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path: root/fs/btrfs/dev-replace.c
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/*
 * Copyright (C) STRATO AG 2012.  All rights reserved.
 *
 * This program is free software; you can redistribute it and/or
 * modify it under the terms of the GNU General Public
 * License v2 as published by the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * General Public License for more details.
 *
 * You should have received a copy of the GNU General Public
 * License along with this program; if not, write to the
 * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
 * Boston, MA 021110-1307, USA.
 */
#include <linux/sched.h>
#include <linux/bio.h>
#include <linux/slab.h>
#include <linux/buffer_head.h>
#include <linux/blkdev.h>
#include <linux/random.h>
#include <linux/iocontext.h>
#include <linux/capability.h>
#include <linux/kthread.h>
#include <linux/math64.h>
#include <asm/div64.h>
#include "ctree.h"
#include "extent_map.h"
#include "disk-io.h"
#include "transaction.h"
#include "print-tree.h"
#include "volumes.h"
#include "async-thread.h"
#include "check-integrity.h"
#include "rcu-string.h"
#include "dev-replace.h"

static int btrfs_dev_replace_finishing(struct btrfs_fs_info *fs_info,
				       int scrub_ret);
static void btrfs_dev_replace_update_device_in_mapping_tree(
						struct btrfs_fs_info *fs_info,
						struct btrfs_device *srcdev,
						struct btrfs_device *tgtdev);
static int btrfs_dev_replace_find_srcdev(struct btrfs_root *root, u64 srcdevid,
					 char *srcdev_name,
					 struct btrfs_device **device);
static u64 __btrfs_dev_replace_cancel(struct btrfs_fs_info *fs_info);
static int btrfs_dev_replace_kthread(void *data);
static int btrfs_dev_replace_continue_on_mount(struct btrfs_fs_info *fs_info);


int btrfs_init_dev_replace(struct btrfs_fs_info *fs_info)
{
	struct btrfs_key key;
	struct btrfs_root *dev_root = fs_info->dev_root;
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	struct extent_buffer *eb;
	int slot;
	int ret = 0;
	struct btrfs_path *path = NULL;
	int item_size;
	struct btrfs_dev_replace_item *ptr;
	u64 src_devid;

	path = btrfs_alloc_path();
	if (!path) {
		ret = -ENOMEM;
		goto out;
	}

	key.objectid = 0;
	key.type = BTRFS_DEV_REPLACE_KEY;
	key.offset = 0;
	ret = btrfs_search_slot(NULL, dev_root, &key, path, 0, 0);
	if (ret) {
no_valid_dev_replace_entry_found:
		ret = 0;
		dev_replace->replace_state =
			BTRFS_DEV_REPLACE_ITEM_STATE_NEVER_STARTED;
		dev_replace->cont_reading_from_srcdev_mode =
		    BTRFS_DEV_REPLACE_ITEM_CONT_READING_FROM_SRCDEV_MODE_ALWAYS;
		dev_replace->replace_state = 0;
		dev_replace->time_started = 0;
		dev_replace->time_stopped = 0;
		atomic64_set(&dev_replace->num_write_errors, 0);
		atomic64_set(&dev_replace->num_uncorrectable_read_errors, 0);
		dev_replace->cursor_left = 0;
		dev_replace->committed_cursor_left = 0;
		dev_replace->cursor_left_last_write_of_item = 0;
		dev_replace->cursor_right = 0;
		dev_replace->srcdev = NULL;
		dev_replace->tgtdev = NULL;
		dev_replace->is_valid = 0;
		dev_replace->item_needs_writeback = 0;
		goto out;
	}
	slot = path->slots[0];
	eb = path->nodes[0];
	item_size = btrfs_item_size_nr(eb, slot);
	ptr = btrfs_item_ptr(eb, slot, struct btrfs_dev_replace_item);

	if (item_size != sizeof(struct btrfs_dev_replace_item)) {
		btrfs_warn(fs_info,
			"dev_replace entry found has unexpected size, ignore entry");
		goto no_valid_dev_replace_entry_found;
	}

	src_devid = btrfs_dev_replace_src_devid(eb, ptr);
	dev_replace->cont_reading_from_srcdev_mode =
		btrfs_dev_replace_cont_reading_from_srcdev_mode(eb, ptr);
	dev_replace->replace_state = btrfs_dev_replace_replace_state(eb, ptr);
	dev_replace->time_started = btrfs_dev_replace_time_started(eb, ptr);
	dev_replace->time_stopped =
		btrfs_dev_replace_time_stopped(eb, ptr);
	atomic64_set(&dev_replace->num_write_errors,
		     btrfs_dev_replace_num_write_errors(eb, ptr));
	atomic64_set(&dev_replace->num_uncorrectable_read_errors,
		     btrfs_dev_replace_num_uncorrectable_read_errors(eb, ptr));
	dev_replace->cursor_left = btrfs_dev_replace_cursor_left(eb, ptr);
	dev_replace->committed_cursor_left = dev_replace->cursor_left;
	dev_replace->cursor_left_last_write_of_item = dev_replace->cursor_left;
	dev_replace->cursor_right = btrfs_dev_replace_cursor_right(eb, ptr);
	dev_replace->is_valid = 1;

	dev_replace->item_needs_writeback = 0;
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		dev_replace->srcdev = NULL;
		dev_replace->tgtdev = NULL;
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		dev_replace->srcdev = btrfs_find_device(fs_info, src_devid,
							NULL, NULL);
		dev_replace->tgtdev = btrfs_find_device(fs_info,
							BTRFS_DEV_REPLACE_DEVID,
							NULL, NULL);
		/*
		 * allow 'btrfs dev replace_cancel' if src/tgt device is
		 * missing
		 */
		if (!dev_replace->srcdev &&
		    !btrfs_test_opt(dev_root, DEGRADED)) {
			ret = -EIO;
			btrfs_warn(fs_info,
			   "cannot mount because device replace operation is ongoing and");
			btrfs_warn(fs_info,
			   "srcdev (devid %llu) is missing, need to run 'btrfs dev scan'?",
			   src_devid);
		}
		if (!dev_replace->tgtdev &&
		    !btrfs_test_opt(dev_root, DEGRADED)) {
			ret = -EIO;
			btrfs_warn(fs_info,
			   "cannot mount because device replace operation is ongoing and");
			btrfs_warn(fs_info,
			   "tgtdev (devid %llu) is missing, need to run 'btrfs dev scan'?",
				BTRFS_DEV_REPLACE_DEVID);
		}
		if (dev_replace->tgtdev) {
			if (dev_replace->srcdev) {
				dev_replace->tgtdev->total_bytes =
					dev_replace->srcdev->total_bytes;
				dev_replace->tgtdev->disk_total_bytes =
					dev_replace->srcdev->disk_total_bytes;
				dev_replace->tgtdev->bytes_used =
					dev_replace->srcdev->bytes_used;
			}
			dev_replace->tgtdev->is_tgtdev_for_dev_replace = 1;
			btrfs_init_dev_replace_tgtdev_for_resume(fs_info,
				dev_replace->tgtdev);
		}
		break;
	}

out:
	if (path)
		btrfs_free_path(path);
	return ret;
}

/*
 * called from commit_transaction. Writes changed device replace state to
 * disk.
 */
int btrfs_run_dev_replace(struct btrfs_trans_handle *trans,
			  struct btrfs_fs_info *fs_info)
{
	int ret;
	struct btrfs_root *dev_root = fs_info->dev_root;
	struct btrfs_path *path;
	struct btrfs_key key;
	struct extent_buffer *eb;
	struct btrfs_dev_replace_item *ptr;
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;

	btrfs_dev_replace_lock(dev_replace);
	if (!dev_replace->is_valid ||
	    !dev_replace->item_needs_writeback) {
		btrfs_dev_replace_unlock(dev_replace);
		return 0;
	}
	btrfs_dev_replace_unlock(dev_replace);

	key.objectid = 0;
	key.type = BTRFS_DEV_REPLACE_KEY;
	key.offset = 0;

	path = btrfs_alloc_path();
	if (!path) {
		ret = -ENOMEM;
		goto out;
	}
	ret = btrfs_search_slot(trans, dev_root, &key, path, -1, 1);
	if (ret < 0) {
		btrfs_warn(fs_info, "error %d while searching for dev_replace item!",
			ret);
		goto out;
	}

	if (ret == 0 &&
	    btrfs_item_size_nr(path->nodes[0], path->slots[0]) < sizeof(*ptr)) {
		/*
		 * need to delete old one and insert a new one.
		 * Since no attempt is made to recover any old state, if the
		 * dev_replace state is 'running', the data on the target
		 * drive is lost.
		 * It would be possible to recover the state: just make sure
		 * that the beginning of the item is never changed and always
		 * contains all the essential information. Then read this
		 * minimal set of information and use it as a base for the
		 * new state.
		 */
		ret = btrfs_del_item(trans, dev_root, path);
		if (ret != 0) {
			btrfs_warn(fs_info, "delete too small dev_replace item failed %d!",
				ret);
			goto out;
		}
		ret = 1;
	}

	if (ret == 1) {
		/* need to insert a new item */
		btrfs_release_path(path);
		ret = btrfs_insert_empty_item(trans, dev_root, path,
					      &key, sizeof(*ptr));
		if (ret < 0) {
			btrfs_warn(fs_info, "insert dev_replace item failed %d!",
				ret);
			goto out;
		}
	}

	eb = path->nodes[0];
	ptr = btrfs_item_ptr(eb, path->slots[0],
			     struct btrfs_dev_replace_item);

	btrfs_dev_replace_lock(dev_replace);
	if (dev_replace->srcdev)
		btrfs_set_dev_replace_src_devid(eb, ptr,
			dev_replace->srcdev->devid);
	else
		btrfs_set_dev_replace_src_devid(eb, ptr, (u64)-1);
	btrfs_set_dev_replace_cont_reading_from_srcdev_mode(eb, ptr,
		dev_replace->cont_reading_from_srcdev_mode);
	btrfs_set_dev_replace_replace_state(eb, ptr,
		dev_replace->replace_state);
	btrfs_set_dev_replace_time_started(eb, ptr, dev_replace->time_started);
	btrfs_set_dev_replace_time_stopped(eb, ptr, dev_replace->time_stopped);
	btrfs_set_dev_replace_num_write_errors(eb, ptr,
		atomic64_read(&dev_replace->num_write_errors));
	btrfs_set_dev_replace_num_uncorrectable_read_errors(eb, ptr,
		atomic64_read(&dev_replace->num_uncorrectable_read_errors));
	dev_replace->cursor_left_last_write_of_item =
		dev_replace->cursor_left;
	btrfs_set_dev_replace_cursor_left(eb, ptr,
		dev_replace->cursor_left_last_write_of_item);
	btrfs_set_dev_replace_cursor_right(eb, ptr,
		dev_replace->cursor_right);
	dev_replace->item_needs_writeback = 0;
	btrfs_dev_replace_unlock(dev_replace);

	btrfs_mark_buffer_dirty(eb);

out:
	btrfs_free_path(path);

	return ret;
}

void btrfs_after_dev_replace_commit(struct btrfs_fs_info *fs_info)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;

	dev_replace->committed_cursor_left =
		dev_replace->cursor_left_last_write_of_item;
}

int btrfs_dev_replace_start(struct btrfs_root *root,
			    struct btrfs_ioctl_dev_replace_args *args)
{
	struct btrfs_trans_handle *trans;
	struct btrfs_fs_info *fs_info = root->fs_info;
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	int ret;
	struct btrfs_device *tgt_device = NULL;
	struct btrfs_device *src_device = NULL;

	if (btrfs_fs_incompat(fs_info, RAID56)) {
		btrfs_warn(fs_info, "dev_replace cannot yet handle RAID5/RAID6");
		return -EINVAL;
	}

	switch (args->start.cont_reading_from_srcdev_mode) {
	case BTRFS_IOCTL_DEV_REPLACE_CONT_READING_FROM_SRCDEV_MODE_ALWAYS:
	case BTRFS_IOCTL_DEV_REPLACE_CONT_READING_FROM_SRCDEV_MODE_AVOID:
		break;
	default:
		return -EINVAL;
	}

	if ((args->start.srcdevid == 0 && args->start.srcdev_name[0] == '\0') ||
	    args->start.tgtdev_name[0] == '\0')
		return -EINVAL;

	mutex_lock(&fs_info->volume_mutex);
	ret = btrfs_init_dev_replace_tgtdev(root, args->start.tgtdev_name,
					    &tgt_device);
	if (ret) {
		btrfs_err(fs_info, "target device %s is invalid!",
		       args->start.tgtdev_name);
		mutex_unlock(&fs_info->volume_mutex);
		return -EINVAL;
	}

	ret = btrfs_dev_replace_find_srcdev(root, args->start.srcdevid,
					    args->start.srcdev_name,
					    &src_device);
	mutex_unlock(&fs_info->volume_mutex);
	if (ret) {
		ret = -EINVAL;
		goto leave_no_lock;
	}

	if (tgt_device->total_bytes < src_device->total_bytes) {
		btrfs_err(fs_info, "target device is smaller than source device!");
		ret = -EINVAL;
		goto leave_no_lock;
	}

	btrfs_dev_replace_lock(dev_replace);
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		args->result = BTRFS_IOCTL_DEV_REPLACE_RESULT_ALREADY_STARTED;
		goto leave;
	}

	dev_replace->cont_reading_from_srcdev_mode =
		args->start.cont_reading_from_srcdev_mode;
	WARN_ON(!src_device);
	dev_replace->srcdev = src_device;
	WARN_ON(!tgt_device);
	dev_replace->tgtdev = tgt_device;

	printk_in_rcu(KERN_INFO
		      "BTRFS: dev_replace from %s (devid %llu) to %s started\n",
		      src_device->missing ? "<missing disk>" :
		        rcu_str_deref(src_device->name),
		      src_device->devid,
		      rcu_str_deref(tgt_device->name));

	tgt_device->total_bytes = src_device->total_bytes;
	tgt_device->disk_total_bytes = src_device->disk_total_bytes;
	tgt_device->bytes_used = src_device->bytes_used;

	/*
	 * from now on, the writes to the srcdev are all duplicated to
	 * go to the tgtdev as well (refer to btrfs_map_block()).
	 */
	dev_replace->replace_state = BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED;
	dev_replace->time_started = get_seconds();
	dev_replace->cursor_left = 0;
	dev_replace->committed_cursor_left = 0;
	dev_replace->cursor_left_last_write_of_item = 0;
	dev_replace->cursor_right = 0;
	dev_replace->is_valid = 1;
	dev_replace->item_needs_writeback = 1;
	args->result = BTRFS_IOCTL_DEV_REPLACE_RESULT_NO_ERROR;
	btrfs_dev_replace_unlock(dev_replace);

	btrfs_wait_ordered_roots(root->fs_info, -1);

	/* force writing the updated state information to disk */
	trans = btrfs_start_transaction(root, 0);
	if (IS_ERR(trans)) {
		ret = PTR_ERR(trans);
		btrfs_dev_replace_lock(dev_replace);
		goto leave;
	}

	ret = btrfs_commit_transaction(trans, root);
	WARN_ON(ret);

	/* the disk copy procedure reuses the scrub code */
	ret = btrfs_scrub_dev(fs_info, src_device->devid, 0,
			      src_device->total_bytes,
			      &dev_replace->scrub_progress, 0, 1);

	ret = btrfs_dev_replace_finishing(root->fs_info, ret);
	WARN_ON(ret);

	return 0;

leave:
	dev_replace->srcdev = NULL;
	dev_replace->tgtdev = NULL;
	btrfs_dev_replace_unlock(dev_replace);
leave_no_lock:
	if (tgt_device)
		btrfs_destroy_dev_replace_tgtdev(fs_info, tgt_device);
	return ret;
}

/*
 * blocked until all flighting bios are finished.
 */
static void btrfs_rm_dev_replace_blocked(struct btrfs_fs_info *fs_info)
{
	s64 writers;
	DEFINE_WAIT(wait);

	set_bit(BTRFS_FS_STATE_DEV_REPLACING, &fs_info->fs_state);
	do {
		prepare_to_wait(&fs_info->replace_wait, &wait,
				TASK_UNINTERRUPTIBLE);
		writers = percpu_counter_sum(&fs_info->bio_counter);
		if (writers)
			schedule();
		finish_wait(&fs_info->replace_wait, &wait);
	} while (writers);
}

/*
 * we have removed target device, it is safe to allow new bios request.
 */
static void btrfs_rm_dev_replace_unblocked(struct btrfs_fs_info *fs_info)
{
	clear_bit(BTRFS_FS_STATE_DEV_REPLACING, &fs_info->fs_state);
	if (waitqueue_active(&fs_info->replace_wait))
		wake_up(&fs_info->replace_wait);
}

static int btrfs_dev_replace_finishing(struct btrfs_fs_info *fs_info,
				       int scrub_ret)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	struct btrfs_device *tgt_device;
	struct btrfs_device *src_device;
	struct btrfs_root *root = fs_info->tree_root;
	u8 uuid_tmp[BTRFS_UUID_SIZE];
	struct btrfs_trans_handle *trans;
	int ret = 0;

	/* don't allow cancel or unmount to disturb the finishing procedure */
	mutex_lock(&dev_replace->lock_finishing_cancel_unmount);

	btrfs_dev_replace_lock(dev_replace);
	/* was the operation canceled, or is it finished? */
	if (dev_replace->replace_state !=
	    BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED) {
		btrfs_dev_replace_unlock(dev_replace);
		mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
		return 0;
	}

	tgt_device = dev_replace->tgtdev;
	src_device = dev_replace->srcdev;
	btrfs_dev_replace_unlock(dev_replace);

	/*
	 * flush all outstanding I/O and inode extent mappings before the
	 * copy operation is declared as being finished
	 */
	ret = btrfs_start_delalloc_roots(root->fs_info, 0, -1);
	if (ret) {
		mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
		return ret;
	}
	btrfs_wait_ordered_roots(root->fs_info, -1);

	trans = btrfs_start_transaction(root, 0);
	if (IS_ERR(trans)) {
		mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
		return PTR_ERR(trans);
	}
	ret = btrfs_commit_transaction(trans, root);
	WARN_ON(ret);

	/* keep away write_all_supers() during the finishing procedure */
	mutex_lock(&root->fs_info->chunk_mutex);
	mutex_lock(&root->fs_info->fs_devices->device_list_mutex);
	btrfs_dev_replace_lock(dev_replace);
	dev_replace->replace_state =
		scrub_ret ? BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED
			  : BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED;
	dev_replace->tgtdev = NULL;
	dev_replace->srcdev = NULL;
	dev_replace->time_stopped = get_seconds();
	dev_replace->item_needs_writeback = 1;

	/* replace old device with new one in mapping tree */
	if (!scrub_ret) {
		btrfs_dev_replace_update_device_in_mapping_tree(fs_info,
								src_device,
								tgt_device);
	} else {
		printk_in_rcu(KERN_ERR
			      "BTRFS: btrfs_scrub_dev(%s, %llu, %s) failed %d\n",
			      src_device->missing ? "<missing disk>" :
			        rcu_str_deref(src_device->name),
			      src_device->devid,
			      rcu_str_deref(tgt_device->name), scrub_ret);
		btrfs_dev_replace_unlock(dev_replace);
		mutex_unlock(&root->fs_info->fs_devices->device_list_mutex);
		mutex_unlock(&root->fs_info->chunk_mutex);
		if (tgt_device)
			btrfs_destroy_dev_replace_tgtdev(fs_info, tgt_device);
		mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);

		return 0;
	}

	printk_in_rcu(KERN_INFO
		      "BTRFS: dev_replace from %s (devid %llu) to %s) finished\n",
		      src_device->missing ? "<missing disk>" :
		        rcu_str_deref(src_device->name),
		      src_device->devid,
		      rcu_str_deref(tgt_device->name));
	tgt_device->is_tgtdev_for_dev_replace = 0;
	tgt_device->devid = src_device->devid;
	src_device->devid = BTRFS_DEV_REPLACE_DEVID;
	tgt_device->bytes_used = src_device->bytes_used;
	memcpy(uuid_tmp, tgt_device->uuid, sizeof(uuid_tmp));
	memcpy(tgt_device->uuid, src_device->uuid, sizeof(tgt_device->uuid));
	memcpy(src_device->uuid, uuid_tmp, sizeof(src_device->uuid));
	tgt_device->total_bytes = src_device->total_bytes;
	tgt_device->disk_total_bytes = src_device->disk_total_bytes;
	tgt_device->bytes_used = src_device->bytes_used;
	if (fs_info->sb->s_bdev == src_device->bdev)
		fs_info->sb->s_bdev = tgt_device->bdev;
	if (fs_info->fs_devices->latest_bdev == src_device->bdev)
		fs_info->fs_devices->latest_bdev = tgt_device->bdev;
	list_add(&tgt_device->dev_alloc_list, &fs_info->fs_devices->alloc_list);

	btrfs_rm_dev_replace_blocked(fs_info);

	btrfs_rm_dev_replace_srcdev(fs_info, src_device);

	btrfs_rm_dev_replace_unblocked(fs_info);

	/*
	 * this is again a consistent state where no dev_replace procedure
	 * is running, the target device is part of the filesystem, the
	 * source device is not part of the filesystem anymore and its 1st
	 * superblock is scratched out so that it is no longer marked to
	 * belong to this filesystem.
	 */
	btrfs_dev_replace_unlock(dev_replace);
	mutex_unlock(&root->fs_info->fs_devices->device_list_mutex);
	mutex_unlock(&root->fs_info->chunk_mutex);

	/* write back the superblocks */
	trans = btrfs_start_transaction(root, 0);
	if (!IS_ERR(trans))
		btrfs_commit_transaction(trans, root);

	mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);

	return 0;
}

static void btrfs_dev_replace_update_device_in_mapping_tree(
						struct btrfs_fs_info *fs_info,
						struct btrfs_device *srcdev,
						struct btrfs_device *tgtdev)
{
	struct extent_map_tree *em_tree = &fs_info->mapping_tree.map_tree;
	struct extent_map *em;
	struct map_lookup *map;
	u64 start = 0;
	int i;

	write_lock(&em_tree->lock);
	do {
		em = lookup_extent_mapping(em_tree, start, (u64)-1);
		if (!em)
			break;
		map = (struct map_lookup *)em->bdev;
		for (i = 0; i < map->num_stripes; i++)
			if (srcdev == map->stripes[i].dev)
				map->stripes[i].dev = tgtdev;
		start = em->start + em->len;
		free_extent_map(em);
	} while (start);
	write_unlock(&em_tree->lock);
}

static int btrfs_dev_replace_find_srcdev(struct btrfs_root *root, u64 srcdevid,
					 char *srcdev_name,
					 struct btrfs_device **device)
{
	int ret;

	if (srcdevid) {
		ret = 0;
		*device = btrfs_find_device(root->fs_info, srcdevid, NULL,
					    NULL);
		if (!*device)
			ret = -ENOENT;
	} else {
		ret = btrfs_find_device_missing_or_by_path(root, srcdev_name,
							   device);
	}
	return ret;
}

void btrfs_dev_replace_status(struct btrfs_fs_info *fs_info,
			      struct btrfs_ioctl_dev_replace_args *args)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;

	btrfs_dev_replace_lock(dev_replace);
	/* even if !dev_replace_is_valid, the values are good enough for
	 * the replace_status ioctl */
	args->result = BTRFS_IOCTL_DEV_REPLACE_RESULT_NO_ERROR;
	args->status.replace_state = dev_replace->replace_state;
	args->status.time_started = dev_replace->time_started;
	args->status.time_stopped = dev_replace->time_stopped;
	args->status.num_write_errors =
		atomic64_read(&dev_replace->num_write_errors);
	args->status.num_uncorrectable_read_errors =
		atomic64_read(&dev_replace->num_uncorrectable_read_errors);
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		args->status.progress_1000 = 0;
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
		args->status.progress_1000 = 1000;
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		args->status.progress_1000 = div64_u64(dev_replace->cursor_left,
			div64_u64(dev_replace->srcdev->total_bytes, 1000));
		break;
	}
	btrfs_dev_replace_unlock(dev_replace);
}

int btrfs_dev_replace_cancel(struct btrfs_fs_info *fs_info,
			     struct btrfs_ioctl_dev_replace_args *args)
{
	args->result = __btrfs_dev_replace_cancel(fs_info);
	return 0;
}

static u64 __btrfs_dev_replace_cancel(struct btrfs_fs_info *fs_info)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	struct btrfs_device *tgt_device = NULL;
	struct btrfs_trans_handle *trans;
	struct btrfs_root *root = fs_info->tree_root;
	u64 result;
	int ret;

	if (fs_info->sb->s_flags & MS_RDONLY)
		return -EROFS;

	mutex_lock(&dev_replace->lock_finishing_cancel_unmount);
	btrfs_dev_replace_lock(dev_replace);
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		result = BTRFS_IOCTL_DEV_REPLACE_RESULT_NOT_STARTED;
		btrfs_dev_replace_unlock(dev_replace);
		goto leave;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		result = BTRFS_IOCTL_DEV_REPLACE_RESULT_NO_ERROR;
		tgt_device = dev_replace->tgtdev;
		dev_replace->tgtdev = NULL;
		dev_replace->srcdev = NULL;
		break;
	}
	dev_replace->replace_state = BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED;
	dev_replace->time_stopped = get_seconds();
	dev_replace->item_needs_writeback = 1;
	btrfs_dev_replace_unlock(dev_replace);
	btrfs_scrub_cancel(fs_info);

	trans = btrfs_start_transaction(root, 0);
	if (IS_ERR(trans)) {
		mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
		return PTR_ERR(trans);
	}
	ret = btrfs_commit_transaction(trans, root);
	WARN_ON(ret);
	if (tgt_device)
		btrfs_destroy_dev_replace_tgtdev(fs_info, tgt_device);

leave:
	mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
	return result;
}

void btrfs_dev_replace_suspend_for_unmount(struct btrfs_fs_info *fs_info)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;

	mutex_lock(&dev_replace->lock_finishing_cancel_unmount);
	btrfs_dev_replace_lock(dev_replace);
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
		dev_replace->replace_state =
			BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED;
		dev_replace->time_stopped = get_seconds();
		dev_replace->item_needs_writeback = 1;
		btrfs_info(fs_info, "suspending dev_replace for unmount");
		break;
	}

	btrfs_dev_replace_unlock(dev_replace);
	mutex_unlock(&dev_replace->lock_finishing_cancel_unmount);
}

/* resume dev_replace procedure that was interrupted by unmount */
int btrfs_resume_dev_replace_async(struct btrfs_fs_info *fs_info)
{
	struct task_struct *task;
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;

	btrfs_dev_replace_lock(dev_replace);
	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		btrfs_dev_replace_unlock(dev_replace);
		return 0;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
		break;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		dev_replace->replace_state =
			BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED;
		break;
	}
	if (!dev_replace->tgtdev || !dev_replace->tgtdev->bdev) {
		btrfs_info(fs_info, "cannot continue dev_replace, tgtdev is missing");
		btrfs_info(fs_info,
			"you may cancel the operation after 'mount -o degraded'");
		btrfs_dev_replace_unlock(dev_replace);
		return 0;
	}
	btrfs_dev_replace_unlock(dev_replace);

	WARN_ON(atomic_xchg(
		&fs_info->mutually_exclusive_operation_running, 1));
	task = kthread_run(btrfs_dev_replace_kthread, fs_info, "btrfs-devrepl");
	return PTR_ERR_OR_ZERO(task);
}

static int btrfs_dev_replace_kthread(void *data)
{
	struct btrfs_fs_info *fs_info = data;
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	struct btrfs_ioctl_dev_replace_args *status_args;
	u64 progress;

	status_args = kzalloc(sizeof(*status_args), GFP_NOFS);
	if (status_args) {
		btrfs_dev_replace_status(fs_info, status_args);
		progress = status_args->status.progress_1000;
		kfree(status_args);
		do_div(progress, 10);
		printk_in_rcu(KERN_INFO
			"BTRFS: continuing dev_replace from %s (devid %llu) to %s @%u%%\n",
			dev_replace->srcdev->missing ? "<missing disk>" :
			rcu_str_deref(dev_replace->srcdev->name),
			dev_replace->srcdev->devid,
			dev_replace->tgtdev ?
			rcu_str_deref(dev_replace->tgtdev->name) :
			"<missing target disk>",
			(unsigned int)progress);
	}
	btrfs_dev_replace_continue_on_mount(fs_info);
	atomic_set(&fs_info->mutually_exclusive_operation_running, 0);

	return 0;
}

static int btrfs_dev_replace_continue_on_mount(struct btrfs_fs_info *fs_info)
{
	struct btrfs_dev_replace *dev_replace = &fs_info->dev_replace;
	int ret;

	ret = btrfs_scrub_dev(fs_info, dev_replace->srcdev->devid,
			      dev_replace->committed_cursor_left,
			      dev_replace->srcdev->total_bytes,
			      &dev_replace->scrub_progress, 0, 1);
	ret = btrfs_dev_replace_finishing(fs_info, ret);
	WARN_ON(ret);
	return 0;
}

int btrfs_dev_replace_is_ongoing(struct btrfs_dev_replace *dev_replace)
{
	if (!dev_replace->is_valid)
		return 0;

	switch (dev_replace->replace_state) {
	case BTRFS_IOCTL_DEV_REPLACE_STATE_NEVER_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_FINISHED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_CANCELED:
		return 0;
	case BTRFS_IOCTL_DEV_REPLACE_STATE_STARTED:
	case BTRFS_IOCTL_DEV_REPLACE_STATE_SUSPENDED:
		/*
		 * return true even if tgtdev is missing (this is
		 * something that can happen if the dev_replace
		 * procedure is suspended by an umount and then
		 * the tgtdev is missing (or "btrfs dev scan") was
		 * not called and the the filesystem is remounted
		 * in degraded state. This does not stop the
		 * dev_replace procedure. It needs to be canceled
		 * manually if the cancelation is wanted.
		 */
		break;
	}
	return 1;
}

void btrfs_dev_replace_lock(struct btrfs_dev_replace *dev_replace)
{
	/* the beginning is just an optimization for the typical case */
	if (atomic_read(&dev_replace->nesting_level) == 0) {
acquire_lock:
		/* this is not a nested case where the same thread
		 * is trying to acqurire the same lock twice */
		mutex_lock(&dev_replace->lock);
		mutex_lock(&dev_replace->lock_management_lock);
		dev_replace->lock_owner = current->pid;
		atomic_inc(&dev_replace->nesting_level);
		mutex_unlock(&dev_replace->lock_management_lock);
		return;
	}

	mutex_lock(&dev_replace->lock_management_lock);
	if (atomic_read(&dev_replace->nesting_level) > 0 &&
	    dev_replace->lock_owner == current->pid) {
		WARN_ON(!mutex_is_locked(&dev_replace->lock));
		atomic_inc(&dev_replace->nesting_level);
		mutex_unlock(&dev_replace->lock_management_lock);
		return;
	}

	mutex_unlock(&dev_replace->lock_management_lock);
	goto acquire_lock;
}

void btrfs_dev_replace_unlock(struct btrfs_dev_replace *dev_replace)
{
	WARN_ON(!mutex_is_locked(&dev_replace->lock));
	mutex_lock(&dev_replace->lock_management_lock);
	WARN_ON(atomic_read(&dev_replace->nesting_level) < 1);
	WARN_ON(dev_replace->lock_owner != current->pid);
	atomic_dec(&dev_replace->nesting_level);
	if (atomic_read(&dev_replace->nesting_level) == 0) {
		dev_replace->lock_owner = 0;
		mutex_unlock(&dev_replace->lock_management_lock);
		mutex_unlock(&dev_replace->lock);
	} else {
		mutex_unlock(&dev_replace->lock_management_lock);
	}
}

void btrfs_bio_counter_inc_noblocked(struct btrfs_fs_info *fs_info)
{
	percpu_counter_inc(&fs_info->bio_counter);
}

void btrfs_bio_counter_dec(struct btrfs_fs_info *fs_info)
{
	percpu_counter_dec(&fs_info->bio_counter);

	if (waitqueue_active(&fs_info->replace_wait))
		wake_up(&fs_info->replace_wait);
}

void btrfs_bio_counter_inc_blocked(struct btrfs_fs_info *fs_info)
{
	DEFINE_WAIT(wait);
again:
	percpu_counter_inc(&fs_info->bio_counter);
	if (test_bit(BTRFS_FS_STATE_DEV_REPLACING, &fs_info->fs_state)) {
		btrfs_bio_counter_dec(fs_info);
		wait_event(fs_info->replace_wait,
			   !test_bit(BTRFS_FS_STATE_DEV_REPLACING,
				     &fs_info->fs_state));
		goto again;
	}

}
TERVAL_TIME 0 #define M_KEEP_ALIVE_INTERVAL_TIME 0x3fffffff #define V_KEEP_ALIVE_INTERVAL_TIME(x) ((x) << S_KEEP_ALIVE_INTERVAL_TIME) #define G_KEEP_ALIVE_INTERVAL_TIME(x) (((x) >> S_KEEP_ALIVE_INTERVAL_TIME) & M_KEEP_ALIVE_INTERVAL_TIME) #define A_TP_INIT_SRTT 0x3b4 #define S_INITIAL_SRTT 0 #define M_INITIAL_SRTT 0xffff #define V_INITIAL_SRTT(x) ((x) << S_INITIAL_SRTT) #define G_INITIAL_SRTT(x) (((x) >> S_INITIAL_SRTT) & M_INITIAL_SRTT) #define A_TP_DACK_TIME 0x3b8 #define S_DELAYED_ACK_TIME 0 #define M_DELAYED_ACK_TIME 0x7ff #define V_DELAYED_ACK_TIME(x) ((x) << S_DELAYED_ACK_TIME) #define G_DELAYED_ACK_TIME(x) (((x) >> S_DELAYED_ACK_TIME) & M_DELAYED_ACK_TIME) #define A_TP_FINWAIT2_TIME 0x3bc #define S_FINWAIT2_TIME 0 #define M_FINWAIT2_TIME 0x3fffffff #define V_FINWAIT2_TIME(x) ((x) << S_FINWAIT2_TIME) #define G_FINWAIT2_TIME(x) (((x) >> S_FINWAIT2_TIME) & M_FINWAIT2_TIME) #define A_TP_FAST_FINWAIT2_TIME 0x3c0 #define S_FAST_FINWAIT2_TIME 0 #define M_FAST_FINWAIT2_TIME 0x3fffffff #define V_FAST_FINWAIT2_TIME(x) ((x) << S_FAST_FINWAIT2_TIME) #define G_FAST_FINWAIT2_TIME(x) (((x) >> S_FAST_FINWAIT2_TIME) & M_FAST_FINWAIT2_TIME) #define A_TP_SHIFT_CNT 0x3c4 #define S_KEEPALIVE_MAX 0 #define M_KEEPALIVE_MAX 0xff #define V_KEEPALIVE_MAX(x) ((x) << S_KEEPALIVE_MAX) #define G_KEEPALIVE_MAX(x) (((x) >> S_KEEPALIVE_MAX) & M_KEEPALIVE_MAX) #define S_WINDOWPROBE_MAX 8 #define M_WINDOWPROBE_MAX 0xff #define V_WINDOWPROBE_MAX(x) ((x) << S_WINDOWPROBE_MAX) #define G_WINDOWPROBE_MAX(x) (((x) >> S_WINDOWPROBE_MAX) & M_WINDOWPROBE_MAX) #define S_RETRANSMISSION_MAX 16 #define M_RETRANSMISSION_MAX 0xff #define V_RETRANSMISSION_MAX(x) ((x) << S_RETRANSMISSION_MAX) #define G_RETRANSMISSION_MAX(x) (((x) >> S_RETRANSMISSION_MAX) & M_RETRANSMISSION_MAX) #define S_SYN_MAX 24 #define M_SYN_MAX 0xff #define V_SYN_MAX(x) ((x) << S_SYN_MAX) #define G_SYN_MAX(x) (((x) >> S_SYN_MAX) & M_SYN_MAX) #define A_TP_QOS_REG0 0x3e0 #define S_L3_VALUE 0 #define M_L3_VALUE 0x3f #define V_L3_VALUE(x) ((x) << S_L3_VALUE) #define G_L3_VALUE(x) (((x) >> S_L3_VALUE) & M_L3_VALUE) #define A_TP_QOS_REG1 0x3e4 #define A_TP_QOS_REG2 0x3e8 #define A_TP_QOS_REG3 0x3ec #define A_TP_QOS_REG4 0x3f0 #define A_TP_QOS_REG5 0x3f4 #define A_TP_QOS_REG6 0x3f8 #define A_TP_QOS_REG7 0x3fc #define A_TP_MTU_REG0 0x404 #define A_TP_MTU_REG1 0x408 #define A_TP_MTU_REG2 0x40c #define A_TP_MTU_REG3 0x410 #define A_TP_MTU_REG4 0x414 #define A_TP_MTU_REG5 0x418 #define A_TP_MTU_REG6 0x41c #define A_TP_MTU_REG7 0x420 #define A_TP_RESET 0x44c #define S_TP_RESET 0 #define V_TP_RESET(x) ((x) << S_TP_RESET) #define F_TP_RESET V_TP_RESET(1U) #define S_CM_MEMMGR_INIT 1 #define V_CM_MEMMGR_INIT(x) ((x) << S_CM_MEMMGR_INIT) #define F_CM_MEMMGR_INIT V_CM_MEMMGR_INIT(1U) #define A_TP_MIB_INDEX 0x450 #define A_TP_MIB_DATA 0x454 #define A_TP_SYNC_TIME_HI 0x458 #define A_TP_SYNC_TIME_LO 0x45c #define A_TP_CM_MM_RX_FLST_BASE 0x460 #define S_CM_MEMMGR_RX_FREE_LIST_BASE 0 #define M_CM_MEMMGR_RX_FREE_LIST_BASE 0xfffffff #define V_CM_MEMMGR_RX_FREE_LIST_BASE(x) ((x) << S_CM_MEMMGR_RX_FREE_LIST_BASE) #define G_CM_MEMMGR_RX_FREE_LIST_BASE(x) (((x) >> S_CM_MEMMGR_RX_FREE_LIST_BASE) & M_CM_MEMMGR_RX_FREE_LIST_BASE) #define A_TP_CM_MM_TX_FLST_BASE 0x464 #define S_CM_MEMMGR_TX_FREE_LIST_BASE 0 #define M_CM_MEMMGR_TX_FREE_LIST_BASE 0xfffffff #define V_CM_MEMMGR_TX_FREE_LIST_BASE(x) ((x) << S_CM_MEMMGR_TX_FREE_LIST_BASE) #define G_CM_MEMMGR_TX_FREE_LIST_BASE(x) (((x) >> S_CM_MEMMGR_TX_FREE_LIST_BASE) & M_CM_MEMMGR_TX_FREE_LIST_BASE) #define A_TP_CM_MM_P_FLST_BASE 0x468 #define S_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE 0 #define M_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE 0xfffffff #define V_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE(x) ((x) << S_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE) #define G_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE(x) (((x) >> S_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE) & M_CM_MEMMGR_PSTRUCT_FREE_LIST_BASE) #define A_TP_CM_MM_MAX_P 0x46c #define S_CM_MEMMGR_MAX_PSTRUCT 0 #define M_CM_MEMMGR_MAX_PSTRUCT 0xfffffff #define V_CM_MEMMGR_MAX_PSTRUCT(x) ((x) << S_CM_MEMMGR_MAX_PSTRUCT) #define G_CM_MEMMGR_MAX_PSTRUCT(x) (((x) >> S_CM_MEMMGR_MAX_PSTRUCT) & M_CM_MEMMGR_MAX_PSTRUCT) #define A_TP_INT_ENABLE 0x470 #define S_TX_FREE_LIST_EMPTY 0 #define V_TX_FREE_LIST_EMPTY(x) ((x) << S_TX_FREE_LIST_EMPTY) #define F_TX_FREE_LIST_EMPTY V_TX_FREE_LIST_EMPTY(1U) #define S_RX_FREE_LIST_EMPTY 1 #define V_RX_FREE_LIST_EMPTY(x) ((x) << S_RX_FREE_LIST_EMPTY) #define F_RX_FREE_LIST_EMPTY V_RX_FREE_LIST_EMPTY(1U) #define A_TP_INT_CAUSE 0x474 #define A_TP_TIMER_SEPARATOR 0x4a4 #define S_DISABLE_PAST_TIMER_INSERTION 0 #define V_DISABLE_PAST_TIMER_INSERTION(x) ((x) << S_DISABLE_PAST_TIMER_INSERTION) #define F_DISABLE_PAST_TIMER_INSERTION V_DISABLE_PAST_TIMER_INSERTION(1U) #define S_MODULATION_TIMER_SEPARATOR 1 #define M_MODULATION_TIMER_SEPARATOR 0x7fff #define V_MODULATION_TIMER_SEPARATOR(x) ((x) << S_MODULATION_TIMER_SEPARATOR) #define G_MODULATION_TIMER_SEPARATOR(x) (((x) >> S_MODULATION_TIMER_SEPARATOR) & M_MODULATION_TIMER_SEPARATOR) #define S_GLOBAL_TIMER_SEPARATOR 16 #define M_GLOBAL_TIMER_SEPARATOR 0xffff #define V_GLOBAL_TIMER_SEPARATOR(x) ((x) << S_GLOBAL_TIMER_SEPARATOR) #define G_GLOBAL_TIMER_SEPARATOR(x) (((x) >> S_GLOBAL_TIMER_SEPARATOR) & M_GLOBAL_TIMER_SEPARATOR) #define A_TP_CM_FC_MODE 0x4b0 #define A_TP_PC_CONGESTION_CNTL 0x4b4 #define A_TP_TX_DROP_CONFIG 0x4b8 #define S_ENABLE_TX_DROP 31 #define V_ENABLE_TX_DROP(x) ((x) << S_ENABLE_TX_DROP) #define F_ENABLE_TX_DROP V_ENABLE_TX_DROP(1U) #define S_ENABLE_TX_ERROR 30 #define V_ENABLE_TX_ERROR(x) ((x) << S_ENABLE_TX_ERROR) #define F_ENABLE_TX_ERROR V_ENABLE_TX_ERROR(1U) #define S_DROP_TICKS_CNT 4 #define M_DROP_TICKS_CNT 0x3ffffff #define V_DROP_TICKS_CNT(x) ((x) << S_DROP_TICKS_CNT) #define G_DROP_TICKS_CNT(x) (((x) >> S_DROP_TICKS_CNT) & M_DROP_TICKS_CNT) #define S_NUM_PKTS_DROPPED 0 #define M_NUM_PKTS_DROPPED 0xf #define V_NUM_PKTS_DROPPED(x) ((x) << S_NUM_PKTS_DROPPED) #define G_NUM_PKTS_DROPPED(x) (((x) >> S_NUM_PKTS_DROPPED) & M_NUM_PKTS_DROPPED) #define A_TP_TX_DROP_COUNT 0x4bc /* RAT registers */ #define A_RAT_ROUTE_CONTROL 0x580 #define S_USE_ROUTE_TABLE 0 #define V_USE_ROUTE_TABLE(x) ((x) << S_USE_ROUTE_TABLE) #define F_USE_ROUTE_TABLE V_USE_ROUTE_TABLE(1U) #define S_ENABLE_CSPI 1 #define V_ENABLE_CSPI(x) ((x) << S_ENABLE_CSPI) #define F_ENABLE_CSPI V_ENABLE_CSPI(1U) #define S_ENABLE_PCIX 2 #define V_ENABLE_PCIX(x) ((x) << S_ENABLE_PCIX) #define F_ENABLE_PCIX V_ENABLE_PCIX(1U) #define A_RAT_ROUTE_TABLE_INDEX 0x584 #define S_ROUTE_TABLE_INDEX 0 #define M_ROUTE_TABLE_INDEX 0xf #define V_ROUTE_TABLE_INDEX(x) ((x) << S_ROUTE_TABLE_INDEX) #define G_ROUTE_TABLE_INDEX(x) (((x) >> S_ROUTE_TABLE_INDEX) & M_ROUTE_TABLE_INDEX) #define A_RAT_ROUTE_TABLE_DATA 0x588 #define A_RAT_NO_ROUTE 0x58c #define S_CPL_OPCODE 0 #define M_CPL_OPCODE 0xff #define V_CPL_OPCODE(x) ((x) << S_CPL_OPCODE) #define G_CPL_OPCODE(x) (((x) >> S_CPL_OPCODE) & M_CPL_OPCODE) #define A_RAT_INTR_ENABLE 0x590 #define S_ZEROROUTEERROR 0 #define V_ZEROROUTEERROR(x) ((x) << S_ZEROROUTEERROR) #define F_ZEROROUTEERROR V_ZEROROUTEERROR(1U) #define S_CSPIFRAMINGERROR 1 #define V_CSPIFRAMINGERROR(x) ((x) << S_CSPIFRAMINGERROR) #define F_CSPIFRAMINGERROR V_CSPIFRAMINGERROR(1U) #define S_SGEFRAMINGERROR 2 #define V_SGEFRAMINGERROR(x) ((x) << S_SGEFRAMINGERROR) #define F_SGEFRAMINGERROR V_SGEFRAMINGERROR(1U) #define S_TPFRAMINGERROR 3 #define V_TPFRAMINGERROR(x) ((x) << S_TPFRAMINGERROR) #define F_TPFRAMINGERROR V_TPFRAMINGERROR(1U) #define A_RAT_INTR_CAUSE 0x594 /* CSPI registers */ #define A_CSPI_RX_AE_WM 0x810 #define A_CSPI_RX_AF_WM 0x814 #define A_CSPI_CALENDAR_LEN 0x818 #define S_CALENDARLENGTH 0 #define M_CALENDARLENGTH 0xffff #define V_CALENDARLENGTH(x) ((x) << S_CALENDARLENGTH) #define G_CALENDARLENGTH(x) (((x) >> S_CALENDARLENGTH) & M_CALENDARLENGTH) #define A_CSPI_FIFO_STATUS_ENABLE 0x820 #define S_FIFOSTATUSENABLE 0 #define V_FIFOSTATUSENABLE(x) ((x) << S_FIFOSTATUSENABLE) #define F_FIFOSTATUSENABLE V_FIFOSTATUSENABLE(1U) #define A_CSPI_MAXBURST1_MAXBURST2 0x828 #define S_MAXBURST1 0 #define M_MAXBURST1 0xffff #define V_MAXBURST1(x) ((x) << S_MAXBURST1) #define G_MAXBURST1(x) (((x) >> S_MAXBURST1) & M_MAXBURST1) #define S_MAXBURST2 16 #define M_MAXBURST2 0xffff #define V_MAXBURST2(x) ((x) << S_MAXBURST2) #define G_MAXBURST2(x) (((x) >> S_MAXBURST2) & M_MAXBURST2) #define A_CSPI_TRAIN 0x82c #define S_CSPI_TRAIN_ALPHA 0 #define M_CSPI_TRAIN_ALPHA 0xffff #define V_CSPI_TRAIN_ALPHA(x) ((x) << S_CSPI_TRAIN_ALPHA) #define G_CSPI_TRAIN_ALPHA(x) (((x) >> S_CSPI_TRAIN_ALPHA) & M_CSPI_TRAIN_ALPHA) #define S_CSPI_TRAIN_DATA_MAXT 16 #define M_CSPI_TRAIN_DATA_MAXT 0xffff #define V_CSPI_TRAIN_DATA_MAXT(x) ((x) << S_CSPI_TRAIN_DATA_MAXT) #define G_CSPI_TRAIN_DATA_MAXT(x) (((x) >> S_CSPI_TRAIN_DATA_MAXT) & M_CSPI_TRAIN_DATA_MAXT) #define A_CSPI_INTR_STATUS 0x848 #define S_DIP4ERR 0 #define V_DIP4ERR(x) ((x) << S_DIP4ERR) #define F_DIP4ERR V_DIP4ERR(1U) #define S_RXDROP 1 #define V_RXDROP(x) ((x) << S_RXDROP) #define F_RXDROP V_RXDROP(1U) #define S_TXDROP 2 #define V_TXDROP(x) ((x) << S_TXDROP) #define F_TXDROP V_TXDROP(1U) #define S_RXOVERFLOW 3 #define V_RXOVERFLOW(x) ((x) << S_RXOVERFLOW) #define F_RXOVERFLOW V_RXOVERFLOW(1U) #define S_RAMPARITYERR 4 #define V_RAMPARITYERR(x) ((x) << S_RAMPARITYERR) #define F_RAMPARITYERR V_RAMPARITYERR(1U) #define A_CSPI_INTR_ENABLE 0x84c /* ESPI registers */ #define A_ESPI_SCH_TOKEN0 0x880 #define S_SCHTOKEN0 0 #define M_SCHTOKEN0 0xffff #define V_SCHTOKEN0(x) ((x) << S_SCHTOKEN0) #define G_SCHTOKEN0(x) (((x) >> S_SCHTOKEN0) & M_SCHTOKEN0) #define A_ESPI_SCH_TOKEN1 0x884 #define S_SCHTOKEN1 0 #define M_SCHTOKEN1 0xffff #define V_SCHTOKEN1(x) ((x) << S_SCHTOKEN1) #define G_SCHTOKEN1(x) (((x) >> S_SCHTOKEN1) & M_SCHTOKEN1) #define A_ESPI_SCH_TOKEN2 0x888 #define S_SCHTOKEN2 0 #define M_SCHTOKEN2 0xffff #define V_SCHTOKEN2(x) ((x) << S_SCHTOKEN2) #define G_SCHTOKEN2(x) (((x) >> S_SCHTOKEN2) & M_SCHTOKEN2) #define A_ESPI_SCH_TOKEN3 0x88c #define S_SCHTOKEN3 0 #define M_SCHTOKEN3 0xffff #define V_SCHTOKEN3(x) ((x) << S_SCHTOKEN3) #define G_SCHTOKEN3(x) (((x) >> S_SCHTOKEN3) & M_SCHTOKEN3) #define A_ESPI_RX_FIFO_ALMOST_EMPTY_WATERMARK 0x890 #define S_ALMOSTEMPTY 0 #define M_ALMOSTEMPTY 0xffff #define V_ALMOSTEMPTY(x) ((x) << S_ALMOSTEMPTY) #define G_ALMOSTEMPTY(x) (((x) >> S_ALMOSTEMPTY) & M_ALMOSTEMPTY) #define A_ESPI_RX_FIFO_ALMOST_FULL_WATERMARK 0x894 #define S_ALMOSTFULL 0 #define M_ALMOSTFULL 0xffff #define V_ALMOSTFULL(x) ((x) << S_ALMOSTFULL) #define G_ALMOSTFULL(x) (((x) >> S_ALMOSTFULL) & M_ALMOSTFULL) #define A_ESPI_CALENDAR_LENGTH 0x898 #define A_PORT_CONFIG 0x89c #define S_RX_NPORTS 0 #define M_RX_NPORTS 0xff #define V_RX_NPORTS(x) ((x) << S_RX_NPORTS) #define G_RX_NPORTS(x) (((x) >> S_RX_NPORTS) & M_RX_NPORTS) #define S_TX_NPORTS 8 #define M_TX_NPORTS 0xff #define V_TX_NPORTS(x) ((x) << S_TX_NPORTS) #define G_TX_NPORTS(x) (((x) >> S_TX_NPORTS) & M_TX_NPORTS) #define A_ESPI_FIFO_STATUS_ENABLE 0x8a0 #define S_RXSTATUSENABLE 0 #define V_RXSTATUSENABLE(x) ((x) << S_RXSTATUSENABLE) #define F_RXSTATUSENABLE V_RXSTATUSENABLE(1U) #define S_TXDROPENABLE 1 #define V_TXDROPENABLE(x) ((x) << S_TXDROPENABLE) #define F_TXDROPENABLE V_TXDROPENABLE(1U) #define S_RXENDIANMODE 2 #define V_RXENDIANMODE(x) ((x) << S_RXENDIANMODE) #define F_RXENDIANMODE V_RXENDIANMODE(1U) #define S_TXENDIANMODE 3 #define V_TXENDIANMODE(x) ((x) << S_TXENDIANMODE) #define F_TXENDIANMODE V_TXENDIANMODE(1U) #define S_INTEL1010MODE 4 #define V_INTEL1010MODE(x) ((x) << S_INTEL1010MODE) #define F_INTEL1010MODE V_INTEL1010MODE(1U) #define A_ESPI_MAXBURST1_MAXBURST2 0x8a8 #define A_ESPI_TRAIN 0x8ac #define S_MAXTRAINALPHA 0 #define M_MAXTRAINALPHA 0xffff #define V_MAXTRAINALPHA(x) ((x) << S_MAXTRAINALPHA) #define G_MAXTRAINALPHA(x) (((x) >> S_MAXTRAINALPHA) & M_MAXTRAINALPHA) #define S_MAXTRAINDATA 16 #define M_MAXTRAINDATA 0xffff #define V_MAXTRAINDATA(x) ((x) << S_MAXTRAINDATA) #define G_MAXTRAINDATA(x) (((x) >> S_MAXTRAINDATA) & M_MAXTRAINDATA) #define A_RAM_STATUS 0x8b0 #define S_RXFIFOPARITYERROR 0 #define M_RXFIFOPARITYERROR 0x3ff #define V_RXFIFOPARITYERROR(x) ((x) << S_RXFIFOPARITYERROR) #define G_RXFIFOPARITYERROR(x) (((x) >> S_RXFIFOPARITYERROR) & M_RXFIFOPARITYERROR) #define S_TXFIFOPARITYERROR 10 #define M_TXFIFOPARITYERROR 0x3ff #define V_TXFIFOPARITYERROR(x) ((x) << S_TXFIFOPARITYERROR) #define G_TXFIFOPARITYERROR(x) (((x) >> S_TXFIFOPARITYERROR) & M_TXFIFOPARITYERROR) #define S_RXFIFOOVERFLOW 20 #define M_RXFIFOOVERFLOW 0x3ff #define V_RXFIFOOVERFLOW(x) ((x) << S_RXFIFOOVERFLOW) #define G_RXFIFOOVERFLOW(x) (((x) >> S_RXFIFOOVERFLOW) & M_RXFIFOOVERFLOW) #define A_TX_DROP_COUNT0 0x8b4 #define S_TXPORT0DROPCNT 0 #define M_TXPORT0DROPCNT 0xffff #define V_TXPORT0DROPCNT(x) ((x) << S_TXPORT0DROPCNT) #define G_TXPORT0DROPCNT(x) (((x) >> S_TXPORT0DROPCNT) & M_TXPORT0DROPCNT) #define S_TXPORT1DROPCNT 16 #define M_TXPORT1DROPCNT 0xffff #define V_TXPORT1DROPCNT(x) ((x) << S_TXPORT1DROPCNT) #define G_TXPORT1DROPCNT(x) (((x) >> S_TXPORT1DROPCNT) & M_TXPORT1DROPCNT) #define A_TX_DROP_COUNT1 0x8b8 #define S_TXPORT2DROPCNT 0 #define M_TXPORT2DROPCNT 0xffff #define V_TXPORT2DROPCNT(x) ((x) << S_TXPORT2DROPCNT) #define G_TXPORT2DROPCNT(x) (((x) >> S_TXPORT2DROPCNT) & M_TXPORT2DROPCNT) #define S_TXPORT3DROPCNT 16 #define M_TXPORT3DROPCNT 0xffff #define V_TXPORT3DROPCNT(x) ((x) << S_TXPORT3DROPCNT) #define G_TXPORT3DROPCNT(x) (((x) >> S_TXPORT3DROPCNT) & M_TXPORT3DROPCNT) #define A_RX_DROP_COUNT0 0x8bc #define S_RXPORT0DROPCNT 0 #define M_RXPORT0DROPCNT 0xffff #define V_RXPORT0DROPCNT(x) ((x) << S_RXPORT0DROPCNT) #define G_RXPORT0DROPCNT(x) (((x) >> S_RXPORT0DROPCNT) & M_RXPORT0DROPCNT) #define S_RXPORT1DROPCNT 16 #define M_RXPORT1DROPCNT 0xffff #define V_RXPORT1DROPCNT(x) ((x) << S_RXPORT1DROPCNT) #define G_RXPORT1DROPCNT(x) (((x) >> S_RXPORT1DROPCNT) & M_RXPORT1DROPCNT) #define A_RX_DROP_COUNT1 0x8c0 #define S_RXPORT2DROPCNT 0 #define M_RXPORT2DROPCNT 0xffff #define V_RXPORT2DROPCNT(x) ((x) << S_RXPORT2DROPCNT) #define G_RXPORT2DROPCNT(x) (((x) >> S_RXPORT2DROPCNT) & M_RXPORT2DROPCNT) #define S_RXPORT3DROPCNT 16 #define M_RXPORT3DROPCNT 0xffff #define V_RXPORT3DROPCNT(x) ((x) << S_RXPORT3DROPCNT) #define G_RXPORT3DROPCNT(x) (((x) >> S_RXPORT3DROPCNT) & M_RXPORT3DROPCNT) #define A_DIP4_ERROR_COUNT 0x8c4 #define S_DIP4ERRORCNT 0 #define M_DIP4ERRORCNT 0xfff #define V_DIP4ERRORCNT(x) ((x) << S_DIP4ERRORCNT) #define G_DIP4ERRORCNT(x) (((x) >> S_DIP4ERRORCNT) & M_DIP4ERRORCNT) #define S_DIP4ERRORCNTSHADOW 12 #define M_DIP4ERRORCNTSHADOW 0xfff #define V_DIP4ERRORCNTSHADOW(x) ((x) << S_DIP4ERRORCNTSHADOW) #define G_DIP4ERRORCNTSHADOW(x) (((x) >> S_DIP4ERRORCNTSHADOW) & M_DIP4ERRORCNTSHADOW) #define S_TRICN_RX_TRAIN_ERR 24 #define V_TRICN_RX_TRAIN_ERR(x) ((x) << S_TRICN_RX_TRAIN_ERR) #define F_TRICN_RX_TRAIN_ERR V_TRICN_RX_TRAIN_ERR(1U) #define S_TRICN_RX_TRAINING 25 #define V_TRICN_RX_TRAINING(x) ((x) << S_TRICN_RX_TRAINING) #define F_TRICN_RX_TRAINING V_TRICN_RX_TRAINING(1U) #define S_TRICN_RX_TRAIN_OK 26 #define V_TRICN_RX_TRAIN_OK(x) ((x) << S_TRICN_RX_TRAIN_OK) #define F_TRICN_RX_TRAIN_OK V_TRICN_RX_TRAIN_OK(1U) #define A_ESPI_INTR_STATUS 0x8c8 #define S_DIP2PARITYERR 5 #define V_DIP2PARITYERR(x) ((x) << S_DIP2PARITYERR) #define F_DIP2PARITYERR V_DIP2PARITYERR(1U) #define A_ESPI_INTR_ENABLE 0x8cc #define A_RX_DROP_THRESHOLD 0x8d0 #define A_ESPI_RX_RESET 0x8ec #define S_ESPI_RX_LNK_RST 0 #define V_ESPI_RX_LNK_RST(x) ((x) << S_ESPI_RX_LNK_RST) #define F_ESPI_RX_LNK_RST V_ESPI_RX_LNK_RST(1U) #define S_ESPI_RX_CORE_RST 1 #define V_ESPI_RX_CORE_RST(x) ((x) << S_ESPI_RX_CORE_RST) #define F_ESPI_RX_CORE_RST V_ESPI_RX_CORE_RST(1U) #define S_RX_CLK_STATUS 2 #define V_RX_CLK_STATUS(x) ((x) << S_RX_CLK_STATUS) #define F_RX_CLK_STATUS V_RX_CLK_STATUS(1U) #define A_ESPI_MISC_CONTROL 0x8f0 #define S_OUT_OF_SYNC_COUNT 0 #define M_OUT_OF_SYNC_COUNT 0xf #define V_OUT_OF_SYNC_COUNT(x) ((x) << S_OUT_OF_SYNC_COUNT) #define G_OUT_OF_SYNC_COUNT(x) (((x) >> S_OUT_OF_SYNC_COUNT) & M_OUT_OF_SYNC_COUNT) #define S_DIP2_COUNT_MODE_ENABLE 4 #define V_DIP2_COUNT_MODE_ENABLE(x) ((x) << S_DIP2_COUNT_MODE_ENABLE) #define F_DIP2_COUNT_MODE_ENABLE V_DIP2_COUNT_MODE_ENABLE(1U) #define S_DIP2_PARITY_ERR_THRES 5 #define M_DIP2_PARITY_ERR_THRES 0xf #define V_DIP2_PARITY_ERR_THRES(x) ((x) << S_DIP2_PARITY_ERR_THRES) #define G_DIP2_PARITY_ERR_THRES(x) (((x) >> S_DIP2_PARITY_ERR_THRES) & M_DIP2_PARITY_ERR_THRES) #define S_DIP4_THRES 9 #define M_DIP4_THRES 0xfff #define V_DIP4_THRES(x) ((x) << S_DIP4_THRES) #define G_DIP4_THRES(x) (((x) >> S_DIP4_THRES) & M_DIP4_THRES) #define S_DIP4_THRES_ENABLE 21 #define V_DIP4_THRES_ENABLE(x) ((x) << S_DIP4_THRES_ENABLE) #define F_DIP4_THRES_ENABLE V_DIP4_THRES_ENABLE(1U) #define S_FORCE_DISABLE_STATUS 22 #define V_FORCE_DISABLE_STATUS(x) ((x) << S_FORCE_DISABLE_STATUS) #define F_FORCE_DISABLE_STATUS V_FORCE_DISABLE_STATUS(1U) #define S_DYNAMIC_DESKEW 23 #define V_DYNAMIC_DESKEW(x) ((x) << S_DYNAMIC_DESKEW) #define F_DYNAMIC_DESKEW V_DYNAMIC_DESKEW(1U) #define S_MONITORED_PORT_NUM 25 #define M_MONITORED_PORT_NUM 0x3 #define V_MONITORED_PORT_NUM(x) ((x) << S_MONITORED_PORT_NUM) #define G_MONITORED_PORT_NUM(x) (((x) >> S_MONITORED_PORT_NUM) & M_MONITORED_PORT_NUM) #define S_MONITORED_DIRECTION 27 #define V_MONITORED_DIRECTION(x) ((x) << S_MONITORED_DIRECTION) #define F_MONITORED_DIRECTION V_MONITORED_DIRECTION(1U) #define S_MONITORED_INTERFACE 28 #define V_MONITORED_INTERFACE(x) ((x) << S_MONITORED_INTERFACE) #define F_MONITORED_INTERFACE V_MONITORED_INTERFACE(1U) #define A_ESPI_DIP2_ERR_COUNT 0x8f4 #define S_DIP2_ERR_CNT 0 #define M_DIP2_ERR_CNT 0xf #define V_DIP2_ERR_CNT(x) ((x) << S_DIP2_ERR_CNT) #define G_DIP2_ERR_CNT(x) (((x) >> S_DIP2_ERR_CNT) & M_DIP2_ERR_CNT) #define A_ESPI_CMD_ADDR 0x8f8 #define S_WRITE_DATA 0 #define M_WRITE_DATA 0xff #define V_WRITE_DATA(x) ((x) << S_WRITE_DATA) #define G_WRITE_DATA(x) (((x) >> S_WRITE_DATA) & M_WRITE_DATA) #define S_REGISTER_OFFSET 8 #define M_REGISTER_OFFSET 0xf #define V_REGISTER_OFFSET(x) ((x) << S_REGISTER_OFFSET) #define G_REGISTER_OFFSET(x) (((x) >> S_REGISTER_OFFSET) & M_REGISTER_OFFSET) #define S_CHANNEL_ADDR 12 #define M_CHANNEL_ADDR 0xf #define V_CHANNEL_ADDR(x) ((x) << S_CHANNEL_ADDR) #define G_CHANNEL_ADDR(x) (((x) >> S_CHANNEL_ADDR) & M_CHANNEL_ADDR) #define S_MODULE_ADDR 16 #define M_MODULE_ADDR 0x3 #define V_MODULE_ADDR(x) ((x) << S_MODULE_ADDR) #define G_MODULE_ADDR(x) (((x) >> S_MODULE_ADDR) & M_MODULE_ADDR) #define S_BUNDLE_ADDR 20 #define M_BUNDLE_ADDR 0x3 #define V_BUNDLE_ADDR(x) ((x) << S_BUNDLE_ADDR) #define G_BUNDLE_ADDR(x) (((x) >> S_BUNDLE_ADDR) & M_BUNDLE_ADDR) #define S_SPI4_COMMAND 24 #define M_SPI4_COMMAND 0xff #define V_SPI4_COMMAND(x) ((x) << S_SPI4_COMMAND) #define G_SPI4_COMMAND(x) (((x) >> S_SPI4_COMMAND) & M_SPI4_COMMAND) #define A_ESPI_GOSTAT 0x8fc #define S_READ_DATA 0 #define M_READ_DATA 0xff #define V_READ_DATA(x) ((x) << S_READ_DATA) #define G_READ_DATA(x) (((x) >> S_READ_DATA) & M_READ_DATA) #define S_ESPI_CMD_BUSY 8 #define V_ESPI_CMD_BUSY(x) ((x) << S_ESPI_CMD_BUSY) #define F_ESPI_CMD_BUSY V_ESPI_CMD_BUSY(1U) #define S_ERROR_ACK 9 #define V_ERROR_ACK(x) ((x) << S_ERROR_ACK) #define F_ERROR_ACK V_ERROR_ACK(1U) #define S_UNMAPPED_ERR 10 #define V_UNMAPPED_ERR(x) ((x) << S_UNMAPPED_ERR) #define F_UNMAPPED_ERR V_UNMAPPED_ERR(1U) #define S_TRANSACTION_TIMER 16 #define M_TRANSACTION_TIMER 0xff #define V_TRANSACTION_TIMER(x) ((x) << S_TRANSACTION_TIMER) #define G_TRANSACTION_TIMER(x) (((x) >> S_TRANSACTION_TIMER) & M_TRANSACTION_TIMER) /* ULP registers */ #define A_ULP_ULIMIT 0x980 #define A_ULP_TAGMASK 0x984 #define A_ULP_HREG_INDEX 0x988 #define A_ULP_HREG_DATA 0x98c #define A_ULP_INT_ENABLE 0x990 #define A_ULP_INT_CAUSE 0x994 #define S_HREG_PAR_ERR 0 #define V_HREG_PAR_ERR(x) ((x) << S_HREG_PAR_ERR) #define F_HREG_PAR_ERR V_HREG_PAR_ERR(1U) #define S_EGRS_DATA_PAR_ERR 1 #define V_EGRS_DATA_PAR_ERR(x) ((x) << S_EGRS_DATA_PAR_ERR) #define F_EGRS_DATA_PAR_ERR V_EGRS_DATA_PAR_ERR(1U) #define S_INGRS_DATA_PAR_ERR 2 #define V_INGRS_DATA_PAR_ERR(x) ((x) << S_INGRS_DATA_PAR_ERR) #define F_INGRS_DATA_PAR_ERR V_INGRS_DATA_PAR_ERR(1U) #define S_PM_INTR 3 #define V_PM_INTR(x) ((x) << S_PM_INTR) #define F_PM_INTR V_PM_INTR(1U) #define S_PM_E2C_SYNC_ERR 4 #define V_PM_E2C_SYNC_ERR(x) ((x) << S_PM_E2C_SYNC_ERR) #define F_PM_E2C_SYNC_ERR V_PM_E2C_SYNC_ERR(1U) #define S_PM_C2E_SYNC_ERR 5 #define V_PM_C2E_SYNC_ERR(x) ((x) << S_PM_C2E_SYNC_ERR) #define F_PM_C2E_SYNC_ERR V_PM_C2E_SYNC_ERR(1U) #define S_PM_E2C_EMPTY_ERR 6 #define V_PM_E2C_EMPTY_ERR(x) ((x) << S_PM_E2C_EMPTY_ERR) #define F_PM_E2C_EMPTY_ERR V_PM_E2C_EMPTY_ERR(1U) #define S_PM_C2E_EMPTY_ERR 7 #define V_PM_C2E_EMPTY_ERR(x) ((x) << S_PM_C2E_EMPTY_ERR) #define F_PM_C2E_EMPTY_ERR V_PM_C2E_EMPTY_ERR(1U) #define S_PM_PAR_ERR 8 #define M_PM_PAR_ERR 0xffff #define V_PM_PAR_ERR(x) ((x) << S_PM_PAR_ERR) #define G_PM_PAR_ERR(x) (((x) >> S_PM_PAR_ERR) & M_PM_PAR_ERR) #define S_PM_E2C_WRT_FULL 24 #define V_PM_E2C_WRT_FULL(x) ((x) << S_PM_E2C_WRT_FULL) #define F_PM_E2C_WRT_FULL V_PM_E2C_WRT_FULL(1U) #define S_PM_C2E_WRT_FULL 25 #define V_PM_C2E_WRT_FULL(x) ((x) << S_PM_C2E_WRT_FULL) #define F_PM_C2E_WRT_FULL V_PM_C2E_WRT_FULL(1U) #define A_ULP_PIO_CTRL 0x998 /* PL registers */ #define A_PL_ENABLE 0xa00 #define S_PL_INTR_SGE_ERR 0 #define V_PL_INTR_SGE_ERR(x) ((x) << S_PL_INTR_SGE_ERR) #define F_PL_INTR_SGE_ERR V_PL_INTR_SGE_ERR(1U) #define S_PL_INTR_SGE_DATA 1 #define V_PL_INTR_SGE_DATA(x) ((x) << S_PL_INTR_SGE_DATA) #define F_PL_INTR_SGE_DATA V_PL_INTR_SGE_DATA(1U) #define S_PL_INTR_MC3 2 #define V_PL_INTR_MC3(x) ((x) << S_PL_INTR_MC3) #define F_PL_INTR_MC3 V_PL_INTR_MC3(1U) #define S_PL_INTR_MC4 3 #define V_PL_INTR_MC4(x) ((x) << S_PL_INTR_MC4) #define F_PL_INTR_MC4 V_PL_INTR_MC4(1U) #define S_PL_INTR_MC5 4 #define V_PL_INTR_MC5(x) ((x) << S_PL_INTR_MC5) #define F_PL_INTR_MC5 V_PL_INTR_MC5(1U) #define S_PL_INTR_RAT 5 #define V_PL_INTR_RAT(x) ((x) << S_PL_INTR_RAT) #define F_PL_INTR_RAT V_PL_INTR_RAT(1U) #define S_PL_INTR_TP 6 #define V_PL_INTR_TP(x) ((x) << S_PL_INTR_TP) #define F_PL_INTR_TP V_PL_INTR_TP(1U) #define S_PL_INTR_ULP 7 #define V_PL_INTR_ULP(x) ((x) << S_PL_INTR_ULP) #define F_PL_INTR_ULP V_PL_INTR_ULP(1U) #define S_PL_INTR_ESPI 8 #define V_PL_INTR_ESPI(x) ((x) << S_PL_INTR_ESPI) #define F_PL_INTR_ESPI V_PL_INTR_ESPI(1U) #define S_PL_INTR_CSPI 9 #define V_PL_INTR_CSPI(x) ((x) << S_PL_INTR_CSPI) #define F_PL_INTR_CSPI V_PL_INTR_CSPI(1U) #define S_PL_INTR_PCIX 10 #define V_PL_INTR_PCIX(x) ((x) << S_PL_INTR_PCIX) #define F_PL_INTR_PCIX V_PL_INTR_PCIX(1U) #define S_PL_INTR_EXT 11 #define V_PL_INTR_EXT(x) ((x) << S_PL_INTR_EXT) #define F_PL_INTR_EXT V_PL_INTR_EXT(1U) #define A_PL_CAUSE 0xa04 /* MC5 registers */ #define A_MC5_CONFIG 0xc04 #define S_MODE 0 #define V_MODE(x) ((x) << S_MODE) #define F_MODE V_MODE(1U) #define S_TCAM_RESET 1 #define V_TCAM_RESET(x) ((x) << S_TCAM_RESET) #define F_TCAM_RESET V_TCAM_RESET(1U) #define S_TCAM_READY 2 #define V_TCAM_READY(x) ((x) << S_TCAM_READY) #define F_TCAM_READY V_TCAM_READY(1U) #define S_DBGI_ENABLE 4 #define V_DBGI_ENABLE(x) ((x) << S_DBGI_ENABLE) #define F_DBGI_ENABLE V_DBGI_ENABLE(1U) #define S_M_BUS_ENABLE 5 #define V_M_BUS_ENABLE(x) ((x) << S_M_BUS_ENABLE) #define F_M_BUS_ENABLE V_M_BUS_ENABLE(1U) #define S_PARITY_ENABLE 6 #define V_PARITY_ENABLE(x) ((x) << S_PARITY_ENABLE) #define F_PARITY_ENABLE V_PARITY_ENABLE(1U) #define S_SYN_ISSUE_MODE 7 #define M_SYN_ISSUE_MODE 0x3 #define V_SYN_ISSUE_MODE(x) ((x) << S_SYN_ISSUE_MODE) #define G_SYN_ISSUE_MODE(x) (((x) >> S_SYN_ISSUE_MODE) & M_SYN_ISSUE_MODE) #define S_BUILD 16 #define V_BUILD(x) ((x) << S_BUILD) #define F_BUILD V_BUILD(1U) #define S_COMPRESSION_ENABLE 17 #define V_COMPRESSION_ENABLE(x) ((x) << S_COMPRESSION_ENABLE) #define F_COMPRESSION_ENABLE V_COMPRESSION_ENABLE(1U) #define S_NUM_LIP 18 #define M_NUM_LIP 0x3f #define V_NUM_LIP(x) ((x) << S_NUM_LIP) #define G_NUM_LIP(x) (((x) >> S_NUM_LIP) & M_NUM_LIP) #define S_TCAM_PART_CNT 24 #define M_TCAM_PART_CNT 0x3 #define V_TCAM_PART_CNT(x) ((x) << S_TCAM_PART_CNT) #define G_TCAM_PART_CNT(x) (((x) >> S_TCAM_PART_CNT) & M_TCAM_PART_CNT) #define S_TCAM_PART_TYPE 26 #define M_TCAM_PART_TYPE 0x3 #define V_TCAM_PART_TYPE(x) ((x) << S_TCAM_PART_TYPE) #define G_TCAM_PART_TYPE(x) (((x) >> S_TCAM_PART_TYPE) & M_TCAM_PART_TYPE) #define S_TCAM_PART_SIZE 28 #define M_TCAM_PART_SIZE 0x3 #define V_TCAM_PART_SIZE(x) ((x) << S_TCAM_PART_SIZE) #define G_TCAM_PART_SIZE(x) (((x) >> S_TCAM_PART_SIZE) & M_TCAM_PART_SIZE) #define S_TCAM_PART_TYPE_HI 30 #define V_TCAM_PART_TYPE_HI(x) ((x) << S_TCAM_PART_TYPE_HI) #define F_TCAM_PART_TYPE_HI V_TCAM_PART_TYPE_HI(1U) #define A_MC5_SIZE 0xc08 #define S_SIZE 0 #define M_SIZE 0x3fffff #define V_SIZE(x) ((x) << S_SIZE) #define G_SIZE(x) (((x) >> S_SIZE) & M_SIZE) #define A_MC5_ROUTING_TABLE_INDEX 0xc0c #define S_START_OF_ROUTING_TABLE 0 #define M_START_OF_ROUTING_TABLE 0x3fffff #define V_START_OF_ROUTING_TABLE(x) ((x) << S_START_OF_ROUTING_TABLE) #define G_START_OF_ROUTING_TABLE(x) (((x) >> S_START_OF_ROUTING_TABLE) & M_START_OF_ROUTING_TABLE) #define A_MC5_SERVER_INDEX 0xc14 #define S_START_OF_SERVER_INDEX 0 #define M_START_OF_SERVER_INDEX 0x3fffff #define V_START_OF_SERVER_INDEX(x) ((x) << S_START_OF_SERVER_INDEX) #define G_START_OF_SERVER_INDEX(x) (((x) >> S_START_OF_SERVER_INDEX) & M_START_OF_SERVER_INDEX) #define A_MC5_LIP_RAM_ADDR 0xc18 #define S_LOCAL_IP_RAM_ADDR 0 #define M_LOCAL_IP_RAM_ADDR 0x3f #define V_LOCAL_IP_RAM_ADDR(x) ((x) << S_LOCAL_IP_RAM_ADDR) #define G_LOCAL_IP_RAM_ADDR(x) (((x) >> S_LOCAL_IP_RAM_ADDR) & M_LOCAL_IP_RAM_ADDR) #define S_RAM_WRITE_ENABLE 8 #define V_RAM_WRITE_ENABLE(x) ((x) << S_RAM_WRITE_ENABLE) #define F_RAM_WRITE_ENABLE V_RAM_WRITE_ENABLE(1U) #define A_MC5_LIP_RAM_DATA 0xc1c #define A_MC5_RSP_LATENCY 0xc20 #define S_SEARCH_RESPONSE_LATENCY 0 #define M_SEARCH_RESPONSE_LATENCY 0x1f #define V_SEARCH_RESPONSE_LATENCY(x) ((x) << S_SEARCH_RESPONSE_LATENCY) #define G_SEARCH_RESPONSE_LATENCY(x) (((x) >> S_SEARCH_RESPONSE_LATENCY) & M_SEARCH_RESPONSE_LATENCY) #define S_LEARN_RESPONSE_LATENCY 8 #define M_LEARN_RESPONSE_LATENCY 0x1f #define V_LEARN_RESPONSE_LATENCY(x) ((x) << S_LEARN_RESPONSE_LATENCY) #define G_LEARN_RESPONSE_LATENCY(x) (((x) >> S_LEARN_RESPONSE_LATENCY) & M_LEARN_RESPONSE_LATENCY) #define A_MC5_PARITY_LATENCY 0xc24 #define S_SRCHLAT 0 #define M_SRCHLAT 0x1f #define V_SRCHLAT(x) ((x) << S_SRCHLAT) #define G_SRCHLAT(x) (((x) >> S_SRCHLAT) & M_SRCHLAT) #define S_PARLAT 8 #define M_PARLAT 0x1f #define V_PARLAT(x) ((x) << S_PARLAT) #define G_PARLAT(x) (((x) >> S_PARLAT) & M_PARLAT) #define A_MC5_WR_LRN_VERIFY 0xc28 #define S_POVEREN 0 #define V_POVEREN(x) ((x) << S_POVEREN) #define F_POVEREN V_POVEREN(1U) #define S_LRNVEREN 1 #define V_LRNVEREN(x) ((x) << S_LRNVEREN) #define F_LRNVEREN V_LRNVEREN(1U) #define S_VWVEREN 2 #define V_VWVEREN(x) ((x) << S_VWVEREN) #define F_VWVEREN V_VWVEREN(1U) #define A_MC5_PART_ID_INDEX 0xc2c #define S_IDINDEX 0 #define M_IDINDEX 0xf #define V_IDINDEX(x) ((x) << S_IDINDEX) #define G_IDINDEX(x) (((x) >> S_IDINDEX) & M_IDINDEX) #define A_MC5_RESET_MAX 0xc30 #define S_RSTMAX 0 #define M_RSTMAX 0x1ff #define V_RSTMAX(x) ((x) << S_RSTMAX) #define G_RSTMAX(x) (((x) >> S_RSTMAX) & M_RSTMAX) #define A_MC5_INT_ENABLE 0xc40 #define S_MC5_INT_HIT_OUT_ACTIVE_REGION_ERR 0 #define V_MC5_INT_HIT_OUT_ACTIVE_REGION_ERR(x) ((x) << S_MC5_INT_HIT_OUT_ACTIVE_REGION_ERR) #define F_MC5_INT_HIT_OUT_ACTIVE_REGION_ERR V_MC5_INT_HIT_OUT_ACTIVE_REGION_ERR(1U) #define S_MC5_INT_HIT_IN_ACTIVE_REGION_ERR 1 #define V_MC5_INT_HIT_IN_ACTIVE_REGION_ERR(x) ((x) << S_MC5_INT_HIT_IN_ACTIVE_REGION_ERR) #define F_MC5_INT_HIT_IN_ACTIVE_REGION_ERR V_MC5_INT_HIT_IN_ACTIVE_REGION_ERR(1U) #define S_MC5_INT_HIT_IN_RT_REGION_ERR 2 #define V_MC5_INT_HIT_IN_RT_REGION_ERR(x) ((x) << S_MC5_INT_HIT_IN_RT_REGION_ERR) #define F_MC5_INT_HIT_IN_RT_REGION_ERR V_MC5_INT_HIT_IN_RT_REGION_ERR(1U) #define S_MC5_INT_MISS_ERR 3 #define V_MC5_INT_MISS_ERR(x) ((x) << S_MC5_INT_MISS_ERR) #define F_MC5_INT_MISS_ERR V_MC5_INT_MISS_ERR(1U) #define S_MC5_INT_LIP0_ERR 4 #define V_MC5_INT_LIP0_ERR(x) ((x) << S_MC5_INT_LIP0_ERR) #define F_MC5_INT_LIP0_ERR V_MC5_INT_LIP0_ERR(1U) #define S_MC5_INT_LIP_MISS_ERR 5 #define V_MC5_INT_LIP_MISS_ERR(x) ((x) << S_MC5_INT_LIP_MISS_ERR) #define F_MC5_INT_LIP_MISS_ERR V_MC5_INT_LIP_MISS_ERR(1U) #define S_MC5_INT_PARITY_ERR 6 #define V_MC5_INT_PARITY_ERR(x) ((x) << S_MC5_INT_PARITY_ERR) #define F_MC5_INT_PARITY_ERR V_MC5_INT_PARITY_ERR(1U) #define S_MC5_INT_ACTIVE_REGION_FULL 7 #define V_MC5_INT_ACTIVE_REGION_FULL(x) ((x) << S_MC5_INT_ACTIVE_REGION_FULL) #define F_MC5_INT_ACTIVE_REGION_FULL V_MC5_INT_ACTIVE_REGION_FULL(1U) #define S_MC5_INT_NFA_SRCH_ERR 8 #define V_MC5_INT_NFA_SRCH_ERR(x) ((x) << S_MC5_INT_NFA_SRCH_ERR) #define F_MC5_INT_NFA_SRCH_ERR V_MC5_INT_NFA_SRCH_ERR(1U) #define S_MC5_INT_SYN_COOKIE 9 #define V_MC5_INT_SYN_COOKIE(x) ((x) << S_MC5_INT_SYN_COOKIE) #define F_MC5_INT_SYN_COOKIE V_MC5_INT_SYN_COOKIE(1U) #define S_MC5_INT_SYN_COOKIE_BAD 10 #define V_MC5_INT_SYN_COOKIE_BAD(x) ((x) << S_MC5_INT_SYN_COOKIE_BAD) #define F_MC5_INT_SYN_COOKIE_BAD V_MC5_INT_SYN_COOKIE_BAD(1U) #define S_MC5_INT_SYN_COOKIE_OFF 11 #define V_MC5_INT_SYN_COOKIE_OFF(x) ((x) << S_MC5_INT_SYN_COOKIE_OFF) #define F_MC5_INT_SYN_COOKIE_OFF V_MC5_INT_SYN_COOKIE_OFF(1U) #define S_MC5_INT_UNKNOWN_CMD 15 #define V_MC5_INT_UNKNOWN_CMD(x) ((x) << S_MC5_INT_UNKNOWN_CMD) #define F_MC5_INT_UNKNOWN_CMD V_MC5_INT_UNKNOWN_CMD(1U) #define S_MC5_INT_REQUESTQ_PARITY_ERR 16 #define V_MC5_INT_REQUESTQ_PARITY_ERR(x) ((x) << S_MC5_INT_REQUESTQ_PARITY_ERR) #define F_MC5_INT_REQUESTQ_PARITY_ERR V_MC5_INT_REQUESTQ_PARITY_ERR(1U) #define S_MC5_INT_DISPATCHQ_PARITY_ERR 17 #define V_MC5_INT_DISPATCHQ_PARITY_ERR(x) ((x) << S_MC5_INT_DISPATCHQ_PARITY_ERR) #define F_MC5_INT_DISPATCHQ_PARITY_ERR V_MC5_INT_DISPATCHQ_PARITY_ERR(1U) #define S_MC5_INT_DEL_ACT_EMPTY 18 #define V_MC5_INT_DEL_ACT_EMPTY(x) ((x) << S_MC5_INT_DEL_ACT_EMPTY) #define F_MC5_INT_DEL_ACT_EMPTY V_MC5_INT_DEL_ACT_EMPTY(1U) #define A_MC5_INT_CAUSE 0xc44 #define A_MC5_INT_TID 0xc48 #define A_MC5_INT_PTID 0xc4c #define A_MC5_DBGI_CONFIG 0xc74 #define A_MC5_DBGI_REQ_CMD 0xc78 #define S_CMDMODE 0 #define M_CMDMODE 0x7 #define V_CMDMODE(x) ((x) << S_CMDMODE) #define G_CMDMODE(x) (((x) >> S_CMDMODE) & M_CMDMODE) #define S_SADRSEL 4 #define V_SADRSEL(x) ((x) << S_SADRSEL) #define F_SADRSEL V_SADRSEL(1U) #define S_WRITE_BURST_SIZE 22 #define M_WRITE_BURST_SIZE 0x3ff #define V_WRITE_BURST_SIZE(x) ((x) << S_WRITE_BURST_SIZE) #define G_WRITE_BURST_SIZE(x) (((x) >> S_WRITE_BURST_SIZE) & M_WRITE_BURST_SIZE) #define A_MC5_DBGI_REQ_ADDR0 0xc7c #define A_MC5_DBGI_REQ_ADDR1 0xc80 #define A_MC5_DBGI_REQ_ADDR2 0xc84 #define A_MC5_DBGI_REQ_DATA0 0xc88 #define A_MC5_DBGI_REQ_DATA1 0xc8c #define A_MC5_DBGI_REQ_DATA2 0xc90 #define A_MC5_DBGI_REQ_DATA3 0xc94 #define A_MC5_DBGI_REQ_DATA4 0xc98 #define A_MC5_DBGI_REQ_MASK0 0xc9c #define A_MC5_DBGI_REQ_MASK1 0xca0 #define A_MC5_DBGI_REQ_MASK2 0xca4 #define A_MC5_DBGI_REQ_MASK3 0xca8 #define A_MC5_DBGI_REQ_MASK4 0xcac #define A_MC5_DBGI_RSP_STATUS 0xcb0 #define S_DBGI_RSP_VALID 0 #define V_DBGI_RSP_VALID(x) ((x) << S_DBGI_RSP_VALID) #define F_DBGI_RSP_VALID V_DBGI_RSP_VALID(1U) #define S_DBGI_RSP_HIT 1 #define V_DBGI_RSP_HIT(x) ((x) << S_DBGI_RSP_HIT) #define F_DBGI_RSP_HIT V_DBGI_RSP_HIT(1U) #define S_DBGI_RSP_ERR 2 #define V_DBGI_RSP_ERR(x) ((x) << S_DBGI_RSP_ERR) #define F_DBGI_RSP_ERR V_DBGI_RSP_ERR(1U) #define S_DBGI_RSP_ERR_REASON 8 #define M_DBGI_RSP_ERR_REASON 0x7 #define V_DBGI_RSP_ERR_REASON(x) ((x) << S_DBGI_RSP_ERR_REASON) #define G_DBGI_RSP_ERR_REASON(x) (((x) >> S_DBGI_RSP_ERR_REASON) & M_DBGI_RSP_ERR_REASON) #define A_MC5_DBGI_RSP_DATA0 0xcb4 #define A_MC5_DBGI_RSP_DATA1 0xcb8 #define A_MC5_DBGI_RSP_DATA2 0xcbc #define A_MC5_DBGI_RSP_DATA3 0xcc0 #define A_MC5_DBGI_RSP_DATA4 0xcc4 #define A_MC5_DBGI_RSP_LAST_CMD 0xcc8 #define A_MC5_POPEN_DATA_WR_CMD 0xccc #define A_MC5_POPEN_MASK_WR_CMD 0xcd0 #define A_MC5_AOPEN_SRCH_CMD 0xcd4 #define A_MC5_AOPEN_LRN_CMD 0xcd8 #define A_MC5_SYN_SRCH_CMD 0xcdc #define A_MC5_SYN_LRN_CMD 0xce0 #define A_MC5_ACK_SRCH_CMD 0xce4 #define A_MC5_ACK_LRN_CMD 0xce8 #define A_MC5_ILOOKUP_CMD 0xcec #define A_MC5_ELOOKUP_CMD 0xcf0 #define A_MC5_DATA_WRITE_CMD 0xcf4 #define A_MC5_DATA_READ_CMD 0xcf8 #define A_MC5_MASK_WRITE_CMD 0xcfc /* PCICFG registers */ #define A_PCICFG_PM_CSR 0x44 #define A_PCICFG_VPD_ADDR 0x4a #define S_VPD_ADDR 0 #define M_VPD_ADDR 0x7fff #define V_VPD_ADDR(x) ((x) << S_VPD_ADDR) #define G_VPD_ADDR(x) (((x) >> S_VPD_ADDR) & M_VPD_ADDR) #define S_VPD_OP_FLAG 15 #define V_VPD_OP_FLAG(x) ((x) << S_VPD_OP_FLAG) #define F_VPD_OP_FLAG V_VPD_OP_FLAG(1U) #define A_PCICFG_VPD_DATA 0x4c #define A_PCICFG_PCIX_CMD 0x60 #define A_PCICFG_INTR_ENABLE 0xf4 #define S_MASTER_PARITY_ERR 0 #define V_MASTER_PARITY_ERR(x) ((x) << S_MASTER_PARITY_ERR) #define F_MASTER_PARITY_ERR V_MASTER_PARITY_ERR(1U) #define S_SIG_TARGET_ABORT 1 #define V_SIG_TARGET_ABORT(x) ((x) << S_SIG_TARGET_ABORT) #define F_SIG_TARGET_ABORT V_SIG_TARGET_ABORT(1U) #define S_RCV_TARGET_ABORT 2 #define V_RCV_TARGET_ABORT(x) ((x) << S_RCV_TARGET_ABORT) #define F_RCV_TARGET_ABORT V_RCV_TARGET_ABORT(1U) #define S_RCV_MASTER_ABORT 3 #define V_RCV_MASTER_ABORT(x) ((x) << S_RCV_MASTER_ABORT) #define F_RCV_MASTER_ABORT V_RCV_MASTER_ABORT(1U) #define S_SIG_SYS_ERR 4 #define V_SIG_SYS_ERR(x) ((x) << S_SIG_SYS_ERR) #define F_SIG_SYS_ERR V_SIG_SYS_ERR(1U) #define S_DET_PARITY_ERR 5 #define V_DET_PARITY_ERR(x) ((x) << S_DET_PARITY_ERR) #define F_DET_PARITY_ERR V_DET_PARITY_ERR(1U) #define S_PIO_PARITY_ERR 6 #define V_PIO_PARITY_ERR(x) ((x) << S_PIO_PARITY_ERR) #define F_PIO_PARITY_ERR V_PIO_PARITY_ERR(1U) #define S_WF_PARITY_ERR 7 #define V_WF_PARITY_ERR(x) ((x) << S_WF_PARITY_ERR) #define F_WF_PARITY_ERR V_WF_PARITY_ERR(1U) #define S_RF_PARITY_ERR 8 #define M_RF_PARITY_ERR 0x3 #define V_RF_PARITY_ERR(x) ((x) << S_RF_PARITY_ERR) #define G_RF_PARITY_ERR(x) (((x) >> S_RF_PARITY_ERR) & M_RF_PARITY_ERR) #define S_CF_PARITY_ERR 10 #define M_CF_PARITY_ERR 0x3 #define V_CF_PARITY_ERR(x) ((x) << S_CF_PARITY_ERR) #define G_CF_PARITY_ERR(x) (((x) >> S_CF_PARITY_ERR) & M_CF_PARITY_ERR) #define A_PCICFG_INTR_CAUSE 0xf8 #define A_PCICFG_MODE 0xfc #define S_PCI_MODE_64BIT 0 #define V_PCI_MODE_64BIT(x) ((x) << S_PCI_MODE_64BIT) #define F_PCI_MODE_64BIT V_PCI_MODE_64BIT(1U) #define S_PCI_MODE_66MHZ 1 #define V_PCI_MODE_66MHZ(x) ((x) << S_PCI_MODE_66MHZ) #define F_PCI_MODE_66MHZ V_PCI_MODE_66MHZ(1U) #define S_PCI_MODE_PCIX_INITPAT 2 #define M_PCI_MODE_PCIX_INITPAT 0x7 #define V_PCI_MODE_PCIX_INITPAT(x) ((x) << S_PCI_MODE_PCIX_INITPAT) #define G_PCI_MODE_PCIX_INITPAT(x) (((x) >> S_PCI_MODE_PCIX_INITPAT) & M_PCI_MODE_PCIX_INITPAT) #define S_PCI_MODE_PCIX 5 #define V_PCI_MODE_PCIX(x) ((x) << S_PCI_MODE_PCIX) #define F_PCI_MODE_PCIX V_PCI_MODE_PCIX(1U) #define S_PCI_MODE_CLK 6 #define M_PCI_MODE_CLK 0x3 #define V_PCI_MODE_CLK(x) ((x) << S_PCI_MODE_CLK) #define G_PCI_MODE_CLK(x) (((x) >> S_PCI_MODE_CLK) & M_PCI_MODE_CLK) #endif /* _CXGB_REGS_H_ */