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/* net/atm/clip.c - RFC1577 Classical IP over ATM */

/* Written 1995-2000 by Werner Almesberger, EPFL LRC/ICA */

#include <linux/string.h>
#include <linux/errno.h>
#include <linux/kernel.h> /* for UINT_MAX */
#include <linux/module.h>
#include <linux/init.h>
#include <linux/netdevice.h>
#include <linux/skbuff.h>
#include <linux/wait.h>
#include <linux/timer.h>
#include <linux/if_arp.h> /* for some manifest constants */
#include <linux/notifier.h>
#include <linux/atm.h>
#include <linux/atmdev.h>
#include <linux/atmclip.h>
#include <linux/atmarp.h>
#include <linux/capability.h>
#include <linux/ip.h> /* for net/route.h */
#include <linux/in.h> /* for struct sockaddr_in */
#include <linux/if.h> /* for IFF_UP */
#include <linux/inetdevice.h>
#include <linux/bitops.h>
#include <linux/poison.h>
#include <linux/proc_fs.h>
#include <linux/seq_file.h>
#include <linux/rcupdate.h>
#include <linux/jhash.h>
#include <net/route.h> /* for struct rtable and routing */
#include <net/icmp.h> /* icmp_send */
#include <asm/param.h> /* for HZ */
#include <asm/byteorder.h> /* for htons etc. */
#include <asm/system.h> /* save/restore_flags */
#include <asm/uaccess.h>
#include <asm/atomic.h>

#include "common.h"
#include "resources.h"
#include "ipcommon.h"
#include <net/atmclip.h>


#if 0
#define DPRINTK(format,args...) printk(format,##args)
#else
#define DPRINTK(format,args...)
#endif


static struct net_device *clip_devs;
static struct atm_vcc *atmarpd;
static struct neigh_table clip_tbl;
static struct timer_list idle_timer;

static int to_atmarpd(enum atmarp_ctrl_type type, int itf, unsigned long ip)
{
	struct sock *sk;
	struct atmarp_ctrl *ctrl;
	struct sk_buff *skb;

	DPRINTK("to_atmarpd(%d)\n", type);
	if (!atmarpd)
		return -EUNATCH;
	skb = alloc_skb(sizeof(struct atmarp_ctrl),GFP_ATOMIC);
	if (!skb)
		return -ENOMEM;
	ctrl = (struct atmarp_ctrl *) skb_put(skb,sizeof(struct atmarp_ctrl));
	ctrl->type = type;
	ctrl->itf_num = itf;
	ctrl->ip = ip;
	atm_force_charge(atmarpd, skb->truesize);

	sk = sk_atm(atmarpd);
	skb_queue_tail(&sk->sk_receive_queue, skb);
	sk->sk_data_ready(sk, skb->len);
	return 0;
}

static void link_vcc(struct clip_vcc *clip_vcc, struct atmarp_entry *entry)
{
	DPRINTK("link_vcc %p to entry %p (neigh %p)\n", clip_vcc, entry,
		entry->neigh);
	clip_vcc->entry = entry;
	clip_vcc->xoff = 0;	/* @@@ may overrun buffer by one packet */
	clip_vcc->next = entry->vccs;
	entry->vccs = clip_vcc;
	entry->neigh->used = jiffies;
}

static void unlink_clip_vcc(struct clip_vcc *clip_vcc)
{
	struct atmarp_entry *entry = clip_vcc->entry;
	struct clip_vcc **walk;

	if (!entry) {
		printk(KERN_CRIT "!clip_vcc->entry (clip_vcc %p)\n", clip_vcc);
		return;
	}
	netif_tx_lock_bh(entry->neigh->dev);	/* block clip_start_xmit() */
	entry->neigh->used = jiffies;
	for (walk = &entry->vccs; *walk; walk = &(*walk)->next)
		if (*walk == clip_vcc) {
			int error;

			*walk = clip_vcc->next;	/* atomic */
			clip_vcc->entry = NULL;
			if (clip_vcc->xoff)
				netif_wake_queue(entry->neigh->dev);
			if (entry->vccs)
				goto out;
			entry->expires = jiffies - 1;
			/* force resolution or expiration */
			error = neigh_update(entry->neigh, NULL, NUD_NONE,
					     NEIGH_UPDATE_F_ADMIN);
			if (error)
				printk(KERN_CRIT "unlink_clip_vcc: "
				       "neigh_update failed with %d\n", error);
			goto out;
		}
	printk(KERN_CRIT "ATMARP: unlink_clip_vcc failed (entry %p, vcc "
	       "0x%p)\n", entry, clip_vcc);
      out:
	netif_tx_unlock_bh(entry->neigh->dev);
}

/* The neighbour entry n->lock is held. */
static int neigh_check_cb(struct neighbour *n)
{
	struct atmarp_entry *entry = NEIGH2ENTRY(n);
	struct clip_vcc *cv;

	for (cv = entry->vccs; cv; cv = cv->next) {
		unsigned long exp = cv->last_use + cv->idle_timeout;

		if (cv->idle_timeout && time_after(jiffies, exp)) {
			DPRINTK("releasing vcc %p->%p of entry %p\n",
				cv, cv->vcc, entry);
			vcc_release_async(cv->vcc, -ETIMEDOUT);
		}
	}

	if (entry->vccs || time_before(jiffies, entry->expires))
		return 0;

	if (atomic_read(&n->refcnt) > 1) {
		struct sk_buff *skb;

		DPRINTK("destruction postponed with ref %d\n",
			atomic_read(&n->refcnt));

		while ((skb = skb_dequeue(&n->arp_queue)) != NULL)
			dev_kfree_skb(skb);

		return 0;
	}

	DPRINTK("expired neigh %p\n", n);
	return 1;
}

static void idle_timer_check(unsigned long dummy)
{
	write_lock(&clip_tbl.lock);
	__neigh_for_each_release(&clip_tbl, neigh_check_cb);
	mod_timer(&idle_timer, jiffies + CLIP_CHECK_INTERVAL * HZ);
	write_unlock(&clip_tbl.lock);
}

static int clip_arp_rcv(struct sk_buff *skb)
{
	struct atm_vcc *vcc;

	DPRINTK("clip_arp_rcv\n");
	vcc = ATM_SKB(skb)->vcc;
	if (!vcc || !atm_charge(vcc, skb->truesize)) {
		dev_kfree_skb_any(skb);
		return 0;
	}
	DPRINTK("pushing to %p\n", vcc);
	DPRINTK("using %p\n", CLIP_VCC(vcc)->old_push);
	CLIP_VCC(vcc)->old_push(vcc, skb);
	return 0;
}

static const unsigned char llc_oui[] = {
	0xaa,	/* DSAP: non-ISO */
	0xaa,	/* SSAP: non-ISO */
	0x03,	/* Ctrl: Unnumbered Information Command PDU */
	0x00,	/* OUI: EtherType */
	0x00,
	0x00
};

static void clip_push(struct atm_vcc *vcc, struct sk_buff *skb)
{
	struct clip_vcc *clip_vcc = CLIP_VCC(vcc);

	DPRINTK("clip push\n");
	if (!skb) {
		DPRINTK("removing VCC %p\n", clip_vcc);
		if (clip_vcc->entry)
			unlink_clip_vcc(clip_vcc);
		clip_vcc->old_push(vcc, NULL);	/* pass on the bad news */
		kfree(clip_vcc);
		return;
	}
	atm_return(vcc, skb->truesize);
	skb->dev = clip_vcc->entry ? clip_vcc->entry->neigh->dev : clip_devs;
	/* clip_vcc->entry == NULL if we don't have an IP address yet */
	if (!skb->dev) {
		dev_kfree_skb_any(skb);
		return;
	}
	ATM_SKB(skb)->vcc = vcc;
	skb->mac.raw = skb->data;
	if (!clip_vcc->encap
	    || skb->len < RFC1483LLC_LEN
	    || memcmp(skb->data, llc_oui, sizeof (llc_oui)))
		skb->protocol = htons(ETH_P_IP);
	else {
		skb->protocol = ((u16 *) skb->data)[3];
		skb_pull(skb, RFC1483LLC_LEN);
		if (skb->protocol == htons(ETH_P_ARP)) {
			PRIV(skb->dev)->stats.rx_packets++;
			PRIV(skb->dev)->stats.rx_bytes += skb->len;
			clip_arp_rcv(skb);
			return;
		}
	}
	clip_vcc->last_use = jiffies;
	PRIV(skb->dev)->stats.rx_packets++;
	PRIV(skb->dev)->stats.rx_bytes += skb->len;
	memset(ATM_SKB(skb), 0, sizeof(struct atm_skb_data));
	netif_rx(skb);
}

/*
 * Note: these spinlocks _must_not_ block on non-SMP. The only goal is that
 * clip_pop is atomic with respect to the critical section in clip_start_xmit.
 */

static void clip_pop(struct atm_vcc *vcc, struct sk_buff *skb)
{
	struct clip_vcc *clip_vcc = CLIP_VCC(vcc);
	struct net_device *dev = skb->dev;
	int old;
	unsigned long flags;

	DPRINTK("clip_pop(vcc %p)\n", vcc);
	clip_vcc->old_pop(vcc, skb);
	/* skb->dev == NULL in outbound ARP packets */
	if (!dev)
		return;
	spin_lock_irqsave(&PRIV(dev)->xoff_lock, flags);
	if (atm_may_send(vcc, 0)) {
		old = xchg(&clip_vcc->xoff, 0);
		if (old)
			netif_wake_queue(dev);
	}
	spin_unlock_irqrestore(&PRIV(dev)->xoff_lock, flags);
}

static void clip_neigh_destroy(struct neighbour *neigh)
{
	DPRINTK("clip_neigh_destroy (neigh %p)\n", neigh);
	if (NEIGH2ENTRY(neigh)->vccs)
		printk(KERN_CRIT "clip_neigh_destroy: vccs != NULL !!!\n");
	NEIGH2ENTRY(neigh)->vccs = (void *) NEIGHBOR_DEAD;
}

static void clip_neigh_solicit(struct neighbour *neigh, struct sk_buff *skb)
{
	DPRINTK("clip_neigh_solicit (neigh %p, skb %p)\n", neigh, skb);
	to_atmarpd(act_need, PRIV(neigh->dev)->number, NEIGH2ENTRY(neigh)->ip);
}

static void clip_neigh_error(struct neighbour *neigh, struct sk_buff *skb)
{
#ifndef CONFIG_ATM_CLIP_NO_ICMP
	icmp_send(skb, ICMP_DEST_UNREACH, ICMP_HOST_UNREACH, 0);
#endif
	kfree_skb(skb);
}

static struct neigh_ops clip_neigh_ops = {
	.family =		AF_INET,
	.solicit =		clip_neigh_solicit,
	.error_report =		clip_neigh_error,
	.output =		dev_queue_xmit,
	.connected_output =	dev_queue_xmit,
	.hh_output =		dev_queue_xmit,
	.queue_xmit =		dev_queue_xmit,
};

static int clip_constructor(struct neighbour *neigh)
{
	struct atmarp_entry *entry = NEIGH2ENTRY(neigh);
	struct net_device *dev = neigh->dev;
	struct in_device *in_dev;
	struct neigh_parms *parms;

	DPRINTK("clip_constructor (neigh %p, entry %p)\n", neigh, entry);
	neigh->type = inet_addr_type(entry->ip);
	if (neigh->type != RTN_UNICAST)
		return -EINVAL;

	rcu_read_lock();
	in_dev = __in_dev_get_rcu(dev);
	if (!in_dev) {
		rcu_read_unlock();
		return -EINVAL;
	}

	parms = in_dev->arp_parms;
	__neigh_parms_put(neigh->parms);
	neigh->parms = neigh_parms_clone(parms);
	rcu_read_unlock();

	neigh->ops = &clip_neigh_ops;
	neigh->output = neigh->nud_state & NUD_VALID ?
	    neigh->ops->connected_output : neigh->ops->output;
	entry->neigh = neigh;
	entry->vccs = NULL;
	entry->expires = jiffies - 1;
	return 0;
}

static u32 clip_hash(const void *pkey, const struct net_device *dev)
{
	return jhash_2words(*(u32 *) pkey, dev->ifindex, clip_tbl.hash_rnd);
}

static struct neigh_table clip_tbl = {
	.family 	= AF_INET,
	.entry_size 	= sizeof(struct neighbour)+sizeof(struct atmarp_entry),
	.key_len 	= 4,
	.hash 		= clip_hash,
	.constructor 	= clip_constructor,
	.id 		= "clip_arp_cache",

	/* parameters are copied from ARP ... */
	.parms = {
		.tbl 			= &clip_tbl,
		.neigh_destructor	= clip_neigh_destroy,
		.base_reachable_time 	= 30 * HZ,
		.retrans_time 		= 1 * HZ,
		.gc_staletime 		= 60 * HZ,
		.reachable_time 	= 30 * HZ,
		.delay_probe_time 	= 5 * HZ,
		.queue_len 		= 3,
		.ucast_probes 		= 3,
		.mcast_probes 		= 3,
		.anycast_delay 		= 1 * HZ,
		.proxy_delay 		= (8 * HZ) / 10,
		.proxy_qlen 		= 64,
		.locktime 		= 1 * HZ,
	},
	.gc_interval 	= 30 * HZ,
	.gc_thresh1 	= 128,
	.gc_thresh2 	= 512,
	.gc_thresh3 	= 1024,
};

/* @@@ copy bh locking from arp.c -- need to bh-enable atm code before */

/*
 * We play with the resolve flag: 0 and 1 have the usual meaning, but -1 means
 * to allocate the neighbour entry but not to ask atmarpd for resolution. Also,
 * don't increment the usage count. This is used to create entries in
 * clip_setentry.
 */

static int clip_encap(struct atm_vcc *vcc, int mode)
{
	CLIP_VCC(vcc)->encap = mode;
	return 0;
}

static int clip_start_xmit(struct sk_buff *skb, struct net_device *dev)
{
	struct clip_priv *clip_priv = PRIV(dev);
	struct atmarp_entry *entry;
	struct atm_vcc *vcc;
	int old;
	unsigned long flags;

	DPRINTK("clip_start_xmit (skb %p)\n", skb);
	if (!skb->dst) {
		printk(KERN_ERR "clip_start_xmit: skb->dst == NULL\n");
		dev_kfree_skb(skb);
		clip_priv->stats.tx_dropped++;
		return 0;
	}
	if (!skb->dst->neighbour) {
#if 0
		skb->dst->neighbour = clip_find_neighbour(skb->dst, 1);
		if (!skb->dst->neighbour) {
			dev_kfree_skb(skb);	/* lost that one */
			clip_priv->stats.tx_dropped++;
			return 0;
		}
#endif
		printk(KERN_ERR "clip_start_xmit: NO NEIGHBOUR !\n");
		dev_kfree_skb(skb);
		clip_priv->stats.tx_dropped++;
		return 0;
	}
	entry = NEIGH2ENTRY(skb->dst->neighbour);
	if (!entry->vccs) {
		if (time_after(jiffies, entry->expires)) {
			/* should be resolved */
			entry->expires = jiffies + ATMARP_RETRY_DELAY * HZ;
			to_atmarpd(act_need, PRIV(dev)->number, entry->ip);
		}
		if (entry->neigh->arp_queue.qlen < ATMARP_MAX_UNRES_PACKETS)
			skb_queue_tail(&entry->neigh->arp_queue, skb);
		else {
			dev_kfree_skb(skb);
			clip_priv->stats.tx_dropped++;
		}
		return 0;
	}
	DPRINTK("neigh %p, vccs %p\n", entry, entry->vccs);
	ATM_SKB(skb)->vcc = vcc = entry->vccs->vcc;
	DPRINTK("using neighbour %p, vcc %p\n", skb->dst->neighbour, vcc);
	if (entry->vccs->encap) {
		void *here;

		here = skb_push(skb, RFC1483LLC_LEN);
		memcpy(here, llc_oui, sizeof(llc_oui));
		((u16 *) here)[3] = skb->protocol;
	}
	atomic_add(skb->truesize, &sk_atm(vcc)->sk_wmem_alloc);
	ATM_SKB(skb)->atm_options = vcc->atm_options;
	entry->vccs->last_use = jiffies;
	DPRINTK("atm_skb(%p)->vcc(%p)->dev(%p)\n", skb, vcc, vcc->dev);
	old = xchg(&entry->vccs->xoff, 1);	/* assume XOFF ... */
	if (old) {
		printk(KERN_WARNING "clip_start_xmit: XOFF->XOFF transition\n");
		return 0;
	}
	clip_priv->stats.tx_packets++;
	clip_priv->stats.tx_bytes += skb->len;
	vcc->send(vcc, skb);
	if (atm_may_send(vcc, 0)) {
		entry->vccs->xoff = 0;
		return 0;
	}
	spin_lock_irqsave(&clip_priv->xoff_lock, flags);
	netif_stop_queue(dev);	/* XOFF -> throttle immediately */
	barrier();
	if (!entry->vccs->xoff)
		netif_start_queue(dev);
	/* Oh, we just raced with clip_pop. netif_start_queue should be
	   good enough, because nothing should really be asleep because
	   of the brief netif_stop_queue. If this isn't true or if it
	   changes, use netif_wake_queue instead. */
	spin_unlock_irqrestore(&clip_priv->xoff_lock, flags);
	return 0;
}

static struct net_device_stats *clip_get_stats(struct net_device *dev)
{
	return &PRIV(dev)->stats;
}

static int clip_mkip(struct atm_vcc *vcc, int timeout)
{
	struct clip_vcc *clip_vcc;
	struct sk_buff_head copy;
	struct sk_buff *skb;

	if (!vcc->push)
		return -EBADFD;
	clip_vcc = kmalloc(sizeof(struct clip_vcc), GFP_KERNEL);
	if (!clip_vcc)
		return -ENOMEM;
	DPRINTK("mkip clip_vcc %p vcc %p\n", clip_vcc, vcc);
	clip_vcc->vcc = vcc;
	vcc->user_back = clip_vcc;
	set_bit(ATM_VF_IS_CLIP, &vcc->flags);
	clip_vcc->entry = NULL;
	clip_vcc->xoff = 0;
	clip_vcc->encap = 1;
	clip_vcc->last_use = jiffies;
	clip_vcc->idle_timeout = timeout * HZ;
	clip_vcc->old_push = vcc->push;
	clip_vcc->old_pop = vcc->pop;
	vcc->push = clip_push;
	vcc->pop = clip_pop;
	skb_queue_head_init(&copy);
	skb_migrate(&sk_atm(vcc)->sk_receive_queue, &copy);
	/* re-process everything received between connection setup and MKIP */
	while ((skb = skb_dequeue(&copy)) != NULL)
		if (!clip_devs) {
			atm_return(vcc, skb->truesize);
			kfree_skb(skb);
		} else {
			unsigned int len = skb->len;

			skb_get(skb);
			clip_push(vcc, skb);
			PRIV(skb->dev)->stats.rx_packets--;
			PRIV(skb->dev)->stats.rx_bytes -= len;
			kfree_skb(skb);
		}
	return 0;
}

static int clip_setentry(struct atm_vcc *vcc, u32 ip)
{
	struct neighbour *neigh;
	struct atmarp_entry *entry;
	int error;
	struct clip_vcc *clip_vcc;
	struct flowi fl = { .nl_u = { .ip4_u = { .daddr = ip, .tos = 1}} };
	struct rtable *rt;

	if (vcc->push != clip_push) {
		printk(KERN_WARNING "clip_setentry: non-CLIP VCC\n");
		return -EBADF;
	}
	clip_vcc = CLIP_VCC(vcc);
	if (!ip) {
		if (!clip_vcc->entry) {
			printk(KERN_ERR "hiding hidden ATMARP entry\n");
			return 0;
		}
		DPRINTK("setentry: remove\n");
		unlink_clip_vcc(clip_vcc);
		return 0;
	}
	error = ip_route_output_key(&rt, &fl);
	if (error)
		return error;
	neigh = __neigh_lookup(&clip_tbl, &ip, rt->u.dst.dev, 1);
	ip_rt_put(rt);
	if (!neigh)
		return -ENOMEM;
	entry = NEIGH2ENTRY(neigh);
	if (entry != clip_vcc->entry) {
		if (!clip_vcc->entry)
			DPRINTK("setentry: add\n");
		else {
			DPRINTK("setentry: update\n");
			unlink_clip_vcc(clip_vcc);
		}
		link_vcc(clip_vcc, entry);
	}
	error = neigh_update(neigh, llc_oui, NUD_PERMANENT,
			     NEIGH_UPDATE_F_OVERRIDE | NEIGH_UPDATE_F_ADMIN);
	neigh_release(neigh);
	return error;
}

static void clip_setup(struct net_device *dev)
{
	dev->hard_start_xmit = clip_start_xmit;
	/* sg_xmit ... */
	dev->get_stats = clip_get_stats;
	dev->type = ARPHRD_ATM;
	dev->hard_header_len = RFC1483LLC_LEN;
	dev->mtu = RFC1626_MTU;
	dev->tx_queue_len = 100;	/* "normal" queue (packets) */
	/* When using a "real" qdisc, the qdisc determines the queue */
	/* length. tx_queue_len is only used for the default case, */
	/* without any more elaborate queuing. 100 is a reasonable */
	/* compromise between decent burst-tolerance and protection */
	/* against memory hogs. */
}

static int clip_create(int number)
{
	struct net_device *dev;
	struct clip_priv *clip_priv;
	int error;

	if (number != -1) {
		for (dev = clip_devs; dev; dev = PRIV(dev)->next)
			if (PRIV(dev)->number == number)
				return -EEXIST;
	} else {
		number = 0;
		for (dev = clip_devs; dev; dev = PRIV(dev)->next)
			if (PRIV(dev)->number >= number)
				number = PRIV(dev)->number + 1;
	}
	dev = alloc_netdev(sizeof(struct clip_priv), "", clip_setup);
	if (!dev)
		return -ENOMEM;
	clip_priv = PRIV(dev);
	sprintf(dev->name, "atm%d", number);
	spin_lock_init(&clip_priv->xoff_lock);
	clip_priv->number = number;
	error = register_netdev(dev);
	if (error) {
		free_netdev(dev);
		return error;
	}
	clip_priv->next = clip_devs;
	clip_devs = dev;
	DPRINTK("registered (net:%s)\n", dev->name);
	return number;
}

static int clip_device_event(struct notifier_block *this, unsigned long event,
			     void *arg)
{
	struct net_device *dev = arg;

	if (event == NETDEV_UNREGISTER) {
		neigh_ifdown(&clip_tbl, dev);
		return NOTIFY_DONE;
	}

	/* ignore non-CLIP devices */
	if (dev->type != ARPHRD_ATM || dev->hard_start_xmit != clip_start_xmit)
		return NOTIFY_DONE;

	switch (event) {
	case NETDEV_UP:
		DPRINTK("clip_device_event NETDEV_UP\n");
		to_atmarpd(act_up, PRIV(dev)->number, 0);
		break;
	case NETDEV_GOING_DOWN:
		DPRINTK("clip_device_event NETDEV_DOWN\n");
		to_atmarpd(act_down, PRIV(dev)->number, 0);
		break;
	case NETDEV_CHANGE:
	case NETDEV_CHANGEMTU:
		DPRINTK("clip_device_event NETDEV_CHANGE*\n");
		to_atmarpd(act_change, PRIV(dev)->number, 0);
		break;
	}
	return NOTIFY_DONE;
}

static int clip_inet_event(struct notifier_block *this, unsigned long event,
			   void *ifa)
{
	struct in_device *in_dev;

	in_dev = ((struct in_ifaddr *)ifa)->ifa_dev;
	if (!in_dev || !in_dev->dev) {
		printk(KERN_WARNING "clip_inet_event: no device\n");
		return NOTIFY_DONE;
	}
	/*
	 * Transitions are of the down-change-up type, so it's sufficient to
	 * handle the change on up.
	 */
	if (event != NETDEV_UP)
		return NOTIFY_DONE;
	return clip_device_event(this, NETDEV_CHANGE, in_dev->dev);
}


static struct notifier_block clip_dev_notifier = {
	.notifier_call = clip_device_event,
};



static struct notifier_block clip_inet_notifier = {
	.notifier_call = clip_inet_event,
};



static void atmarpd_close(struct atm_vcc *vcc)
{
	DPRINTK("atmarpd_close\n");

	rtnl_lock();
	atmarpd = NULL;
	skb_queue_purge(&sk_atm(vcc)->sk_receive_queue);
	rtnl_unlock();

	DPRINTK("(done)\n");
	module_put(THIS_MODULE);
}


static struct atmdev_ops atmarpd_dev_ops = {
	.close = atmarpd_close
};


static struct atm_dev atmarpd_dev = {
	.ops =			&atmarpd_dev_ops,
	.type =			"arpd",
	.number = 		999,
	.lock =			SPIN_LOCK_UNLOCKED
};


static int atm_init_atmarp(struct atm_vcc *vcc)
{
	rtnl_lock();
	if (atmarpd) {
		rtnl_unlock();
		return -EADDRINUSE;
	}

	mod_timer(&idle_timer, jiffies+CLIP_CHECK_INTERVAL*HZ);

	atmarpd = vcc;
	set_bit(ATM_VF_META,&vcc->flags);
	set_bit(ATM_VF_READY,&vcc->flags);
	    /* allow replies and avoid getting closed if signaling dies */
	vcc->dev = &atmarpd_dev;
	vcc_insert_socket(sk_atm(vcc));
	vcc->push = NULL;
	vcc->pop = NULL; /* crash */
	vcc->push_oam = NULL; /* crash */
	rtnl_unlock();
	return 0;
}

static int clip_ioctl(struct socket *sock, unsigned int cmd, unsigned long arg)
{
	struct atm_vcc *vcc = ATM_SD(sock);
	int err = 0;

	switch (cmd) {
	case SIOCMKCLIP:
	case ATMARPD_CTRL:
	case ATMARP_MKIP:
	case ATMARP_SETENTRY:
	case ATMARP_ENCAP:
		if (!capable(CAP_NET_ADMIN))
			return -EPERM;
		break;
	default:
		return -ENOIOCTLCMD;
	}

	switch (cmd) {
	case SIOCMKCLIP:
		err = clip_create(arg);
		break;
	case ATMARPD_CTRL:
		err = atm_init_atmarp(vcc);
		if (!err) {
			sock->state = SS_CONNECTED;
			__module_get(THIS_MODULE);
		}
		break;
	case ATMARP_MKIP:
		err = clip_mkip(vcc, arg);
		break;
	case ATMARP_SETENTRY:
		err = clip_setentry(vcc, arg);
		break;
	case ATMARP_ENCAP:
		err = clip_encap(vcc, arg);
		break;
	}
	return err;
}

static struct atm_ioctl clip_ioctl_ops = {
	.owner = THIS_MODULE,
	.ioctl = clip_ioctl,
};

#ifdef CONFIG_PROC_FS

static void svc_addr(struct seq_file *seq, struct sockaddr_atmsvc *addr)
{
	static int code[] = { 1, 2, 10, 6, 1, 0 };
	static int e164[] = { 1, 8, 4, 6, 1, 0 };

	if (*addr->sas_addr.pub) {
		seq_printf(seq, "%s", addr->sas_addr.pub);
		if (*addr->sas_addr.prv)
			seq_putc(seq, '+');
	} else if (!*addr->sas_addr.prv) {
		seq_printf(seq, "%s", "(none)");
		return;
	}
	if (*addr->sas_addr.prv) {
		unsigned char *prv = addr->sas_addr.prv;
		int *fields;
		int i, j;

		fields = *prv == ATM_AFI_E164 ? e164 : code;
		for (i = 0; fields[i]; i++) {
			for (j = fields[i]; j; j--)
				seq_printf(seq, "%02X", *prv++);
			if (fields[i + 1])
				seq_putc(seq, '.');
		}
	}
}

/* This means the neighbour entry has no attached VCC objects. */
#define SEQ_NO_VCC_TOKEN	((void *) 2)

static void atmarp_info(struct seq_file *seq, struct net_device *dev,
			struct atmarp_entry *entry, struct clip_vcc *clip_vcc)
{
	unsigned long exp;
	char buf[17];
	int svc, llc, off;

	svc = ((clip_vcc == SEQ_NO_VCC_TOKEN) ||
	       (sk_atm(clip_vcc->vcc)->sk_family == AF_ATMSVC));

	llc = ((clip_vcc == SEQ_NO_VCC_TOKEN) || clip_vcc->encap);

	if (clip_vcc == SEQ_NO_VCC_TOKEN)
		exp = entry->neigh->used;
	else
		exp = clip_vcc->last_use;

	exp = (jiffies - exp) / HZ;

	seq_printf(seq, "%-6s%-4s%-4s%5ld ",
		   dev->name, svc ? "SVC" : "PVC", llc ? "LLC" : "NULL", exp);

	off = scnprintf(buf, sizeof(buf) - 1, "%d.%d.%d.%d",
			NIPQUAD(entry->ip));
	while (off < 16)
		buf[off++] = ' ';
	buf[off] = '\0';
	seq_printf(seq, "%s", buf);

	if (clip_vcc == SEQ_NO_VCC_TOKEN) {
		if (time_before(jiffies, entry->expires))
			seq_printf(seq, "(resolving)\n");
		else
			seq_printf(seq, "(expired, ref %d)\n",
				   atomic_read(&entry->neigh->refcnt));
	} else if (!svc) {
		seq_printf(seq, "%d.%d.%d\n",
			   clip_vcc->vcc->dev->number,
			   clip_vcc->vcc->vpi, clip_vcc->vcc->vci);
	} else {
		svc_addr(seq, &clip_vcc->vcc->remote);
		seq_putc(seq, '\n');
	}
}

struct clip_seq_state {
	/* This member must be first. */
	struct neigh_seq_state ns;

	/* Local to clip specific iteration. */
	struct clip_vcc *vcc;
};

static struct clip_vcc *clip_seq_next_vcc(struct atmarp_entry *e,
					  struct clip_vcc *curr)
{
	if (!curr) {
		curr = e->vccs;
		if (!curr)
			return SEQ_NO_VCC_TOKEN;
		return curr;
	}
	if (curr == SEQ_NO_VCC_TOKEN)
		return NULL;

	curr = curr->next;

	return curr;
}

static void *clip_seq_vcc_walk(struct clip_seq_state *state,
			       struct atmarp_entry *e, loff_t * pos)
{
	struct clip_vcc *vcc = state->vcc;

	vcc = clip_seq_next_vcc(e, vcc);
	if (vcc && pos != NULL) {
		while (*pos) {
			vcc = clip_seq_next_vcc(e, vcc);
			if (!vcc)
				break;
			--(*pos);
		}
	}
	state->vcc = vcc;

	return vcc;
}

static void *clip_seq_sub_iter(struct neigh_seq_state *_state,
			       struct neighbour *n, loff_t * pos)
{
	struct clip_seq_state *state = (struct clip_seq_state *)_state;

	return clip_seq_vcc_walk(state, NEIGH2ENTRY(n), pos);
}

static void *clip_seq_start(struct seq_file *seq, loff_t * pos)
{
	return neigh_seq_start(seq, pos, &clip_tbl, NEIGH_SEQ_NEIGH_ONLY);
}

static int clip_seq_show(struct seq_file *seq, void *v)
{
	static char atm_arp_banner[] =
	    "IPitf TypeEncp Idle IP address      ATM address\n";

	if (v == SEQ_START_TOKEN) {
		seq_puts(seq, atm_arp_banner);
	} else {
		struct clip_seq_state *state = seq->private;
		struct neighbour *n = v;
		struct clip_vcc *vcc = state->vcc;

		atmarp_info(seq, n->dev, NEIGH2ENTRY(n), vcc);
	}
	return 0;
}

static struct seq_operations arp_seq_ops = {
	.start	= clip_seq_start,
	.next	= neigh_seq_next,
	.stop	= neigh_seq_stop,
	.show	= clip_seq_show,
};

static int arp_seq_open(struct inode *inode, struct file *file)
{
	struct clip_seq_state *state;
	struct seq_file *seq;
	int rc = -EAGAIN;

	state = kzalloc(sizeof(*state), GFP_KERNEL);
	if (!state) {
		rc = -ENOMEM;
		goto out_kfree;
	}
	state->ns.neigh_sub_iter = clip_seq_sub_iter;

	rc = seq_open(file, &arp_seq_ops);
	if (rc)
		goto out_kfree;

	seq = file->private_data;
	seq->private = state;
out:
	return rc;

out_kfree:
	kfree(state);
	goto out;
}

static struct file_operations arp_seq_fops = {
	.open		= arp_seq_open,
	.read		= seq_read,
	.llseek		= seq_lseek,
	.release	= seq_release_private,
	.owner		= THIS_MODULE
};
#endif

static int __init atm_clip_init(void)
{
	neigh_table_init_no_netlink(&clip_tbl);

	clip_tbl_hook = &clip_tbl;
	register_atm_ioctl(&clip_ioctl_ops);
	register_netdevice_notifier(&clip_dev_notifier);
	register_inetaddr_notifier(&clip_inet_notifier);

	setup_timer(&idle_timer, idle_timer_check, 0);

#ifdef CONFIG_PROC_FS
	{
		struct proc_dir_entry *p;

		p = create_proc_entry("arp", S_IRUGO, atm_proc_root);
		if (p)
			p->proc_fops = &arp_seq_fops;
	}
#endif

	return 0;
}

static void __exit atm_clip_exit(void)
{
	struct net_device *dev, *next;

	remove_proc_entry("arp", atm_proc_root);

	unregister_inetaddr_notifier(&clip_inet_notifier);
	unregister_netdevice_notifier(&clip_dev_notifier);

	deregister_atm_ioctl(&clip_ioctl_ops);

	/* First, stop the idle timer, so it stops banging
	 * on the table.
	 */
	del_timer_sync(&idle_timer);

	/* Next, purge the table, so that the device
	 * unregister loop below does not hang due to
	 * device references remaining in the table.
	 */
	neigh_ifdown(&clip_tbl, NULL);

	dev = clip_devs;
	while (dev) {
		next = PRIV(dev)->next;
		unregister_netdev(dev);
		free_netdev(dev);
		dev = next;
	}

	/* Now it is safe to fully shutdown whole table. */
	neigh_table_clear(&clip_tbl);

	clip_tbl_hook = NULL;
}

module_init(atm_clip_init);
module_exit(atm_clip_exit);
MODULE_AUTHOR("Werner Almesberger");
MODULE_DESCRIPTION("Classical/IP over ATM interface");
MODULE_LICENSE("GPL");
hl opt">{ u8 oldlcr; u8 efr; oldlcr = inb(baseio + UART_LCR); outb(MOXA_MUST_ENTER_ENCHANCE, baseio + UART_LCR); efr = inb(baseio + MOXA_MUST_EFR_REGISTER); efr &= ~MOXA_MUST_EFR_SF_MASK; outb(efr, baseio + MOXA_MUST_EFR_REGISTER); outb(oldlcr, baseio + UART_LCR); } static void mxser_enable_must_tx_software_flow_control(unsigned long baseio) { u8 oldlcr; u8 efr; oldlcr = inb(baseio + UART_LCR); outb(MOXA_MUST_ENTER_ENCHANCE, baseio + UART_LCR); efr = inb(baseio + MOXA_MUST_EFR_REGISTER); efr &= ~MOXA_MUST_EFR_SF_TX_MASK; efr |= MOXA_MUST_EFR_SF_TX1; outb(efr, baseio + MOXA_MUST_EFR_REGISTER); outb(oldlcr, baseio + UART_LCR); } static void mxser_disable_must_tx_software_flow_control(unsigned long baseio) { u8 oldlcr; u8 efr; oldlcr = inb(baseio + UART_LCR); outb(MOXA_MUST_ENTER_ENCHANCE, baseio + UART_LCR); efr = inb(baseio + MOXA_MUST_EFR_REGISTER); efr &= ~MOXA_MUST_EFR_SF_TX_MASK; outb(efr, baseio + MOXA_MUST_EFR_REGISTER); outb(oldlcr, baseio + UART_LCR); } static void mxser_enable_must_rx_software_flow_control(unsigned long baseio) { u8 oldlcr; u8 efr; oldlcr = inb(baseio + UART_LCR); outb(MOXA_MUST_ENTER_ENCHANCE, baseio + UART_LCR); efr = inb(baseio + MOXA_MUST_EFR_REGISTER); efr &= ~MOXA_MUST_EFR_SF_RX_MASK; efr |= MOXA_MUST_EFR_SF_RX1; outb(efr, baseio + MOXA_MUST_EFR_REGISTER); outb(oldlcr, baseio + UART_LCR); } static void mxser_disable_must_rx_software_flow_control(unsigned long baseio) { u8 oldlcr; u8 efr; oldlcr = inb(baseio + UART_LCR); outb(MOXA_MUST_ENTER_ENCHANCE, baseio + UART_LCR); efr = inb(baseio + MOXA_MUST_EFR_REGISTER); efr &= ~MOXA_MUST_EFR_SF_RX_MASK; outb(efr, baseio + MOXA_MUST_EFR_REGISTER); outb(oldlcr, baseio + UART_LCR); } #ifdef CONFIG_PCI static int __devinit CheckIsMoxaMust(unsigned long io) { u8 oldmcr, hwid; int i; outb(0, io + UART_LCR); mxser_disable_must_enchance_mode(io); oldmcr = inb(io + UART_MCR); outb(0, io + UART_MCR); mxser_set_must_xon1_value(io, 0x11); if ((hwid = inb(io + UART_MCR)) != 0) { outb(oldmcr, io + UART_MCR); return MOXA_OTHER_UART; } mxser_get_must_hardware_id(io, &hwid); for (i = 1; i < UART_INFO_NUM; i++) { /* 0 = OTHER_UART */ if (hwid == Gpci_uart_info[i].type) return (int)hwid; } return MOXA_OTHER_UART; } #endif static void process_txrx_fifo(struct mxser_port *info) { int i; if ((info->type == PORT_16450) || (info->type == PORT_8250)) { info->rx_trigger = 1; info->rx_high_water = 1; info->rx_low_water = 1; info->xmit_fifo_size = 1; } else for (i = 0; i < UART_INFO_NUM; i++) if (info->board->chip_flag == Gpci_uart_info[i].type) { info->rx_trigger = Gpci_uart_info[i].rx_trigger; info->rx_low_water = Gpci_uart_info[i].rx_low_water; info->rx_high_water = Gpci_uart_info[i].rx_high_water; info->xmit_fifo_size = Gpci_uart_info[i].xmit_fifo_size; break; } } static unsigned char mxser_get_msr(int baseaddr, int mode, int port) { static unsigned char mxser_msr[MXSER_PORTS + 1]; unsigned char status = 0; status = inb(baseaddr + UART_MSR); mxser_msr[port] &= 0x0F; mxser_msr[port] |= status; status = mxser_msr[port]; if (mode) mxser_msr[port] = 0; return status; } static int mxser_block_til_ready(struct tty_struct *tty, struct file *filp, struct mxser_port *port) { DECLARE_WAITQUEUE(wait, current); int retval; int do_clocal = 0; unsigned long flags; /* * If non-blocking mode is set, or the port is not enabled, * then make the check up front and then exit. */ if ((filp->f_flags & O_NONBLOCK) || test_bit(TTY_IO_ERROR, &tty->flags)) { port->port.flags |= ASYNC_NORMAL_ACTIVE; return 0; } if (tty->termios->c_cflag & CLOCAL) do_clocal = 1; /* * Block waiting for the carrier detect and the line to become * free (i.e., not in use by the callout). While we are in * this loop, port->port.count is dropped by one, so that * mxser_close() knows when to free things. We restore it upon * exit, either normal or abnormal. */ retval = 0; add_wait_queue(&port->port.open_wait, &wait); spin_lock_irqsave(&port->slock, flags); if (!tty_hung_up_p(filp)) port->port.count--; spin_unlock_irqrestore(&port->slock, flags); port->port.blocked_open++; while (1) { spin_lock_irqsave(&port->slock, flags); outb(inb(port->ioaddr + UART_MCR) | UART_MCR_DTR | UART_MCR_RTS, port->ioaddr + UART_MCR); spin_unlock_irqrestore(&port->slock, flags); set_current_state(TASK_INTERRUPTIBLE); if (tty_hung_up_p(filp) || !(port->port.flags & ASYNC_INITIALIZED)) { if (port->port.flags & ASYNC_HUP_NOTIFY) retval = -EAGAIN; else retval = -ERESTARTSYS; break; } if (!(port->port.flags & ASYNC_CLOSING) && (do_clocal || (inb(port->ioaddr + UART_MSR) & UART_MSR_DCD))) break; if (signal_pending(current)) { retval = -ERESTARTSYS; break; } schedule(); } set_current_state(TASK_RUNNING); remove_wait_queue(&port->port.open_wait, &wait); if (!tty_hung_up_p(filp)) port->port.count++; port->port.blocked_open--; if (retval) return retval; port->port.flags |= ASYNC_NORMAL_ACTIVE; return 0; } static int mxser_set_baud(struct tty_struct *tty, long newspd) { struct mxser_port *info = tty->driver_data; int quot = 0, baud; unsigned char cval; if (!info->ioaddr) return -1; if (newspd > info->max_baud) return -1; if (newspd == 134) { quot = 2 * info->baud_base / 269; tty_encode_baud_rate(tty, 134, 134); } else if (newspd) { quot = info->baud_base / newspd; if (quot == 0) quot = 1; baud = info->baud_base/quot; tty_encode_baud_rate(tty, baud, baud); } else { quot = 0; } info->timeout = ((info->xmit_fifo_size * HZ * 10 * quot) / info->baud_base); info->timeout += HZ / 50; /* Add .02 seconds of slop */ if (quot) { info->MCR |= UART_MCR_DTR; outb(info->MCR, info->ioaddr + UART_MCR); } else { info->MCR &= ~UART_MCR_DTR; outb(info->MCR, info->ioaddr + UART_MCR); return 0; } cval = inb(info->ioaddr + UART_LCR); outb(cval | UART_LCR_DLAB, info->ioaddr + UART_LCR); /* set DLAB */ outb(quot & 0xff, info->ioaddr + UART_DLL); /* LS of divisor */ outb(quot >> 8, info->ioaddr + UART_DLM); /* MS of divisor */ outb(cval, info->ioaddr + UART_LCR); /* reset DLAB */ #ifdef BOTHER if (C_BAUD(tty) == BOTHER) { quot = info->baud_base % newspd; quot *= 8; if (quot % newspd > newspd / 2) { quot /= newspd; quot++; } else quot /= newspd; mxser_set_must_enum_value(info->ioaddr, quot); } else #endif mxser_set_must_enum_value(info->ioaddr, 0); return 0; } /* * This routine is called to set the UART divisor registers to match * the specified baud rate for a serial port. */ static int mxser_change_speed(struct tty_struct *tty, struct ktermios *old_termios) { struct mxser_port *info = tty->driver_data; unsigned cflag, cval, fcr; int ret = 0; unsigned char status; cflag = tty->termios->c_cflag; if (!info->ioaddr) return ret; if (mxser_set_baud_method[tty->index] == 0) mxser_set_baud(tty, tty_get_baud_rate(tty)); /* byte size and parity */ switch (cflag & CSIZE) { case CS5: cval = 0x00; break; case CS6: cval = 0x01; break; case CS7: cval = 0x02; break; case CS8: cval = 0x03; break; default: cval = 0x00; break; /* too keep GCC shut... */ } if (cflag & CSTOPB) cval |= 0x04; if (cflag & PARENB) cval |= UART_LCR_PARITY; if (!(cflag & PARODD)) cval |= UART_LCR_EPAR; if (cflag & CMSPAR) cval |= UART_LCR_SPAR; if ((info->type == PORT_8250) || (info->type == PORT_16450)) { if (info->board->chip_flag) { fcr = UART_FCR_ENABLE_FIFO; fcr |= MOXA_MUST_FCR_GDA_MODE_ENABLE; mxser_set_must_fifo_value(info); } else fcr = 0; } else { fcr = UART_FCR_ENABLE_FIFO; if (info->board->chip_flag) { fcr |= MOXA_MUST_FCR_GDA_MODE_ENABLE; mxser_set_must_fifo_value(info); } else { switch (info->rx_trigger) { case 1: fcr |= UART_FCR_TRIGGER_1; break; case 4: fcr |= UART_FCR_TRIGGER_4; break; case 8: fcr |= UART_FCR_TRIGGER_8; break; default: fcr |= UART_FCR_TRIGGER_14; break; } } } /* CTS flow control flag and modem status interrupts */ info->IER &= ~UART_IER_MSI; info->MCR &= ~UART_MCR_AFE; if (cflag & CRTSCTS) { info->port.flags |= ASYNC_CTS_FLOW; info->IER |= UART_IER_MSI; if ((info->type == PORT_16550A) || (info->board->chip_flag)) { info->MCR |= UART_MCR_AFE; } else { status = inb(info->ioaddr + UART_MSR); if (tty->hw_stopped) { if (status & UART_MSR_CTS) { tty->hw_stopped = 0; if (info->type != PORT_16550A && !info->board->chip_flag) { outb(info->IER & ~UART_IER_THRI, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } tty_wakeup(tty); } } else { if (!(status & UART_MSR_CTS)) { tty->hw_stopped = 1; if ((info->type != PORT_16550A) && (!info->board->chip_flag)) { info->IER &= ~UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } } } } } else { info->port.flags &= ~ASYNC_CTS_FLOW; } outb(info->MCR, info->ioaddr + UART_MCR); if (cflag & CLOCAL) { info->port.flags &= ~ASYNC_CHECK_CD; } else { info->port.flags |= ASYNC_CHECK_CD; info->IER |= UART_IER_MSI; } outb(info->IER, info->ioaddr + UART_IER); /* * Set up parity check flag */ info->read_status_mask = UART_LSR_OE | UART_LSR_THRE | UART_LSR_DR; if (I_INPCK(tty)) info->read_status_mask |= UART_LSR_FE | UART_LSR_PE; if (I_BRKINT(tty) || I_PARMRK(tty)) info->read_status_mask |= UART_LSR_BI; info->ignore_status_mask = 0; if (I_IGNBRK(tty)) { info->ignore_status_mask |= UART_LSR_BI; info->read_status_mask |= UART_LSR_BI; /* * If we're ignore parity and break indicators, ignore * overruns too. (For real raw support). */ if (I_IGNPAR(tty)) { info->ignore_status_mask |= UART_LSR_OE | UART_LSR_PE | UART_LSR_FE; info->read_status_mask |= UART_LSR_OE | UART_LSR_PE | UART_LSR_FE; } } if (info->board->chip_flag) { mxser_set_must_xon1_value(info->ioaddr, START_CHAR(tty)); mxser_set_must_xoff1_value(info->ioaddr, STOP_CHAR(tty)); if (I_IXON(tty)) { mxser_enable_must_rx_software_flow_control( info->ioaddr); } else { mxser_disable_must_rx_software_flow_control( info->ioaddr); } if (I_IXOFF(tty)) { mxser_enable_must_tx_software_flow_control( info->ioaddr); } else { mxser_disable_must_tx_software_flow_control( info->ioaddr); } } outb(fcr, info->ioaddr + UART_FCR); /* set fcr */ outb(cval, info->ioaddr + UART_LCR); return ret; } static void mxser_check_modem_status(struct tty_struct *tty, struct mxser_port *port, int status) { /* update input line counters */ if (status & UART_MSR_TERI) port->icount.rng++; if (status & UART_MSR_DDSR) port->icount.dsr++; if (status & UART_MSR_DDCD) port->icount.dcd++; if (status & UART_MSR_DCTS) port->icount.cts++; port->mon_data.modem_status = status; wake_up_interruptible(&port->delta_msr_wait); if ((port->port.flags & ASYNC_CHECK_CD) && (status & UART_MSR_DDCD)) { if (status & UART_MSR_DCD) wake_up_interruptible(&port->port.open_wait); } tty = tty_port_tty_get(&port->port); if (port->port.flags & ASYNC_CTS_FLOW) { if (tty->hw_stopped) { if (status & UART_MSR_CTS) { tty->hw_stopped = 0; if ((port->type != PORT_16550A) && (!port->board->chip_flag)) { outb(port->IER & ~UART_IER_THRI, port->ioaddr + UART_IER); port->IER |= UART_IER_THRI; outb(port->IER, port->ioaddr + UART_IER); } tty_wakeup(tty); } } else { if (!(status & UART_MSR_CTS)) { tty->hw_stopped = 1; if (port->type != PORT_16550A && !port->board->chip_flag) { port->IER &= ~UART_IER_THRI; outb(port->IER, port->ioaddr + UART_IER); } } } } } static int mxser_startup(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; unsigned long page; unsigned long flags; page = __get_free_page(GFP_KERNEL); if (!page) return -ENOMEM; spin_lock_irqsave(&info->slock, flags); if (info->port.flags & ASYNC_INITIALIZED) { free_page(page); spin_unlock_irqrestore(&info->slock, flags); return 0; } if (!info->ioaddr || !info->type) { set_bit(TTY_IO_ERROR, &tty->flags); free_page(page); spin_unlock_irqrestore(&info->slock, flags); return 0; } if (info->port.xmit_buf) free_page(page); else info->port.xmit_buf = (unsigned char *) page; /* * Clear the FIFO buffers and disable them * (they will be reenabled in mxser_change_speed()) */ if (info->board->chip_flag) outb((UART_FCR_CLEAR_RCVR | UART_FCR_CLEAR_XMIT | MOXA_MUST_FCR_GDA_MODE_ENABLE), info->ioaddr + UART_FCR); else outb((UART_FCR_CLEAR_RCVR | UART_FCR_CLEAR_XMIT), info->ioaddr + UART_FCR); /* * At this point there's no way the LSR could still be 0xFF; * if it is, then bail out, because there's likely no UART * here. */ if (inb(info->ioaddr + UART_LSR) == 0xff) { spin_unlock_irqrestore(&info->slock, flags); if (capable(CAP_SYS_ADMIN)) { if (tty) set_bit(TTY_IO_ERROR, &tty->flags); return 0; } else return -ENODEV; } /* * Clear the interrupt registers. */ (void) inb(info->ioaddr + UART_LSR); (void) inb(info->ioaddr + UART_RX); (void) inb(info->ioaddr + UART_IIR); (void) inb(info->ioaddr + UART_MSR); /* * Now, initialize the UART */ outb(UART_LCR_WLEN8, info->ioaddr + UART_LCR); /* reset DLAB */ info->MCR = UART_MCR_DTR | UART_MCR_RTS; outb(info->MCR, info->ioaddr + UART_MCR); /* * Finally, enable interrupts */ info->IER = UART_IER_MSI | UART_IER_RLSI | UART_IER_RDI; if (info->board->chip_flag) info->IER |= MOXA_MUST_IER_EGDAI; outb(info->IER, info->ioaddr + UART_IER); /* enable interrupts */ /* * And clear the interrupt registers again for luck. */ (void) inb(info->ioaddr + UART_LSR); (void) inb(info->ioaddr + UART_RX); (void) inb(info->ioaddr + UART_IIR); (void) inb(info->ioaddr + UART_MSR); clear_bit(TTY_IO_ERROR, &tty->flags); info->xmit_cnt = info->xmit_head = info->xmit_tail = 0; /* * and set the speed of the serial port */ mxser_change_speed(tty, NULL); info->port.flags |= ASYNC_INITIALIZED; spin_unlock_irqrestore(&info->slock, flags); return 0; } /* * This routine will shutdown a serial port; interrupts maybe disabled, and * DTR is dropped if the hangup on close termio flag is on. */ static void mxser_shutdown(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; unsigned long flags; if (!(info->port.flags & ASYNC_INITIALIZED)) return; spin_lock_irqsave(&info->slock, flags); /* * clear delta_msr_wait queue to avoid mem leaks: we may free the irq * here so the queue might never be waken up */ wake_up_interruptible(&info->delta_msr_wait); /* * Free the IRQ, if necessary */ if (info->port.xmit_buf) { free_page((unsigned long) info->port.xmit_buf); info->port.xmit_buf = NULL; } info->IER = 0; outb(0x00, info->ioaddr + UART_IER); if (tty->termios->c_cflag & HUPCL) info->MCR &= ~(UART_MCR_DTR | UART_MCR_RTS); outb(info->MCR, info->ioaddr + UART_MCR); /* clear Rx/Tx FIFO's */ if (info->board->chip_flag) outb(UART_FCR_CLEAR_RCVR | UART_FCR_CLEAR_XMIT | MOXA_MUST_FCR_GDA_MODE_ENABLE, info->ioaddr + UART_FCR); else outb(UART_FCR_CLEAR_RCVR | UART_FCR_CLEAR_XMIT, info->ioaddr + UART_FCR); /* read data port to reset things */ (void) inb(info->ioaddr + UART_RX); set_bit(TTY_IO_ERROR, &tty->flags); info->port.flags &= ~ASYNC_INITIALIZED; if (info->board->chip_flag) SET_MOXA_MUST_NO_SOFTWARE_FLOW_CONTROL(info->ioaddr); spin_unlock_irqrestore(&info->slock, flags); } /* * This routine is called whenever a serial port is opened. It * enables interrupts for a serial port, linking in its async structure into * the IRQ chain. It also performs the serial-specific * initialization for the tty structure. */ static int mxser_open(struct tty_struct *tty, struct file *filp) { struct mxser_port *info; unsigned long flags; int retval, line; line = tty->index; if (line == MXSER_PORTS) return 0; if (line < 0 || line > MXSER_PORTS) return -ENODEV; info = &mxser_boards[line / MXSER_PORTS_PER_BOARD].ports[line % MXSER_PORTS_PER_BOARD]; if (!info->ioaddr) return -ENODEV; tty->driver_data = info; tty_port_tty_set(&info->port, tty); /* * Start up serial port */ spin_lock_irqsave(&info->slock, flags); info->port.count++; spin_unlock_irqrestore(&info->slock, flags); retval = mxser_startup(tty); if (retval) return retval; retval = mxser_block_til_ready(tty, filp, info); if (retval) return retval; /* unmark here for very high baud rate (ex. 921600 bps) used */ tty->low_latency = 1; return 0; } static void mxser_flush_buffer(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; char fcr; unsigned long flags; spin_lock_irqsave(&info->slock, flags); info->xmit_cnt = info->xmit_head = info->xmit_tail = 0; fcr = inb(info->ioaddr + UART_FCR); outb((fcr | UART_FCR_CLEAR_RCVR | UART_FCR_CLEAR_XMIT), info->ioaddr + UART_FCR); outb(fcr, info->ioaddr + UART_FCR); spin_unlock_irqrestore(&info->slock, flags); tty_wakeup(tty); } /* * This routine is called when the serial port gets closed. First, we * wait for the last remaining data to be sent. Then, we unlink its * async structure from the interrupt chain if necessary, and we free * that IRQ if nothing is left in the chain. */ static void mxser_close(struct tty_struct *tty, struct file *filp) { struct mxser_port *info = tty->driver_data; unsigned long timeout; unsigned long flags; if (tty->index == MXSER_PORTS) return; if (!info) return; spin_lock_irqsave(&info->slock, flags); if (tty_hung_up_p(filp)) { spin_unlock_irqrestore(&info->slock, flags); return; } if ((tty->count == 1) && (info->port.count != 1)) { /* * Uh, oh. tty->count is 1, which means that the tty * structure will be freed. Info->port.count should always * be one in these conditions. If it's greater than * one, we've got real problems, since it means the * serial port won't be shutdown. */ printk(KERN_ERR "mxser_close: bad serial port count; " "tty->count is 1, info->port.count is %d\n", info->port.count); info->port.count = 1; } if (--info->port.count < 0) { printk(KERN_ERR "mxser_close: bad serial port count for " "ttys%d: %d\n", tty->index, info->port.count); info->port.count = 0; } if (info->port.count) { spin_unlock_irqrestore(&info->slock, flags); return; } info->port.flags |= ASYNC_CLOSING; spin_unlock_irqrestore(&info->slock, flags); /* * Save the termios structure, since this port may have * separate termios for callout and dialin. */ if (info->port.flags & ASYNC_NORMAL_ACTIVE) info->normal_termios = *tty->termios; /* * Now we wait for the transmit buffer to clear; and we notify * the line discipline to only process XON/XOFF characters. */ tty->closing = 1; if (info->port.closing_wait != ASYNC_CLOSING_WAIT_NONE) tty_wait_until_sent(tty, info->port.closing_wait); /* * At this point we stop accepting input. To do this, we * disable the receive line status interrupts, and tell the * interrupt driver to stop checking the data ready bit in the * line status register. */ info->IER &= ~UART_IER_RLSI; if (info->board->chip_flag) info->IER &= ~MOXA_MUST_RECV_ISR; if (info->port.flags & ASYNC_INITIALIZED) { outb(info->IER, info->ioaddr + UART_IER); /* * Before we drop DTR, make sure the UART transmitter * has completely drained; this is especially * important if there is a transmit FIFO! */ timeout = jiffies + HZ; while (!(inb(info->ioaddr + UART_LSR) & UART_LSR_TEMT)) { schedule_timeout_interruptible(5); if (time_after(jiffies, timeout)) break; } } mxser_shutdown(tty); mxser_flush_buffer(tty); tty_ldisc_flush(tty); tty->closing = 0; tty_port_tty_set(&info->port, NULL); if (info->port.blocked_open) { if (info->port.close_delay) schedule_timeout_interruptible(info->port.close_delay); wake_up_interruptible(&info->port.open_wait); } info->port.flags &= ~(ASYNC_NORMAL_ACTIVE | ASYNC_CLOSING); } static int mxser_write(struct tty_struct *tty, const unsigned char *buf, int count) { int c, total = 0; struct mxser_port *info = tty->driver_data; unsigned long flags; if (!info->port.xmit_buf) return 0; while (1) { c = min_t(int, count, min(SERIAL_XMIT_SIZE - info->xmit_cnt - 1, SERIAL_XMIT_SIZE - info->xmit_head)); if (c <= 0) break; memcpy(info->port.xmit_buf + info->xmit_head, buf, c); spin_lock_irqsave(&info->slock, flags); info->xmit_head = (info->xmit_head + c) & (SERIAL_XMIT_SIZE - 1); info->xmit_cnt += c; spin_unlock_irqrestore(&info->slock, flags); buf += c; count -= c; total += c; } if (info->xmit_cnt && !tty->stopped) { if (!tty->hw_stopped || (info->type == PORT_16550A) || (info->board->chip_flag)) { spin_lock_irqsave(&info->slock, flags); outb(info->IER & ~UART_IER_THRI, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); spin_unlock_irqrestore(&info->slock, flags); } } return total; } static int mxser_put_char(struct tty_struct *tty, unsigned char ch) { struct mxser_port *info = tty->driver_data; unsigned long flags; if (!info->port.xmit_buf) return 0; if (info->xmit_cnt >= SERIAL_XMIT_SIZE - 1) return 0; spin_lock_irqsave(&info->slock, flags); info->port.xmit_buf[info->xmit_head++] = ch; info->xmit_head &= SERIAL_XMIT_SIZE - 1; info->xmit_cnt++; spin_unlock_irqrestore(&info->slock, flags); if (!tty->stopped) { if (!tty->hw_stopped || (info->type == PORT_16550A) || info->board->chip_flag) { spin_lock_irqsave(&info->slock, flags); outb(info->IER & ~UART_IER_THRI, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); spin_unlock_irqrestore(&info->slock, flags); } } return 1; } static void mxser_flush_chars(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; unsigned long flags; if (info->xmit_cnt <= 0 || tty->stopped || !info->port.xmit_buf || (tty->hw_stopped && info->type != PORT_16550A && !info->board->chip_flag)) return; spin_lock_irqsave(&info->slock, flags); outb(info->IER & ~UART_IER_THRI, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); spin_unlock_irqrestore(&info->slock, flags); } static int mxser_write_room(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; int ret; ret = SERIAL_XMIT_SIZE - info->xmit_cnt - 1; return ret < 0 ? 0 : ret; } static int mxser_chars_in_buffer(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; return info->xmit_cnt; } /* * ------------------------------------------------------------ * friends of mxser_ioctl() * ------------------------------------------------------------ */ static int mxser_get_serial_info(struct tty_struct *tty, struct serial_struct __user *retinfo) { struct mxser_port *info = tty->driver_data; struct serial_struct tmp = { .type = info->type, .line = tty->index, .port = info->ioaddr, .irq = info->board->irq, .flags = info->port.flags, .baud_base = info->baud_base, .close_delay = info->port.close_delay, .closing_wait = info->port.closing_wait, .custom_divisor = info->custom_divisor, .hub6 = 0 }; if (copy_to_user(retinfo, &tmp, sizeof(*retinfo))) return -EFAULT; return 0; } static int mxser_set_serial_info(struct tty_struct *tty, struct serial_struct __user *new_info) { struct mxser_port *info = tty->driver_data; struct serial_struct new_serial; speed_t baud; unsigned long sl_flags; unsigned int flags; int retval = 0; if (!new_info || !info->ioaddr) return -ENODEV; if (copy_from_user(&new_serial, new_info, sizeof(new_serial))) return -EFAULT; if (new_serial.irq != info->board->irq || new_serial.port != info->ioaddr) return -EINVAL; flags = info->port.flags & ASYNC_SPD_MASK; if (!capable(CAP_SYS_ADMIN)) { if ((new_serial.baud_base != info->baud_base) || (new_serial.close_delay != info->port.close_delay) || ((new_serial.flags & ~ASYNC_USR_MASK) != (info->port.flags & ~ASYNC_USR_MASK))) return -EPERM; info->port.flags = ((info->port.flags & ~ASYNC_USR_MASK) | (new_serial.flags & ASYNC_USR_MASK)); } else { /* * OK, past this point, all the error checking has been done. * At this point, we start making changes..... */ info->port.flags = ((info->port.flags & ~ASYNC_FLAGS) | (new_serial.flags & ASYNC_FLAGS)); info->port.close_delay = new_serial.close_delay * HZ / 100; info->port.closing_wait = new_serial.closing_wait * HZ / 100; tty->low_latency = (info->port.flags & ASYNC_LOW_LATENCY) ? 1 : 0; if ((info->port.flags & ASYNC_SPD_MASK) == ASYNC_SPD_CUST && (new_serial.baud_base != info->baud_base || new_serial.custom_divisor != info->custom_divisor)) { baud = new_serial.baud_base / new_serial.custom_divisor; tty_encode_baud_rate(tty, baud, baud); } } info->type = new_serial.type; process_txrx_fifo(info); if (info->port.flags & ASYNC_INITIALIZED) { if (flags != (info->port.flags & ASYNC_SPD_MASK)) { spin_lock_irqsave(&info->slock, sl_flags); mxser_change_speed(tty, NULL); spin_unlock_irqrestore(&info->slock, sl_flags); } } else retval = mxser_startup(tty); return retval; } /* * mxser_get_lsr_info - get line status register info * * Purpose: Let user call ioctl() to get info when the UART physically * is emptied. On bus types like RS485, the transmitter must * release the bus after transmitting. This must be done when * the transmit shift register is empty, not be done when the * transmit holding register is empty. This functionality * allows an RS485 driver to be written in user space. */ static int mxser_get_lsr_info(struct mxser_port *info, unsigned int __user *value) { unsigned char status; unsigned int result; unsigned long flags; spin_lock_irqsave(&info->slock, flags); status = inb(info->ioaddr + UART_LSR); spin_unlock_irqrestore(&info->slock, flags); result = ((status & UART_LSR_TEMT) ? TIOCSER_TEMT : 0); return put_user(result, value); } static int mxser_tiocmget(struct tty_struct *tty, struct file *file) { struct mxser_port *info = tty->driver_data; unsigned char control, status; unsigned long flags; if (tty->index == MXSER_PORTS) return -ENOIOCTLCMD; if (test_bit(TTY_IO_ERROR, &tty->flags)) return -EIO; control = info->MCR; spin_lock_irqsave(&info->slock, flags); status = inb(info->ioaddr + UART_MSR); if (status & UART_MSR_ANY_DELTA) mxser_check_modem_status(tty, info, status); spin_unlock_irqrestore(&info->slock, flags); return ((control & UART_MCR_RTS) ? TIOCM_RTS : 0) | ((control & UART_MCR_DTR) ? TIOCM_DTR : 0) | ((status & UART_MSR_DCD) ? TIOCM_CAR : 0) | ((status & UART_MSR_RI) ? TIOCM_RNG : 0) | ((status & UART_MSR_DSR) ? TIOCM_DSR : 0) | ((status & UART_MSR_CTS) ? TIOCM_CTS : 0); } static int mxser_tiocmset(struct tty_struct *tty, struct file *file, unsigned int set, unsigned int clear) { struct mxser_port *info = tty->driver_data; unsigned long flags; if (tty->index == MXSER_PORTS) return -ENOIOCTLCMD; if (test_bit(TTY_IO_ERROR, &tty->flags)) return -EIO; spin_lock_irqsave(&info->slock, flags); if (set & TIOCM_RTS) info->MCR |= UART_MCR_RTS; if (set & TIOCM_DTR) info->MCR |= UART_MCR_DTR; if (clear & TIOCM_RTS) info->MCR &= ~UART_MCR_RTS; if (clear & TIOCM_DTR) info->MCR &= ~UART_MCR_DTR; outb(info->MCR, info->ioaddr + UART_MCR); spin_unlock_irqrestore(&info->slock, flags); return 0; } static int __init mxser_program_mode(int port) { int id, i, j, n; outb(0, port); outb(0, port); outb(0, port); (void)inb(port); (void)inb(port); outb(0, port); (void)inb(port); id = inb(port + 1) & 0x1F; if ((id != C168_ASIC_ID) && (id != C104_ASIC_ID) && (id != C102_ASIC_ID) && (id != CI132_ASIC_ID) && (id != CI134_ASIC_ID) && (id != CI104J_ASIC_ID)) return -1; for (i = 0, j = 0; i < 4; i++) { n = inb(port + 2); if (n == 'M') { j = 1; } else if ((j == 1) && (n == 1)) { j = 2; break; } else j = 0; } if (j != 2) id = -2; return id; } static void __init mxser_normal_mode(int port) { int i, n; outb(0xA5, port + 1); outb(0x80, port + 3); outb(12, port + 0); /* 9600 bps */ outb(0, port + 1); outb(0x03, port + 3); /* 8 data bits */ outb(0x13, port + 4); /* loop back mode */ for (i = 0; i < 16; i++) { n = inb(port + 5); if ((n & 0x61) == 0x60) break; if ((n & 1) == 1) (void)inb(port); } outb(0x00, port + 4); } #define CHIP_SK 0x01 /* Serial Data Clock in Eprom */ #define CHIP_DO 0x02 /* Serial Data Output in Eprom */ #define CHIP_CS 0x04 /* Serial Chip Select in Eprom */ #define CHIP_DI 0x08 /* Serial Data Input in Eprom */ #define EN_CCMD 0x000 /* Chip's command register */ #define EN0_RSARLO 0x008 /* Remote start address reg 0 */ #define EN0_RSARHI 0x009 /* Remote start address reg 1 */ #define EN0_RCNTLO 0x00A /* Remote byte count reg WR */ #define EN0_RCNTHI 0x00B /* Remote byte count reg WR */ #define EN0_DCFG 0x00E /* Data configuration reg WR */ #define EN0_PORT 0x010 /* Rcv missed frame error counter RD */ #define ENC_PAGE0 0x000 /* Select page 0 of chip registers */ #define ENC_PAGE3 0x0C0 /* Select page 3 of chip registers */ static int __init mxser_read_register(int port, unsigned short *regs) { int i, k, value, id; unsigned int j; id = mxser_program_mode(port); if (id < 0) return id; for (i = 0; i < 14; i++) { k = (i & 0x3F) | 0x180; for (j = 0x100; j > 0; j >>= 1) { outb(CHIP_CS, port); if (k & j) { outb(CHIP_CS | CHIP_DO, port); outb(CHIP_CS | CHIP_DO | CHIP_SK, port); /* A? bit of read */ } else { outb(CHIP_CS, port); outb(CHIP_CS | CHIP_SK, port); /* A? bit of read */ } } (void)inb(port); value = 0; for (k = 0, j = 0x8000; k < 16; k++, j >>= 1) { outb(CHIP_CS, port); outb(CHIP_CS | CHIP_SK, port); if (inb(port) & CHIP_DI) value |= j; } regs[i] = value; outb(0, port); } mxser_normal_mode(port); return id; } static int mxser_ioctl_special(unsigned int cmd, void __user *argp) { struct mxser_port *port; struct tty_struct *tty; int result, status; unsigned int i, j; int ret = 0; switch (cmd) { case MOXA_GET_MAJOR: if (printk_ratelimit()) printk(KERN_WARNING "mxser: '%s' uses deprecated ioctl " "%x (GET_MAJOR), fix your userspace\n", current->comm, cmd); return put_user(ttymajor, (int __user *)argp); case MOXA_CHKPORTENABLE: result = 0; lock_kernel(); for (i = 0; i < MXSER_BOARDS; i++) for (j = 0; j < MXSER_PORTS_PER_BOARD; j++) if (mxser_boards[i].ports[j].ioaddr) result |= (1 << i); unlock_kernel(); return put_user(result, (unsigned long __user *)argp); case MOXA_GETDATACOUNT: lock_kernel(); if (copy_to_user(argp, &mxvar_log, sizeof(mxvar_log))) ret = -EFAULT; unlock_kernel(); return ret; case MOXA_GETMSTATUS: { struct mxser_mstatus ms, __user *msu = argp; lock_kernel(); for (i = 0; i < MXSER_BOARDS; i++) for (j = 0; j < MXSER_PORTS_PER_BOARD; j++) { port = &mxser_boards[i].ports[j]; memset(&ms, 0, sizeof(ms)); if (!port->ioaddr) goto copy; tty = tty_port_tty_get(&port->port); if (!tty || !tty->termios) ms.cflag = port->normal_termios.c_cflag; else ms.cflag = tty->termios->c_cflag; tty_kref_put(tty); status = inb(port->ioaddr + UART_MSR); if (status & UART_MSR_DCD) ms.dcd = 1; if (status & UART_MSR_DSR) ms.dsr = 1; if (status & UART_MSR_CTS) ms.cts = 1; copy: if (copy_to_user(msu, &ms, sizeof(ms))) { unlock_kernel(); return -EFAULT; } msu++; } unlock_kernel(); return 0; } case MOXA_ASPP_MON_EXT: { struct mxser_mon_ext *me; /* it's 2k, stack unfriendly */ unsigned int cflag, iflag, p; u8 opmode; me = kzalloc(sizeof(*me), GFP_KERNEL); if (!me) return -ENOMEM; lock_kernel(); for (i = 0, p = 0; i < MXSER_BOARDS; i++) { for (j = 0; j < MXSER_PORTS_PER_BOARD; j++, p++) { if (p >= ARRAY_SIZE(me->rx_cnt)) { i = MXSER_BOARDS; break; } port = &mxser_boards[i].ports[j]; if (!port->ioaddr) continue; status = mxser_get_msr(port->ioaddr, 0, p); if (status & UART_MSR_TERI) port->icount.rng++; if (status & UART_MSR_DDSR) port->icount.dsr++; if (status & UART_MSR_DDCD) port->icount.dcd++; if (status & UART_MSR_DCTS) port->icount.cts++; port->mon_data.modem_status = status; me->rx_cnt[p] = port->mon_data.rxcnt; me->tx_cnt[p] = port->mon_data.txcnt; me->up_rxcnt[p] = port->mon_data.up_rxcnt; me->up_txcnt[p] = port->mon_data.up_txcnt; me->modem_status[p] = port->mon_data.modem_status; tty = tty_port_tty_get(&port->port); if (!tty || !tty->termios) { cflag = port->normal_termios.c_cflag; iflag = port->normal_termios.c_iflag; me->baudrate[p] = tty_termios_baud_rate(&port->normal_termios); } else { cflag = tty->termios->c_cflag; iflag = tty->termios->c_iflag; me->baudrate[p] = tty_get_baud_rate(tty); } tty_kref_put(tty); me->databits[p] = cflag & CSIZE; me->stopbits[p] = cflag & CSTOPB; me->parity[p] = cflag & (PARENB | PARODD | CMSPAR); if (cflag & CRTSCTS) me->flowctrl[p] |= 0x03; if (iflag & (IXON | IXOFF)) me->flowctrl[p] |= 0x0C; if (port->type == PORT_16550A) me->fifo[p] = 1; opmode = inb(port->opmode_ioaddr) >> ((p % 4) * 2); opmode &= OP_MODE_MASK; me->iftype[p] = opmode; } } unlock_kernel(); if (copy_to_user(argp, me, sizeof(*me))) ret = -EFAULT; kfree(me); return ret; } default: return -ENOIOCTLCMD; } return 0; } static int mxser_cflags_changed(struct mxser_port *info, unsigned long arg, struct async_icount *cprev) { struct async_icount cnow; unsigned long flags; int ret; spin_lock_irqsave(&info->slock, flags); cnow = info->icount; /* atomic copy */ spin_unlock_irqrestore(&info->slock, flags); ret = ((arg & TIOCM_RNG) && (cnow.rng != cprev->rng)) || ((arg & TIOCM_DSR) && (cnow.dsr != cprev->dsr)) || ((arg & TIOCM_CD) && (cnow.dcd != cprev->dcd)) || ((arg & TIOCM_CTS) && (cnow.cts != cprev->cts)); *cprev = cnow; return ret; } static int mxser_ioctl(struct tty_struct *tty, struct file *file, unsigned int cmd, unsigned long arg) { struct mxser_port *info = tty->driver_data; struct async_icount cnow; unsigned long flags; void __user *argp = (void __user *)arg; int retval; if (tty->index == MXSER_PORTS) return mxser_ioctl_special(cmd, argp); if (cmd == MOXA_SET_OP_MODE || cmd == MOXA_GET_OP_MODE) { int p; unsigned long opmode; static unsigned char ModeMask[] = { 0xfc, 0xf3, 0xcf, 0x3f }; int shiftbit; unsigned char val, mask; p = tty->index % 4; if (cmd == MOXA_SET_OP_MODE) { if (get_user(opmode, (int __user *) argp)) return -EFAULT; if (opmode != RS232_MODE && opmode != RS485_2WIRE_MODE && opmode != RS422_MODE && opmode != RS485_4WIRE_MODE) return -EFAULT; lock_kernel(); mask = ModeMask[p]; shiftbit = p * 2; val = inb(info->opmode_ioaddr); val &= mask; val |= (opmode << shiftbit); outb(val, info->opmode_ioaddr); unlock_kernel(); } else { lock_kernel(); shiftbit = p * 2; opmode = inb(info->opmode_ioaddr) >> shiftbit; opmode &= OP_MODE_MASK; unlock_kernel(); if (put_user(opmode, (int __user *)argp)) return -EFAULT; } return 0; } if (cmd != TIOCGSERIAL && cmd != TIOCMIWAIT && cmd != TIOCGICOUNT && test_bit(TTY_IO_ERROR, &tty->flags)) return -EIO; switch (cmd) { case TIOCGSERIAL: lock_kernel(); retval = mxser_get_serial_info(tty, argp); unlock_kernel(); return retval; case TIOCSSERIAL: lock_kernel(); retval = mxser_set_serial_info(tty, argp); unlock_kernel(); return retval; case TIOCSERGETLSR: /* Get line status register */ return mxser_get_lsr_info(info, argp); /* * Wait for any of the 4 modem inputs (DCD,RI,DSR,CTS) to change * - mask passed in arg for lines of interest * (use |'ed TIOCM_RNG/DSR/CD/CTS for masking) * Caller should use TIOCGICOUNT to see which one it was */ case TIOCMIWAIT: spin_lock_irqsave(&info->slock, flags); cnow = info->icount; /* note the counters on entry */ spin_unlock_irqrestore(&info->slock, flags); return wait_event_interruptible(info->delta_msr_wait, mxser_cflags_changed(info, arg, &cnow)); /* * Get counter of input serial line interrupts (DCD,RI,DSR,CTS) * Return: write counters to the user passed counter struct * NB: both 1->0 and 0->1 transitions are counted except for * RI where only 0->1 is counted. */ case TIOCGICOUNT: { struct serial_icounter_struct icnt = { 0 }; spin_lock_irqsave(&info->slock, flags); cnow = info->icount; spin_unlock_irqrestore(&info->slock, flags); icnt.frame = cnow.frame; icnt.brk = cnow.brk; icnt.overrun = cnow.overrun; icnt.buf_overrun = cnow.buf_overrun; icnt.parity = cnow.parity; icnt.rx = cnow.rx; icnt.tx = cnow.tx; icnt.cts = cnow.cts; icnt.dsr = cnow.dsr; icnt.rng = cnow.rng; icnt.dcd = cnow.dcd; return copy_to_user(argp, &icnt, sizeof(icnt)) ? -EFAULT : 0; } case MOXA_HighSpeedOn: return put_user(info->baud_base != 115200 ? 1 : 0, (int __user *)argp); case MOXA_SDS_RSTICOUNTER: lock_kernel(); info->mon_data.rxcnt = 0; info->mon_data.txcnt = 0; unlock_kernel(); return 0; case MOXA_ASPP_OQUEUE:{ int len, lsr; lock_kernel(); len = mxser_chars_in_buffer(tty); lsr = inb(info->ioaddr + UART_LSR) & UART_LSR_TEMT; len += (lsr ? 0 : 1); unlock_kernel(); return put_user(len, (int __user *)argp); } case MOXA_ASPP_MON: { int mcr, status; lock_kernel(); status = mxser_get_msr(info->ioaddr, 1, tty->index); mxser_check_modem_status(tty, info, status); mcr = inb(info->ioaddr + UART_MCR); if (mcr & MOXA_MUST_MCR_XON_FLAG) info->mon_data.hold_reason &= ~NPPI_NOTIFY_XOFFHOLD; else info->mon_data.hold_reason |= NPPI_NOTIFY_XOFFHOLD; if (mcr & MOXA_MUST_MCR_TX_XON) info->mon_data.hold_reason &= ~NPPI_NOTIFY_XOFFXENT; else info->mon_data.hold_reason |= NPPI_NOTIFY_XOFFXENT; if (tty->hw_stopped) info->mon_data.hold_reason |= NPPI_NOTIFY_CTSHOLD; else info->mon_data.hold_reason &= ~NPPI_NOTIFY_CTSHOLD; unlock_kernel(); if (copy_to_user(argp, &info->mon_data, sizeof(struct mxser_mon))) return -EFAULT; return 0; } case MOXA_ASPP_LSTATUS: { if (put_user(info->err_shadow, (unsigned char __user *)argp)) return -EFAULT; info->err_shadow = 0; return 0; } case MOXA_SET_BAUD_METHOD: { int method; if (get_user(method, (int __user *)argp)) return -EFAULT; mxser_set_baud_method[tty->index] = method; return put_user(method, (int __user *)argp); } default: return -ENOIOCTLCMD; } return 0; } static void mxser_stoprx(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; info->ldisc_stop_rx = 1; if (I_IXOFF(tty)) { if (info->board->chip_flag) { info->IER &= ~MOXA_MUST_RECV_ISR; outb(info->IER, info->ioaddr + UART_IER); } else { info->x_char = STOP_CHAR(tty); outb(0, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } } if (tty->termios->c_cflag & CRTSCTS) { info->MCR &= ~UART_MCR_RTS; outb(info->MCR, info->ioaddr + UART_MCR); } } /* * This routine is called by the upper-layer tty layer to signal that * incoming characters should be throttled. */ static void mxser_throttle(struct tty_struct *tty) { mxser_stoprx(tty); } static void mxser_unthrottle(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; /* startrx */ info->ldisc_stop_rx = 0; if (I_IXOFF(tty)) { if (info->x_char) info->x_char = 0; else { if (info->board->chip_flag) { info->IER |= MOXA_MUST_RECV_ISR; outb(info->IER, info->ioaddr + UART_IER); } else { info->x_char = START_CHAR(tty); outb(0, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } } } if (tty->termios->c_cflag & CRTSCTS) { info->MCR |= UART_MCR_RTS; outb(info->MCR, info->ioaddr + UART_MCR); } } /* * mxser_stop() and mxser_start() * * This routines are called before setting or resetting tty->stopped. * They enable or disable transmitter interrupts, as necessary. */ static void mxser_stop(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; unsigned long flags; spin_lock_irqsave(&info->slock, flags); if (info->IER & UART_IER_THRI) { info->IER &= ~UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } spin_unlock_irqrestore(&info->slock, flags); } static void mxser_start(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; unsigned long flags; spin_lock_irqsave(&info->slock, flags); if (info->xmit_cnt && info->port.xmit_buf) { outb(info->IER & ~UART_IER_THRI, info->ioaddr + UART_IER); info->IER |= UART_IER_THRI; outb(info->IER, info->ioaddr + UART_IER); } spin_unlock_irqrestore(&info->slock, flags); } static void mxser_set_termios(struct tty_struct *tty, struct ktermios *old_termios) { struct mxser_port *info = tty->driver_data; unsigned long flags; spin_lock_irqsave(&info->slock, flags); mxser_change_speed(tty, old_termios); spin_unlock_irqrestore(&info->slock, flags); if ((old_termios->c_cflag & CRTSCTS) && !(tty->termios->c_cflag & CRTSCTS)) { tty->hw_stopped = 0; mxser_start(tty); } /* Handle sw stopped */ if ((old_termios->c_iflag & IXON) && !(tty->termios->c_iflag & IXON)) { tty->stopped = 0; if (info->board->chip_flag) { spin_lock_irqsave(&info->slock, flags); mxser_disable_must_rx_software_flow_control( info->ioaddr); spin_unlock_irqrestore(&info->slock, flags); } mxser_start(tty); } } /* * mxser_wait_until_sent() --- wait until the transmitter is empty */ static void mxser_wait_until_sent(struct tty_struct *tty, int timeout) { struct mxser_port *info = tty->driver_data; unsigned long orig_jiffies, char_time; int lsr; if (info->type == PORT_UNKNOWN) return; if (info->xmit_fifo_size == 0) return; /* Just in case.... */ orig_jiffies = jiffies; /* * Set the check interval to be 1/5 of the estimated time to * send a single character, and make it at least 1. The check * interval should also be less than the timeout. * * Note: we have to use pretty tight timings here to satisfy * the NIST-PCTS. */ char_time = (info->timeout - HZ / 50) / info->xmit_fifo_size; char_time = char_time / 5; if (char_time == 0) char_time = 1; if (timeout && timeout < char_time) char_time = timeout; /* * If the transmitter hasn't cleared in twice the approximate * amount of time to send the entire FIFO, it probably won't * ever clear. This assumes the UART isn't doing flow * control, which is currently the case. Hence, if it ever * takes longer than info->timeout, this is probably due to a * UART bug of some kind. So, we clamp the timeout parameter at * 2*info->timeout. */ if (!timeout || timeout > 2 * info->timeout) timeout = 2 * info->timeout; #ifdef SERIAL_DEBUG_RS_WAIT_UNTIL_SENT printk(KERN_DEBUG "In rs_wait_until_sent(%d) check=%lu...", timeout, char_time); printk("jiff=%lu...", jiffies); #endif lock_kernel(); while (!((lsr = inb(info->ioaddr + UART_LSR)) & UART_LSR_TEMT)) { #ifdef SERIAL_DEBUG_RS_WAIT_UNTIL_SENT printk("lsr = %d (jiff=%lu)...", lsr, jiffies); #endif schedule_timeout_interruptible(char_time); if (signal_pending(current)) break; if (timeout && time_after(jiffies, orig_jiffies + timeout)) break; } set_current_state(TASK_RUNNING); unlock_kernel(); #ifdef SERIAL_DEBUG_RS_WAIT_UNTIL_SENT printk("lsr = %d (jiff=%lu)...done\n", lsr, jiffies); #endif } /* * This routine is called by tty_hangup() when a hangup is signaled. */ static void mxser_hangup(struct tty_struct *tty) { struct mxser_port *info = tty->driver_data; mxser_flush_buffer(tty); mxser_shutdown(tty); info->port.count = 0; info->port.flags &= ~ASYNC_NORMAL_ACTIVE; tty_port_tty_set(&info->port, NULL); wake_up_interruptible(&info->port.open_wait); } /* * mxser_rs_break() --- routine which turns the break handling on or off */ static int mxser_rs_break(struct tty_struct *tty, int break_state) { struct mxser_port *info = tty->driver_data; unsigned long flags; spin_lock_irqsave(&info->slock, flags); if (break_state == -1) outb(inb(info->ioaddr + UART_LCR) | UART_LCR_SBC, info->ioaddr + UART_LCR); else outb(inb(info->ioaddr + UART_LCR) & ~UART_LCR_SBC, info->ioaddr + UART_LCR); spin_unlock_irqrestore(&info->slock, flags); return 0; } static void mxser_receive_chars(struct tty_struct *tty, struct mxser_port *port, int *status) { unsigned char ch, gdl; int ignored = 0; int cnt = 0; int recv_room; int max = 256; recv_room = tty->receive_room; if (recv_room == 0 && !port->ldisc_stop_rx) mxser_stoprx(tty); if (port->board->chip_flag != MOXA_OTHER_UART) { if (*status & UART_LSR_SPECIAL) goto intr_old; if (port->board->chip_flag == MOXA_MUST_MU860_HWID && (*status & MOXA_MUST_LSR_RERR)) goto intr_old; if (*status & MOXA_MUST_LSR_RERR) goto intr_old; gdl = inb(port->ioaddr + MOXA_MUST_GDL_REGISTER); if (port->board->chip_flag == MOXA_MUST_MU150_HWID) gdl &= MOXA_MUST_GDL_MASK; if (gdl >= recv_room) { if (!port->ldisc_stop_rx) mxser_stoprx(tty); } while (gdl--) { ch = inb(port->ioaddr + UART_RX); tty_insert_flip_char(tty, ch, 0); cnt++; } goto end_intr; } intr_old: do { if (max-- < 0) break; ch = inb(port->ioaddr + UART_RX); if (port->board->chip_flag && (*status & UART_LSR_OE)) outb(0x23, port->ioaddr + UART_FCR); *status &= port->read_status_mask; if (*status & port->ignore_status_mask) { if (++ignored > 100) break; } else { char flag = 0; if (*status & UART_LSR_SPECIAL) { if (*status & UART_LSR_BI) { flag = TTY_BREAK; port->icount.brk++; if (port->port.flags & ASYNC_SAK) do_SAK(tty); } else if (*status & UART_LSR_PE) { flag = TTY_PARITY; port->icount.parity++; } else if (*status & UART_LSR_FE) { flag = TTY_FRAME; port->icount.frame++; } else if (*status & UART_LSR_OE) { flag = TTY_OVERRUN; port->icount.overrun++; } else flag = TTY_BREAK; } tty_insert_flip_char(tty, ch, flag); cnt++; if (cnt >= recv_room) { if (!port->ldisc_stop_rx) mxser_stoprx(tty); break; } } if (port->board->chip_flag) break; *status = inb(port->ioaddr + UART_LSR); } while (*status & UART_LSR_DR); end_intr: mxvar_log.rxcnt[tty->index] += cnt; port->mon_data.rxcnt += cnt; port->mon_data.up_rxcnt += cnt; /* * We are called from an interrupt context with &port->slock * being held. Drop it temporarily in order to prevent * recursive locking. */ spin_unlock(&port->slock); tty_flip_buffer_push(tty); spin_lock(&port->slock); } static void mxser_transmit_chars(struct tty_struct *tty, struct mxser_port *port) { int count, cnt; if (port->x_char) { outb(port->x_char, port->ioaddr + UART_TX); port->x_char = 0; mxvar_log.txcnt[tty->index]++; port->mon_data.txcnt++; port->mon_data.up_txcnt++; port->icount.tx++; return; } if (port->port.xmit_buf == NULL) return; if (port->xmit_cnt <= 0 || tty->stopped || (tty->hw_stopped && (port->type != PORT_16550A) && (!port->board->chip_flag))) { port->IER &= ~UART_IER_THRI; outb(port->IER, port->ioaddr + UART_IER); return; } cnt = port->xmit_cnt; count = port->xmit_fifo_size; do { outb(port->port.xmit_buf[port->xmit_tail++], port->ioaddr + UART_TX); port->xmit_tail = port->xmit_tail & (SERIAL_XMIT_SIZE - 1); if (--port->xmit_cnt <= 0) break; } while (--count > 0); mxvar_log.txcnt[tty->index] += (cnt - port->xmit_cnt); port->mon_data.txcnt += (cnt - port->xmit_cnt); port->mon_data.up_txcnt += (cnt - port->xmit_cnt); port->icount.tx += (cnt - port->xmit_cnt); if (port->xmit_cnt < WAKEUP_CHARS && tty) tty_wakeup(tty); if (port->xmit_cnt <= 0) { port->IER &= ~UART_IER_THRI; outb(port->IER, port->ioaddr + UART_IER); } } /* * This is the serial driver's generic interrupt routine */ static irqreturn_t mxser_interrupt(int irq, void *dev_id) { int status, iir, i; struct mxser_board *brd = NULL; struct mxser_port *port; int max, irqbits, bits, msr; unsigned int int_cnt, pass_counter = 0; int handled = IRQ_NONE; struct tty_struct *tty; for (i = 0; i < MXSER_BOARDS; i++) if (dev_id == &mxser_boards[i]) { brd = dev_id; break; } if (i == MXSER_BOARDS) goto irq_stop; if (brd == NULL) goto irq_stop; max = brd->info->nports; while (pass_counter++ < MXSER_ISR_PASS_LIMIT) { irqbits = inb(brd->vector) & brd->vector_mask; if (irqbits == brd->vector_mask) break; handled = IRQ_HANDLED; for (i = 0, bits = 1; i < max; i++, irqbits |= bits, bits <<= 1) { if (irqbits == brd->vector_mask) break; if (bits & irqbits) continue; port = &brd->ports[i]; int_cnt = 0; spin_lock(&port->slock); do { iir = inb(port->ioaddr + UART_IIR); if (iir & UART_IIR_NO_INT) break; iir &= MOXA_MUST_IIR_MASK; tty = tty_port_tty_get(&port->port); if (!tty || (port->port.flags & ASYNC_CLOSING) || !(port->port.flags & ASYNC_INITIALIZED)) { status = inb(port->ioaddr + UART_LSR); outb(0x27, port->ioaddr + UART_FCR); inb(port->ioaddr + UART_MSR); tty_kref_put(tty); break; } status = inb(port->ioaddr + UART_LSR); if (status & UART_LSR_PE) port->err_shadow |= NPPI_NOTIFY_PARITY; if (status & UART_LSR_FE) port->err_shadow |= NPPI_NOTIFY_FRAMING; if (status & UART_LSR_OE) port->err_shadow |= NPPI_NOTIFY_HW_OVERRUN; if (status & UART_LSR_BI) port->err_shadow |= NPPI_NOTIFY_BREAK; if (port->board->chip_flag) { if (iir == MOXA_MUST_IIR_GDA || iir == MOXA_MUST_IIR_RDA || iir == MOXA_MUST_IIR_RTO || iir == MOXA_MUST_IIR_LSR) mxser_receive_chars(tty, port, &status); } else { status &= port->read_status_mask; if (status & UART_LSR_DR) mxser_receive_chars(tty, port, &status); } msr = inb(port->ioaddr + UART_MSR); if (msr & UART_MSR_ANY_DELTA) mxser_check_modem_status(tty, port, msr); if (port->board->chip_flag) { if (iir == 0x02 && (status & UART_LSR_THRE)) mxser_transmit_chars(tty, port); } else { if (status & UART_LSR_THRE) mxser_transmit_chars(tty, port); } tty_kref_put(tty); } while (int_cnt++ < MXSER_ISR_PASS_LIMIT); spin_unlock(&port->slock); } } irq_stop: return handled; } static const struct tty_operations mxser_ops = { .open = mxser_open, .close = mxser_close, .write = mxser_write, .put_char = mxser_put_char, .flush_chars = mxser_flush_chars, .write_room = mxser_write_room, .chars_in_buffer = mxser_chars_in_buffer, .flush_buffer = mxser_flush_buffer, .ioctl = mxser_ioctl, .throttle = mxser_throttle, .unthrottle = mxser_unthrottle, .set_termios = mxser_set_termios, .stop = mxser_stop, .start = mxser_start, .hangup = mxser_hangup, .break_ctl = mxser_rs_break, .wait_until_sent = mxser_wait_until_sent, .tiocmget = mxser_tiocmget, .tiocmset = mxser_tiocmset, }; /* * The MOXA Smartio/Industio serial driver boot-time initialization code! */ static void mxser_release_res(struct mxser_board *brd, struct pci_dev *pdev, unsigned int irq) { if (irq) free_irq(brd->irq, brd); if (pdev != NULL) { /* PCI */ #ifdef CONFIG_PCI pci_release_region(pdev, 2); pci_release_region(pdev, 3); #endif } else { release_region(brd->ports[0].ioaddr, 8 * brd->info->nports); release_region(brd->vector, 1); } } static int __devinit mxser_initbrd(struct mxser_board *brd, struct pci_dev *pdev) { struct mxser_port *info; unsigned int i; int retval; printk(KERN_INFO "mxser: max. baud rate = %d bps\n", brd->ports[0].max_baud); for (i = 0; i < brd->info->nports; i++) { info = &brd->ports[i]; tty_port_init(&info->port); info->board = brd; info->stop_rx = 0; info->ldisc_stop_rx = 0; /* Enhance mode enabled here */ if (brd->chip_flag != MOXA_OTHER_UART) mxser_enable_must_enchance_mode(info->ioaddr); info->port.flags = ASYNC_SHARE_IRQ; info->type = brd->uart_type; process_txrx_fifo(info); info->custom_divisor = info->baud_base * 16; info->port.close_delay = 5 * HZ / 10; info->port.closing_wait = 30 * HZ; info->normal_termios = mxvar_sdriver->init_termios; init_waitqueue_head(&info->delta_msr_wait); memset(&info->mon_data, 0, sizeof(struct mxser_mon)); info->err_shadow = 0; spin_lock_init(&info->slock); /* before set INT ISR, disable all int */ outb(inb(info->ioaddr + UART_IER) & 0xf0, info->ioaddr + UART_IER); } retval = request_irq(brd->irq, mxser_interrupt, IRQF_SHARED, "mxser", brd); if (retval) { printk(KERN_ERR "Board %s: Request irq failed, IRQ (%d) may " "conflict with another device.\n", brd->info->name, brd->irq); /* We hold resources, we need to release them. */ mxser_release_res(brd, pdev, 0); } return retval; } static int __init mxser_get_ISA_conf(int cap, struct mxser_board *brd) { int id, i, bits; unsigned short regs[16], irq; unsigned char scratch, scratch2; brd->chip_flag = MOXA_OTHER_UART; id = mxser_read_register(cap, regs); switch (id) { case C168_ASIC_ID: brd->info = &mxser_cards[0]; break; case C104_ASIC_ID: brd->info = &mxser_cards[1]; break; case CI104J_ASIC_ID: brd->info = &mxser_cards[2]; break; case C102_ASIC_ID: brd->info = &mxser_cards[5]; break; case CI132_ASIC_ID: brd->info = &mxser_cards[6]; break; case CI134_ASIC_ID: brd->info = &mxser_cards[7]; break; default: return 0; } irq = 0; /* some ISA cards have 2 ports, but we want to see them as 4-port (why?) Flag-hack checks if configuration should be read as 2-port here. */ if (brd->info->nports == 2 || (brd->info->flags & MXSER_HAS2)) { irq = regs[9] & 0xF000; irq = irq | (irq >> 4); if (irq != (regs[9] & 0xFF00)) goto err_irqconflict; } else if (brd->info->nports == 4) { irq = regs[9] & 0xF000; irq = irq | (irq >> 4); irq = irq | (irq >> 8); if (irq != regs[9]) goto err_irqconflict; } else if (brd->info->nports == 8) { irq = regs[9] & 0xF000; irq = irq | (irq >> 4); irq = irq | (irq >> 8); if ((irq != regs[9]) || (irq != regs[10])) goto err_irqconflict; } if (!irq) { printk(KERN_ERR "mxser: interrupt number unset\n"); return -EIO; } brd->irq = ((int)(irq & 0xF000) >> 12); for (i = 0; i < 8; i++) brd->ports[i].ioaddr = (int) regs[i + 1] & 0xFFF8; if ((regs[12] & 0x80) == 0) { printk(KERN_ERR "mxser: invalid interrupt vector\n"); return -EIO; } brd->vector = (int)regs[11]; /* interrupt vector */ if (id == 1) brd->vector_mask = 0x00FF; else brd->vector_mask = 0x000F; for (i = 7, bits = 0x0100; i >= 0; i--, bits <<= 1) { if (regs[12] & bits) { brd->ports[i].baud_base = 921600; brd->ports[i].max_baud = 921600; } else { brd->ports[i].baud_base = 115200; brd->ports[i].max_baud = 115200; } } scratch2 = inb(cap + UART_LCR) & (~UART_LCR_DLAB); outb(scratch2 | UART_LCR_DLAB, cap + UART_LCR); outb(0, cap + UART_EFR); /* EFR is the same as FCR */ outb(scratch2, cap + UART_LCR); outb(UART_FCR_ENABLE_FIFO, cap + UART_FCR); scratch = inb(cap + UART_IIR); if (scratch & 0xC0) brd->uart_type = PORT_16550A; else brd->uart_type = PORT_16450; if (!request_region(brd->ports[0].ioaddr, 8 * brd->info->nports, "mxser(IO)")) { printk(KERN_ERR "mxser: can't request ports I/O region: " "0x%.8lx-0x%.8lx\n", brd->ports[0].ioaddr, brd->ports[0].ioaddr + 8 * brd->info->nports - 1); return -EIO; } if (!request_region(brd->vector, 1, "mxser(vector)")) { release_region(brd->ports[0].ioaddr, 8 * brd->info->nports); printk(KERN_ERR "mxser: can't request interrupt vector region: " "0x%.8lx-0x%.8lx\n", brd->ports[0].ioaddr, brd->ports[0].ioaddr + 8 * brd->info->nports - 1); return -EIO; } return brd->info->nports; err_irqconflict: printk(KERN_ERR "mxser: invalid interrupt number\n"); return -EIO; } static int __devinit mxser_probe(struct pci_dev *pdev, const struct pci_device_id *ent) { #ifdef CONFIG_PCI struct mxser_board *brd; unsigned int i, j; unsigned long ioaddress; int retval = -EINVAL; for (i = 0; i < MXSER_BOARDS; i++) if (mxser_boards[i].info == NULL) break; if (i >= MXSER_BOARDS) { dev_err(&pdev->dev, "too many boards found (maximum %d), board " "not configured\n", MXSER_BOARDS); goto err; } brd = &mxser_boards[i]; brd->idx = i * MXSER_PORTS_PER_BOARD; dev_info(&pdev->dev, "found MOXA %s board (BusNo=%d, DevNo=%d)\n", mxser_cards[ent->driver_data].name, pdev->bus->number, PCI_SLOT(pdev->devfn)); retval = pci_enable_device(pdev); if (retval) { dev_err(&pdev->dev, "PCI enable failed\n"); goto err; } /* io address */ ioaddress = pci_resource_start(pdev, 2); retval = pci_request_region(pdev, 2, "mxser(IO)"); if (retval) goto err; brd->info = &mxser_cards[ent->driver_data]; for (i = 0; i < brd->info->nports; i++) brd->ports[i].ioaddr = ioaddress + 8 * i; /* vector */ ioaddress = pci_resource_start(pdev, 3); retval = pci_request_region(pdev, 3, "mxser(vector)"); if (retval) goto err_relio; brd->vector = ioaddress; /* irq */ brd->irq = pdev->irq; brd->chip_flag = CheckIsMoxaMust(brd->ports[0].ioaddr); brd->uart_type = PORT_16550A; brd->vector_mask = 0; for (i = 0; i < brd->info->nports; i++) { for (j = 0; j < UART_INFO_NUM; j++) { if (Gpci_uart_info[j].type == brd->chip_flag) { brd->ports[i].max_baud = Gpci_uart_info[j].max_baud; /* exception....CP-102 */ if (brd->info->flags & MXSER_HIGHBAUD) brd->ports[i].max_baud = 921600; break; } } } if (brd->chip_flag == MOXA_MUST_MU860_HWID) { for (i = 0; i < brd->info->nports; i++) { if (i < 4) brd->ports[i].opmode_ioaddr = ioaddress + 4; else brd->ports[i].opmode_ioaddr = ioaddress + 0x0c; } outb(0, ioaddress + 4); /* default set to RS232 mode */ outb(0, ioaddress + 0x0c); /* default set to RS232 mode */ } for (i = 0; i < brd->info->nports; i++) { brd->vector_mask |= (1 << i); brd->ports[i].baud_base = 921600; } /* mxser_initbrd will hook ISR. */ retval = mxser_initbrd(brd, pdev); if (retval) goto err_null; for (i = 0; i < brd->info->nports; i++) tty_register_device(mxvar_sdriver, brd->idx + i, &pdev->dev); pci_set_drvdata(pdev, brd); return 0; err_relio: pci_release_region(pdev, 2); err_null: brd->info = NULL; err: return retval; #else return -ENODEV; #endif } static void __devexit mxser_remove(struct pci_dev *pdev) { struct mxser_board *brd = pci_get_drvdata(pdev); unsigned int i; for (i = 0; i < brd->info->nports; i++) tty_unregister_device(mxvar_sdriver, brd->idx + i); mxser_release_res(brd, pdev, 1); brd->info = NULL; } static struct pci_driver mxser_driver = { .name = "mxser", .id_table = mxser_pcibrds, .probe = mxser_probe, .remove = __devexit_p(mxser_remove) }; static int __init mxser_module_init(void) { struct mxser_board *brd; unsigned int b, i, m; int retval; mxvar_sdriver = alloc_tty_driver(MXSER_PORTS + 1); if (!mxvar_sdriver) return -ENOMEM; printk(KERN_INFO "MOXA Smartio/Industio family driver version %s\n", MXSER_VERSION); /* Initialize the tty_driver structure */ mxvar_sdriver->owner = THIS_MODULE; mxvar_sdriver->magic = TTY_DRIVER_MAGIC; mxvar_sdriver->name = "ttyMI"; mxvar_sdriver->major = ttymajor; mxvar_sdriver->minor_start = 0; mxvar_sdriver->num = MXSER_PORTS + 1; mxvar_sdriver->type = TTY_DRIVER_TYPE_SERIAL; mxvar_sdriver->subtype = SERIAL_TYPE_NORMAL; mxvar_sdriver->init_termios = tty_std_termios; mxvar_sdriver->init_termios.c_cflag = B9600|CS8|CREAD|HUPCL|CLOCAL; mxvar_sdriver->flags = TTY_DRIVER_REAL_RAW|TTY_DRIVER_DYNAMIC_DEV; tty_set_operations(mxvar_sdriver, &mxser_ops); retval = tty_register_driver(mxvar_sdriver); if (retval) { printk(KERN_ERR "Couldn't install MOXA Smartio/Industio family " "tty driver !\n"); goto err_put; } /* Start finding ISA boards here */ for (m = 0, b = 0; b < MXSER_BOARDS; b++) { if (!ioaddr[b]) continue; brd = &mxser_boards[m]; retval = mxser_get_ISA_conf(!ioaddr[b], brd); if (retval <= 0) { brd->info = NULL; continue; } printk(KERN_INFO "mxser: found MOXA %s board (CAP=0x%lx)\n", brd->info->name, ioaddr[b]); /* mxser_initbrd will hook ISR. */ if (mxser_initbrd(brd, NULL) < 0) { brd->info = NULL; continue; } brd->idx = m * MXSER_PORTS_PER_BOARD; for (i = 0; i < brd->info->nports; i++) tty_register_device(mxvar_sdriver, brd->idx + i, NULL); m++; } retval = pci_register_driver(&mxser_driver); if (retval) { printk(KERN_ERR "mxser: can't register pci driver\n"); if (!m) { retval = -ENODEV; goto err_unr; } /* else: we have some ISA cards under control */ } return 0; err_unr: tty_unregister_driver(mxvar_sdriver); err_put: put_tty_driver(mxvar_sdriver); return retval; } static void __exit mxser_module_exit(void) { unsigned int i, j; pci_unregister_driver(&mxser_driver); for (i = 0; i < MXSER_BOARDS; i++) /* ISA remains */ if (mxser_boards[i].info != NULL) for (j = 0; j < mxser_boards[i].info->nports; j++) tty_unregister_device(mxvar_sdriver, mxser_boards[i].idx + j); tty_unregister_driver(mxvar_sdriver); put_tty_driver(mxvar_sdriver); for (i = 0; i < MXSER_BOARDS; i++) if (mxser_boards[i].info != NULL) mxser_release_res(&mxser_boards[i], NULL, 1); } module_init(mxser_module_init); module_exit(mxser_module_exit);