 407 | #define DMCRIT(f, arg...) \ |
| 379 | printk(KERN_CRIT DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) | 408 | printk(KERN_CRIT DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) |
| 380 | 409 | ||
| @@ -382,7 +411,7 @@ void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size); | |||
| 382 | printk(KERN_ERR DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) | 411 | printk(KERN_ERR DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) |
| 383 | #define DMERR_LIMIT(f, arg...) \ | 412 | #define DMERR_LIMIT(f, arg...) \ |
| 384 | do { \ | 413 | do { \ |
| 385 | if (printk_ratelimit()) \ | 414 | if (dm_ratelimit()) \ |
| 386 | printk(KERN_ERR DM_NAME ": " DM_MSG_PREFIX ": " \ | 415 | printk(KERN_ERR DM_NAME ": " DM_MSG_PREFIX ": " \ |
| 387 | f "\n", ## arg); \ | 416 | f "\n", ## arg); \ |
| 388 | } while (0) | 417 | } while (0) |
| @@ -391,7 +420,7 @@ void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size); | |||
| 391 | printk(KERN_WARNING DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) | 420 | printk(KERN_WARNING DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) |
| 392 | #define DMWARN_LIMIT(f, arg...) \ | 421 | #define DMWARN_LIMIT(f, arg...) \ |
| 393 | do { \ | 422 | do { \ |
| 394 | if (printk_ratelimit()) \ | 423 | if (dm_ratelimit()) \ |
| 395 | printk(KERN_WARNING DM_NAME ": " DM_MSG_PREFIX ": " \ | 424 | printk(KERN_WARNING DM_NAME ": " DM_MSG_PREFIX ": " \ |
| 396 | f "\n", ## arg); \ | 425 | f "\n", ## arg); \ |
| 397 | } while (0) | 426 | } while (0) |
| @@ -400,7 +429,7 @@ void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size); | |||
| 400 | printk(KERN_INFO DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) | 429 | printk(KERN_INFO DM_NAME ": " DM_MSG_PREFIX ": " f "\n", ## arg) |
| 401 | #define DMINFO_LIMIT(f, arg...) \ | 430 | #define DMINFO_LIMIT(f, arg...) \ |
| 402 | do { \ | 431 | do { \ |
| 403 | if (printk_ratelimit()) \ | 432 | if (dm_ratelimit()) \ |
| 404 | printk(KERN_INFO DM_NAME ": " DM_MSG_PREFIX ": " f \ | 433 | printk(KERN_INFO DM_NAME ": " DM_MSG_PREFIX ": " f \ |
| 405 | "\n", ## arg); \ | 434 | "\n", ## arg); \ |
| 406 | } while (0) | 435 | } while (0) |
| @@ -410,7 +439,7 @@ void *dm_vcalloc(unsigned long nmemb, unsigned long elem_size); | |||
| 410 | printk(KERN_DEBUG DM_NAME ": " DM_MSG_PREFIX " DEBUG: " f "\n", ## arg) | 439 | printk(KERN_DEBUG DM_NAME ": " DM_MSG_PREFIX " DEBUG: " f "\n", ## arg) |
| 411 | # define DMDEBUG_LIMIT(f, arg...) \ | 440 | # define DMDEBUG_LIMIT(f, arg...) \ |
| 412 | do { \ | 441 | do { \ |
| 413 | if (printk_ratelimit()) \ | 442 | if (dm_ratelimit()) \ |
| 414 | printk(KERN_DEBUG DM_NAME ": " DM_MSG_PREFIX ": " f \ | 443 | printk(KERN_DEBUG DM_NAME ": " DM_MSG_PREFIX ": " f \ |
| 415 | "\n", ## arg); \ | 444 | "\n", ## arg); \ |
| 416 | } while (0) | 445 | } while (0) |
diff --git a/include/linux/dm-ioctl.h b/include/linux/dm-ioctl.h index 0cb8eff76bd6..75fd5573516e 100644 --- a/include/linux/dm-ioctl.h +++ b/include/linux/dm-ioctl.h | |||
| @@ -267,9 +267,9 @@ enum { | |||
| 267 | #define DM_DEV_SET_GEOMETRY _IOWR(DM_IOCTL, DM_DEV_SET_GEOMETRY_CMD, struct dm_ioctl) | 267 | #define DM_DEV_SET_GEOMETRY _IOWR(DM_IOCTL, DM_DEV_SET_GEOMETRY_CMD, struct dm_ioctl) |
| 268 | 268 | ||
| 269 | #define DM_VERSION_MAJOR 4 | 269 | #define DM_VERSION_MAJOR 4 |
| 270 | #define DM_VERSION_MINOR 21 | 270 | #define DM_VERSION_MINOR 22 |
| 271 | #define DM_VERSION_PATCHLEVEL 0 | 271 | #define DM_VERSION_PATCHLEVEL 0 |
| 272 | #define DM_VERSION_EXTRA "-ioctl (2011-07-06)" | 272 | #define DM_VERSION_EXTRA "-ioctl (2011-10-19)" |
| 273 | 273 | ||
| 274 | /* Status bits */ | 274 | /* Status bits */ |
| 275 | #define DM_READONLY_FLAG (1 << 0) /* In/Out */ | 275 | #define DM_READONLY_FLAG (1 << 0) /* In/Out */ |
diff --git a/include/linux/dm-kcopyd.h b/include/linux/dm-kcopyd.h index 5e54458e920f..47d9d376e4e7 100644 --- a/include/linux/dm-kcopyd.h +++ b/include/linux/dm-kcopyd.h | |||
| @@ -57,5 +57,9 @@ void *dm_kcopyd_prepare_callback(struct dm_kcopyd_client *kc, | |||
| 57 | dm_kcopyd_notify_fn fn, void *context); | 57 | dm_kcopyd_notify_fn fn, void *context); |
| 58 | void dm_kcopyd_do_callback(void *job, int read_err, unsigned long write_err); | 58 | void dm_kcopyd_do_callback(void *job, int read_err, unsigned long write_err); |
| 59 | 59 | ||
| 60 | int dm_kcopyd_zero(struct dm_kcopyd_client *kc, | ||
| 61 | unsigned num_dests, struct dm_io_region *dests, | ||
| 62 | unsigned flags, dm_kcopyd_notify_fn fn, void *context); | ||
| 63 | |||
| 60 | #endif /* __KERNEL__ */ | 64 | #endif /* __KERNEL__ */ |
| 61 | #endif /* _LINUX_DM_KCOPYD_H */ | 65 | #endif /* _LINUX_DM_KCOPYD_H */ |
diff --git a/include/linux/dm-log-userspace.h b/include/linux/dm-log-userspace.h index eeace7d3ff15..0678c2adc421 100644 --- a/include/linux/dm-log-userspace.h +++ b/include/linux/dm-log-userspace.h | |||
| @@ -52,15 +52,20 @@ | |||
| 52 | * Payload-to-userspace: | 52 | * Payload-to-userspace: |
| 53 | * A single string containing all the argv arguments separated by ' 's | 53 | * A single string containing all the argv arguments separated by ' 's |
| 54 | * Payload-to-kernel: | 54 | * Payload-to-kernel: |
| 55 | * None. ('data_size' in the dm_ulog_request struct should be 0.) | 55 | * A NUL-terminated string that is the name of the device that is used |
| 56 | * as the backing store for the log data. 'dm_get_device' will be called | ||
| 57 | * on this device. ('dm_put_device' will be called on this device | ||
| 58 | * automatically after calling DM_ULOG_DTR.) If there is no device needed | ||
| 59 | * for log data, 'data_size' in the dm_ulog_request struct should be 0. | ||
| 56 | * | 60 | * |
| 57 | * The UUID contained in the dm_ulog_request structure is the reference that | 61 | * The UUID contained in the dm_ulog_request structure is the reference that |
| 58 | * will be used by all request types to a specific log. The constructor must | 62 | * will be used by all request types to a specific log. The constructor must |
| 59 | * record this assotiation with instance created. | 63 | * record this association with the instance created. |
| 60 | * | 64 | * |
| 61 | * When the request has been processed, user-space must return the | 65 | * When the request has been processed, user-space must return the |
| 62 | * dm_ulog_request to the kernel - setting the 'error' field and | 66 | * dm_ulog_request to the kernel - setting the 'error' field, filling the |
| 63 | * 'data_size' appropriately. | 67 | * data field with the log device if necessary, and setting 'data_size' |
| 68 | * appropriately. | ||
| 64 | */ | 69 | */ |
| 65 | #define DM_ULOG_CTR 1 | 70 | #define DM_ULOG_CTR 1 |
| 66 | 71 | ||
| @@ -377,8 +382,11 @@ | |||
| 377 | * dm_ulog_request or a change in the way requests are | 382 | * dm_ulog_request or a change in the way requests are |
| 378 | * issued/handled. Changes are outlined here: | 383 | * issued/handled. Changes are outlined here: |
| 379 | * version 1: Initial implementation | 384 | * version 1: Initial implementation |
| 385 | * version 2: DM_ULOG_CTR allowed to return a string containing a | ||
| 386 | * device name that is to be registered with DM via | ||
| 387 | * 'dm_get_device'. | ||
| 380 | */ | 388 | */ |
| 381 | #define DM_ULOG_REQUEST_VERSION 1 | 389 | #define DM_ULOG_REQUEST_VERSION 2 |
| 382 | 390 | ||
| 383 | struct dm_ulog_request { | 391 | struct dm_ulog_request { |
| 384 | /* | 392 | /* |
