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path: root/fs/lockd/host.c
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/*
 * linux/fs/lockd/host.c
 *
 * Management for NLM peer hosts. The nlm_host struct is shared
 * between client and server implementation. The only reason to
 * do so is to reduce code bloat.
 *
 * Copyright (C) 1996, Olaf Kirch <okir@monad.swb.de>
 */

#include <linux/types.h>
#include <linux/slab.h>
#include <linux/in.h>
#include <linux/sunrpc/clnt.h>
#include <linux/sunrpc/svc.h>
#include <linux/lockd/lockd.h>
#include <linux/lockd/sm_inter.h>
#include <linux/mutex.h>


#define NLMDBG_FACILITY		NLMDBG_HOSTCACHE
#define NLM_HOST_NRHASH		32
#define NLM_ADDRHASH(addr)	(ntohl(addr) & (NLM_HOST_NRHASH-1))
#define NLM_HOST_REBIND		(60 * HZ)
#define NLM_HOST_EXPIRE		(300 * HZ)
#define NLM_HOST_COLLECT	(120 * HZ)

static struct hlist_head	nlm_hosts[NLM_HOST_NRHASH];
static unsigned long		next_gc;
static int			nrhosts;
static DEFINE_MUTEX(nlm_host_mutex);


static void			nlm_gc_hosts(void);
static struct nsm_handle *	__nsm_find(const struct sockaddr_in *,
					const char *, unsigned int, int);
static struct nsm_handle *	nsm_find(const struct sockaddr_in *sin,
					 const char *hostname,
					 unsigned int hostname_len);

/*
 * Common host lookup routine for server & client
 */
static struct nlm_host *nlm_lookup_host(int server,
					const struct sockaddr_in *sin,
					int proto, u32 version,
					const char *hostname,
					unsigned int hostname_len,
					const struct sockaddr_in *ssin)
{
	struct hlist_head *chain;
	struct hlist_node *pos;
	struct nlm_host	*host;
	struct nsm_handle *nsm = NULL;
	int		hash;

	dprintk("lockd: nlm_lookup_host("NIPQUAD_FMT"->"NIPQUAD_FMT
			", p=%d, v=%u, my role=%s, name=%.*s)\n",
			NIPQUAD(ssin->sin_addr.s_addr),
			NIPQUAD(sin->sin_addr.s_addr), proto, version,
			server? "server" : "client",
			hostname_len,
			hostname? hostname : "<none>");


	hash = NLM_ADDRHASH(sin->sin_addr.s_addr);

	/* Lock hash table */
	mutex_lock(&nlm_host_mutex);

	if (time_after_eq(jiffies, next_gc))
		nlm_gc_hosts();

	/* We may keep several nlm_host objects for a peer, because each
	 * nlm_host is identified by
	 * (address, protocol, version, server/client)
	 * We could probably simplify this a little by putting all those
	 * different NLM rpc_clients into one single nlm_host object.
	 * This would allow us to have one nlm_host per address.
	 */
	chain = &nlm_hosts[hash];
	hlist_for_each_entry(host, pos, chain, h_hash) {
		if (!nlm_cmp_addr(&host->h_addr, sin))
			continue;

		/* See if we have an NSM handle for this client */
		if (!nsm)
			nsm = host->h_nsmhandle;

		if (host->h_proto != proto)
			continue;
		if (host->h_version != version)
			continue;
		if (host->h_server != server)
			continue;
		if (!nlm_cmp_addr(&host->h_saddr, ssin))
			continue;

		/* Move to head of hash chain. */
		hlist_del(&host->h_hash);
		hlist_add_head(&host->h_hash, chain);

		nlm_get_host(host);
		goto out;
	}
	if (nsm)
		atomic_inc(&nsm->sm_count);

	host = NULL;

	/* Sadly, the host isn't in our hash table yet. See if
	 * we have an NSM handle for it. If not, create one.
	 */
	if (!nsm && !(nsm = nsm_find(sin, hostname, hostname_len)))
		goto out;

	host = kzalloc(sizeof(*host), GFP_KERNEL);
	if (!host) {
		nsm_release(nsm);
		goto out;
	}
	host->h_name	   = nsm->sm_name;
	host->h_addr       = *sin;
	host->h_addr.sin_port = 0;	/* ouch! */
	host->h_saddr	   = *ssin;
	host->h_version    = version;
	host->h_proto      = proto;
	host->h_rpcclnt    = NULL;
	mutex_init(&host->h_mutex);
	host->h_nextrebind = jiffies + NLM_HOST_REBIND;
	host->h_expires    = jiffies + NLM_HOST_EXPIRE;
	atomic_set(&host->h_count, 1);
	init_waitqueue_head(&host->h_gracewait);
	init_rwsem(&host->h_rwsem);
	host->h_state      = 0;			/* pseudo NSM state */
	host->h_nsmstate   = 0;			/* real NSM state */
	host->h_nsmhandle  = nsm;
	host->h_server	   = server;
	hlist_add_head(&host->h_hash, chain);
	INIT_LIST_HEAD(&host->h_lockowners);
	spin_lock_init(&host->h_lock);
	INIT_LIST_HEAD(&host->h_granted);
	INIT_LIST_HEAD(&host->h_reclaim);

	nrhosts++;
out:
	mutex_unlock(&nlm_host_mutex);
	return host;
}

/*
 * Destroy a host
 */
static void
nlm_destroy_host(struct nlm_host *host)
{
	struct rpc_clnt	*clnt;

	BUG_ON(!list_empty(&host->h_lockowners));
	BUG_ON(atomic_read(&host->h_count));

	/*
	 * Release NSM handle and unmonitor host.
	 */
	nsm_unmonitor(host);

	clnt = host->h_rpcclnt;
	if (clnt != NULL)
		rpc_shutdown_client(clnt);
	kfree(host);
}

/*
 * Find an NLM server handle in the cache. If there is none, create it.
 */
struct nlm_host *nlmclnt_lookup_host(const struct sockaddr_in *sin,
				     int proto, u32 version,
				     const char *hostname,
				     unsigned int hostname_len)
{
	struct sockaddr_in ssin = {0};

	return nlm_lookup_host(0, sin, proto, version,
			       hostname, hostname_len, &ssin);
}

/*
 * Find an NLM client handle in the cache. If there is none, create it.
 */
struct nlm_host *
nlmsvc_lookup_host(struct svc_rqst *rqstp,
			const char *hostname, unsigned int hostname_len)
{
	struct sockaddr_in ssin = {0};

	ssin.sin_addr = rqstp->rq_daddr.addr;
	return nlm_lookup_host(1, svc_addr_in(rqstp),
			       rqstp->rq_prot, rqstp->rq_vers,
			       hostname, hostname_len, &ssin);
}

/*
 * Create the NLM RPC client for an NLM peer
 */
struct rpc_clnt *
nlm_bind_host(struct nlm_host *host)
{
	struct rpc_clnt	*clnt;

	dprintk("lockd: nlm_bind_host("NIPQUAD_FMT"->"NIPQUAD_FMT")\n",
			NIPQUAD(host->h_saddr.sin_addr),
			NIPQUAD(host->h_addr.sin_addr));

	/* Lock host handle */
	mutex_lock(&host->h_mutex);

	/* If we've already created an RPC client, check whether
	 * RPC rebind is required
	 */
	if ((clnt = host->h_rpcclnt) != NULL) {
		if (time_after_eq(jiffies, host->h_nextrebind)) {
			rpc_force_rebind(clnt);
			host->h_nextrebind = jiffies + NLM_HOST_REBIND;
			dprintk("lockd: next rebind in %ld jiffies\n",
					host->h_nextrebind - jiffies);
		}
	} else {
		unsigned long increment = nlmsvc_timeout;
		struct rpc_timeout timeparms = {
			.to_initval	= increment,
			.to_increment	= increment,
			.to_maxval	= increment * 6UL,
			.to_retries	= 5U,
		};
		struct rpc_create_args args = {
			.protocol	= host->h_proto,
			.address	= (struct sockaddr *)&host->h_addr,
			.addrsize	= sizeof(host->h_addr),
			.saddress	= (struct sockaddr *)&host->h_saddr,
			.timeout	= &timeparms,
			.servername	= host->h_name,
			.program	= &nlm_program,
			.version	= host->h_version,
			.authflavor	= RPC_AUTH_UNIX,
			.flags		= (RPC_CLNT_CREATE_NOPING |
					   RPC_CLNT_CREATE_AUTOBIND),
		};

		/*
		 * lockd retries server side blocks automatically so we want
		 * those to be soft RPC calls. Client side calls need to be
		 * hard RPC tasks.
		 */
		if (!host->h_server)
			args.flags |= RPC_CLNT_CREATE_HARDRTRY;

		clnt = rpc_create(&args);
		if (!IS_ERR(clnt))
			host->h_rpcclnt = clnt;
		else {
			printk("lockd: couldn't create RPC handle for %s\n", host->h_name);
			clnt = NULL;
		}
	}

	mutex_unlock(&host->h_mutex);
	return clnt;
}

/*
 * Force a portmap lookup of the remote lockd port
 */
void
nlm_rebind_host(struct nlm_host *host)
{
	dprintk("lockd: rebind host %s\n", host->h_name);
	if (host->h_rpcclnt && time_after_eq(jiffies, host->h_nextrebind)) {
		rpc_force_rebind(host->h_rpcclnt);
		host->h_nextrebind = jiffies + NLM_HOST_REBIND;
	}
}

/*
 * Increment NLM host count
 */
struct nlm_host * nlm_get_host(struct nlm_host *host)
{
	if (host) {
		dprintk("lockd: get host %s\n", host->h_name);
		atomic_inc(&host->h_count);
		host->h_expires = jiffies + NLM_HOST_EXPIRE;
	}
	return host;
}

/*
 * Release NLM host after use
 */
void nlm_release_host(struct nlm_host *host)
{
	if (host != NULL) {
		dprintk("lockd: release host %s\n", host->h_name);
		BUG_ON(atomic_read(&host->h_count) < 0);
		if (atomic_dec_and_test(&host->h_count)) {
			BUG_ON(!list_empty(&host->h_lockowners));
			BUG_ON(!list_empty(&host->h_granted));
			BUG_ON(!list_empty(&host->h_reclaim));
		}
	}
}

/*
 * We were notified that the host indicated by address &sin
 * has rebooted.
 * Release all resources held by that peer.
 */
void nlm_host_rebooted(const struct sockaddr_in *sin,
				const char *hostname,
				unsigned int hostname_len,
				u32 new_state)
{
	struct hlist_head *chain;
	struct hlist_node *pos;
	struct nsm_handle *nsm;
	struct nlm_host	*host;

	dprintk("lockd: nlm_host_rebooted(%s, %u.%u.%u.%u)\n",
			hostname, NIPQUAD(sin->sin_addr));

	/* Find the NSM handle for this peer */
	if (!(nsm = __nsm_find(sin, hostname, hostname_len, 0)))
		return;

	/* When reclaiming locks on this peer, make sure that
	 * we set up a new notification */
	nsm->sm_monitored = 0;

	/* Mark all hosts tied to this NSM state as having rebooted.
	 * We run the loop repeatedly, because we drop the host table
	 * lock for this.
	 * To avoid processing a host several times, we match the nsmstate.
	 */
again:	mutex_lock(&nlm_host_mutex);
	for (chain = nlm_hosts; chain < nlm_hosts + NLM_HOST_NRHASH; ++chain) {
		hlist_for_each_entry(host, pos, chain, h_hash) {
			if (host->h_nsmhandle == nsm
			 && host->h_nsmstate != new_state) {
				host->h_nsmstate = new_state;
				host->h_state++;

				nlm_get_host(host);
				mutex_unlock(&nlm_host_mutex);

				if (host->h_server) {
					/* We're server for this guy, just ditch
					 * all the locks he held. */
					nlmsvc_free_host_resources(host);
				} else {
					/* He's the server, initiate lock recovery. */
					nlmclnt_recovery(host);
				}

				nlm_release_host(host);
				goto again;
			}
		}
	}

	mutex_unlock(&nlm_host_mutex);
}

/*
 * Shut down the hosts module.
 * Note that this routine is called only at server shutdown time.
 */
void
nlm_shutdown_hosts(void)
{
	struct hlist_head *chain;
	struct hlist_node *pos;
	struct nlm_host	*host;

	dprintk("lockd: shutting down host module\n");
	mutex_lock(&nlm_host_mutex);

	/* First, make all hosts eligible for gc */
	dprintk("lockd: nuking all hosts...\n");
	for (chain = nlm_hosts; chain < nlm_hosts + NLM_HOST_NRHASH; ++chain) {
		hlist_for_each_entry(host, pos, chain, h_hash) {
			host->h_expires = jiffies - 1;
			if (host->h_rpcclnt) {
				rpc_shutdown_client(host->h_rpcclnt);
				host->h_rpcclnt = NULL;
			}
		}
	}

	/* Then, perform a garbage collection pass */
	nlm_gc_hosts();
	mutex_unlock(&nlm_host_mutex);

	/* complain if any hosts are left */
	if (nrhosts) {
		printk(KERN_WARNING "lockd: couldn't shutdown host module!\n");
		dprintk("lockd: %d hosts left:\n", nrhosts);
		for (chain = nlm_hosts; chain < nlm_hosts + NLM_HOST_NRHASH; ++chain) {
			hlist_for_each_entry(host, pos, chain, h_hash) {
				dprintk("       %s (cnt %d use %d exp %ld)\n",
					host->h_name, atomic_read(&host->h_count),
					host->h_inuse, host->h_expires);
			}
		}
	}
}

/*
 * Garbage collect any unused NLM hosts.
 * This GC combines reference counting for async operations with
 * mark & sweep for resources held by remote clients.
 */
static void
nlm_gc_hosts(void)
{
	struct hlist_head *chain;
	struct hlist_node *pos, *next;
	struct nlm_host	*host;

	dprintk("lockd: host garbage collection\n");
	for (chain = nlm_hosts; chain < nlm_hosts + NLM_HOST_NRHASH; ++chain) {
		hlist_for_each_entry(host, pos, chain, h_hash)
			host->h_inuse = 0;
	}

	/* Mark all hosts that hold locks, blocks or shares */
	nlmsvc_mark_resources();

	for (chain = nlm_hosts; chain < nlm_hosts + NLM_HOST_NRHASH; ++chain) {
		hlist_for_each_entry_safe(host, pos, next, chain, h_hash) {
			if (atomic_read(&host->h_count) || host->h_inuse
			 || time_before(jiffies, host->h_expires)) {
				dprintk("nlm_gc_hosts skipping %s (cnt %d use %d exp %ld)\n",
					host->h_name, atomic_read(&host->h_count),
					host->h_inuse, host->h_expires);
				continue;
			}
			dprintk("lockd: delete host %s\n", host->h_name);
			hlist_del_init(&host->h_hash);

			nlm_destroy_host(host);
			nrhosts--;
		}
	}

	next_gc = jiffies + NLM_HOST_COLLECT;
}


/*
 * Manage NSM handles
 */
static LIST_HEAD(nsm_handles);
static DEFINE_SPINLOCK(nsm_lock);

static struct nsm_handle *
__nsm_find(const struct sockaddr_in *sin,
		const char *hostname, unsigned int hostname_len,
		int create)
{
	struct nsm_handle *nsm = NULL;
	struct nsm_handle *pos;

	if (!sin)
		return NULL;

	if (hostname && memchr(hostname, '/', hostname_len) != NULL) {
		if (printk_ratelimit()) {
			printk(KERN_WARNING "Invalid hostname \"%.*s\" "
					    "in NFS lock request\n",
				hostname_len, hostname);
		}
		return NULL;
	}

retry:
	spin_lock(&nsm_lock);
	list_for_each_entry(pos, &nsm_handles, sm_link) {

		if (hostname && nsm_use_hostnames) {
			if (strlen(pos->sm_name) != hostname_len
			 || memcmp(pos->sm_name, hostname, hostname_len))
				continue;
		} else if (!nlm_cmp_addr(&pos->sm_addr, sin))
			continue;
		atomic_inc(&pos->sm_count);
		kfree(nsm);
		nsm = pos;
		goto found;
	}
	if (nsm) {
		list_add(&nsm->sm_link, &nsm_handles);
		goto found;
	}
	spin_unlock(&nsm_lock);

	if (!create)
		return NULL;

	nsm = kzalloc(sizeof(*nsm) + hostname_len + 1, GFP_KERNEL);
	if (nsm == NULL)
		return NULL;

	nsm->sm_addr = *sin;
	nsm->sm_name = (char *) (nsm + 1);
	memcpy(nsm->sm_name, hostname, hostname_len);
	nsm->sm_name[hostname_len] = '\0';
	atomic_set(&nsm->sm_count, 1);
	goto retry;

found:
	spin_unlock(&nsm_lock);
	return nsm;
}

static struct nsm_handle *
nsm_find(const struct sockaddr_in *sin, const char *hostname,
	 unsigned int hostname_len)
{
	return __nsm_find(sin, hostname, hostname_len, 1);
}

/*
 * Release an NSM handle
 */
void
nsm_release(struct nsm_handle *nsm)
{
	if (!nsm)
		return;
	if (atomic_dec_and_lock(&nsm->sm_count, &nsm_lock)) {
		list_del(&nsm->sm_link);
		spin_unlock(&nsm_lock);
		kfree(nsm);
	}
}
span class="hl opt">); snd_ice1712_ews_cs8404_spdif_write(ice, val); } else { spin_unlock_irq(&ice->reg_lock); } return change; } /* open callback */ static void ews88_open_spdif(ice1712_t *ice, snd_pcm_substream_t * substream) { ice->spdif.cs8403_stream_bits = ice->spdif.cs8403_bits; } /* set up SPDIF for EWS88MT / EWS88D */ static void ews88_setup_spdif(ice1712_t *ice, int rate) { unsigned long flags; unsigned char tmp; int change; spin_lock_irqsave(&ice->reg_lock, flags); tmp = ice->spdif.cs8403_stream_bits; if (tmp & 0x10) /* consumer */ tmp &= (tmp & 0x01) ? ~0x06 : ~0x60; switch (rate) { case 32000: tmp |= (tmp & 0x01) ? 0x02 : 0x00; break; case 44100: tmp |= (tmp & 0x01) ? 0x06 : 0x40; break; case 48000: tmp |= (tmp & 0x01) ? 0x04 : 0x20; break; default: tmp |= (tmp & 0x01) ? 0x06 : 0x40; break; } change = ice->spdif.cs8403_stream_bits != tmp; ice->spdif.cs8403_stream_bits = tmp; spin_unlock_irqrestore(&ice->reg_lock, flags); if (change) snd_ctl_notify(ice->card, SNDRV_CTL_EVENT_MASK_VALUE, &ice->spdif.stream_ctl->id); snd_ice1712_ews_cs8404_spdif_write(ice, tmp); } /* */ static akm4xxx_t akm_ews88mt __devinitdata = { .num_adcs = 8, .num_dacs = 8, .type = SND_AK4524, .ops = { .lock = ews88mt_ak4524_lock, .unlock = ews88mt_ak4524_unlock } }; static struct snd_ak4xxx_private akm_ews88mt_priv __devinitdata = { .caddr = 2, .cif = 1, /* CIF high */ .data_mask = ICE1712_EWS88_SERIAL_DATA, .clk_mask = ICE1712_EWS88_SERIAL_CLOCK, .cs_mask = 0, .cs_addr = 0, .cs_none = 0, /* no chip select on gpio */ .add_flags = ICE1712_EWS88_RW, /* set rw bit high */ .mask_flags = 0, }; static akm4xxx_t akm_ewx2496 __devinitdata = { .num_adcs = 2, .num_dacs = 2, .type = SND_AK4524, .ops = { .lock = ewx2496_ak4524_lock } }; static struct snd_ak4xxx_private akm_ewx2496_priv __devinitdata = { .caddr = 2, .cif = 1, /* CIF high */ .data_mask = ICE1712_EWS88_SERIAL_DATA, .clk_mask = ICE1712_EWS88_SERIAL_CLOCK, .cs_mask = ICE1712_EWX2496_AK4524_CS, .cs_addr = ICE1712_EWX2496_AK4524_CS, .cs_none = 0, .add_flags = ICE1712_EWS88_RW, /* set rw bit high */ .mask_flags = 0, }; static akm4xxx_t akm_6fire __devinitdata = { .num_adcs = 6, .num_dacs = 6, .type = SND_AK4524, .ops = { .lock = dmx6fire_ak4524_lock } }; static struct snd_ak4xxx_private akm_6fire_priv __devinitdata = { .caddr = 2, .cif = 1, /* CIF high */ .data_mask = ICE1712_6FIRE_SERIAL_DATA, .clk_mask = ICE1712_6FIRE_SERIAL_CLOCK, .cs_mask = 0, .cs_addr = 0, /* set later */ .cs_none = 0, .add_flags = ICE1712_6FIRE_RW, /* set rw bit high */ .mask_flags = 0, }; /* * initialize the chip */ /* 6fire specific */ #define PCF9554_REG_INPUT 0 #define PCF9554_REG_OUTPUT 1 #define PCF9554_REG_POLARITY 2 #define PCF9554_REG_CONFIG 3 static int snd_ice1712_6fire_write_pca(ice1712_t *ice, unsigned char reg, unsigned char data); static int __devinit snd_ice1712_ews_init(ice1712_t *ice) { int err; akm4xxx_t *ak; /* set the analog DACs */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWX2496: ice->num_total_dacs = 2; ice->num_total_adcs = 2; break; case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: ice->num_total_dacs = 8; ice->num_total_adcs = 8; break; case ICE1712_SUBDEVICE_EWS88D: /* Note: not analog but ADAT I/O */ ice->num_total_dacs = 8; ice->num_total_adcs = 8; break; case ICE1712_SUBDEVICE_DMX6FIRE: ice->num_total_dacs = 6; ice->num_total_adcs = 6; break; } /* create i2c */ if ((err = snd_i2c_bus_create(ice->card, "ICE1712 GPIO 1", NULL, &ice->i2c)) < 0) { snd_printk(KERN_ERR "unable to create I2C bus\n"); return err; } ice->i2c->private_data = ice; ice->i2c->hw_ops.bit = &snd_ice1712_ewx_cs8427_bit_ops; /* create i2c devices */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_DMX6FIRE: if ((err = snd_i2c_device_create(ice->i2c, "PCF9554", ICE1712_6FIRE_PCF9554_ADDR, &ice->spec.i2cdevs[EWS_I2C_6FIRE])) < 0) { snd_printk(KERN_ERR "PCF9554 initialization failed\n"); return err; } snd_ice1712_6fire_write_pca(ice, PCF9554_REG_CONFIG, 0x80); break; case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: if ((err = snd_i2c_device_create(ice->i2c, "CS8404", ICE1712_EWS88MT_CS8404_ADDR, &ice->spec.i2cdevs[EWS_I2C_CS8404])) < 0) return err; if ((err = snd_i2c_device_create(ice->i2c, "PCF8574 (1st)", ICE1712_EWS88MT_INPUT_ADDR, &ice->spec.i2cdevs[EWS_I2C_PCF1])) < 0) return err; if ((err = snd_i2c_device_create(ice->i2c, "PCF8574 (2nd)", ICE1712_EWS88MT_OUTPUT_ADDR, &ice->spec.i2cdevs[EWS_I2C_PCF2])) < 0) return err; /* Check if the front module is connected */ if ((err = snd_ice1712_ews88mt_chip_select(ice, 0x0f)) < 0) return err; break; case ICE1712_SUBDEVICE_EWS88D: if ((err = snd_i2c_device_create(ice->i2c, "PCF8575", ICE1712_EWS88D_PCF_ADDR, &ice->spec.i2cdevs[EWS_I2C_88D])) < 0) return err; break; } /* set up SPDIF interface */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWX2496: if ((err = snd_ice1712_init_cs8427(ice, CS8427_BASE_ADDR)) < 0) return err; snd_cs8427_reg_write(ice->cs8427, CS8427_REG_RECVERRMASK, CS8427_UNLOCK | CS8427_CONF | CS8427_BIP | CS8427_PAR); break; case ICE1712_SUBDEVICE_DMX6FIRE: if ((err = snd_ice1712_init_cs8427(ice, ICE1712_6FIRE_CS8427_ADDR)) < 0) return err; snd_cs8427_reg_write(ice->cs8427, CS8427_REG_RECVERRMASK, CS8427_UNLOCK | CS8427_CONF | CS8427_BIP | CS8427_PAR); break; case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: case ICE1712_SUBDEVICE_EWS88D: /* set up CS8404 */ ice->spdif.ops.open = ews88_open_spdif; ice->spdif.ops.setup_rate = ews88_setup_spdif; ice->spdif.ops.default_get = ews88_spdif_default_get; ice->spdif.ops.default_put = ews88_spdif_default_put; ice->spdif.ops.stream_get = ews88_spdif_stream_get; ice->spdif.ops.stream_put = ews88_spdif_stream_put; /* Set spdif defaults */ snd_ice1712_ews_cs8404_spdif_write(ice, ice->spdif.cs8403_bits); break; } /* no analog? */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWS88D: return 0; } /* analog section */ ak = ice->akm = kmalloc(sizeof(akm4xxx_t), GFP_KERNEL); if (! ak) return -ENOMEM; ice->akm_codecs = 1; switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: err = snd_ice1712_akm4xxx_init(ak, &akm_ews88mt, &akm_ews88mt_priv, ice); break; case ICE1712_SUBDEVICE_EWX2496: err = snd_ice1712_akm4xxx_init(ak, &akm_ewx2496, &akm_ewx2496_priv, ice); break; case ICE1712_SUBDEVICE_DMX6FIRE: err = snd_ice1712_akm4xxx_init(ak, &akm_6fire, &akm_6fire_priv, ice); break; default: err = 0; } return err; } /* * EWX 24/96 specific controls */ /* i/o sensitivity - this callback is shared among other devices, too */ static int snd_ice1712_ewx_io_sense_info(snd_kcontrol_t *kcontrol, snd_ctl_elem_info_t *uinfo){ static char *texts[2] = { "+4dBu", "-10dBV", }; uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED; uinfo->count = 1; uinfo->value.enumerated.items = 2; if (uinfo->value.enumerated.item >= 2) uinfo->value.enumerated.item = 1; strcpy(uinfo->value.enumerated.name, texts[uinfo->value.enumerated.item]); return 0; } static int snd_ice1712_ewx_io_sense_get(snd_kcontrol_t * kcontrol, snd_ctl_elem_value_t * ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); unsigned char mask = kcontrol->private_value & 0xff; snd_ice1712_save_gpio_status(ice); ucontrol->value.enumerated.item[0] = snd_ice1712_read(ice, ICE1712_IREG_GPIO_DATA) & mask ? 1 : 0; snd_ice1712_restore_gpio_status(ice); return 0; } static int snd_ice1712_ewx_io_sense_put(snd_kcontrol_t * kcontrol, snd_ctl_elem_value_t * ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); unsigned char mask = kcontrol->private_value & 0xff; int val, nval; if (kcontrol->private_value & (1 << 31)) return -EPERM; nval = ucontrol->value.enumerated.item[0] ? mask : 0; snd_ice1712_save_gpio_status(ice); val = snd_ice1712_read(ice, ICE1712_IREG_GPIO_DATA); nval |= val & ~mask; snd_ice1712_write(ice, ICE1712_IREG_GPIO_DATA, nval); snd_ice1712_restore_gpio_status(ice); return val != nval; } static snd_kcontrol_new_t snd_ice1712_ewx2496_controls[] __devinitdata = { { .iface = SNDRV_CTL_ELEM_IFACE_MIXER, .name = "Input Sensitivity Switch", .info = snd_ice1712_ewx_io_sense_info, .get = snd_ice1712_ewx_io_sense_get, .put = snd_ice1712_ewx_io_sense_put, .private_value = ICE1712_EWX2496_AIN_SEL, }, { .iface = SNDRV_CTL_ELEM_IFACE_MIXER, .name = "Output Sensitivity Switch", .info = snd_ice1712_ewx_io_sense_info, .get = snd_ice1712_ewx_io_sense_get, .put = snd_ice1712_ewx_io_sense_put, .private_value = ICE1712_EWX2496_AOUT_SEL, }, }; /* * EWS88MT specific controls */ /* analog output sensitivity;; address 0x48 bit 6 */ static int snd_ice1712_ews88mt_output_sense_get(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); unsigned char data; snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_PCF2], &data, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); ucontrol->value.enumerated.item[0] = data & ICE1712_EWS88MT_OUTPUT_SENSE ? 1 : 0; /* high = -10dBV, low = +4dBu */ return 0; } /* analog output sensitivity;; address 0x48 bit 6 */ static int snd_ice1712_ews88mt_output_sense_put(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); unsigned char data, ndata; snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_PCF2], &data, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } ndata = (data & ~ICE1712_EWS88MT_OUTPUT_SENSE) | (ucontrol->value.enumerated.item[0] ? ICE1712_EWS88MT_OUTPUT_SENSE : 0); if (ndata != data && snd_i2c_sendbytes(ice->spec.i2cdevs[EWS_I2C_PCF2], &ndata, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); return ndata != data; } /* analog input sensitivity; address 0x46 */ static int snd_ice1712_ews88mt_input_sense_get(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int channel = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id); unsigned char data; snd_assert(channel >= 0 && channel <= 7, return 0); snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_PCF1], &data, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } /* reversed; high = +4dBu, low = -10dBV */ ucontrol->value.enumerated.item[0] = data & (1 << channel) ? 0 : 1; snd_i2c_unlock(ice->i2c); return 0; } /* analog output sensitivity; address 0x46 */ static int snd_ice1712_ews88mt_input_sense_put(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int channel = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id); unsigned char data, ndata; snd_assert(channel >= 0 && channel <= 7, return 0); snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_PCF1], &data, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } ndata = (data & ~(1 << channel)) | (ucontrol->value.enumerated.item[0] ? 0 : (1 << channel)); if (ndata != data && snd_i2c_sendbytes(ice->spec.i2cdevs[EWS_I2C_PCF1], &ndata, 1) != 1) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); return ndata != data; } static snd_kcontrol_new_t snd_ice1712_ews88mt_input_sense __devinitdata = { .iface = SNDRV_CTL_ELEM_IFACE_MIXER, .name = "Input Sensitivity Switch", .info = snd_ice1712_ewx_io_sense_info, .get = snd_ice1712_ews88mt_input_sense_get, .put = snd_ice1712_ews88mt_input_sense_put, .count = 8, }; static snd_kcontrol_new_t snd_ice1712_ews88mt_output_sense __devinitdata = { .iface = SNDRV_CTL_ELEM_IFACE_MIXER, .name = "Output Sensitivity Switch", .info = snd_ice1712_ewx_io_sense_info, .get = snd_ice1712_ews88mt_output_sense_get, .put = snd_ice1712_ews88mt_output_sense_put, }; /* * EWS88D specific controls */ static int snd_ice1712_ews88d_control_info(snd_kcontrol_t *kcontrol, snd_ctl_elem_info_t *uinfo) { uinfo->type = SNDRV_CTL_ELEM_TYPE_BOOLEAN; uinfo->count = 1; uinfo->value.integer.min = 0; uinfo->value.integer.max = 1; return 0; } static int snd_ice1712_ews88d_control_get(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int shift = kcontrol->private_value & 0xff; int invert = (kcontrol->private_value >> 8) & 1; unsigned char data[2]; snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_88D], data, 2) != 2) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); data[0] = (data[shift >> 3] >> (shift & 7)) & 0x01; if (invert) data[0] ^= 0x01; ucontrol->value.integer.value[0] = data[0]; return 0; } static int snd_ice1712_ews88d_control_put(snd_kcontrol_t * kcontrol, snd_ctl_elem_value_t * ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int shift = kcontrol->private_value & 0xff; int invert = (kcontrol->private_value >> 8) & 1; unsigned char data[2], ndata[2]; int change; snd_i2c_lock(ice->i2c); if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_88D], data, 2) != 2) { snd_i2c_unlock(ice->i2c); return -EIO; } ndata[shift >> 3] = data[shift >> 3] & ~(1 << (shift & 7)); if (invert) { if (! ucontrol->value.integer.value[0]) ndata[shift >> 3] |= (1 << (shift & 7)); } else { if (ucontrol->value.integer.value[0]) ndata[shift >> 3] |= (1 << (shift & 7)); } change = (data[shift >> 3] != ndata[shift >> 3]); if (change && snd_i2c_sendbytes(ice->spec.i2cdevs[EWS_I2C_88D], data, 2) != 2) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); return change; } #define EWS88D_CONTROL(xiface, xname, xshift, xinvert, xaccess) \ { .iface = xiface,\ .name = xname,\ .access = xaccess,\ .info = snd_ice1712_ews88d_control_info,\ .get = snd_ice1712_ews88d_control_get,\ .put = snd_ice1712_ews88d_control_put,\ .private_value = xshift | (xinvert << 8),\ } static snd_kcontrol_new_t snd_ice1712_ews88d_controls[] __devinitdata = { EWS88D_CONTROL(SNDRV_CTL_ELEM_IFACE_MIXER, "IEC958 Input Optical", 0, 1, 0), /* inverted */ EWS88D_CONTROL(SNDRV_CTL_ELEM_IFACE_MIXER, "ADAT Output Optical", 1, 0, 0), EWS88D_CONTROL(SNDRV_CTL_ELEM_IFACE_MIXER, "ADAT External Master Clock", 2, 0, 0), EWS88D_CONTROL(SNDRV_CTL_ELEM_IFACE_MIXER, "Enable ADAT", 3, 0, 0), EWS88D_CONTROL(SNDRV_CTL_ELEM_IFACE_MIXER, "ADAT Through", 4, 1, 0), }; /* * DMX 6Fire specific controls */ static int snd_ice1712_6fire_read_pca(ice1712_t *ice, unsigned char reg) { unsigned char byte; snd_i2c_lock(ice->i2c); byte = reg; snd_i2c_sendbytes(ice->spec.i2cdevs[EWS_I2C_6FIRE], &byte, 1); byte = 0; if (snd_i2c_readbytes(ice->spec.i2cdevs[EWS_I2C_6FIRE], &byte, 1) != 1) { snd_i2c_unlock(ice->i2c); printk(KERN_ERR "cannot read pca\n"); return -EIO; } snd_i2c_unlock(ice->i2c); return byte; } static int snd_ice1712_6fire_write_pca(ice1712_t *ice, unsigned char reg, unsigned char data) { unsigned char bytes[2]; snd_i2c_lock(ice->i2c); bytes[0] = reg; bytes[1] = data; if (snd_i2c_sendbytes(ice->spec.i2cdevs[EWS_I2C_6FIRE], bytes, 2) != 2) { snd_i2c_unlock(ice->i2c); return -EIO; } snd_i2c_unlock(ice->i2c); return 0; } static int snd_ice1712_6fire_control_info(snd_kcontrol_t *kcontrol, snd_ctl_elem_info_t *uinfo) { uinfo->type = SNDRV_CTL_ELEM_TYPE_BOOLEAN; uinfo->count = 1; uinfo->value.integer.min = 0; uinfo->value.integer.max = 1; return 0; } static int snd_ice1712_6fire_control_get(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int shift = kcontrol->private_value & 0xff; int invert = (kcontrol->private_value >> 8) & 1; int data; if ((data = snd_ice1712_6fire_read_pca(ice, PCF9554_REG_OUTPUT)) < 0) return data; data = (data >> shift) & 1; if (invert) data ^= 1; ucontrol->value.integer.value[0] = data; return 0; } static int snd_ice1712_6fire_control_put(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int shift = kcontrol->private_value & 0xff; int invert = (kcontrol->private_value >> 8) & 1; int data, ndata; if ((data = snd_ice1712_6fire_read_pca(ice, PCF9554_REG_OUTPUT)) < 0) return data; ndata = data & ~(1 << shift); if (ucontrol->value.integer.value[0]) ndata |= (1 << shift); if (invert) ndata ^= (1 << shift); if (data != ndata) { snd_ice1712_6fire_write_pca(ice, PCF9554_REG_OUTPUT, (unsigned char)ndata); return 1; } return 0; } static int snd_ice1712_6fire_select_input_info(snd_kcontrol_t *kcontrol, snd_ctl_elem_info_t *uinfo) { static char *texts[4] = { "Internal", "Front Input", "Rear Input", "Wave Table" }; uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED; uinfo->count = 1; uinfo->value.enumerated.items = 4; if (uinfo->value.enumerated.item >= 4) uinfo->value.enumerated.item = 1; strcpy(uinfo->value.enumerated.name, texts[uinfo->value.enumerated.item]); return 0; } static int snd_ice1712_6fire_select_input_get(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int data; if ((data = snd_ice1712_6fire_read_pca(ice, PCF9554_REG_OUTPUT)) < 0) return data; ucontrol->value.integer.value[0] = data & 3; return 0; } static int snd_ice1712_6fire_select_input_put(snd_kcontrol_t *kcontrol, snd_ctl_elem_value_t *ucontrol) { ice1712_t *ice = snd_kcontrol_chip(kcontrol); int data, ndata; if ((data = snd_ice1712_6fire_read_pca(ice, PCF9554_REG_OUTPUT)) < 0) return data; ndata = data & ~3; ndata |= (ucontrol->value.integer.value[0] & 3); if (data != ndata) { snd_ice1712_6fire_write_pca(ice, PCF9554_REG_OUTPUT, (unsigned char)ndata); return 1; } return 0; } #define DMX6FIRE_CONTROL(xname, xshift, xinvert) \ { .iface = SNDRV_CTL_ELEM_IFACE_MIXER,\ .name = xname,\ .info = snd_ice1712_6fire_control_info,\ .get = snd_ice1712_6fire_control_get,\ .put = snd_ice1712_6fire_control_put,\ .private_value = xshift | (xinvert << 8),\ } static snd_kcontrol_new_t snd_ice1712_6fire_controls[] __devinitdata = { { .iface = SNDRV_CTL_ELEM_IFACE_MIXER, .name = "Analog Input Select", .info = snd_ice1712_6fire_select_input_info, .get = snd_ice1712_6fire_select_input_get, .put = snd_ice1712_6fire_select_input_put, }, DMX6FIRE_CONTROL("Front Digital Input Switch", 2, 0), // DMX6FIRE_CONTROL("Master Clock Select", 3, 0), DMX6FIRE_CONTROL("Optical Digital Input Switch", 4, 0), DMX6FIRE_CONTROL("Phono Analog Input Switch", 5, 0), DMX6FIRE_CONTROL("Breakbox LED", 6, 0), }; static int __devinit snd_ice1712_ews_add_controls(ice1712_t *ice) { unsigned int idx; int err; /* all terratec cards have spdif, but cs8427 module builds it's own controls */ if (ice->cs8427 == NULL) { err = snd_ice1712_spdif_build_controls(ice); if (err < 0) return err; } /* ak4524 controls */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWX2496: case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: case ICE1712_SUBDEVICE_DMX6FIRE: err = snd_ice1712_akm4xxx_build_controls(ice); if (err < 0) return err; break; } /* card specific controls */ switch (ice->eeprom.subvendor) { case ICE1712_SUBDEVICE_EWX2496: for (idx = 0; idx < ARRAY_SIZE(snd_ice1712_ewx2496_controls); idx++) { err = snd_ctl_add(ice->card, snd_ctl_new1(&snd_ice1712_ewx2496_controls[idx], ice)); if (err < 0) return err; } break; case ICE1712_SUBDEVICE_EWS88MT: case ICE1712_SUBDEVICE_EWS88MT_NEW: case ICE1712_SUBDEVICE_PHASE88: err = snd_ctl_add(ice->card, snd_ctl_new1(&snd_ice1712_ews88mt_input_sense, ice)); if (err < 0) return err; err = snd_ctl_add(ice->card, snd_ctl_new1(&snd_ice1712_ews88mt_output_sense, ice)); if (err < 0) return err; break; case ICE1712_SUBDEVICE_EWS88D: for (idx = 0; idx < ARRAY_SIZE(snd_ice1712_ews88d_controls); idx++) { err = snd_ctl_add(ice->card, snd_ctl_new1(&snd_ice1712_ews88d_controls[idx], ice)); if (err < 0) return err; } break; case ICE1712_SUBDEVICE_DMX6FIRE: for (idx = 0; idx < ARRAY_SIZE(snd_ice1712_6fire_controls); idx++) { err = snd_ctl_add(ice->card, snd_ctl_new1(&snd_ice1712_6fire_controls[idx], ice)); if (err < 0) return err; } break; } return 0; } /* entry point */ struct snd_ice1712_card_info snd_ice1712_ews_cards[] __devinitdata = { { .subvendor = ICE1712_SUBDEVICE_EWX2496, .name = "TerraTec EWX24/96", .model = "ewx2496", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { .subvendor = ICE1712_SUBDEVICE_EWS88MT, .name = "TerraTec EWS88MT", .model = "ews88mt", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { .subvendor = ICE1712_SUBDEVICE_EWS88MT_NEW, .name = "TerraTec EWS88MT", .model = "ews88mt_new", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { .subvendor = ICE1712_SUBDEVICE_PHASE88, .name = "TerraTec Phase88", .model = "phase88", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { .subvendor = ICE1712_SUBDEVICE_EWS88D, .name = "TerraTec EWS88D", .model = "ews88d", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { .subvendor = ICE1712_SUBDEVICE_DMX6FIRE, .name = "TerraTec DMX6Fire", .model = "dmx6fire", .chip_init = snd_ice1712_ews_init, .build_controls = snd_ice1712_ews_add_controls, }, { } /* terminator */ };