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path: root/net/ipv4/ipip.c
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/*
 *	Linux NET3:	IP/IP protocol decoder. 
 *
 *	Version: $Id: ipip.c,v 1.50 2001/10/02 02:22:36 davem Exp $
 *
 *	Authors:
 *		Sam Lantinga (slouken@cs.ucdavis.edu)  02/01/95
 *
 *	Fixes:
 *		Alan Cox	:	Merged and made usable non modular (its so tiny its silly as
 *					a module taking up 2 pages).
 *		Alan Cox	: 	Fixed bug with 1.3.18 and IPIP not working (now needs to set skb->h.iph)
 *					to keep ip_forward happy.
 *		Alan Cox	:	More fixes for 1.3.21, and firewall fix. Maybe this will work soon 8).
 *		Kai Schulte	:	Fixed #defines for IP_FIREWALL->FIREWALL
 *              David Woodhouse :       Perform some basic ICMP handling.
 *                                      IPIP Routing without decapsulation.
 *              Carlos Picoto   :       GRE over IP support
 *		Alexey Kuznetsov:	Reworked. Really, now it is truncated version of ipv4/ip_gre.c.
 *					I do not want to merge them together.
 *
 *	This program is free software; you can redistribute it and/or
 *	modify it under the terms of the GNU General Public License
 *	as published by the Free Software Foundation; either version
 *	2 of the License, or (at your option) any later version.
 *
 */

/* tunnel.c: an IP tunnel driver

	The purpose of this driver is to provide an IP tunnel through
	which you can tunnel network traffic transparently across subnets.

	This was written by looking at Nick Holloway's dummy driver
	Thanks for the great code!

		-Sam Lantinga	(slouken@cs.ucdavis.edu)  02/01/95
		
	Minor tweaks:
		Cleaned up the code a little and added some pre-1.3.0 tweaks.
		dev->hard_header/hard_header_len changed to use no headers.
		Comments/bracketing tweaked.
		Made the tunnels use dev->name not tunnel: when error reporting.
		Added tx_dropped stat
		
		-Alan Cox	(Alan.Cox@linux.org) 21 March 95

	Reworked:
		Changed to tunnel to destination gateway in addition to the
			tunnel's pointopoint address
		Almost completely rewritten
		Note:  There is currently no firewall or ICMP handling done.

		-Sam Lantinga	(slouken@cs.ucdavis.edu) 02/13/96
		
*/

/* Things I wish I had known when writing the tunnel driver:

	When the tunnel_xmit() function is called, the skb contains the
	packet to be sent (plus a great deal of extra info), and dev
	contains the tunnel device that _we_ are.

	When we are passed a packet, we are expected to fill in the
	source address with our source IP address.

	What is the proper way to allocate, copy and free a buffer?
	After you allocate it, it is a "0 length" chunk of memory
	starting at zero.  If you want to add headers to the buffer
	later, you'll have to call "skb_reserve(skb, amount)" with
	the amount of memory you want reserved.  Then, you call
	"skb_put(skb, amount)" with the amount of space you want in
	the buffer.  skb_put() returns a pointer to the top (#0) of
	that buffer.  skb->len is set to the amount of space you have
	"allocated" with skb_put().  You can then write up to skb->len
	bytes to that buffer.  If you need more, you can call skb_put()
	again with the additional amount of space you need.  You can
	find out how much more space you can allocate by calling 
	"skb_tailroom(skb)".
	Now, to add header space, call "skb_push(skb, header_len)".
	This creates space at the beginning of the buffer and returns
	a pointer to this new space.  If later you need to strip a
	header from a buffer, call "skb_pull(skb, header_len)".
	skb_headroom() will return how much space is left at the top
	of the buffer (before the main data).  Remember, this headroom
	space must be reserved before the skb_put() function is called.
	*/

/*
   This version of net/ipv4/ipip.c is cloned of net/ipv4/ip_gre.c

   For comments look at net/ipv4/ip_gre.c --ANK
 */

 
#include <linux/capability.h>
#include <linux/config.h>
#include <linux/module.h>
#include <linux/types.h>
#include <linux/sched.h>
#include <linux/kernel.h>
#include <asm/uaccess.h>
#include <linux/skbuff.h>
#include <linux/netdevice.h>
#include <linux/in.h>
#include <linux/tcp.h>
#include <linux/udp.h>
#include <linux/if_arp.h>
#include <linux/mroute.h>
#include <linux/init.h>
#include <linux/netfilter_ipv4.h>
#include <linux/if_ether.h>

#include <net/sock.h>
#include <net/ip.h>
#include <net/icmp.h>
#include <net/protocol.h>
#include <net/ipip.h>
#include <net/inet_ecn.h>
#include <net/xfrm.h>

#define HASH_SIZE  16
#define HASH(addr) ((addr^(addr>>4))&0xF)

static int ipip_fb_tunnel_init(struct net_device *dev);
static int ipip_tunnel_init(struct net_device *dev);
static void ipip_tunnel_setup(struct net_device *dev);

static struct net_device *ipip_fb_tunnel_dev;

static struct ip_tunnel *tunnels_r_l[HASH_SIZE];
static struct ip_tunnel *tunnels_r[HASH_SIZE];
static struct ip_tunnel *tunnels_l[HASH_SIZE];
static struct ip_tunnel *tunnels_wc[1];
static struct ip_tunnel **tunnels[4] = { tunnels_wc, tunnels_l, tunnels_r, tunnels_r_l };

static DEFINE_RWLOCK(ipip_lock);

static struct ip_tunnel * ipip_tunnel_lookup(u32 remote, u32 local)
{
	unsigned h0 = HASH(remote);
	unsigned h1 = HASH(local);
	struct ip_tunnel *t;

	for (t = tunnels_r_l[h0^h1]; t; t = t->next) {
		if (local == t->parms.iph.saddr &&
		    remote == t->parms.iph.daddr && (t->dev->flags&IFF_UP))
			return t;
	}
	for (t = tunnels_r[h0]; t; t = t->next) {
		if (remote == t->parms.iph.daddr && (t->dev->flags&IFF_UP))
			return t;
	}
	for (t = tunnels_l[h1]; t; t = t->next) {
		if (local == t->parms.iph.saddr && (t->dev->flags&IFF_UP))
			return t;
	}
	if ((t = tunnels_wc[0]) != NULL && (t->dev->flags&IFF_UP))
		return t;
	return NULL;
}

static struct ip_tunnel **ipip_bucket(struct ip_tunnel *t)
{
	u32 remote = t->parms.iph.daddr;
	u32 local = t->parms.iph.saddr;
	unsigned h = 0;
	int prio = 0;

	if (remote) {
		prio |= 2;
		h ^= HASH(remote);
	}
	if (local) {
		prio |= 1;
		h ^= HASH(local);
	}
	return &tunnels[prio][h];
}


static void ipip_tunnel_unlink(struct ip_tunnel *t)
{
	struct ip_tunnel **tp;

	for (tp = ipip_bucket(t); *tp; tp = &(*tp)->next) {
		if (t == *tp) {
			write_lock_bh(&ipip_lock);
			*tp = t->next;
			write_unlock_bh(&ipip_lock);
			break;
		}
	}
}

static void ipip_tunnel_link(struct ip_tunnel *t)
{
	struct ip_tunnel **tp = ipip_bucket(t);

	t->next = *tp;
	write_lock_bh(&ipip_lock);
	*tp = t;
	write_unlock_bh(&ipip_lock);
}

static struct ip_tunnel * ipip_tunnel_locate(struct ip_tunnel_parm *parms, int create)
{
	u32 remote = parms->iph.daddr;
	u32 local = parms->iph.saddr;
	struct ip_tunnel *t, **tp, *nt;
	struct net_device *dev;
	unsigned h = 0;
	int prio = 0;
	char name[IFNAMSIZ];

	if (remote) {
		prio |= 2;
		h ^= HASH(remote);
	}
	if (local) {
		prio |= 1;
		h ^= HASH(local);
	}
	for (tp = &tunnels[prio][h]; (t = *tp) != NULL; tp = &t->next) {
		if (local == t->parms.iph.saddr && remote == t->parms.iph.daddr)
			return t;
	}
	if (!create)
		return NULL;

	if (parms->name[0])
		strlcpy(name, parms->name, IFNAMSIZ);
	else {
		int i;
		for (i=1; i<100; i++) {
			sprintf(name, "tunl%d", i);
			if (__dev_get_by_name(name) == NULL)
				break;
		}
		if (i==100)
			goto failed;
	}

	dev = alloc_netdev(sizeof(*t), name, ipip_tunnel_setup);
	if (dev == NULL)
		return NULL;

	nt = netdev_priv(dev);
	SET_MODULE_OWNER(dev);
	dev->init = ipip_tunnel_init;
	nt->parms = *parms;

	if (register_netdevice(dev) < 0) {
		free_netdev(dev);
		goto failed;
	}

	dev_hold(dev);
	ipip_tunnel_link(nt);
	return nt;

failed:
	return NULL;
}

static void ipip_tunnel_uninit(struct net_device *dev)
{
	if (dev == ipip_fb_tunnel_dev) {
		write_lock_bh(&ipip_lock);
		tunnels_wc[0] = NULL;
		write_unlock_bh(&ipip_lock);
	} else
		ipip_tunnel_unlink(netdev_priv(dev));
	dev_put(dev);
}

static void ipip_err(struct sk_buff *skb, u32 info)
{
#ifndef I_WISH_WORLD_WERE_PERFECT

/* It is not :-( All the routers (except for Linux) return only
   8 bytes of packet payload. It means, that precise relaying of
   ICMP in the real Internet is absolutely infeasible.
 */
	struct iphdr *iph = (struct iphdr*)skb->data;
	int type = skb->h.icmph->type;
	int code = skb->h.icmph->code;
	struct ip_tunnel *t;

	switch (type) {
	default:
	case ICMP_PARAMETERPROB:
		return;

	case ICMP_DEST_UNREACH:
		switch (code) {
		case ICMP_SR_FAILED:
		case ICMP_PORT_UNREACH:
			/* Impossible event. */
			return;
		case ICMP_FRAG_NEEDED:
			/* Soft state for pmtu is maintained by IP core. */
			return;
		default:
			/* All others are translated to HOST_UNREACH.
			   rfc2003 contains "deep thoughts" about NET_UNREACH,
			   I believe they are just ether pollution. --ANK
			 */
			break;
		}
		break;
	case ICMP_TIME_EXCEEDED:
		if (code != ICMP_EXC_TTL)
			return;
		break;
	}

	read_lock(&ipip_lock);
	t = ipip_tunnel_lookup(iph->daddr, iph->saddr);
	if (t == NULL || t->parms.iph.daddr == 0)
		goto out;
	if (t->parms.iph.ttl == 0 && type == ICMP_TIME_EXCEEDED)
		goto out;

	if (jiffies - t->err_time < IPTUNNEL_ERR_TIMEO)
		t->err_count++;
	else
		t->err_count = 1;
	t->err_time = jiffies;
out:
	read_unlock(&ipip_lock);
	return;
#else
	struct iphdr *iph = (struct iphdr*)dp;
	int hlen = iph->ihl<<2;
	struct iphdr *eiph;
	int type = skb->h.icmph->type;
	int code = skb->h.icmph->code;
	int rel_type = 0;
	int rel_code = 0;
	int rel_info = 0;
	struct sk_buff *skb2;
	struct flowi fl;
	struct rtable *rt;

	if (len < hlen + sizeof(struct iphdr))
		return;
	eiph = (struct iphdr*)(dp + hlen);

	switch (type) {
	default:
		return;
	case ICMP_PARAMETERPROB:
		if (skb->h.icmph->un.gateway < hlen)
			return;

		/* So... This guy found something strange INSIDE encapsulated
		   packet. Well, he is fool, but what can we do ?
		 */
		rel_type = ICMP_PARAMETERPROB;
		rel_info = skb->h.icmph->un.gateway - hlen;
		break;

	case ICMP_DEST_UNREACH:
		switch (code) {
		case ICMP_SR_FAILED:
		case ICMP_PORT_UNREACH:
			/* Impossible event. */
			return;
		case ICMP_FRAG_NEEDED:
			/* And it is the only really necessary thing :-) */
			rel_info = ntohs(skb->h.icmph->un.frag.mtu);
			if (rel_info < hlen+68)
				return;
			rel_info -= hlen;
			/* BSD 4.2 MORE DOES NOT EXIST IN NATURE. */
			if (rel_info > ntohs(eiph->tot_len))
				return;
			break;
		default:
			/* All others are translated to HOST_UNREACH.
			   rfc2003 contains "deep thoughts" about NET_UNREACH,
			   I believe, it is just ether pollution. --ANK
			 */
			rel_type = ICMP_DEST_UNREACH;
			rel_code = ICMP_HOST_UNREACH;
			break;
		}
		break;
	case ICMP_TIME_EXCEEDED:
		if (code != ICMP_EXC_TTL)
			return;
		break;
	}

	/* Prepare fake skb to feed it to icmp_send */
	skb2 = skb_clone(skb, GFP_ATOMIC);
	if (skb2 == NULL)
		return;
	dst_release(skb2->dst);
	skb2->dst = NULL;
	skb_pull(skb2, skb->data - (u8*)eiph);
	skb2->nh.raw = skb2->data;

	/* Try to guess incoming interface */
	memset(&fl, 0, sizeof(fl));
	fl.fl4_daddr = eiph->saddr;
	fl.fl4_tos = RT_TOS(eiph->tos);
	fl.proto = IPPROTO_IPIP;
	if (ip_route_output_key(&rt, &key)) {
		kfree_skb(skb2);
		return;
	}
	skb2->dev = rt->u.dst.dev;

	/* route "incoming" packet */
	if (rt->rt_flags&RTCF_LOCAL) {
		ip_rt_put(rt);
		rt = NULL;
		fl.fl4_daddr = eiph->daddr;
		fl.fl4_src = eiph->saddr;
		fl.fl4_tos = eiph->tos;
		if (ip_route_output_key(&rt, &fl) ||
		    rt->u.dst.dev->type != ARPHRD_TUNNEL) {
			ip_rt_put(rt);
			kfree_skb(skb2);
			return;
		}
	} else {
		ip_rt_put(rt);
		if (ip_route_input(skb2, eiph->daddr, eiph->saddr, eiph->tos, skb2->dev) ||
		    skb2->dst->dev->type != ARPHRD_TUNNEL) {
			kfree_skb(skb2);
			return;
		}
	}

	/* change mtu on this route */
	if (type == ICMP_DEST_UNREACH && code == ICMP_FRAG_NEEDED) {
		if (rel_info > dst_mtu(skb2->dst)) {
			kfree_skb(skb2);
			return;
		}
		skb2->dst->ops->update_pmtu(skb2->dst, rel_info);
		rel_info = htonl(rel_info);
	} else if (type == ICMP_TIME_EXCEEDED) {
		struct ip_tunnel *t = netdev_priv(skb2->dev);
		if (t->parms.iph.ttl) {
			rel_type = ICMP_DEST_UNREACH;
			rel_code = ICMP_HOST_UNREACH;
		}
	}

	icmp_send(skb2, rel_type, rel_code, rel_info);
	kfree_skb(skb2);
	return;
#endif
}

static inline void ipip_ecn_decapsulate(struct iphdr *outer_iph, struct sk_buff *skb)
{
	struct iphdr *inner_iph = skb->nh.iph;

	if (INET_ECN_is_ce(outer_iph->tos))
		IP_ECN_set_ce(inner_iph);
}

static int ipip_rcv(struct sk_buff *skb)
{
	struct iphdr *iph;
	struct ip_tunnel *tunnel;

	if (!pskb_may_pull(skb, sizeof(struct iphdr)))
		goto out;

	iph = skb->nh.iph;

	read_lock(&ipip_lock);
	if ((tunnel = ipip_tunnel_lookup(iph->saddr, iph->daddr)) != NULL) {
		if (!xfrm4_policy_check(NULL, XFRM_POLICY_IN, skb)) {
			read_unlock(&ipip_lock);
			kfree_skb(skb);
			return 0;
		}

		secpath_reset(skb);

		skb->mac.raw = skb->nh.raw;
		skb->nh.raw = skb->data;
		memset(&(IPCB(skb)->opt), 0, sizeof(struct ip_options));
		skb->protocol = htons(ETH_P_IP);
		skb->pkt_type = PACKET_HOST;

		tunnel->stat.rx_packets++;
		tunnel->stat.rx_bytes += skb->len;
		skb->dev = tunnel->dev;
		dst_release(skb->dst);
		skb->dst = NULL;
		nf_reset(skb);
		ipip_ecn_decapsulate(iph, skb);
		netif_rx(skb);
		read_unlock(&ipip_lock);
		return 0;
	}
	read_unlock(&ipip_lock);

out:
	return -1;
}

/*
 *	This function assumes it is being called from dev_queue_xmit()
 *	and that skb is filled properly by that function.
 */

static int ipip_tunnel_xmit(struct sk_buff *skb, struct net_device *dev)
{
	struct ip_tunnel *tunnel = netdev_priv(dev);
	struct net_device_stats *stats = &tunnel->stat;
	struct iphdr  *tiph = &tunnel->parms.iph;
	u8     tos = tunnel->parms.iph.tos;
	u16    df = tiph->frag_off;
	struct rtable *rt;     			/* Route to the other host */
	struct net_device *tdev;			/* Device to other host */
	struct iphdr  *old_iph = skb->nh.iph;
	struct iphdr  *iph;			/* Our new IP header */
	int    max_headroom;			/* The extra header space needed */
	u32    dst = tiph->daddr;
	int    mtu;

	if (tunnel->recursion++) {
		tunnel->stat.collisions++;
		goto tx_error;
	}

	if (skb->protocol != htons(ETH_P_IP))
		goto tx_error;

	if (tos&1)
		tos = old_iph->tos;

	if (!dst) {
		/* NBMA tunnel */
		if ((rt = (struct rtable*)skb->dst) == NULL) {
			tunnel->stat.tx_fifo_errors++;
			goto tx_error;
		}
		if ((dst = rt->rt_gateway) == 0)
			goto tx_error_icmp;
	}

	{
		struct flowi fl = { .oif = tunnel->parms.link,
				    .nl_u = { .ip4_u =
					      { .daddr = dst,
						.saddr = tiph->saddr,
						.tos = RT_TOS(tos) } },
				    .proto = IPPROTO_IPIP };
		if (ip_route_output_key(&rt, &fl)) {
			tunnel->stat.tx_carrier_errors++;
			goto tx_error_icmp;
		}
	}
	tdev = rt->u.dst.dev;

	if (tdev == dev) {
		ip_rt_put(rt);
		tunnel->stat.collisions++;
		goto tx_error;
	}

	if (tiph->frag_off)
		mtu = dst_mtu(&rt->u.dst) - sizeof(struct iphdr);
	else
		mtu = skb->dst ? dst_mtu(skb->dst) : dev->mtu;

	if (mtu < 68) {
		tunnel->stat.collisions++;
		ip_rt_put(rt);
		goto tx_error;
	}
	if (skb->dst)
		skb->dst->ops->update_pmtu(skb->dst, mtu);

	df |= (old_iph->frag_off&htons(IP_DF));

	if ((old_iph->frag_off&htons(IP_DF)) && mtu < ntohs(old_iph->tot_len)) {
		icmp_send(skb, ICMP_DEST_UNREACH, ICMP_FRAG_NEEDED, htonl(mtu));
		ip_rt_put(rt);
		goto tx_error;
	}

	if (tunnel->err_count > 0) {
		if (jiffies - tunnel->err_time < IPTUNNEL_ERR_TIMEO) {
			tunnel->err_count--;
			dst_link_failure(skb);
		} else
			tunnel->err_count = 0;
	}

	/*
	 * Okay, now see if we can stuff it in the buffer as-is.
	 */
	max_headroom = (LL_RESERVED_SPACE(tdev)+sizeof(struct iphdr));

	if (skb_headroom(skb) < max_headroom || skb_cloned(skb) || skb_shared(skb)) {
		struct sk_buff *new_skb = skb_realloc_headroom(skb, max_headroom);
		if (!new_skb) {
			ip_rt_put(rt);
  			stats->tx_dropped++;
			dev_kfree_skb(skb);
			tunnel->recursion--;
			return 0;
		}
		if (skb->sk)
			skb_set_owner_w(new_skb, skb->sk);
		dev_kfree_skb(skb);
		skb = new_skb;
		old_iph = skb->nh.iph;
	}

	skb->h.raw = skb->nh.raw;
	skb->nh.raw = skb_push(skb, sizeof(struct iphdr));
	memset(&(IPCB(skb)->opt), 0, sizeof(IPCB(skb)->opt));
	IPCB(skb)->flags &= ~(IPSKB_XFRM_TUNNEL_SIZE | IPSKB_XFRM_TRANSFORMED |
			      IPSKB_REROUTED);
	dst_release(skb->dst);
	skb->dst = &rt->u.dst;

	/*
	 *	Push down and install the IPIP header.
	 */

	iph 			=	skb->nh.iph;
	iph->version		=	4;
	iph->ihl		=	sizeof(struct iphdr)>>2;
	iph->frag_off		=	df;
	iph->protocol		=	IPPROTO_IPIP;
	iph->tos		=	INET_ECN_encapsulate(tos, old_iph->tos);
	iph->daddr		=	rt->rt_dst;
	iph->saddr		=	rt->rt_src;

	if ((iph->ttl = tiph->ttl) == 0)
		iph->ttl	=	old_iph->ttl;

	nf_reset(skb);

	IPTUNNEL_XMIT();
	tunnel->recursion--;
	return 0;

tx_error_icmp:
	dst_link_failure(skb);
tx_error:
	stats->tx_errors++;
	dev_kfree_skb(skb);
	tunnel->recursion--;
	return 0;
}

static int
ipip_tunnel_ioctl (struct net_device *dev, struct ifreq *ifr, int cmd)
{
	int err = 0;
	struct ip_tunnel_parm p;
	struct ip_tunnel *t;

	switch (cmd) {
	case SIOCGETTUNNEL:
		t = NULL;
		if (dev == ipip_fb_tunnel_dev) {
			if (copy_from_user(&p, ifr->ifr_ifru.ifru_data, sizeof(p))) {
				err = -EFAULT;
				break;
			}
			t = ipip_tunnel_locate(&p, 0);
		}
		if (t == NULL)
			t = netdev_priv(dev);
		memcpy(&p, &t->parms, sizeof(p));
		if (copy_to_user(ifr->ifr_ifru.ifru_data, &p, sizeof(p)))
			err = -EFAULT;
		break;

	case SIOCADDTUNNEL:
	case SIOCCHGTUNNEL:
		err = -EPERM;
		if (!capable(CAP_NET_ADMIN))
			goto done;

		err = -EFAULT;
		if (copy_from_user(&p, ifr->ifr_ifru.ifru_data, sizeof(p)))
			goto done;

		err = -EINVAL;
		if (p.iph.version != 4 || p.iph.protocol != IPPROTO_IPIP ||
		    p.iph.ihl != 5 || (p.iph.frag_off&htons(~IP_DF)))
			goto done;
		if (p.iph.ttl)
			p.iph.frag_off |= htons(IP_DF);

		t = ipip_tunnel_locate(&p, cmd == SIOCADDTUNNEL);

		if (dev != ipip_fb_tunnel_dev && cmd == SIOCCHGTUNNEL) {
			if (t != NULL) {
				if (t->dev != dev) {
					err = -EEXIST;
					break;
				}
			} else {
				if (((dev->flags&IFF_POINTOPOINT) && !p.iph.daddr) ||
				    (!(dev->flags&IFF_POINTOPOINT) && p.iph.daddr)) {
					err = -EINVAL;
					break;
				}
				t = netdev_priv(dev);
				ipip_tunnel_unlink(t);
				t->parms.iph.saddr = p.iph.saddr;
				t->parms.iph.daddr = p.iph.daddr;
				memcpy(dev->dev_addr, &p.iph.saddr, 4);
				memcpy(dev->broadcast, &p.iph.daddr, 4);
				ipip_tunnel_link(t);
				netdev_state_change(dev);
			}
		}

		if (t) {
			err = 0;
			if (cmd == SIOCCHGTUNNEL) {
				t->parms.iph.ttl = p.iph.ttl;
				t->parms.iph.tos = p.iph.tos;
				t->parms.iph.frag_off = p.iph.frag_off;
			}
			if (copy_to_user(ifr->ifr_ifru.ifru_data, &t->parms, sizeof(p)))
				err = -EFAULT;
		} else
			err = (cmd == SIOCADDTUNNEL ? -ENOBUFS : -ENOENT);
		break;

	case SIOCDELTUNNEL:
		err = -EPERM;
		if (!capable(CAP_NET_ADMIN))
			goto done;

		if (dev == ipip_fb_tunnel_dev) {
			err = -EFAULT;
			if (copy_from_user(&p, ifr->ifr_ifru.ifru_data, sizeof(p)))
				goto done;
			err = -ENOENT;
			if ((t = ipip_tunnel_locate(&p, 0)) == NULL)
				goto done;
			err = -EPERM;
			if (t->dev == ipip_fb_tunnel_dev)
				goto done;
			dev = t->dev;
		}
		err = unregister_netdevice(dev);
		break;

	default:
		err = -EINVAL;
	}

done:
	return err;
}

static struct net_device_stats *ipip_tunnel_get_stats(struct net_device *dev)
{
	return &(((struct ip_tunnel*)netdev_priv(dev))->stat);
}

static int ipip_tunnel_change_mtu(struct net_device *dev, int new_mtu)
{
	if (new_mtu < 68 || new_mtu > 0xFFF8 - sizeof(struct iphdr))
		return -EINVAL;
	dev->mtu = new_mtu;
	return 0;
}

static void ipip_tunnel_setup(struct net_device *dev)
{
	SET_MODULE_OWNER(dev);
	dev->uninit		= ipip_tunnel_uninit;
	dev->hard_start_xmit	= ipip_tunnel_xmit;
	dev->get_stats		= ipip_tunnel_get_stats;
	dev->do_ioctl		= ipip_tunnel_ioctl;
	dev->change_mtu		= ipip_tunnel_change_mtu;
	dev->destructor		= free_netdev;

	dev->type		= ARPHRD_TUNNEL;
	dev->hard_header_len 	= LL_MAX_HEADER + sizeof(struct iphdr);
	dev->mtu		= ETH_DATA_LEN - sizeof(struct iphdr);
	dev->flags		= IFF_NOARP;
	dev->iflink		= 0;
	dev->addr_len		= 4;
}

static int ipip_tunnel_init(struct net_device *dev)
{
	struct net_device *tdev = NULL;
	struct ip_tunnel *tunnel;
	struct iphdr *iph;

	tunnel = netdev_priv(dev);
	iph = &tunnel->parms.iph;

	tunnel->dev = dev;
	strcpy(tunnel->parms.name, dev->name);

	memcpy(dev->dev_addr, &tunnel->parms.iph.saddr, 4);
	memcpy(dev->broadcast, &tunnel->parms.iph.daddr, 4);

	if (iph->daddr) {
		struct flowi fl = { .oif = tunnel->parms.link,
				    .nl_u = { .ip4_u =
					      { .daddr = iph->daddr,
						.saddr = iph->saddr,
						.tos = RT_TOS(iph->tos) } },
				    .proto = IPPROTO_IPIP };
		struct rtable *rt;
		if (!ip_route_output_key(&rt, &fl)) {
			tdev = rt->u.dst.dev;
			ip_rt_put(rt);
		}
		dev->flags |= IFF_POINTOPOINT;
	}

	if (!tdev && tunnel->parms.link)
		tdev = __dev_get_by_index(tunnel->parms.link);

	if (tdev) {
		dev->hard_header_len = tdev->hard_header_len + sizeof(struct iphdr);
		dev->mtu = tdev->mtu - sizeof(struct iphdr);
	}
	dev->iflink = tunnel->parms.link;

	return 0;
}

static int __init ipip_fb_tunnel_init(struct net_device *dev)
{
	struct ip_tunnel *tunnel = netdev_priv(dev);
	struct iphdr *iph = &tunnel->parms.iph;

	tunnel->dev = dev;
	strcpy(tunnel->parms.name, dev->name);

	iph->version		= 4;
	iph->protocol		= IPPROTO_IPIP;
	iph->ihl		= 5;

	dev_hold(dev);
	tunnels_wc[0]		= tunnel;
	return 0;
}

#ifdef CONFIG_INET_TUNNEL
static struct xfrm_tunnel ipip_handler = {
	.handler	=	ipip_rcv,
	.err_handler	=	ipip_err,
};

static inline int ipip_register(void)
{
	return xfrm4_tunnel_register(&ipip_handler);
}

static inline int ipip_unregister(void)
{
	return xfrm4_tunnel_deregister(&ipip_handler);
}
#else
static struct net_protocol ipip_protocol = {
	.handler	=	ipip_rcv,
	.err_handler	=	ipip_err,
	.no_policy	=	1,
};

static inline int ipip_register(void)
{
	return inet_add_protocol(&ipip_protocol, IPPROTO_IPIP);
}

static inline int ipip_unregister(void)
{
	return inet_del_protocol(&ipip_protocol, IPPROTO_IPIP);
}
#endif

static char banner[] __initdata =
	KERN_INFO "IPv4 over IPv4 tunneling driver\n";

static int __init ipip_init(void)
{
	int err;

	printk(banner);

	if (ipip_register() < 0) {
		printk(KERN_INFO "ipip init: can't register tunnel\n");
		return -EAGAIN;
	}

	ipip_fb_tunnel_dev = alloc_netdev(sizeof(struct ip_tunnel),
					   "tunl0",
					   ipip_tunnel_setup);
	if (!ipip_fb_tunnel_dev) {
		err = -ENOMEM;
		goto err1;
	}

	ipip_fb_tunnel_dev->init = ipip_fb_tunnel_init;

	if ((err = register_netdev(ipip_fb_tunnel_dev)))
		goto err2;
 out:
	return err;
 err2:
	free_netdev(ipip_fb_tunnel_dev);
 err1:
	ipip_unregister();
	goto out;
}

static void __exit ipip_destroy_tunnels(void)
{
	int prio;

	for (prio = 1; prio < 4; prio++) {
		int h;
		for (h = 0; h < HASH_SIZE; h++) {
			struct ip_tunnel *t;
			while ((t = tunnels[prio][h]) != NULL)
				unregister_netdevice(t->dev);
		}
	}
}

static void __exit ipip_fini(void)
{
	if (ipip_unregister() < 0)
		printk(KERN_INFO "ipip close: can't deregister tunnel\n");

	rtnl_lock();
	ipip_destroy_tunnels();
	unregister_netdevice(ipip_fb_tunnel_dev);
	rtnl_unlock();
}

module_init(ipip_init);
module_exit(ipip_fini);
MODULE_LICENSE("GPL");
ot;%p %04x %02x\n", socket, offset, val); return val; } static inline u16 config_readw(struct yenta_socket *socket, unsigned offset) { u16 val; pci_read_config_word(socket->dev, offset, &val); debug("%p %04x %04x\n", socket, offset, val); return val; } static inline u32 config_readl(struct yenta_socket *socket, unsigned offset) { u32 val; pci_read_config_dword(socket->dev, offset, &val); debug("%p %04x %08x\n", socket, offset, val); return val; } static inline void config_writeb(struct yenta_socket *socket, unsigned offset, u8 val) { debug("%p %04x %02x\n", socket, offset, val); pci_write_config_byte(socket->dev, offset, val); } static inline void config_writew(struct yenta_socket *socket, unsigned offset, u16 val) { debug("%p %04x %04x\n", socket, offset, val); pci_write_config_word(socket->dev, offset, val); } static inline void config_writel(struct yenta_socket *socket, unsigned offset, u32 val) { debug("%p %04x %08x\n", socket, offset, val); pci_write_config_dword(socket->dev, offset, val); } static inline u8 exca_readb(struct yenta_socket *socket, unsigned reg) { u8 val = readb(socket->base + 0x800 + reg); debug("%p %04x %02x\n", socket, reg, val); return val; } static inline u8 exca_readw(struct yenta_socket *socket, unsigned reg) { u16 val; val = readb(socket->base + 0x800 + reg); val |= readb(socket->base + 0x800 + reg + 1) << 8; debug("%p %04x %04x\n", socket, reg, val); return val; } static inline void exca_writeb(struct yenta_socket *socket, unsigned reg, u8 val) { debug("%p %04x %02x\n", socket, reg, val); writeb(val, socket->base + 0x800 + reg); readb(socket->base + 0x800 + reg); /* PCI write posting... */ } static void exca_writew(struct yenta_socket *socket, unsigned reg, u16 val) { debug("%p %04x %04x\n", socket, reg, val); writeb(val, socket->base + 0x800 + reg); writeb(val >> 8, socket->base + 0x800 + reg + 1); /* PCI write posting... */ readb(socket->base + 0x800 + reg); readb(socket->base + 0x800 + reg + 1); } /* * Ugh, mixed-mode cardbus and 16-bit pccard state: things depend * on what kind of card is inserted.. */ static int yenta_get_status(struct pcmcia_socket *sock, unsigned int *value) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); unsigned int val; u32 state = cb_readl(socket, CB_SOCKET_STATE); val = (state & CB_3VCARD) ? SS_3VCARD : 0; val |= (state & CB_XVCARD) ? SS_XVCARD : 0; val |= (state & (CB_5VCARD | CB_3VCARD | CB_XVCARD | CB_YVCARD)) ? 0 : SS_PENDING; val |= (state & (CB_CDETECT1 | CB_CDETECT2)) ? SS_PENDING : 0; if (state & CB_CBCARD) { val |= SS_CARDBUS; val |= (state & CB_CARDSTS) ? SS_STSCHG : 0; val |= (state & (CB_CDETECT1 | CB_CDETECT2)) ? 0 : SS_DETECT; val |= (state & CB_PWRCYCLE) ? SS_POWERON | SS_READY : 0; } else if (state & CB_16BITCARD) { u8 status = exca_readb(socket, I365_STATUS); val |= ((status & I365_CS_DETECT) == I365_CS_DETECT) ? SS_DETECT : 0; if (exca_readb(socket, I365_INTCTL) & I365_PC_IOCARD) { val |= (status & I365_CS_STSCHG) ? 0 : SS_STSCHG; } else { val |= (status & I365_CS_BVD1) ? 0 : SS_BATDEAD; val |= (status & I365_CS_BVD2) ? 0 : SS_BATWARN; } val |= (status & I365_CS_WRPROT) ? SS_WRPROT : 0; val |= (status & I365_CS_READY) ? SS_READY : 0; val |= (status & I365_CS_POWERON) ? SS_POWERON : 0; } *value = val; return 0; } static void yenta_get_power(struct yenta_socket *socket, socket_state_t *state) { if (!(cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) && (socket->flags & YENTA_16BIT_POWER_EXCA)) { u8 reg, vcc, vpp; reg = exca_readb(socket, I365_POWER); vcc = reg & I365_VCC_MASK; vpp = reg & I365_VPP1_MASK; state->Vcc = state->Vpp = 0; if (socket->flags & YENTA_16BIT_POWER_DF) { if (vcc == I365_VCC_3V) state->Vcc = 33; if (vcc == I365_VCC_5V) state->Vcc = 50; if (vpp == I365_VPP1_5V) state->Vpp = state->Vcc; if (vpp == I365_VPP1_12V) state->Vpp = 120; } else { if (reg & I365_VCC_5V) { state->Vcc = 50; if (vpp == I365_VPP1_5V) state->Vpp = 50; if (vpp == I365_VPP1_12V) state->Vpp = 120; } } } else { u32 control; control = cb_readl(socket, CB_SOCKET_CONTROL); switch (control & CB_SC_VCC_MASK) { case CB_SC_VCC_5V: state->Vcc = 50; break; case CB_SC_VCC_3V: state->Vcc = 33; break; default: state->Vcc = 0; } switch (control & CB_SC_VPP_MASK) { case CB_SC_VPP_12V: state->Vpp = 120; break; case CB_SC_VPP_5V: state->Vpp = 50; break; case CB_SC_VPP_3V: state->Vpp = 33; break; default: state->Vpp = 0; } } } static int yenta_get_socket(struct pcmcia_socket *sock, socket_state_t *state) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); u8 reg; u32 control; control = cb_readl(socket, CB_SOCKET_CONTROL); yenta_get_power(socket, state); state->io_irq = socket->io_irq; if (cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) { u16 bridge = config_readw(socket, CB_BRIDGE_CONTROL); if (bridge & CB_BRIDGE_CRST) state->flags |= SS_RESET; return 0; } /* 16-bit card state.. */ reg = exca_readb(socket, I365_POWER); state->flags = (reg & I365_PWR_AUTO) ? SS_PWR_AUTO : 0; state->flags |= (reg & I365_PWR_OUT) ? SS_OUTPUT_ENA : 0; reg = exca_readb(socket, I365_INTCTL); state->flags |= (reg & I365_PC_RESET) ? 0 : SS_RESET; state->flags |= (reg & I365_PC_IOCARD) ? SS_IOCARD : 0; reg = exca_readb(socket, I365_CSCINT); state->csc_mask = (reg & I365_CSC_DETECT) ? SS_DETECT : 0; if (state->flags & SS_IOCARD) { state->csc_mask |= (reg & I365_CSC_STSCHG) ? SS_STSCHG : 0; } else { state->csc_mask |= (reg & I365_CSC_BVD1) ? SS_BATDEAD : 0; state->csc_mask |= (reg & I365_CSC_BVD2) ? SS_BATWARN : 0; state->csc_mask |= (reg & I365_CSC_READY) ? SS_READY : 0; } return 0; } static void yenta_set_power(struct yenta_socket *socket, socket_state_t *state) { /* some birdges require to use the ExCA registers to power 16bit cards */ if (!(cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) && (socket->flags & YENTA_16BIT_POWER_EXCA)) { u8 reg, old; reg = old = exca_readb(socket, I365_POWER); reg &= ~(I365_VCC_MASK | I365_VPP1_MASK | I365_VPP2_MASK); /* i82365SL-DF style */ if (socket->flags & YENTA_16BIT_POWER_DF) { switch (state->Vcc) { case 33: reg |= I365_VCC_3V; break; case 50: reg |= I365_VCC_5V; break; default: reg = 0; break; } switch (state->Vpp) { case 33: case 50: reg |= I365_VPP1_5V; break; case 120: reg |= I365_VPP1_12V; break; } } else { /* i82365SL-B style */ switch (state->Vcc) { case 50: reg |= I365_VCC_5V; break; default: reg = 0; break; } switch (state->Vpp) { case 50: reg |= I365_VPP1_5V | I365_VPP2_5V; break; case 120: reg |= I365_VPP1_12V | I365_VPP2_12V; break; } } if (reg != old) exca_writeb(socket, I365_POWER, reg); } else { u32 reg = 0; /* CB_SC_STPCLK? */ switch (state->Vcc) { case 33: reg = CB_SC_VCC_3V; break; case 50: reg = CB_SC_VCC_5V; break; default: reg = 0; break; } switch (state->Vpp) { case 33: reg |= CB_SC_VPP_3V; break; case 50: reg |= CB_SC_VPP_5V; break; case 120: reg |= CB_SC_VPP_12V; break; } if (reg != cb_readl(socket, CB_SOCKET_CONTROL)) cb_writel(socket, CB_SOCKET_CONTROL, reg); } } static int yenta_set_socket(struct pcmcia_socket *sock, socket_state_t *state) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); u16 bridge; yenta_set_power(socket, state); socket->io_irq = state->io_irq; bridge = config_readw(socket, CB_BRIDGE_CONTROL) & ~(CB_BRIDGE_CRST | CB_BRIDGE_INTR); if (cb_readl(socket, CB_SOCKET_STATE) & CB_CBCARD) { u8 intr; bridge |= (state->flags & SS_RESET) ? CB_BRIDGE_CRST : 0; /* ISA interrupt control? */ intr = exca_readb(socket, I365_INTCTL); intr = (intr & ~0xf); if (!socket->cb_irq) { intr |= state->io_irq; bridge |= CB_BRIDGE_INTR; } exca_writeb(socket, I365_INTCTL, intr); } else { u8 reg; reg = exca_readb(socket, I365_INTCTL) & (I365_RING_ENA | I365_INTR_ENA); reg |= (state->flags & SS_RESET) ? 0 : I365_PC_RESET; reg |= (state->flags & SS_IOCARD) ? I365_PC_IOCARD : 0; if (state->io_irq != socket->cb_irq) { reg |= state->io_irq; bridge |= CB_BRIDGE_INTR; } exca_writeb(socket, I365_INTCTL, reg); reg = exca_readb(socket, I365_POWER) & (I365_VCC_MASK|I365_VPP1_MASK); reg |= I365_PWR_NORESET; if (state->flags & SS_PWR_AUTO) reg |= I365_PWR_AUTO; if (state->flags & SS_OUTPUT_ENA) reg |= I365_PWR_OUT; if (exca_readb(socket, I365_POWER) != reg) exca_writeb(socket, I365_POWER, reg); /* CSC interrupt: no ISA irq for CSC */ reg = I365_CSC_DETECT; if (state->flags & SS_IOCARD) { if (state->csc_mask & SS_STSCHG) reg |= I365_CSC_STSCHG; } else { if (state->csc_mask & SS_BATDEAD) reg |= I365_CSC_BVD1; if (state->csc_mask & SS_BATWARN) reg |= I365_CSC_BVD2; if (state->csc_mask & SS_READY) reg |= I365_CSC_READY; } exca_writeb(socket, I365_CSCINT, reg); exca_readb(socket, I365_CSC); if(sock->zoom_video) sock->zoom_video(sock, state->flags & SS_ZVCARD); } config_writew(socket, CB_BRIDGE_CONTROL, bridge); /* Socket event mask: get card insert/remove events.. */ cb_writel(socket, CB_SOCKET_EVENT, -1); cb_writel(socket, CB_SOCKET_MASK, CB_CDMASK); return 0; } static int yenta_set_io_map(struct pcmcia_socket *sock, struct pccard_io_map *io) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); int map; unsigned char ioctl, addr, enable; map = io->map; if (map > 1) return -EINVAL; enable = I365_ENA_IO(map); addr = exca_readb(socket, I365_ADDRWIN); /* Disable the window before changing it.. */ if (addr & enable) { addr &= ~enable; exca_writeb(socket, I365_ADDRWIN, addr); } exca_writew(socket, I365_IO(map)+I365_W_START, io->start); exca_writew(socket, I365_IO(map)+I365_W_STOP, io->stop); ioctl = exca_readb(socket, I365_IOCTL) & ~I365_IOCTL_MASK(map); if (io->flags & MAP_0WS) ioctl |= I365_IOCTL_0WS(map); if (io->flags & MAP_16BIT) ioctl |= I365_IOCTL_16BIT(map); if (io->flags & MAP_AUTOSZ) ioctl |= I365_IOCTL_IOCS16(map); exca_writeb(socket, I365_IOCTL, ioctl); if (io->flags & MAP_ACTIVE) exca_writeb(socket, I365_ADDRWIN, addr | enable); return 0; } static int yenta_set_mem_map(struct pcmcia_socket *sock, struct pccard_mem_map *mem) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); struct pci_bus_region region; int map; unsigned char addr, enable; unsigned int start, stop, card_start; unsigned short word; pcibios_resource_to_bus(socket->dev, &region, mem->res); map = mem->map; start = region.start; stop = region.end; card_start = mem->card_start; if (map > 4 || start > stop || ((start ^ stop) >> 24) || (card_start >> 26) || mem->speed > 1000) return -EINVAL; enable = I365_ENA_MEM(map); addr = exca_readb(socket, I365_ADDRWIN); if (addr & enable) { addr &= ~enable; exca_writeb(socket, I365_ADDRWIN, addr); } exca_writeb(socket, CB_MEM_PAGE(map), start >> 24); word = (start >> 12) & 0x0fff; if (mem->flags & MAP_16BIT) word |= I365_MEM_16BIT; if (mem->flags & MAP_0WS) word |= I365_MEM_0WS; exca_writew(socket, I365_MEM(map) + I365_W_START, word); word = (stop >> 12) & 0x0fff; switch (to_cycles(mem->speed)) { case 0: break; case 1: word |= I365_MEM_WS0; break; case 2: word |= I365_MEM_WS1; break; default: word |= I365_MEM_WS1 | I365_MEM_WS0; break; } exca_writew(socket, I365_MEM(map) + I365_W_STOP, word); word = ((card_start - start) >> 12) & 0x3fff; if (mem->flags & MAP_WRPROT) word |= I365_MEM_WRPROT; if (mem->flags & MAP_ATTRIB) word |= I365_MEM_REG; exca_writew(socket, I365_MEM(map) + I365_W_OFF, word); if (mem->flags & MAP_ACTIVE) exca_writeb(socket, I365_ADDRWIN, addr | enable); return 0; } static irqreturn_t yenta_interrupt(int irq, void *dev_id, struct pt_regs *regs) { unsigned int events; struct yenta_socket *socket = (struct yenta_socket *) dev_id; u8 csc; u32 cb_event; /* Clear interrupt status for the event */ cb_event = cb_readl(socket, CB_SOCKET_EVENT); cb_writel(socket, CB_SOCKET_EVENT, cb_event); csc = exca_readb(socket, I365_CSC); events = (cb_event & (CB_CD1EVENT | CB_CD2EVENT)) ? SS_DETECT : 0 ; events |= (csc & I365_CSC_DETECT) ? SS_DETECT : 0; if (exca_readb(socket, I365_INTCTL) & I365_PC_IOCARD) { events |= (csc & I365_CSC_STSCHG) ? SS_STSCHG : 0; } else { events |= (csc & I365_CSC_BVD1) ? SS_BATDEAD : 0; events |= (csc & I365_CSC_BVD2) ? SS_BATWARN : 0; events |= (csc & I365_CSC_READY) ? SS_READY : 0; } if (events) pcmcia_parse_events(&socket->socket, events); if (cb_event || csc) return IRQ_HANDLED; return IRQ_NONE; } static void yenta_interrupt_wrapper(unsigned long data) { struct yenta_socket *socket = (struct yenta_socket *) data; yenta_interrupt(0, (void *)socket, NULL); socket->poll_timer.expires = jiffies + HZ; add_timer(&socket->poll_timer); } static void yenta_clear_maps(struct yenta_socket *socket) { int i; struct resource res = { .start = 0, .end = 0x0fff }; pccard_io_map io = { 0, 0, 0, 0, 1 }; pccard_mem_map mem = { .res = &res, }; yenta_set_socket(&socket->socket, &dead_socket); for (i = 0; i < 2; i++) { io.map = i; yenta_set_io_map(&socket->socket, &io); } for (i = 0; i < 5; i++) { mem.map = i; yenta_set_mem_map(&socket->socket, &mem); } } /* redoes voltage interrogation if required */ static void yenta_interrogate(struct yenta_socket *socket) { u32 state; state = cb_readl(socket, CB_SOCKET_STATE); if (!(state & (CB_5VCARD | CB_3VCARD | CB_XVCARD | CB_YVCARD)) || (state & (CB_CDETECT1 | CB_CDETECT2 | CB_NOTACARD | CB_BADVCCREQ)) || ((state & (CB_16BITCARD | CB_CBCARD)) == (CB_16BITCARD | CB_CBCARD))) cb_writel(socket, CB_SOCKET_FORCE, CB_CVSTEST); } /* Called at resume and initialization events */ static int yenta_sock_init(struct pcmcia_socket *sock) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); exca_writeb(socket, I365_GBLCTL, 0x00); exca_writeb(socket, I365_GENCTL, 0x00); /* Redo card voltage interrogation */ yenta_interrogate(socket); yenta_clear_maps(socket); if (socket->type && socket->type->sock_init) socket->type->sock_init(socket); /* Re-enable CSC interrupts */ cb_writel(socket, CB_SOCKET_MASK, CB_CDMASK); return 0; } static int yenta_sock_suspend(struct pcmcia_socket *sock) { struct yenta_socket *socket = container_of(sock, struct yenta_socket, socket); /* Disable CSC interrupts */ cb_writel(socket, CB_SOCKET_MASK, 0x0); return 0; } /* * Use an adaptive allocation for the memory resource, * sometimes the memory behind pci bridges is limited: * 1/8 of the size of the io window of the parent. * max 4 MB, min 16 kB. We try very hard to not get below * the "ACC" values, though. */ #define BRIDGE_MEM_MAX 4*1024*1024 #define BRIDGE_MEM_ACC 128*1024 #define BRIDGE_MEM_MIN 16*1024 #define BRIDGE_IO_MAX 512 #define BRIDGE_IO_ACC 256 #define BRIDGE_IO_MIN 32 #ifndef PCIBIOS_MIN_CARDBUS_IO #define PCIBIOS_MIN_CARDBUS_IO PCIBIOS_MIN_IO #endif static int yenta_search_one_res(struct resource *root, struct resource *res, u32 min) { u32 align, size, start, end; if (res->flags & IORESOURCE_IO) { align = 1024; size = BRIDGE_IO_MAX; start = PCIBIOS_MIN_CARDBUS_IO; end = ~0U; } else { unsigned long avail = root->end - root->start; int i; size = BRIDGE_MEM_MAX; if (size > avail/8) { size=(avail+1)/8; /* round size down to next power of 2 */ i = 0; while ((size /= 2) != 0) i++; size = 1 << i; } if (size < min) size = min; align = size; start = PCIBIOS_MIN_MEM; end = ~0U; } do { if (allocate_resource(root, res, size, start, end, align, NULL, NULL)==0) { return 1; } size = size/2; align = size; } while (size >= min); return 0; } static int yenta_search_res(struct yenta_socket *socket, struct resource *res, u32 min) { int i; for (i=0; i<PCI_BUS_NUM_RESOURCES; i++) { struct resource * root = socket->dev->bus->resource[i]; if (!root) continue; if ((res->flags ^ root->flags) & (IORESOURCE_IO | IORESOURCE_MEM | IORESOURCE_PREFETCH)) continue; /* Wrong type */ if (yenta_search_one_res(root, res, min)) return 1; } return 0; } static int yenta_allocate_res(struct yenta_socket *socket, int nr, unsigned type, int addr_start, int addr_end) { struct resource *root, *res; struct pci_bus_region region; unsigned mask; res = socket->dev->resource + PCI_BRIDGE_RESOURCES + nr; /* Already allocated? */ if (res->parent) return 0; /* The granularity of the memory limit is 4kB, on IO it's 4 bytes */ mask = ~0xfff; if (type & IORESOURCE_IO) mask = ~3; res->name = socket->dev->subordinate->name; res->flags = type; region.start = config_readl(socket, addr_start) & mask; region.end = config_readl(socket, addr_end) | ~mask; if (region.start && region.end > region.start && !override_bios) { pcibios_bus_to_resource(socket->dev, res, &region); root = pci_find_parent_resource(socket->dev, res); if (root && (request_resource(root, res) == 0)) return 0; printk(KERN_INFO "yenta %s: Preassigned resource %d busy or not available, reconfiguring...\n", pci_name(socket->dev), nr); } if (type & IORESOURCE_IO) { if ((yenta_search_res(socket, res, BRIDGE_IO_MAX)) || (yenta_search_res(socket, res, BRIDGE_IO_ACC)) || (yenta_search_res(socket, res, BRIDGE_IO_MIN))) return 1; } else { if (type & IORESOURCE_PREFETCH) { if ((yenta_search_res(socket, res, BRIDGE_MEM_MAX)) || (yenta_search_res(socket, res, BRIDGE_MEM_ACC)) || (yenta_search_res(socket, res, BRIDGE_MEM_MIN))) return 1; /* Approximating prefetchable by non-prefetchable */ res->flags = IORESOURCE_MEM; } if ((yenta_search_res(socket, res, BRIDGE_MEM_MAX)) || (yenta_search_res(socket, res, BRIDGE_MEM_ACC)) || (yenta_search_res(socket, res, BRIDGE_MEM_MIN))) return 1; } printk(KERN_INFO "yenta %s: no resource of type %x available, trying to continue...\n", pci_name(socket->dev), type); res->start = res->end = res->flags = 0; return 0; } /* * Allocate the bridge mappings for the device.. */ static void yenta_allocate_resources(struct yenta_socket *socket) { int program = 0; program += yenta_allocate_res(socket, 0, IORESOURCE_IO, PCI_CB_IO_BASE_0, PCI_CB_IO_LIMIT_0); program += yenta_allocate_res(socket, 1, IORESOURCE_IO, PCI_CB_IO_BASE_1, PCI_CB_IO_LIMIT_1); program += yenta_allocate_res(socket, 2, IORESOURCE_MEM|IORESOURCE_PREFETCH, PCI_CB_MEMORY_BASE_0, PCI_CB_MEMORY_LIMIT_0); program += yenta_allocate_res(socket, 3, IORESOURCE_MEM, PCI_CB_MEMORY_BASE_1, PCI_CB_MEMORY_LIMIT_1); if (program) pci_setup_cardbus(socket->dev->subordinate); } /* * Free the bridge mappings for the device.. */ static void yenta_free_resources(struct yenta_socket *socket) { int i; for (i=0;i<4;i++) { struct resource *res; res = socket->dev->resource + PCI_BRIDGE_RESOURCES + i; if (res->start != 0 && res->end != 0) release_resource(res); res->start = res->end = res->flags = 0; } } /* * Close it down - release our resources and go home.. */ static void yenta_close(struct pci_dev *dev) { struct yenta_socket *sock = pci_get_drvdata(dev); /* we don't want a dying socket registered */ pcmcia_unregister_socket(&sock->socket); /* Disable all events so we don't die in an IRQ storm */ cb_writel(sock, CB_SOCKET_MASK, 0x0); exca_writeb(sock, I365_CSCINT, 0); if (sock->cb_irq) free_irq(sock->cb_irq, sock); else del_timer_sync(&sock->poll_timer); if (sock->base) iounmap(sock->base); yenta_free_resources(sock); pci_release_regions(dev); pci_disable_device(dev); pci_set_drvdata(dev, NULL); } static struct pccard_operations yenta_socket_operations = { .init = yenta_sock_init, .suspend = yenta_sock_suspend, .get_status = yenta_get_status, .get_socket = yenta_get_socket, .set_socket = yenta_set_socket, .set_io_map = yenta_set_io_map, .set_mem_map = yenta_set_mem_map, }; #include "ti113x.h" #include "ricoh.h" #include "topic.h" #include "o2micro.h" enum { CARDBUS_TYPE_DEFAULT = -1, CARDBUS_TYPE_TI, CARDBUS_TYPE_TI113X, CARDBUS_TYPE_TI12XX, CARDBUS_TYPE_TI1250, CARDBUS_TYPE_RICOH, CARDBUS_TYPE_TOPIC95, CARDBUS_TYPE_TOPIC97, CARDBUS_TYPE_O2MICRO, CARDBUS_TYPE_ENE, }; /* * Different cardbus controllers have slightly different * initialization sequences etc details. List them here.. */ static struct cardbus_type cardbus_type[] = { [CARDBUS_TYPE_TI] = { .override = ti_override, .save_state = ti_save_state, .restore_state = ti_restore_state, .sock_init = ti_init, }, [CARDBUS_TYPE_TI113X] = { .override = ti113x_override, .save_state = ti_save_state, .restore_state = ti_restore_state, .sock_init = ti_init, }, [CARDBUS_TYPE_TI12XX] = { .override = ti12xx_override, .save_state = ti_save_state, .restore_state = ti_restore_state, .sock_init = ti_init, }, [CARDBUS_TYPE_TI1250] = { .override = ti1250_override, .save_state = ti_save_state, .restore_state = ti_restore_state, .sock_init = ti_init, }, [CARDBUS_TYPE_RICOH] = { .override = ricoh_override, .save_state = ricoh_save_state, .restore_state = ricoh_restore_state, }, [CARDBUS_TYPE_TOPIC95] = { .override = topic95_override, }, [CARDBUS_TYPE_TOPIC97] = { .override = topic97_override, }, [CARDBUS_TYPE_O2MICRO] = { .override = o2micro_override, .restore_state = o2micro_restore_state, }, [CARDBUS_TYPE_ENE] = { .override = ene_override, .save_state = ti_save_state, .restore_state = ti_restore_state, .sock_init = ti_init, }, }; /* * Only probe "regular" interrupts, don't * touch dangerous spots like the mouse irq, * because there are mice that apparently * get really confused if they get fondled * too intimately. * * Default to 11, 10, 9, 7, 6, 5, 4, 3. */ static u32 isa_interrupts = 0x0ef8; static unsigned int yenta_probe_irq(struct yenta_socket *socket, u32 isa_irq_mask) { int i; unsigned long val; u32 mask; /* * Probe for usable interrupts using the force * register to generate bogus card status events. */ cb_writel(socket, CB_SOCKET_EVENT, -1); cb_writel(socket, CB_SOCKET_MASK, CB_CSTSMASK); exca_writeb(socket, I365_CSCINT, 0); val = probe_irq_on() & isa_irq_mask; for (i = 1; i < 16; i++) { if (!((val >> i) & 1)) continue; exca_writeb(socket, I365_CSCINT, I365_CSC_STSCHG | (i << 4)); cb_writel(socket, CB_SOCKET_FORCE, CB_FCARDSTS); udelay(100); cb_writel(socket, CB_SOCKET_EVENT, -1); } cb_writel(socket, CB_SOCKET_MASK, 0); exca_writeb(socket, I365_CSCINT, 0); mask = probe_irq_mask(val) & 0xffff; return mask; } /* interrupt handler, only used during probing */ static irqreturn_t yenta_probe_handler(int irq, void *dev_id, struct pt_regs *regs) { struct yenta_socket *socket = (struct yenta_socket *) dev_id; u8 csc; u32 cb_event; /* Clear interrupt status for the event */ cb_event = cb_readl(socket, CB_SOCKET_EVENT); cb_writel(socket, CB_SOCKET_EVENT, -1); csc = exca_readb(socket, I365_CSC); if (cb_event || csc) { socket->probe_status = 1; return IRQ_HANDLED; } return IRQ_NONE; } /* probes the PCI interrupt, use only on override functions */ static int yenta_probe_cb_irq(struct yenta_socket *socket) { if (!socket->cb_irq) return -1; socket->probe_status = 0; if (request_irq(socket->cb_irq, yenta_probe_handler, SA_SHIRQ, "yenta", socket)) { printk(KERN_WARNING "Yenta: request_irq() in yenta_probe_cb_irq() failed!\n"); return -1; } /* generate interrupt, wait */ exca_writeb(socket, I365_CSCINT, I365_CSC_STSCHG); cb_writel(socket, CB_SOCKET_EVENT, -1); cb_writel(socket, CB_SOCKET_MASK, CB_CSTSMASK); cb_writel(socket, CB_SOCKET_FORCE, CB_FCARDSTS); msleep(100); /* disable interrupts */ cb_writel(socket, CB_SOCKET_MASK, 0); exca_writeb(socket, I365_CSCINT, 0); cb_writel(socket, CB_SOCKET_EVENT, -1); exca_readb(socket, I365_CSC); free_irq(socket->cb_irq, socket); return (int) socket->probe_status; } /* * Set static data that doesn't need re-initializing.. */ static void yenta_get_socket_capabilities(struct yenta_socket *socket, u32 isa_irq_mask) { socket->socket.pci_irq = socket->cb_irq; if (isa_probe) socket->socket.irq_mask = yenta_probe_irq(socket, isa_irq_mask); else socket->socket.irq_mask = 0; printk(KERN_INFO "Yenta: ISA IRQ mask 0x%04x, PCI irq %d\n", socket->socket.irq_mask, socket->cb_irq); } /* * Initialize the standard cardbus registers */ static void yenta_config_init(struct yenta_socket *socket) { u16 bridge; struct pci_dev *dev = socket->dev; struct pci_bus_region region; pcibios_resource_to_bus(socket->dev, &region, &dev->resource[0]); config_writel(socket, CB_LEGACY_MODE_BASE, 0); config_writel(socket, PCI_BASE_ADDRESS_0, region.start); config_writew(socket, PCI_COMMAND, PCI_COMMAND_IO | PCI_COMMAND_MEMORY | PCI_COMMAND_MASTER | PCI_COMMAND_WAIT); /* MAGIC NUMBERS! Fixme */ config_writeb(socket, PCI_CACHE_LINE_SIZE, L1_CACHE_BYTES / 4); config_writeb(socket, PCI_LATENCY_TIMER, 168); config_writel(socket, PCI_PRIMARY_BUS, (176 << 24) | /* sec. latency timer */ (dev->subordinate->subordinate << 16) | /* subordinate bus */ (dev->subordinate->secondary << 8) | /* secondary bus */ dev->subordinate->primary); /* primary bus */ /* * Set up the bridging state: * - enable write posting. * - memory window 0 prefetchable, window 1 non-prefetchable * - PCI interrupts enabled if a PCI interrupt exists.. */ bridge = config_readw(socket, CB_BRIDGE_CONTROL); bridge &= ~(CB_BRIDGE_CRST | CB_BRIDGE_PREFETCH1 | CB_BRIDGE_ISAEN | CB_BRIDGE_VGAEN); bridge |= CB_BRIDGE_PREFETCH0 | CB_BRIDGE_POSTEN; config_writew(socket, CB_BRIDGE_CONTROL, bridge); } /* * Initialize a cardbus controller. Make sure we have a usable * interrupt, and that we can map the cardbus area. Fill in the * socket information structure.. */ static int __devinit yenta_probe (struct pci_dev *dev, const struct pci_device_id *id) { struct yenta_socket *socket; int ret; /* * If we failed to assign proper bus numbers for this cardbus * controller during PCI probe, its subordinate pci_bus is NULL. * Bail out if so. */ if (!dev->subordinate) { printk(KERN_ERR "Yenta: no bus associated with %s! " "(try 'pci=assign-busses')\n", pci_name(dev)); return -ENODEV; } socket = kmalloc(sizeof(struct yenta_socket), GFP_KERNEL); if (!socket) return -ENOMEM; memset(socket, 0, sizeof(*socket)); /* prepare pcmcia_socket */ socket->socket.ops = &yenta_socket_operations; socket->socket.resource_ops = &pccard_nonstatic_ops; socket->socket.dev.dev = &dev->dev; socket->socket.driver_data = socket; socket->socket.owner = THIS_MODULE; socket->socket.features = SS_CAP_PAGE_REGS | SS_CAP_PCCARD; socket->socket.map_size = 0x1000; socket->socket.cb_dev = dev; /* prepare struct yenta_socket */ socket->dev = dev; pci_set_drvdata(dev, socket); /* * Do some basic sanity checking.. */ if (pci_enable_device(dev)) { ret = -EBUSY; goto free; } ret = pci_request_regions(dev, "yenta_socket"); if (ret) goto disable; if (!pci_resource_start(dev, 0)) { printk(KERN_ERR "No cardbus resource!\n"); ret = -ENODEV; goto release; } /* * Ok, start setup.. Map the cardbus registers, * and request the IRQ. */ socket->base = ioremap(pci_resource_start(dev, 0), 0x1000); if (!socket->base) { ret = -ENOMEM; goto release; } /* * report the subsystem vendor and device for help debugging * the irq stuff... */ printk(KERN_INFO "Yenta: CardBus bridge found at %s [%04x:%04x]\n", pci_name(dev), dev->subsystem_vendor, dev->subsystem_device); yenta_config_init(socket); /* Disable all events */ cb_writel(socket, CB_SOCKET_MASK, 0x0); /* Set up the bridge regions.. */ yenta_allocate_resources(socket); socket->cb_irq = dev->irq; /* Do we have special options for the device? */ if (id->driver_data != CARDBUS_TYPE_DEFAULT && id->driver_data < ARRAY_SIZE(cardbus_type)) { socket->type = &cardbus_type[id->driver_data]; ret = socket->type->override(socket); if (ret < 0) goto unmap; } /* We must finish initialization here */ if (!socket->cb_irq || request_irq(socket->cb_irq, yenta_interrupt, SA_SHIRQ, "yenta", socket)) { /* No IRQ or request_irq failed. Poll */ socket->cb_irq = 0; /* But zero is a valid IRQ number. */ init_timer(&socket->poll_timer); socket->poll_timer.function = yenta_interrupt_wrapper; socket->poll_timer.data = (unsigned long)socket; socket->poll_timer.expires = jiffies + HZ; add_timer(&socket->poll_timer); printk(KERN_INFO "Yenta: no PCI IRQ, CardBus support disabled for this socket.\n" KERN_INFO "Yenta: check your BIOS CardBus, BIOS IRQ or ACPI settings.\n"); } else { socket->socket.features |= SS_CAP_CARDBUS; } /* Figure out what the dang thing can do for the PCMCIA layer... */ yenta_interrogate(socket); yenta_get_socket_capabilities(socket, isa_interrupts); printk(KERN_INFO "Socket status: %08x\n", cb_readl(socket, CB_SOCKET_STATE)); /* Register it with the pcmcia layer.. */ ret = pcmcia_register_socket(&socket->socket); if (ret == 0) goto out; unmap: iounmap(socket->base); release: pci_release_regions(dev); disable: pci_disable_device(dev); free: kfree(socket); out: return ret; } static int yenta_dev_suspend (struct pci_dev *dev, pm_message_t state) { struct yenta_socket *socket = pci_get_drvdata(dev); int ret; ret = pcmcia_socket_dev_suspend(&dev->dev, state); if (socket) { if (socket->type && socket->type->save_state) socket->type->save_state(socket); /* FIXME: pci_save_state needs to have a better interface */ pci_save_state(dev); pci_read_config_dword(dev, 16*4, &socket->saved_state[0]); pci_read_config_dword(dev, 17*4, &socket->saved_state[1]); pci_disable_device(dev); /* * Some laptops (IBM T22) do not like us putting the Cardbus * bridge into D3. At a guess, some other laptop will * probably require this, so leave it commented out for now. */ /* pci_set_power_state(dev, 3); */ } return ret; } static int yenta_dev_resume (struct pci_dev *dev) { struct yenta_socket *socket = pci_get_drvdata(dev); if (socket) { pci_set_power_state(dev, 0); /* FIXME: pci_restore_state needs to have a better interface */ pci_restore_state(dev); pci_write_config_dword(dev, 16*4, socket->saved_state[0]); pci_write_config_dword(dev, 17*4, socket->saved_state[1]); pci_enable_device(dev); pci_set_master(dev); if (socket->type && socket->type->restore_state) socket->type->restore_state(socket); } return pcmcia_socket_dev_resume(&dev->dev); } #define CB_ID(vend,dev,type) \ { \ .vendor = vend, \ .device = dev, \ .subvendor = PCI_ANY_ID, \ .subdevice = PCI_ANY_ID, \ .class = PCI_CLASS_BRIDGE_CARDBUS << 8, \ .class_mask = ~0, \ .driver_data = CARDBUS_TYPE_##type, \ } static struct pci_device_id yenta_table [] = { CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1031, TI), /* * TBD: Check if these TI variants can use more * advanced overrides instead. (I can't get the * data sheets for these devices. --rmk) */ CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1210, TI), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1130, TI113X), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1131, TI113X), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1211, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1220, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1221, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1225, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1251A, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1251B, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1420, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1450, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1451A, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1510, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1520, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1620, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4410, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4450, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4451, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4510, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_4520, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1250, TI1250), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_1410, TI1250), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_XX21_XX11, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_X515, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_X420, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_X620, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_7410, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_7510, TI12XX), CB_ID(PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_7610, TI12XX), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_710, TI12XX), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_712, TI12XX), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_720, TI12XX), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_722, TI12XX), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1211, ENE), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1225, ENE), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1410, ENE), CB_ID(PCI_VENDOR_ID_ENE, PCI_DEVICE_ID_ENE_1420, ENE), CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C465, RICOH), CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C466, RICOH), CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C475, RICOH), CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C476, RICOH), CB_ID(PCI_VENDOR_ID_RICOH, PCI_DEVICE_ID_RICOH_RL5C478, RICOH), CB_ID(PCI_VENDOR_ID_TOSHIBA, PCI_DEVICE_ID_TOSHIBA_TOPIC95, TOPIC95), CB_ID(PCI_VENDOR_ID_TOSHIBA, PCI_DEVICE_ID_TOSHIBA_TOPIC97, TOPIC97), CB_ID(PCI_VENDOR_ID_TOSHIBA, PCI_DEVICE_ID_TOSHIBA_TOPIC100, TOPIC97), CB_ID(PCI_VENDOR_ID_O2, PCI_ANY_ID, O2MICRO), /* match any cardbus bridge */ CB_ID(PCI_ANY_ID, PCI_ANY_ID, DEFAULT), { /* all zeroes */ } }; MODULE_DEVICE_TABLE(pci, yenta_table); static struct pci_driver yenta_cardbus_driver = { .name = "yenta_cardbus", .id_table = yenta_table, .probe = yenta_probe, .remove = __devexit_p(yenta_close), .suspend = yenta_dev_suspend, .resume = yenta_dev_resume, }; static int __init yenta_socket_init(void) { return pci_register_driver (&yenta_cardbus_driver); } static void __exit yenta_socket_exit (void) { pci_unregister_driver (&yenta_cardbus_driver); } module_init(yenta_socket_init); module_exit(yenta_socket_exit); MODULE_LICENSE("GPL");