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[karo-tx-linux.git] / drivers / net / ppp / ppp_generic.c
1 /*
2  * Generic PPP layer for Linux.
3  *
4  * Copyright 1999-2002 Paul Mackerras.
5  *
6  *  This program is free software; you can redistribute it and/or
7  *  modify it under the terms of the GNU General Public License
8  *  as published by the Free Software Foundation; either version
9  *  2 of the License, or (at your option) any later version.
10  *
11  * The generic PPP layer handles the PPP network interfaces, the
12  * /dev/ppp device, packet and VJ compression, and multilink.
13  * It talks to PPP `channels' via the interface defined in
14  * include/linux/ppp_channel.h.  Channels provide the basic means for
15  * sending and receiving PPP frames on some kind of communications
16  * channel.
17  *
18  * Part of the code in this driver was inspired by the old async-only
19  * PPP driver, written by Michael Callahan and Al Longyear, and
20  * subsequently hacked by Paul Mackerras.
21  *
22  * ==FILEVERSION 20041108==
23  */
24
25 #include <linux/module.h>
26 #include <linux/kernel.h>
27 #include <linux/kmod.h>
28 #include <linux/init.h>
29 #include <linux/list.h>
30 #include <linux/idr.h>
31 #include <linux/netdevice.h>
32 #include <linux/poll.h>
33 #include <linux/ppp_defs.h>
34 #include <linux/filter.h>
35 #include <linux/ppp-ioctl.h>
36 #include <linux/ppp_channel.h>
37 #include <linux/ppp-comp.h>
38 #include <linux/skbuff.h>
39 #include <linux/rtnetlink.h>
40 #include <linux/if_arp.h>
41 #include <linux/ip.h>
42 #include <linux/tcp.h>
43 #include <linux/spinlock.h>
44 #include <linux/rwsem.h>
45 #include <linux/stddef.h>
46 #include <linux/device.h>
47 #include <linux/mutex.h>
48 #include <linux/slab.h>
49 #include <linux/file.h>
50 #include <asm/unaligned.h>
51 #include <net/slhc_vj.h>
52 #include <linux/atomic.h>
53
54 #include <linux/nsproxy.h>
55 #include <net/net_namespace.h>
56 #include <net/netns/generic.h>
57
58 #define PPP_VERSION     "2.4.2"
59
60 /*
61  * Network protocols we support.
62  */
63 #define NP_IP   0               /* Internet Protocol V4 */
64 #define NP_IPV6 1               /* Internet Protocol V6 */
65 #define NP_IPX  2               /* IPX protocol */
66 #define NP_AT   3               /* Appletalk protocol */
67 #define NP_MPLS_UC 4            /* MPLS unicast */
68 #define NP_MPLS_MC 5            /* MPLS multicast */
69 #define NUM_NP  6               /* Number of NPs. */
70
71 #define MPHDRLEN        6       /* multilink protocol header length */
72 #define MPHDRLEN_SSN    4       /* ditto with short sequence numbers */
73
74 /*
75  * An instance of /dev/ppp can be associated with either a ppp
76  * interface unit or a ppp channel.  In both cases, file->private_data
77  * points to one of these.
78  */
79 struct ppp_file {
80         enum {
81                 INTERFACE=1, CHANNEL
82         }               kind;
83         struct sk_buff_head xq;         /* pppd transmit queue */
84         struct sk_buff_head rq;         /* receive queue for pppd */
85         wait_queue_head_t rwait;        /* for poll on reading /dev/ppp */
86         atomic_t        refcnt;         /* # refs (incl /dev/ppp attached) */
87         int             hdrlen;         /* space to leave for headers */
88         int             index;          /* interface unit / channel number */
89         int             dead;           /* unit/channel has been shut down */
90 };
91
92 #define PF_TO_X(pf, X)          container_of(pf, X, file)
93
94 #define PF_TO_PPP(pf)           PF_TO_X(pf, struct ppp)
95 #define PF_TO_CHANNEL(pf)       PF_TO_X(pf, struct channel)
96
97 /*
98  * Data structure to hold primary network stats for which
99  * we want to use 64 bit storage.  Other network stats
100  * are stored in dev->stats of the ppp strucute.
101  */
102 struct ppp_link_stats {
103         u64 rx_packets;
104         u64 tx_packets;
105         u64 rx_bytes;
106         u64 tx_bytes;
107 };
108
109 /*
110  * Data structure describing one ppp unit.
111  * A ppp unit corresponds to a ppp network interface device
112  * and represents a multilink bundle.
113  * It can have 0 or more ppp channels connected to it.
114  */
115 struct ppp {
116         struct ppp_file file;           /* stuff for read/write/poll 0 */
117         struct file     *owner;         /* file that owns this unit 48 */
118         struct list_head channels;      /* list of attached channels 4c */
119         int             n_channels;     /* how many channels are attached 54 */
120         spinlock_t      rlock;          /* lock for receive side 58 */
121         spinlock_t      wlock;          /* lock for transmit side 5c */
122         int             mru;            /* max receive unit 60 */
123         unsigned int    flags;          /* control bits 64 */
124         unsigned int    xstate;         /* transmit state bits 68 */
125         unsigned int    rstate;         /* receive state bits 6c */
126         int             debug;          /* debug flags 70 */
127         struct slcompress *vj;          /* state for VJ header compression */
128         enum NPmode     npmode[NUM_NP]; /* what to do with each net proto 78 */
129         struct sk_buff  *xmit_pending;  /* a packet ready to go out 88 */
130         struct compressor *xcomp;       /* transmit packet compressor 8c */
131         void            *xc_state;      /* its internal state 90 */
132         struct compressor *rcomp;       /* receive decompressor 94 */
133         void            *rc_state;      /* its internal state 98 */
134         unsigned long   last_xmit;      /* jiffies when last pkt sent 9c */
135         unsigned long   last_recv;      /* jiffies when last pkt rcvd a0 */
136         struct net_device *dev;         /* network interface device a4 */
137         int             closing;        /* is device closing down? a8 */
138 #ifdef CONFIG_PPP_MULTILINK
139         int             nxchan;         /* next channel to send something on */
140         u32             nxseq;          /* next sequence number to send */
141         int             mrru;           /* MP: max reconst. receive unit */
142         u32             nextseq;        /* MP: seq no of next packet */
143         u32             minseq;         /* MP: min of most recent seqnos */
144         struct sk_buff_head mrq;        /* MP: receive reconstruction queue */
145 #endif /* CONFIG_PPP_MULTILINK */
146 #ifdef CONFIG_PPP_FILTER
147         struct bpf_prog *pass_filter;   /* filter for packets to pass */
148         struct bpf_prog *active_filter; /* filter for pkts to reset idle */
149 #endif /* CONFIG_PPP_FILTER */
150         struct net      *ppp_net;       /* the net we belong to */
151         struct ppp_link_stats stats64;  /* 64 bit network stats */
152 };
153
154 /*
155  * Bits in flags: SC_NO_TCP_CCID, SC_CCP_OPEN, SC_CCP_UP, SC_LOOP_TRAFFIC,
156  * SC_MULTILINK, SC_MP_SHORTSEQ, SC_MP_XSHORTSEQ, SC_COMP_TCP, SC_REJ_COMP_TCP,
157  * SC_MUST_COMP
158  * Bits in rstate: SC_DECOMP_RUN, SC_DC_ERROR, SC_DC_FERROR.
159  * Bits in xstate: SC_COMP_RUN
160  */
161 #define SC_FLAG_BITS    (SC_NO_TCP_CCID|SC_CCP_OPEN|SC_CCP_UP|SC_LOOP_TRAFFIC \
162                          |SC_MULTILINK|SC_MP_SHORTSEQ|SC_MP_XSHORTSEQ \
163                          |SC_COMP_TCP|SC_REJ_COMP_TCP|SC_MUST_COMP)
164
165 /*
166  * Private data structure for each channel.
167  * This includes the data structure used for multilink.
168  */
169 struct channel {
170         struct ppp_file file;           /* stuff for read/write/poll */
171         struct list_head list;          /* link in all/new_channels list */
172         struct ppp_channel *chan;       /* public channel data structure */
173         struct rw_semaphore chan_sem;   /* protects `chan' during chan ioctl */
174         spinlock_t      downl;          /* protects `chan', file.xq dequeue */
175         struct ppp      *ppp;           /* ppp unit we're connected to */
176         struct net      *chan_net;      /* the net channel belongs to */
177         struct list_head clist;         /* link in list of channels per unit */
178         rwlock_t        upl;            /* protects `ppp' */
179 #ifdef CONFIG_PPP_MULTILINK
180         u8              avail;          /* flag used in multilink stuff */
181         u8              had_frag;       /* >= 1 fragments have been sent */
182         u32             lastseq;        /* MP: last sequence # received */
183         int             speed;          /* speed of the corresponding ppp channel*/
184 #endif /* CONFIG_PPP_MULTILINK */
185 };
186
187 struct ppp_config {
188         struct file *file;
189         s32 unit;
190         bool ifname_is_set;
191 };
192
193 /*
194  * SMP locking issues:
195  * Both the ppp.rlock and ppp.wlock locks protect the ppp.channels
196  * list and the ppp.n_channels field, you need to take both locks
197  * before you modify them.
198  * The lock ordering is: channel.upl -> ppp.wlock -> ppp.rlock ->
199  * channel.downl.
200  */
201
202 static DEFINE_MUTEX(ppp_mutex);
203 static atomic_t ppp_unit_count = ATOMIC_INIT(0);
204 static atomic_t channel_count = ATOMIC_INIT(0);
205
206 /* per-net private data for this module */
207 static int ppp_net_id __read_mostly;
208 struct ppp_net {
209         /* units to ppp mapping */
210         struct idr units_idr;
211
212         /*
213          * all_ppp_mutex protects the units_idr mapping.
214          * It also ensures that finding a ppp unit in the units_idr
215          * map and updating its file.refcnt field is atomic.
216          */
217         struct mutex all_ppp_mutex;
218
219         /* channels */
220         struct list_head all_channels;
221         struct list_head new_channels;
222         int last_channel_index;
223
224         /*
225          * all_channels_lock protects all_channels and
226          * last_channel_index, and the atomicity of find
227          * a channel and updating its file.refcnt field.
228          */
229         spinlock_t all_channels_lock;
230 };
231
232 /* Get the PPP protocol number from a skb */
233 #define PPP_PROTO(skb)  get_unaligned_be16((skb)->data)
234
235 /* We limit the length of ppp->file.rq to this (arbitrary) value */
236 #define PPP_MAX_RQLEN   32
237
238 /*
239  * Maximum number of multilink fragments queued up.
240  * This has to be large enough to cope with the maximum latency of
241  * the slowest channel relative to the others.  Strictly it should
242  * depend on the number of channels and their characteristics.
243  */
244 #define PPP_MP_MAX_QLEN 128
245
246 /* Multilink header bits. */
247 #define B       0x80            /* this fragment begins a packet */
248 #define E       0x40            /* this fragment ends a packet */
249
250 /* Compare multilink sequence numbers (assumed to be 32 bits wide) */
251 #define seq_before(a, b)        ((s32)((a) - (b)) < 0)
252 #define seq_after(a, b)         ((s32)((a) - (b)) > 0)
253
254 /* Prototypes. */
255 static int ppp_unattached_ioctl(struct net *net, struct ppp_file *pf,
256                         struct file *file, unsigned int cmd, unsigned long arg);
257 static void ppp_xmit_process(struct ppp *ppp);
258 static void ppp_send_frame(struct ppp *ppp, struct sk_buff *skb);
259 static void ppp_push(struct ppp *ppp);
260 static void ppp_channel_push(struct channel *pch);
261 static void ppp_receive_frame(struct ppp *ppp, struct sk_buff *skb,
262                               struct channel *pch);
263 static void ppp_receive_error(struct ppp *ppp);
264 static void ppp_receive_nonmp_frame(struct ppp *ppp, struct sk_buff *skb);
265 static struct sk_buff *ppp_decompress_frame(struct ppp *ppp,
266                                             struct sk_buff *skb);
267 #ifdef CONFIG_PPP_MULTILINK
268 static void ppp_receive_mp_frame(struct ppp *ppp, struct sk_buff *skb,
269                                 struct channel *pch);
270 static void ppp_mp_insert(struct ppp *ppp, struct sk_buff *skb);
271 static struct sk_buff *ppp_mp_reconstruct(struct ppp *ppp);
272 static int ppp_mp_explode(struct ppp *ppp, struct sk_buff *skb);
273 #endif /* CONFIG_PPP_MULTILINK */
274 static int ppp_set_compress(struct ppp *ppp, unsigned long arg);
275 static void ppp_ccp_peek(struct ppp *ppp, struct sk_buff *skb, int inbound);
276 static void ppp_ccp_closed(struct ppp *ppp);
277 static struct compressor *find_compressor(int type);
278 static void ppp_get_stats(struct ppp *ppp, struct ppp_stats *st);
279 static int ppp_create_interface(struct net *net, struct file *file, int *unit);
280 static void init_ppp_file(struct ppp_file *pf, int kind);
281 static void ppp_destroy_interface(struct ppp *ppp);
282 static struct ppp *ppp_find_unit(struct ppp_net *pn, int unit);
283 static struct channel *ppp_find_channel(struct ppp_net *pn, int unit);
284 static int ppp_connect_channel(struct channel *pch, int unit);
285 static int ppp_disconnect_channel(struct channel *pch);
286 static void ppp_destroy_channel(struct channel *pch);
287 static int unit_get(struct idr *p, void *ptr);
288 static int unit_set(struct idr *p, void *ptr, int n);
289 static void unit_put(struct idr *p, int n);
290 static void *unit_find(struct idr *p, int n);
291 static void ppp_setup(struct net_device *dev);
292
293 static const struct net_device_ops ppp_netdev_ops;
294
295 static struct class *ppp_class;
296
297 /* per net-namespace data */
298 static inline struct ppp_net *ppp_pernet(struct net *net)
299 {
300         BUG_ON(!net);
301
302         return net_generic(net, ppp_net_id);
303 }
304
305 /* Translates a PPP protocol number to a NP index (NP == network protocol) */
306 static inline int proto_to_npindex(int proto)
307 {
308         switch (proto) {
309         case PPP_IP:
310                 return NP_IP;
311         case PPP_IPV6:
312                 return NP_IPV6;
313         case PPP_IPX:
314                 return NP_IPX;
315         case PPP_AT:
316                 return NP_AT;
317         case PPP_MPLS_UC:
318                 return NP_MPLS_UC;
319         case PPP_MPLS_MC:
320                 return NP_MPLS_MC;
321         }
322         return -EINVAL;
323 }
324
325 /* Translates an NP index into a PPP protocol number */
326 static const int npindex_to_proto[NUM_NP] = {
327         PPP_IP,
328         PPP_IPV6,
329         PPP_IPX,
330         PPP_AT,
331         PPP_MPLS_UC,
332         PPP_MPLS_MC,
333 };
334
335 /* Translates an ethertype into an NP index */
336 static inline int ethertype_to_npindex(int ethertype)
337 {
338         switch (ethertype) {
339         case ETH_P_IP:
340                 return NP_IP;
341         case ETH_P_IPV6:
342                 return NP_IPV6;
343         case ETH_P_IPX:
344                 return NP_IPX;
345         case ETH_P_PPPTALK:
346         case ETH_P_ATALK:
347                 return NP_AT;
348         case ETH_P_MPLS_UC:
349                 return NP_MPLS_UC;
350         case ETH_P_MPLS_MC:
351                 return NP_MPLS_MC;
352         }
353         return -1;
354 }
355
356 /* Translates an NP index into an ethertype */
357 static const int npindex_to_ethertype[NUM_NP] = {
358         ETH_P_IP,
359         ETH_P_IPV6,
360         ETH_P_IPX,
361         ETH_P_PPPTALK,
362         ETH_P_MPLS_UC,
363         ETH_P_MPLS_MC,
364 };
365
366 /*
367  * Locking shorthand.
368  */
369 #define ppp_xmit_lock(ppp)      spin_lock_bh(&(ppp)->wlock)
370 #define ppp_xmit_unlock(ppp)    spin_unlock_bh(&(ppp)->wlock)
371 #define ppp_recv_lock(ppp)      spin_lock_bh(&(ppp)->rlock)
372 #define ppp_recv_unlock(ppp)    spin_unlock_bh(&(ppp)->rlock)
373 #define ppp_lock(ppp)           do { ppp_xmit_lock(ppp); \
374                                      ppp_recv_lock(ppp); } while (0)
375 #define ppp_unlock(ppp)         do { ppp_recv_unlock(ppp); \
376                                      ppp_xmit_unlock(ppp); } while (0)
377
378 /*
379  * /dev/ppp device routines.
380  * The /dev/ppp device is used by pppd to control the ppp unit.
381  * It supports the read, write, ioctl and poll functions.
382  * Open instances of /dev/ppp can be in one of three states:
383  * unattached, attached to a ppp unit, or attached to a ppp channel.
384  */
385 static int ppp_open(struct inode *inode, struct file *file)
386 {
387         /*
388          * This could (should?) be enforced by the permissions on /dev/ppp.
389          */
390         if (!capable(CAP_NET_ADMIN))
391                 return -EPERM;
392         return 0;
393 }
394
395 static int ppp_release(struct inode *unused, struct file *file)
396 {
397         struct ppp_file *pf = file->private_data;
398         struct ppp *ppp;
399
400         if (pf) {
401                 file->private_data = NULL;
402                 if (pf->kind == INTERFACE) {
403                         ppp = PF_TO_PPP(pf);
404                         rtnl_lock();
405                         if (file == ppp->owner)
406                                 unregister_netdevice(ppp->dev);
407                         rtnl_unlock();
408                 }
409                 if (atomic_dec_and_test(&pf->refcnt)) {
410                         switch (pf->kind) {
411                         case INTERFACE:
412                                 ppp_destroy_interface(PF_TO_PPP(pf));
413                                 break;
414                         case CHANNEL:
415                                 ppp_destroy_channel(PF_TO_CHANNEL(pf));
416                                 break;
417                         }
418                 }
419         }
420         return 0;
421 }
422
423 static ssize_t ppp_read(struct file *file, char __user *buf,
424                         size_t count, loff_t *ppos)
425 {
426         struct ppp_file *pf = file->private_data;
427         DECLARE_WAITQUEUE(wait, current);
428         ssize_t ret;
429         struct sk_buff *skb = NULL;
430         struct iovec iov;
431         struct iov_iter to;
432
433         ret = count;
434
435         if (!pf)
436                 return -ENXIO;
437         add_wait_queue(&pf->rwait, &wait);
438         for (;;) {
439                 set_current_state(TASK_INTERRUPTIBLE);
440                 skb = skb_dequeue(&pf->rq);
441                 if (skb)
442                         break;
443                 ret = 0;
444                 if (pf->dead)
445                         break;
446                 if (pf->kind == INTERFACE) {
447                         /*
448                          * Return 0 (EOF) on an interface that has no
449                          * channels connected, unless it is looping
450                          * network traffic (demand mode).
451                          */
452                         struct ppp *ppp = PF_TO_PPP(pf);
453
454                         ppp_recv_lock(ppp);
455                         if (ppp->n_channels == 0 &&
456                             (ppp->flags & SC_LOOP_TRAFFIC) == 0) {
457                                 ppp_recv_unlock(ppp);
458                                 break;
459                         }
460                         ppp_recv_unlock(ppp);
461                 }
462                 ret = -EAGAIN;
463                 if (file->f_flags & O_NONBLOCK)
464                         break;
465                 ret = -ERESTARTSYS;
466                 if (signal_pending(current))
467                         break;
468                 schedule();
469         }
470         set_current_state(TASK_RUNNING);
471         remove_wait_queue(&pf->rwait, &wait);
472
473         if (!skb)
474                 goto out;
475
476         ret = -EOVERFLOW;
477         if (skb->len > count)
478                 goto outf;
479         ret = -EFAULT;
480         iov.iov_base = buf;
481         iov.iov_len = count;
482         iov_iter_init(&to, READ, &iov, 1, count);
483         if (skb_copy_datagram_iter(skb, 0, &to, skb->len))
484                 goto outf;
485         ret = skb->len;
486
487  outf:
488         kfree_skb(skb);
489  out:
490         return ret;
491 }
492
493 static ssize_t ppp_write(struct file *file, const char __user *buf,
494                          size_t count, loff_t *ppos)
495 {
496         struct ppp_file *pf = file->private_data;
497         struct sk_buff *skb;
498         ssize_t ret;
499
500         if (!pf)
501                 return -ENXIO;
502         ret = -ENOMEM;
503         skb = alloc_skb(count + pf->hdrlen, GFP_KERNEL);
504         if (!skb)
505                 goto out;
506         skb_reserve(skb, pf->hdrlen);
507         ret = -EFAULT;
508         if (copy_from_user(skb_put(skb, count), buf, count)) {
509                 kfree_skb(skb);
510                 goto out;
511         }
512
513         skb_queue_tail(&pf->xq, skb);
514
515         switch (pf->kind) {
516         case INTERFACE:
517                 ppp_xmit_process(PF_TO_PPP(pf));
518                 break;
519         case CHANNEL:
520                 ppp_channel_push(PF_TO_CHANNEL(pf));
521                 break;
522         }
523
524         ret = count;
525
526  out:
527         return ret;
528 }
529
530 /* No kernel lock - fine */
531 static unsigned int ppp_poll(struct file *file, poll_table *wait)
532 {
533         struct ppp_file *pf = file->private_data;
534         unsigned int mask;
535
536         if (!pf)
537                 return 0;
538         poll_wait(file, &pf->rwait, wait);
539         mask = POLLOUT | POLLWRNORM;
540         if (skb_peek(&pf->rq))
541                 mask |= POLLIN | POLLRDNORM;
542         if (pf->dead)
543                 mask |= POLLHUP;
544         else if (pf->kind == INTERFACE) {
545                 /* see comment in ppp_read */
546                 struct ppp *ppp = PF_TO_PPP(pf);
547
548                 ppp_recv_lock(ppp);
549                 if (ppp->n_channels == 0 &&
550                     (ppp->flags & SC_LOOP_TRAFFIC) == 0)
551                         mask |= POLLIN | POLLRDNORM;
552                 ppp_recv_unlock(ppp);
553         }
554
555         return mask;
556 }
557
558 #ifdef CONFIG_PPP_FILTER
559 static int get_filter(void __user *arg, struct sock_filter **p)
560 {
561         struct sock_fprog uprog;
562         struct sock_filter *code = NULL;
563         int len;
564
565         if (copy_from_user(&uprog, arg, sizeof(uprog)))
566                 return -EFAULT;
567
568         if (!uprog.len) {
569                 *p = NULL;
570                 return 0;
571         }
572
573         len = uprog.len * sizeof(struct sock_filter);
574         code = memdup_user(uprog.filter, len);
575         if (IS_ERR(code))
576                 return PTR_ERR(code);
577
578         *p = code;
579         return uprog.len;
580 }
581 #endif /* CONFIG_PPP_FILTER */
582
583 static long ppp_ioctl(struct file *file, unsigned int cmd, unsigned long arg)
584 {
585         struct ppp_file *pf;
586         struct ppp *ppp;
587         int err = -EFAULT, val, val2, i;
588         struct ppp_idle idle;
589         struct npioctl npi;
590         int unit, cflags;
591         struct slcompress *vj;
592         void __user *argp = (void __user *)arg;
593         int __user *p = argp;
594
595         mutex_lock(&ppp_mutex);
596
597         pf = file->private_data;
598         if (!pf) {
599                 err = ppp_unattached_ioctl(current->nsproxy->net_ns,
600                                            pf, file, cmd, arg);
601                 goto out;
602         }
603
604         if (cmd == PPPIOCDETACH) {
605                 /*
606                  * We have to be careful here... if the file descriptor
607                  * has been dup'd, we could have another process in the
608                  * middle of a poll using the same file *, so we had
609                  * better not free the interface data structures -
610                  * instead we fail the ioctl.  Even in this case, we
611                  * shut down the interface if we are the owner of it.
612                  * Actually, we should get rid of PPPIOCDETACH, userland
613                  * (i.e. pppd) could achieve the same effect by closing
614                  * this fd and reopening /dev/ppp.
615                  */
616                 err = -EINVAL;
617                 if (pf->kind == INTERFACE) {
618                         ppp = PF_TO_PPP(pf);
619                         rtnl_lock();
620                         if (file == ppp->owner)
621                                 unregister_netdevice(ppp->dev);
622                         rtnl_unlock();
623                 }
624                 if (atomic_long_read(&file->f_count) < 2) {
625                         ppp_release(NULL, file);
626                         err = 0;
627                 } else
628                         pr_warn("PPPIOCDETACH file->f_count=%ld\n",
629                                 atomic_long_read(&file->f_count));
630                 goto out;
631         }
632
633         if (pf->kind == CHANNEL) {
634                 struct channel *pch;
635                 struct ppp_channel *chan;
636
637                 pch = PF_TO_CHANNEL(pf);
638
639                 switch (cmd) {
640                 case PPPIOCCONNECT:
641                         if (get_user(unit, p))
642                                 break;
643                         err = ppp_connect_channel(pch, unit);
644                         break;
645
646                 case PPPIOCDISCONN:
647                         err = ppp_disconnect_channel(pch);
648                         break;
649
650                 default:
651                         down_read(&pch->chan_sem);
652                         chan = pch->chan;
653                         err = -ENOTTY;
654                         if (chan && chan->ops->ioctl)
655                                 err = chan->ops->ioctl(chan, cmd, arg);
656                         up_read(&pch->chan_sem);
657                 }
658                 goto out;
659         }
660
661         if (pf->kind != INTERFACE) {
662                 /* can't happen */
663                 pr_err("PPP: not interface or channel??\n");
664                 err = -EINVAL;
665                 goto out;
666         }
667
668         ppp = PF_TO_PPP(pf);
669         switch (cmd) {
670         case PPPIOCSMRU:
671                 if (get_user(val, p))
672                         break;
673                 ppp->mru = val;
674                 err = 0;
675                 break;
676
677         case PPPIOCSFLAGS:
678                 if (get_user(val, p))
679                         break;
680                 ppp_lock(ppp);
681                 cflags = ppp->flags & ~val;
682 #ifdef CONFIG_PPP_MULTILINK
683                 if (!(ppp->flags & SC_MULTILINK) && (val & SC_MULTILINK))
684                         ppp->nextseq = 0;
685 #endif
686                 ppp->flags = val & SC_FLAG_BITS;
687                 ppp_unlock(ppp);
688                 if (cflags & SC_CCP_OPEN)
689                         ppp_ccp_closed(ppp);
690                 err = 0;
691                 break;
692
693         case PPPIOCGFLAGS:
694                 val = ppp->flags | ppp->xstate | ppp->rstate;
695                 if (put_user(val, p))
696                         break;
697                 err = 0;
698                 break;
699
700         case PPPIOCSCOMPRESS:
701                 err = ppp_set_compress(ppp, arg);
702                 break;
703
704         case PPPIOCGUNIT:
705                 if (put_user(ppp->file.index, p))
706                         break;
707                 err = 0;
708                 break;
709
710         case PPPIOCSDEBUG:
711                 if (get_user(val, p))
712                         break;
713                 ppp->debug = val;
714                 err = 0;
715                 break;
716
717         case PPPIOCGDEBUG:
718                 if (put_user(ppp->debug, p))
719                         break;
720                 err = 0;
721                 break;
722
723         case PPPIOCGIDLE:
724                 idle.xmit_idle = (jiffies - ppp->last_xmit) / HZ;
725                 idle.recv_idle = (jiffies - ppp->last_recv) / HZ;
726                 if (copy_to_user(argp, &idle, sizeof(idle)))
727                         break;
728                 err = 0;
729                 break;
730
731         case PPPIOCSMAXCID:
732                 if (get_user(val, p))
733                         break;
734                 val2 = 15;
735                 if ((val >> 16) != 0) {
736                         val2 = val >> 16;
737                         val &= 0xffff;
738                 }
739                 vj = slhc_init(val2+1, val+1);
740                 if (IS_ERR(vj)) {
741                         err = PTR_ERR(vj);
742                         break;
743                 }
744                 ppp_lock(ppp);
745                 if (ppp->vj)
746                         slhc_free(ppp->vj);
747                 ppp->vj = vj;
748                 ppp_unlock(ppp);
749                 err = 0;
750                 break;
751
752         case PPPIOCGNPMODE:
753         case PPPIOCSNPMODE:
754                 if (copy_from_user(&npi, argp, sizeof(npi)))
755                         break;
756                 err = proto_to_npindex(npi.protocol);
757                 if (err < 0)
758                         break;
759                 i = err;
760                 if (cmd == PPPIOCGNPMODE) {
761                         err = -EFAULT;
762                         npi.mode = ppp->npmode[i];
763                         if (copy_to_user(argp, &npi, sizeof(npi)))
764                                 break;
765                 } else {
766                         ppp->npmode[i] = npi.mode;
767                         /* we may be able to transmit more packets now (??) */
768                         netif_wake_queue(ppp->dev);
769                 }
770                 err = 0;
771                 break;
772
773 #ifdef CONFIG_PPP_FILTER
774         case PPPIOCSPASS:
775         {
776                 struct sock_filter *code;
777
778                 err = get_filter(argp, &code);
779                 if (err >= 0) {
780                         struct bpf_prog *pass_filter = NULL;
781                         struct sock_fprog_kern fprog = {
782                                 .len = err,
783                                 .filter = code,
784                         };
785
786                         err = 0;
787                         if (fprog.filter)
788                                 err = bpf_prog_create(&pass_filter, &fprog);
789                         if (!err) {
790                                 ppp_lock(ppp);
791                                 if (ppp->pass_filter)
792                                         bpf_prog_destroy(ppp->pass_filter);
793                                 ppp->pass_filter = pass_filter;
794                                 ppp_unlock(ppp);
795                         }
796                         kfree(code);
797                 }
798                 break;
799         }
800         case PPPIOCSACTIVE:
801         {
802                 struct sock_filter *code;
803
804                 err = get_filter(argp, &code);
805                 if (err >= 0) {
806                         struct bpf_prog *active_filter = NULL;
807                         struct sock_fprog_kern fprog = {
808                                 .len = err,
809                                 .filter = code,
810                         };
811
812                         err = 0;
813                         if (fprog.filter)
814                                 err = bpf_prog_create(&active_filter, &fprog);
815                         if (!err) {
816                                 ppp_lock(ppp);
817                                 if (ppp->active_filter)
818                                         bpf_prog_destroy(ppp->active_filter);
819                                 ppp->active_filter = active_filter;
820                                 ppp_unlock(ppp);
821                         }
822                         kfree(code);
823                 }
824                 break;
825         }
826 #endif /* CONFIG_PPP_FILTER */
827
828 #ifdef CONFIG_PPP_MULTILINK
829         case PPPIOCSMRRU:
830                 if (get_user(val, p))
831                         break;
832                 ppp_recv_lock(ppp);
833                 ppp->mrru = val;
834                 ppp_recv_unlock(ppp);
835                 err = 0;
836                 break;
837 #endif /* CONFIG_PPP_MULTILINK */
838
839         default:
840                 err = -ENOTTY;
841         }
842
843 out:
844         mutex_unlock(&ppp_mutex);
845
846         return err;
847 }
848
849 static int ppp_unattached_ioctl(struct net *net, struct ppp_file *pf,
850                         struct file *file, unsigned int cmd, unsigned long arg)
851 {
852         int unit, err = -EFAULT;
853         struct ppp *ppp;
854         struct channel *chan;
855         struct ppp_net *pn;
856         int __user *p = (int __user *)arg;
857
858         switch (cmd) {
859         case PPPIOCNEWUNIT:
860                 /* Create a new ppp unit */
861                 if (get_user(unit, p))
862                         break;
863                 err = ppp_create_interface(net, file, &unit);
864                 if (err < 0)
865                         break;
866
867                 err = -EFAULT;
868                 if (put_user(unit, p))
869                         break;
870                 err = 0;
871                 break;
872
873         case PPPIOCATTACH:
874                 /* Attach to an existing ppp unit */
875                 if (get_user(unit, p))
876                         break;
877                 err = -ENXIO;
878                 pn = ppp_pernet(net);
879                 mutex_lock(&pn->all_ppp_mutex);
880                 ppp = ppp_find_unit(pn, unit);
881                 if (ppp) {
882                         atomic_inc(&ppp->file.refcnt);
883                         file->private_data = &ppp->file;
884                         err = 0;
885                 }
886                 mutex_unlock(&pn->all_ppp_mutex);
887                 break;
888
889         case PPPIOCATTCHAN:
890                 if (get_user(unit, p))
891                         break;
892                 err = -ENXIO;
893                 pn = ppp_pernet(net);
894                 spin_lock_bh(&pn->all_channels_lock);
895                 chan = ppp_find_channel(pn, unit);
896                 if (chan) {
897                         atomic_inc(&chan->file.refcnt);
898                         file->private_data = &chan->file;
899                         err = 0;
900                 }
901                 spin_unlock_bh(&pn->all_channels_lock);
902                 break;
903
904         default:
905                 err = -ENOTTY;
906         }
907
908         return err;
909 }
910
911 static const struct file_operations ppp_device_fops = {
912         .owner          = THIS_MODULE,
913         .read           = ppp_read,
914         .write          = ppp_write,
915         .poll           = ppp_poll,
916         .unlocked_ioctl = ppp_ioctl,
917         .open           = ppp_open,
918         .release        = ppp_release,
919         .llseek         = noop_llseek,
920 };
921
922 static __net_init int ppp_init_net(struct net *net)
923 {
924         struct ppp_net *pn = net_generic(net, ppp_net_id);
925
926         idr_init(&pn->units_idr);
927         mutex_init(&pn->all_ppp_mutex);
928
929         INIT_LIST_HEAD(&pn->all_channels);
930         INIT_LIST_HEAD(&pn->new_channels);
931
932         spin_lock_init(&pn->all_channels_lock);
933
934         return 0;
935 }
936
937 static __net_exit void ppp_exit_net(struct net *net)
938 {
939         struct ppp_net *pn = net_generic(net, ppp_net_id);
940         struct net_device *dev;
941         struct net_device *aux;
942         struct ppp *ppp;
943         LIST_HEAD(list);
944         int id;
945
946         rtnl_lock();
947         for_each_netdev_safe(net, dev, aux) {
948                 if (dev->netdev_ops == &ppp_netdev_ops)
949                         unregister_netdevice_queue(dev, &list);
950         }
951
952         idr_for_each_entry(&pn->units_idr, ppp, id)
953                 /* Skip devices already unregistered by previous loop */
954                 if (!net_eq(dev_net(ppp->dev), net))
955                         unregister_netdevice_queue(ppp->dev, &list);
956
957         unregister_netdevice_many(&list);
958         rtnl_unlock();
959
960         idr_destroy(&pn->units_idr);
961 }
962
963 static struct pernet_operations ppp_net_ops = {
964         .init = ppp_init_net,
965         .exit = ppp_exit_net,
966         .id   = &ppp_net_id,
967         .size = sizeof(struct ppp_net),
968 };
969
970 static int ppp_unit_register(struct ppp *ppp, int unit, bool ifname_is_set)
971 {
972         struct ppp_net *pn = ppp_pernet(ppp->ppp_net);
973         int ret;
974
975         mutex_lock(&pn->all_ppp_mutex);
976
977         if (unit < 0) {
978                 ret = unit_get(&pn->units_idr, ppp);
979                 if (ret < 0)
980                         goto err;
981         } else {
982                 /* Caller asked for a specific unit number. Fail with -EEXIST
983                  * if unavailable. For backward compatibility, return -EEXIST
984                  * too if idr allocation fails; this makes pppd retry without
985                  * requesting a specific unit number.
986                  */
987                 if (unit_find(&pn->units_idr, unit)) {
988                         ret = -EEXIST;
989                         goto err;
990                 }
991                 ret = unit_set(&pn->units_idr, ppp, unit);
992                 if (ret < 0) {
993                         /* Rewrite error for backward compatibility */
994                         ret = -EEXIST;
995                         goto err;
996                 }
997         }
998         ppp->file.index = ret;
999
1000         if (!ifname_is_set)
1001                 snprintf(ppp->dev->name, IFNAMSIZ, "ppp%i", ppp->file.index);
1002
1003         ret = register_netdevice(ppp->dev);
1004         if (ret < 0)
1005                 goto err_unit;
1006
1007         atomic_inc(&ppp_unit_count);
1008
1009         mutex_unlock(&pn->all_ppp_mutex);
1010
1011         return 0;
1012
1013 err_unit:
1014         unit_put(&pn->units_idr, ppp->file.index);
1015 err:
1016         mutex_unlock(&pn->all_ppp_mutex);
1017
1018         return ret;
1019 }
1020
1021 static int ppp_dev_configure(struct net *src_net, struct net_device *dev,
1022                              const struct ppp_config *conf)
1023 {
1024         struct ppp *ppp = netdev_priv(dev);
1025         int indx;
1026         int err;
1027
1028         ppp->dev = dev;
1029         ppp->ppp_net = src_net;
1030         ppp->mru = PPP_MRU;
1031         ppp->owner = conf->file;
1032
1033         init_ppp_file(&ppp->file, INTERFACE);
1034         ppp->file.hdrlen = PPP_HDRLEN - 2; /* don't count proto bytes */
1035
1036         for (indx = 0; indx < NUM_NP; ++indx)
1037                 ppp->npmode[indx] = NPMODE_PASS;
1038         INIT_LIST_HEAD(&ppp->channels);
1039         spin_lock_init(&ppp->rlock);
1040         spin_lock_init(&ppp->wlock);
1041 #ifdef CONFIG_PPP_MULTILINK
1042         ppp->minseq = -1;
1043         skb_queue_head_init(&ppp->mrq);
1044 #endif /* CONFIG_PPP_MULTILINK */
1045 #ifdef CONFIG_PPP_FILTER
1046         ppp->pass_filter = NULL;
1047         ppp->active_filter = NULL;
1048 #endif /* CONFIG_PPP_FILTER */
1049
1050         err = ppp_unit_register(ppp, conf->unit, conf->ifname_is_set);
1051         if (err < 0)
1052                 return err;
1053
1054         conf->file->private_data = &ppp->file;
1055
1056         return 0;
1057 }
1058
1059 static const struct nla_policy ppp_nl_policy[IFLA_PPP_MAX + 1] = {
1060         [IFLA_PPP_DEV_FD]       = { .type = NLA_S32 },
1061 };
1062
1063 static int ppp_nl_validate(struct nlattr *tb[], struct nlattr *data[])
1064 {
1065         if (!data)
1066                 return -EINVAL;
1067
1068         if (!data[IFLA_PPP_DEV_FD])
1069                 return -EINVAL;
1070         if (nla_get_s32(data[IFLA_PPP_DEV_FD]) < 0)
1071                 return -EBADF;
1072
1073         return 0;
1074 }
1075
1076 static int ppp_nl_newlink(struct net *src_net, struct net_device *dev,
1077                           struct nlattr *tb[], struct nlattr *data[])
1078 {
1079         struct ppp_config conf = {
1080                 .unit = -1,
1081                 .ifname_is_set = true,
1082         };
1083         struct file *file;
1084         int err;
1085
1086         file = fget(nla_get_s32(data[IFLA_PPP_DEV_FD]));
1087         if (!file)
1088                 return -EBADF;
1089
1090         /* rtnl_lock is already held here, but ppp_create_interface() locks
1091          * ppp_mutex before holding rtnl_lock. Using mutex_trylock() avoids
1092          * possible deadlock due to lock order inversion, at the cost of
1093          * pushing the problem back to userspace.
1094          */
1095         if (!mutex_trylock(&ppp_mutex)) {
1096                 err = -EBUSY;
1097                 goto out;
1098         }
1099
1100         if (file->f_op != &ppp_device_fops || file->private_data) {
1101                 err = -EBADF;
1102                 goto out_unlock;
1103         }
1104
1105         conf.file = file;
1106         err = ppp_dev_configure(src_net, dev, &conf);
1107
1108 out_unlock:
1109         mutex_unlock(&ppp_mutex);
1110 out:
1111         fput(file);
1112
1113         return err;
1114 }
1115
1116 static void ppp_nl_dellink(struct net_device *dev, struct list_head *head)
1117 {
1118         unregister_netdevice_queue(dev, head);
1119 }
1120
1121 static size_t ppp_nl_get_size(const struct net_device *dev)
1122 {
1123         return 0;
1124 }
1125
1126 static int ppp_nl_fill_info(struct sk_buff *skb, const struct net_device *dev)
1127 {
1128         return 0;
1129 }
1130
1131 static struct net *ppp_nl_get_link_net(const struct net_device *dev)
1132 {
1133         struct ppp *ppp = netdev_priv(dev);
1134
1135         return ppp->ppp_net;
1136 }
1137
1138 static struct rtnl_link_ops ppp_link_ops __read_mostly = {
1139         .kind           = "ppp",
1140         .maxtype        = IFLA_PPP_MAX,
1141         .policy         = ppp_nl_policy,
1142         .priv_size      = sizeof(struct ppp),
1143         .setup          = ppp_setup,
1144         .validate       = ppp_nl_validate,
1145         .newlink        = ppp_nl_newlink,
1146         .dellink        = ppp_nl_dellink,
1147         .get_size       = ppp_nl_get_size,
1148         .fill_info      = ppp_nl_fill_info,
1149         .get_link_net   = ppp_nl_get_link_net,
1150 };
1151
1152 #define PPP_MAJOR       108
1153
1154 /* Called at boot time if ppp is compiled into the kernel,
1155    or at module load time (from init_module) if compiled as a module. */
1156 static int __init ppp_init(void)
1157 {
1158         int err;
1159
1160         pr_info("PPP generic driver version " PPP_VERSION "\n");
1161
1162         err = register_pernet_device(&ppp_net_ops);
1163         if (err) {
1164                 pr_err("failed to register PPP pernet device (%d)\n", err);
1165                 goto out;
1166         }
1167
1168         err = register_chrdev(PPP_MAJOR, "ppp", &ppp_device_fops);
1169         if (err) {
1170                 pr_err("failed to register PPP device (%d)\n", err);
1171                 goto out_net;
1172         }
1173
1174         ppp_class = class_create(THIS_MODULE, "ppp");
1175         if (IS_ERR(ppp_class)) {
1176                 err = PTR_ERR(ppp_class);
1177                 goto out_chrdev;
1178         }
1179
1180         err = rtnl_link_register(&ppp_link_ops);
1181         if (err) {
1182                 pr_err("failed to register rtnetlink PPP handler\n");
1183                 goto out_class;
1184         }
1185
1186         /* not a big deal if we fail here :-) */
1187         device_create(ppp_class, NULL, MKDEV(PPP_MAJOR, 0), NULL, "ppp");
1188
1189         return 0;
1190
1191 out_class:
1192         class_destroy(ppp_class);
1193 out_chrdev:
1194         unregister_chrdev(PPP_MAJOR, "ppp");
1195 out_net:
1196         unregister_pernet_device(&ppp_net_ops);
1197 out:
1198         return err;
1199 }
1200
1201 /*
1202  * Network interface unit routines.
1203  */
1204 static netdev_tx_t
1205 ppp_start_xmit(struct sk_buff *skb, struct net_device *dev)
1206 {
1207         struct ppp *ppp = netdev_priv(dev);
1208         int npi, proto;
1209         unsigned char *pp;
1210
1211         npi = ethertype_to_npindex(ntohs(skb->protocol));
1212         if (npi < 0)
1213                 goto outf;
1214
1215         /* Drop, accept or reject the packet */
1216         switch (ppp->npmode[npi]) {
1217         case NPMODE_PASS:
1218                 break;
1219         case NPMODE_QUEUE:
1220                 /* it would be nice to have a way to tell the network
1221                    system to queue this one up for later. */
1222                 goto outf;
1223         case NPMODE_DROP:
1224         case NPMODE_ERROR:
1225                 goto outf;
1226         }
1227
1228         /* Put the 2-byte PPP protocol number on the front,
1229            making sure there is room for the address and control fields. */
1230         if (skb_cow_head(skb, PPP_HDRLEN))
1231                 goto outf;
1232
1233         pp = skb_push(skb, 2);
1234         proto = npindex_to_proto[npi];
1235         put_unaligned_be16(proto, pp);
1236
1237         skb_scrub_packet(skb, !net_eq(ppp->ppp_net, dev_net(dev)));
1238         skb_queue_tail(&ppp->file.xq, skb);
1239         ppp_xmit_process(ppp);
1240         return NETDEV_TX_OK;
1241
1242  outf:
1243         kfree_skb(skb);
1244         ++dev->stats.tx_dropped;
1245         return NETDEV_TX_OK;
1246 }
1247
1248 static int
1249 ppp_net_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
1250 {
1251         struct ppp *ppp = netdev_priv(dev);
1252         int err = -EFAULT;
1253         void __user *addr = (void __user *) ifr->ifr_ifru.ifru_data;
1254         struct ppp_stats stats;
1255         struct ppp_comp_stats cstats;
1256         char *vers;
1257
1258         switch (cmd) {
1259         case SIOCGPPPSTATS:
1260                 ppp_get_stats(ppp, &stats);
1261                 if (copy_to_user(addr, &stats, sizeof(stats)))
1262                         break;
1263                 err = 0;
1264                 break;
1265
1266         case SIOCGPPPCSTATS:
1267                 memset(&cstats, 0, sizeof(cstats));
1268                 if (ppp->xc_state)
1269                         ppp->xcomp->comp_stat(ppp->xc_state, &cstats.c);
1270                 if (ppp->rc_state)
1271                         ppp->rcomp->decomp_stat(ppp->rc_state, &cstats.d);
1272                 if (copy_to_user(addr, &cstats, sizeof(cstats)))
1273                         break;
1274                 err = 0;
1275                 break;
1276
1277         case SIOCGPPPVER:
1278                 vers = PPP_VERSION;
1279                 if (copy_to_user(addr, vers, strlen(vers) + 1))
1280                         break;
1281                 err = 0;
1282                 break;
1283
1284         default:
1285                 err = -EINVAL;
1286         }
1287
1288         return err;
1289 }
1290
1291 static struct rtnl_link_stats64*
1292 ppp_get_stats64(struct net_device *dev, struct rtnl_link_stats64 *stats64)
1293 {
1294         struct ppp *ppp = netdev_priv(dev);
1295
1296         ppp_recv_lock(ppp);
1297         stats64->rx_packets = ppp->stats64.rx_packets;
1298         stats64->rx_bytes   = ppp->stats64.rx_bytes;
1299         ppp_recv_unlock(ppp);
1300
1301         ppp_xmit_lock(ppp);
1302         stats64->tx_packets = ppp->stats64.tx_packets;
1303         stats64->tx_bytes   = ppp->stats64.tx_bytes;
1304         ppp_xmit_unlock(ppp);
1305
1306         stats64->rx_errors        = dev->stats.rx_errors;
1307         stats64->tx_errors        = dev->stats.tx_errors;
1308         stats64->rx_dropped       = dev->stats.rx_dropped;
1309         stats64->tx_dropped       = dev->stats.tx_dropped;
1310         stats64->rx_length_errors = dev->stats.rx_length_errors;
1311
1312         return stats64;
1313 }
1314
1315 static struct lock_class_key ppp_tx_busylock;
1316 static int ppp_dev_init(struct net_device *dev)
1317 {
1318         dev->qdisc_tx_busylock = &ppp_tx_busylock;
1319         return 0;
1320 }
1321
1322 static void ppp_dev_uninit(struct net_device *dev)
1323 {
1324         struct ppp *ppp = netdev_priv(dev);
1325         struct ppp_net *pn = ppp_pernet(ppp->ppp_net);
1326
1327         ppp_lock(ppp);
1328         ppp->closing = 1;
1329         ppp_unlock(ppp);
1330
1331         mutex_lock(&pn->all_ppp_mutex);
1332         unit_put(&pn->units_idr, ppp->file.index);
1333         mutex_unlock(&pn->all_ppp_mutex);
1334
1335         ppp->owner = NULL;
1336
1337         ppp->file.dead = 1;
1338         wake_up_interruptible(&ppp->file.rwait);
1339 }
1340
1341 static const struct net_device_ops ppp_netdev_ops = {
1342         .ndo_init        = ppp_dev_init,
1343         .ndo_uninit      = ppp_dev_uninit,
1344         .ndo_start_xmit  = ppp_start_xmit,
1345         .ndo_do_ioctl    = ppp_net_ioctl,
1346         .ndo_get_stats64 = ppp_get_stats64,
1347 };
1348
1349 static struct device_type ppp_type = {
1350         .name = "ppp",
1351 };
1352
1353 static void ppp_setup(struct net_device *dev)
1354 {
1355         dev->netdev_ops = &ppp_netdev_ops;
1356         SET_NETDEV_DEVTYPE(dev, &ppp_type);
1357
1358         dev->hard_header_len = PPP_HDRLEN;
1359         dev->mtu = PPP_MRU;
1360         dev->addr_len = 0;
1361         dev->tx_queue_len = 3;
1362         dev->type = ARPHRD_PPP;
1363         dev->flags = IFF_POINTOPOINT | IFF_NOARP | IFF_MULTICAST;
1364         netif_keep_dst(dev);
1365 }
1366
1367 /*
1368  * Transmit-side routines.
1369  */
1370
1371 /*
1372  * Called to do any work queued up on the transmit side
1373  * that can now be done.
1374  */
1375 static void
1376 ppp_xmit_process(struct ppp *ppp)
1377 {
1378         struct sk_buff *skb;
1379
1380         ppp_xmit_lock(ppp);
1381         if (!ppp->closing) {
1382                 ppp_push(ppp);
1383                 while (!ppp->xmit_pending &&
1384                        (skb = skb_dequeue(&ppp->file.xq)))
1385                         ppp_send_frame(ppp, skb);
1386                 /* If there's no work left to do, tell the core net
1387                    code that we can accept some more. */
1388                 if (!ppp->xmit_pending && !skb_peek(&ppp->file.xq))
1389                         netif_wake_queue(ppp->dev);
1390                 else
1391                         netif_stop_queue(ppp->dev);
1392         }
1393         ppp_xmit_unlock(ppp);
1394 }
1395
1396 static inline struct sk_buff *
1397 pad_compress_skb(struct ppp *ppp, struct sk_buff *skb)
1398 {
1399         struct sk_buff *new_skb;
1400         int len;
1401         int new_skb_size = ppp->dev->mtu +
1402                 ppp->xcomp->comp_extra + ppp->dev->hard_header_len;
1403         int compressor_skb_size = ppp->dev->mtu +
1404                 ppp->xcomp->comp_extra + PPP_HDRLEN;
1405         new_skb = alloc_skb(new_skb_size, GFP_ATOMIC);
1406         if (!new_skb) {
1407                 if (net_ratelimit())
1408                         netdev_err(ppp->dev, "PPP: no memory (comp pkt)\n");
1409                 return NULL;
1410         }
1411         if (ppp->dev->hard_header_len > PPP_HDRLEN)
1412                 skb_reserve(new_skb,
1413                             ppp->dev->hard_header_len - PPP_HDRLEN);
1414
1415         /* compressor still expects A/C bytes in hdr */
1416         len = ppp->xcomp->compress(ppp->xc_state, skb->data - 2,
1417                                    new_skb->data, skb->len + 2,
1418                                    compressor_skb_size);
1419         if (len > 0 && (ppp->flags & SC_CCP_UP)) {
1420                 consume_skb(skb);
1421                 skb = new_skb;
1422                 skb_put(skb, len);
1423                 skb_pull(skb, 2);       /* pull off A/C bytes */
1424         } else if (len == 0) {
1425                 /* didn't compress, or CCP not up yet */
1426                 consume_skb(new_skb);
1427                 new_skb = skb;
1428         } else {
1429                 /*
1430                  * (len < 0)
1431                  * MPPE requires that we do not send unencrypted
1432                  * frames.  The compressor will return -1 if we
1433                  * should drop the frame.  We cannot simply test
1434                  * the compress_proto because MPPE and MPPC share
1435                  * the same number.
1436                  */
1437                 if (net_ratelimit())
1438                         netdev_err(ppp->dev, "ppp: compressor dropped pkt\n");
1439                 kfree_skb(skb);
1440                 consume_skb(new_skb);
1441                 new_skb = NULL;
1442         }
1443         return new_skb;
1444 }
1445
1446 /*
1447  * Compress and send a frame.
1448  * The caller should have locked the xmit path,
1449  * and xmit_pending should be 0.
1450  */
1451 static void
1452 ppp_send_frame(struct ppp *ppp, struct sk_buff *skb)
1453 {
1454         int proto = PPP_PROTO(skb);
1455         struct sk_buff *new_skb;
1456         int len;
1457         unsigned char *cp;
1458
1459         if (proto < 0x8000) {
1460 #ifdef CONFIG_PPP_FILTER
1461                 /* check if we should pass this packet */
1462                 /* the filter instructions are constructed assuming
1463                    a four-byte PPP header on each packet */
1464                 *skb_push(skb, 2) = 1;
1465                 if (ppp->pass_filter &&
1466                     BPF_PROG_RUN(ppp->pass_filter, skb) == 0) {
1467                         if (ppp->debug & 1)
1468                                 netdev_printk(KERN_DEBUG, ppp->dev,
1469                                               "PPP: outbound frame "
1470                                               "not passed\n");
1471                         kfree_skb(skb);
1472                         return;
1473                 }
1474                 /* if this packet passes the active filter, record the time */
1475                 if (!(ppp->active_filter &&
1476                       BPF_PROG_RUN(ppp->active_filter, skb) == 0))
1477                         ppp->last_xmit = jiffies;
1478                 skb_pull(skb, 2);
1479 #else
1480                 /* for data packets, record the time */
1481                 ppp->last_xmit = jiffies;
1482 #endif /* CONFIG_PPP_FILTER */
1483         }
1484
1485         ++ppp->stats64.tx_packets;
1486         ppp->stats64.tx_bytes += skb->len - 2;
1487
1488         switch (proto) {
1489         case PPP_IP:
1490                 if (!ppp->vj || (ppp->flags & SC_COMP_TCP) == 0)
1491                         break;
1492                 /* try to do VJ TCP header compression */
1493                 new_skb = alloc_skb(skb->len + ppp->dev->hard_header_len - 2,
1494                                     GFP_ATOMIC);
1495                 if (!new_skb) {
1496                         netdev_err(ppp->dev, "PPP: no memory (VJ comp pkt)\n");
1497                         goto drop;
1498                 }
1499                 skb_reserve(new_skb, ppp->dev->hard_header_len - 2);
1500                 cp = skb->data + 2;
1501                 len = slhc_compress(ppp->vj, cp, skb->len - 2,
1502                                     new_skb->data + 2, &cp,
1503                                     !(ppp->flags & SC_NO_TCP_CCID));
1504                 if (cp == skb->data + 2) {
1505                         /* didn't compress */
1506                         consume_skb(new_skb);
1507                 } else {
1508                         if (cp[0] & SL_TYPE_COMPRESSED_TCP) {
1509                                 proto = PPP_VJC_COMP;
1510                                 cp[0] &= ~SL_TYPE_COMPRESSED_TCP;
1511                         } else {
1512                                 proto = PPP_VJC_UNCOMP;
1513                                 cp[0] = skb->data[2];
1514                         }
1515                         consume_skb(skb);
1516                         skb = new_skb;
1517                         cp = skb_put(skb, len + 2);
1518                         cp[0] = 0;
1519                         cp[1] = proto;
1520                 }
1521                 break;
1522
1523         case PPP_CCP:
1524                 /* peek at outbound CCP frames */
1525                 ppp_ccp_peek(ppp, skb, 0);
1526                 break;
1527         }
1528
1529         /* try to do packet compression */
1530         if ((ppp->xstate & SC_COMP_RUN) && ppp->xc_state &&
1531             proto != PPP_LCP && proto != PPP_CCP) {
1532                 if (!(ppp->flags & SC_CCP_UP) && (ppp->flags & SC_MUST_COMP)) {
1533                         if (net_ratelimit())
1534                                 netdev_err(ppp->dev,
1535                                            "ppp: compression required but "
1536                                            "down - pkt dropped.\n");
1537                         goto drop;
1538                 }
1539                 skb = pad_compress_skb(ppp, skb);
1540                 if (!skb)
1541                         goto drop;
1542         }
1543
1544         /*
1545          * If we are waiting for traffic (demand dialling),
1546          * queue it up for pppd to receive.
1547          */
1548         if (ppp->flags & SC_LOOP_TRAFFIC) {
1549                 if (ppp->file.rq.qlen > PPP_MAX_RQLEN)
1550                         goto drop;
1551                 skb_queue_tail(&ppp->file.rq, skb);
1552                 wake_up_interruptible(&ppp->file.rwait);
1553                 return;
1554         }
1555
1556         ppp->xmit_pending = skb;
1557         ppp_push(ppp);
1558         return;
1559
1560  drop:
1561         kfree_skb(skb);
1562         ++ppp->dev->stats.tx_errors;
1563 }
1564
1565 /*
1566  * Try to send the frame in xmit_pending.
1567  * The caller should have the xmit path locked.
1568  */
1569 static void
1570 ppp_push(struct ppp *ppp)
1571 {
1572         struct list_head *list;
1573         struct channel *pch;
1574         struct sk_buff *skb = ppp->xmit_pending;
1575
1576         if (!skb)
1577                 return;
1578
1579         list = &ppp->channels;
1580         if (list_empty(list)) {
1581                 /* nowhere to send the packet, just drop it */
1582                 ppp->xmit_pending = NULL;
1583                 kfree_skb(skb);
1584                 return;
1585         }
1586
1587         if ((ppp->flags & SC_MULTILINK) == 0) {
1588                 /* not doing multilink: send it down the first channel */
1589                 list = list->next;
1590                 pch = list_entry(list, struct channel, clist);
1591
1592                 spin_lock_bh(&pch->downl);
1593                 if (pch->chan) {
1594                         if (pch->chan->ops->start_xmit(pch->chan, skb))
1595                                 ppp->xmit_pending = NULL;
1596                 } else {
1597                         /* channel got unregistered */
1598                         kfree_skb(skb);
1599                         ppp->xmit_pending = NULL;
1600                 }
1601                 spin_unlock_bh(&pch->downl);
1602                 return;
1603         }
1604
1605 #ifdef CONFIG_PPP_MULTILINK
1606         /* Multilink: fragment the packet over as many links
1607            as can take the packet at the moment. */
1608         if (!ppp_mp_explode(ppp, skb))
1609                 return;
1610 #endif /* CONFIG_PPP_MULTILINK */
1611
1612         ppp->xmit_pending = NULL;
1613         kfree_skb(skb);
1614 }
1615
1616 #ifdef CONFIG_PPP_MULTILINK
1617 static bool mp_protocol_compress __read_mostly = true;
1618 module_param(mp_protocol_compress, bool, S_IRUGO | S_IWUSR);
1619 MODULE_PARM_DESC(mp_protocol_compress,
1620                  "compress protocol id in multilink fragments");
1621
1622 /*
1623  * Divide a packet to be transmitted into fragments and
1624  * send them out the individual links.
1625  */
1626 static int ppp_mp_explode(struct ppp *ppp, struct sk_buff *skb)
1627 {
1628         int len, totlen;
1629         int i, bits, hdrlen, mtu;
1630         int flen;
1631         int navail, nfree, nzero;
1632         int nbigger;
1633         int totspeed;
1634         int totfree;
1635         unsigned char *p, *q;
1636         struct list_head *list;
1637         struct channel *pch;
1638         struct sk_buff *frag;
1639         struct ppp_channel *chan;
1640
1641         totspeed = 0; /*total bitrate of the bundle*/
1642         nfree = 0; /* # channels which have no packet already queued */
1643         navail = 0; /* total # of usable channels (not deregistered) */
1644         nzero = 0; /* number of channels with zero speed associated*/
1645         totfree = 0; /*total # of channels available and
1646                                   *having no queued packets before
1647                                   *starting the fragmentation*/
1648
1649         hdrlen = (ppp->flags & SC_MP_XSHORTSEQ)? MPHDRLEN_SSN: MPHDRLEN;
1650         i = 0;
1651         list_for_each_entry(pch, &ppp->channels, clist) {
1652                 if (pch->chan) {
1653                         pch->avail = 1;
1654                         navail++;
1655                         pch->speed = pch->chan->speed;
1656                 } else {
1657                         pch->avail = 0;
1658                 }
1659                 if (pch->avail) {
1660                         if (skb_queue_empty(&pch->file.xq) ||
1661                                 !pch->had_frag) {
1662                                         if (pch->speed == 0)
1663                                                 nzero++;
1664                                         else
1665                                                 totspeed += pch->speed;
1666
1667                                         pch->avail = 2;
1668                                         ++nfree;
1669                                         ++totfree;
1670                                 }
1671                         if (!pch->had_frag && i < ppp->nxchan)
1672                                 ppp->nxchan = i;
1673                 }
1674                 ++i;
1675         }
1676         /*
1677          * Don't start sending this packet unless at least half of
1678          * the channels are free.  This gives much better TCP
1679          * performance if we have a lot of channels.
1680          */
1681         if (nfree == 0 || nfree < navail / 2)
1682                 return 0; /* can't take now, leave it in xmit_pending */
1683
1684         /* Do protocol field compression */
1685         p = skb->data;
1686         len = skb->len;
1687         if (*p == 0 && mp_protocol_compress) {
1688                 ++p;
1689                 --len;
1690         }
1691
1692         totlen = len;
1693         nbigger = len % nfree;
1694
1695         /* skip to the channel after the one we last used
1696            and start at that one */
1697         list = &ppp->channels;
1698         for (i = 0; i < ppp->nxchan; ++i) {
1699                 list = list->next;
1700                 if (list == &ppp->channels) {
1701                         i = 0;
1702                         break;
1703                 }
1704         }
1705
1706         /* create a fragment for each channel */
1707         bits = B;
1708         while (len > 0) {
1709                 list = list->next;
1710                 if (list == &ppp->channels) {
1711                         i = 0;
1712                         continue;
1713                 }
1714                 pch = list_entry(list, struct channel, clist);
1715                 ++i;
1716                 if (!pch->avail)
1717                         continue;
1718
1719                 /*
1720                  * Skip this channel if it has a fragment pending already and
1721                  * we haven't given a fragment to all of the free channels.
1722                  */
1723                 if (pch->avail == 1) {
1724                         if (nfree > 0)
1725                                 continue;
1726                 } else {
1727                         pch->avail = 1;
1728                 }
1729
1730                 /* check the channel's mtu and whether it is still attached. */
1731                 spin_lock_bh(&pch->downl);
1732                 if (pch->chan == NULL) {
1733                         /* can't use this channel, it's being deregistered */
1734                         if (pch->speed == 0)
1735                                 nzero--;
1736                         else
1737                                 totspeed -= pch->speed;
1738
1739                         spin_unlock_bh(&pch->downl);
1740                         pch->avail = 0;
1741                         totlen = len;
1742                         totfree--;
1743                         nfree--;
1744                         if (--navail == 0)
1745                                 break;
1746                         continue;
1747                 }
1748
1749                 /*
1750                 *if the channel speed is not set divide
1751                 *the packet evenly among the free channels;
1752                 *otherwise divide it according to the speed
1753                 *of the channel we are going to transmit on
1754                 */
1755                 flen = len;
1756                 if (nfree > 0) {
1757                         if (pch->speed == 0) {
1758                                 flen = len/nfree;
1759                                 if (nbigger > 0) {
1760                                         flen++;
1761                                         nbigger--;
1762                                 }
1763                         } else {
1764                                 flen = (((totfree - nzero)*(totlen + hdrlen*totfree)) /
1765                                         ((totspeed*totfree)/pch->speed)) - hdrlen;
1766                                 if (nbigger > 0) {
1767                                         flen += ((totfree - nzero)*pch->speed)/totspeed;
1768                                         nbigger -= ((totfree - nzero)*pch->speed)/
1769                                                         totspeed;
1770                                 }
1771                         }
1772                         nfree--;
1773                 }
1774
1775                 /*
1776                  *check if we are on the last channel or
1777                  *we exceded the length of the data to
1778                  *fragment
1779                  */
1780                 if ((nfree <= 0) || (flen > len))
1781                         flen = len;
1782                 /*
1783                  *it is not worth to tx on slow channels:
1784                  *in that case from the resulting flen according to the
1785                  *above formula will be equal or less than zero.
1786                  *Skip the channel in this case
1787                  */
1788                 if (flen <= 0) {
1789                         pch->avail = 2;
1790                         spin_unlock_bh(&pch->downl);
1791                         continue;
1792                 }
1793
1794                 /*
1795                  * hdrlen includes the 2-byte PPP protocol field, but the
1796                  * MTU counts only the payload excluding the protocol field.
1797                  * (RFC1661 Section 2)
1798                  */
1799                 mtu = pch->chan->mtu - (hdrlen - 2);
1800                 if (mtu < 4)
1801                         mtu = 4;
1802                 if (flen > mtu)
1803                         flen = mtu;
1804                 if (flen == len)
1805                         bits |= E;
1806                 frag = alloc_skb(flen + hdrlen + (flen == 0), GFP_ATOMIC);
1807                 if (!frag)
1808                         goto noskb;
1809                 q = skb_put(frag, flen + hdrlen);
1810
1811                 /* make the MP header */
1812                 put_unaligned_be16(PPP_MP, q);
1813                 if (ppp->flags & SC_MP_XSHORTSEQ) {
1814                         q[2] = bits + ((ppp->nxseq >> 8) & 0xf);
1815                         q[3] = ppp->nxseq;
1816                 } else {
1817                         q[2] = bits;
1818                         q[3] = ppp->nxseq >> 16;
1819                         q[4] = ppp->nxseq >> 8;
1820                         q[5] = ppp->nxseq;
1821                 }
1822
1823                 memcpy(q + hdrlen, p, flen);
1824
1825                 /* try to send it down the channel */
1826                 chan = pch->chan;
1827                 if (!skb_queue_empty(&pch->file.xq) ||
1828                         !chan->ops->start_xmit(chan, frag))
1829                         skb_queue_tail(&pch->file.xq, frag);
1830                 pch->had_frag = 1;
1831                 p += flen;
1832                 len -= flen;
1833                 ++ppp->nxseq;
1834                 bits = 0;
1835                 spin_unlock_bh(&pch->downl);
1836         }
1837         ppp->nxchan = i;
1838
1839         return 1;
1840
1841  noskb:
1842         spin_unlock_bh(&pch->downl);
1843         if (ppp->debug & 1)
1844                 netdev_err(ppp->dev, "PPP: no memory (fragment)\n");
1845         ++ppp->dev->stats.tx_errors;
1846         ++ppp->nxseq;
1847         return 1;       /* abandon the frame */
1848 }
1849 #endif /* CONFIG_PPP_MULTILINK */
1850
1851 /*
1852  * Try to send data out on a channel.
1853  */
1854 static void
1855 ppp_channel_push(struct channel *pch)
1856 {
1857         struct sk_buff *skb;
1858         struct ppp *ppp;
1859
1860         spin_lock_bh(&pch->downl);
1861         if (pch->chan) {
1862                 while (!skb_queue_empty(&pch->file.xq)) {
1863                         skb = skb_dequeue(&pch->file.xq);
1864                         if (!pch->chan->ops->start_xmit(pch->chan, skb)) {
1865                                 /* put the packet back and try again later */
1866                                 skb_queue_head(&pch->file.xq, skb);
1867                                 break;
1868                         }
1869                 }
1870         } else {
1871                 /* channel got deregistered */
1872                 skb_queue_purge(&pch->file.xq);
1873         }
1874         spin_unlock_bh(&pch->downl);
1875         /* see if there is anything from the attached unit to be sent */
1876         if (skb_queue_empty(&pch->file.xq)) {
1877                 read_lock_bh(&pch->upl);
1878                 ppp = pch->ppp;
1879                 if (ppp)
1880                         ppp_xmit_process(ppp);
1881                 read_unlock_bh(&pch->upl);
1882         }
1883 }
1884
1885 /*
1886  * Receive-side routines.
1887  */
1888
1889 struct ppp_mp_skb_parm {
1890         u32             sequence;
1891         u8              BEbits;
1892 };
1893 #define PPP_MP_CB(skb)  ((struct ppp_mp_skb_parm *)((skb)->cb))
1894
1895 static inline void
1896 ppp_do_recv(struct ppp *ppp, struct sk_buff *skb, struct channel *pch)
1897 {
1898         ppp_recv_lock(ppp);
1899         if (!ppp->closing)
1900                 ppp_receive_frame(ppp, skb, pch);
1901         else
1902                 kfree_skb(skb);
1903         ppp_recv_unlock(ppp);
1904 }
1905
1906 void
1907 ppp_input(struct ppp_channel *chan, struct sk_buff *skb)
1908 {
1909         struct channel *pch = chan->ppp;
1910         int proto;
1911
1912         if (!pch) {
1913                 kfree_skb(skb);
1914                 return;
1915         }
1916
1917         read_lock_bh(&pch->upl);
1918         if (!pskb_may_pull(skb, 2)) {
1919                 kfree_skb(skb);
1920                 if (pch->ppp) {
1921                         ++pch->ppp->dev->stats.rx_length_errors;
1922                         ppp_receive_error(pch->ppp);
1923                 }
1924                 goto done;
1925         }
1926
1927         proto = PPP_PROTO(skb);
1928         if (!pch->ppp || proto >= 0xc000 || proto == PPP_CCPFRAG) {
1929                 /* put it on the channel queue */
1930                 skb_queue_tail(&pch->file.rq, skb);
1931                 /* drop old frames if queue too long */
1932                 while (pch->file.rq.qlen > PPP_MAX_RQLEN &&
1933                        (skb = skb_dequeue(&pch->file.rq)))
1934                         kfree_skb(skb);
1935                 wake_up_interruptible(&pch->file.rwait);
1936         } else {
1937                 ppp_do_recv(pch->ppp, skb, pch);
1938         }
1939
1940 done:
1941         read_unlock_bh(&pch->upl);
1942 }
1943
1944 /* Put a 0-length skb in the receive queue as an error indication */
1945 void
1946 ppp_input_error(struct ppp_channel *chan, int code)
1947 {
1948         struct channel *pch = chan->ppp;
1949         struct sk_buff *skb;
1950
1951         if (!pch)
1952                 return;
1953
1954         read_lock_bh(&pch->upl);
1955         if (pch->ppp) {
1956                 skb = alloc_skb(0, GFP_ATOMIC);
1957                 if (skb) {
1958                         skb->len = 0;           /* probably unnecessary */
1959                         skb->cb[0] = code;
1960                         ppp_do_recv(pch->ppp, skb, pch);
1961                 }
1962         }
1963         read_unlock_bh(&pch->upl);
1964 }
1965
1966 /*
1967  * We come in here to process a received frame.
1968  * The receive side of the ppp unit is locked.
1969  */
1970 static void
1971 ppp_receive_frame(struct ppp *ppp, struct sk_buff *skb, struct channel *pch)
1972 {
1973         /* note: a 0-length skb is used as an error indication */
1974         if (skb->len > 0) {
1975                 skb_checksum_complete_unset(skb);
1976 #ifdef CONFIG_PPP_MULTILINK
1977                 /* XXX do channel-level decompression here */
1978                 if (PPP_PROTO(skb) == PPP_MP)
1979                         ppp_receive_mp_frame(ppp, skb, pch);
1980                 else
1981 #endif /* CONFIG_PPP_MULTILINK */
1982                         ppp_receive_nonmp_frame(ppp, skb);
1983         } else {
1984                 kfree_skb(skb);
1985                 ppp_receive_error(ppp);
1986         }
1987 }
1988
1989 static void
1990 ppp_receive_error(struct ppp *ppp)
1991 {
1992         ++ppp->dev->stats.rx_errors;
1993         if (ppp->vj)
1994                 slhc_toss(ppp->vj);
1995 }
1996
1997 static void
1998 ppp_receive_nonmp_frame(struct ppp *ppp, struct sk_buff *skb)
1999 {
2000         struct sk_buff *ns;
2001         int proto, len, npi;
2002
2003         /*
2004          * Decompress the frame, if compressed.
2005          * Note that some decompressors need to see uncompressed frames
2006          * that come in as well as compressed frames.
2007          */
2008         if (ppp->rc_state && (ppp->rstate & SC_DECOMP_RUN) &&
2009             (ppp->rstate & (SC_DC_FERROR | SC_DC_ERROR)) == 0)
2010                 skb = ppp_decompress_frame(ppp, skb);
2011
2012         if (ppp->flags & SC_MUST_COMP && ppp->rstate & SC_DC_FERROR)
2013                 goto err;
2014
2015         proto = PPP_PROTO(skb);
2016         switch (proto) {
2017         case PPP_VJC_COMP:
2018                 /* decompress VJ compressed packets */
2019                 if (!ppp->vj || (ppp->flags & SC_REJ_COMP_TCP))
2020                         goto err;
2021
2022                 if (skb_tailroom(skb) < 124 || skb_cloned(skb)) {
2023                         /* copy to a new sk_buff with more tailroom */
2024                         ns = dev_alloc_skb(skb->len + 128);
2025                         if (!ns) {
2026                                 netdev_err(ppp->dev, "PPP: no memory "
2027                                            "(VJ decomp)\n");
2028                                 goto err;
2029                         }
2030                         skb_reserve(ns, 2);
2031                         skb_copy_bits(skb, 0, skb_put(ns, skb->len), skb->len);
2032                         consume_skb(skb);
2033                         skb = ns;
2034                 }
2035                 else
2036                         skb->ip_summed = CHECKSUM_NONE;
2037
2038                 len = slhc_uncompress(ppp->vj, skb->data + 2, skb->len - 2);
2039                 if (len <= 0) {
2040                         netdev_printk(KERN_DEBUG, ppp->dev,
2041                                       "PPP: VJ decompression error\n");
2042                         goto err;
2043                 }
2044                 len += 2;
2045                 if (len > skb->len)
2046                         skb_put(skb, len - skb->len);
2047                 else if (len < skb->len)
2048                         skb_trim(skb, len);
2049                 proto = PPP_IP;
2050                 break;
2051
2052         case PPP_VJC_UNCOMP:
2053                 if (!ppp->vj || (ppp->flags & SC_REJ_COMP_TCP))
2054                         goto err;
2055
2056                 /* Until we fix the decompressor need to make sure
2057                  * data portion is linear.
2058                  */
2059                 if (!pskb_may_pull(skb, skb->len))
2060                         goto err;
2061
2062                 if (slhc_remember(ppp->vj, skb->data + 2, skb->len - 2) <= 0) {
2063                         netdev_err(ppp->dev, "PPP: VJ uncompressed error\n");
2064                         goto err;
2065                 }
2066                 proto = PPP_IP;
2067                 break;
2068
2069         case PPP_CCP:
2070                 ppp_ccp_peek(ppp, skb, 1);
2071                 break;
2072         }
2073
2074         ++ppp->stats64.rx_packets;
2075         ppp->stats64.rx_bytes += skb->len - 2;
2076
2077         npi = proto_to_npindex(proto);
2078         if (npi < 0) {
2079                 /* control or unknown frame - pass it to pppd */
2080                 skb_queue_tail(&ppp->file.rq, skb);
2081                 /* limit queue length by dropping old frames */
2082                 while (ppp->file.rq.qlen > PPP_MAX_RQLEN &&
2083                        (skb = skb_dequeue(&ppp->file.rq)))
2084                         kfree_skb(skb);
2085                 /* wake up any process polling or blocking on read */
2086                 wake_up_interruptible(&ppp->file.rwait);
2087
2088         } else {
2089                 /* network protocol frame - give it to the kernel */
2090
2091 #ifdef CONFIG_PPP_FILTER
2092                 /* check if the packet passes the pass and active filters */
2093                 /* the filter instructions are constructed assuming
2094                    a four-byte PPP header on each packet */
2095                 if (ppp->pass_filter || ppp->active_filter) {
2096                         if (skb_unclone(skb, GFP_ATOMIC))
2097                                 goto err;
2098
2099                         *skb_push(skb, 2) = 0;
2100                         if (ppp->pass_filter &&
2101                             BPF_PROG_RUN(ppp->pass_filter, skb) == 0) {
2102                                 if (ppp->debug & 1)
2103                                         netdev_printk(KERN_DEBUG, ppp->dev,
2104                                                       "PPP: inbound frame "
2105                                                       "not passed\n");
2106                                 kfree_skb(skb);
2107                                 return;
2108                         }
2109                         if (!(ppp->active_filter &&
2110                               BPF_PROG_RUN(ppp->active_filter, skb) == 0))
2111                                 ppp->last_recv = jiffies;
2112                         __skb_pull(skb, 2);
2113                 } else
2114 #endif /* CONFIG_PPP_FILTER */
2115                         ppp->last_recv = jiffies;
2116
2117                 if ((ppp->dev->flags & IFF_UP) == 0 ||
2118                     ppp->npmode[npi] != NPMODE_PASS) {
2119                         kfree_skb(skb);
2120                 } else {
2121                         /* chop off protocol */
2122                         skb_pull_rcsum(skb, 2);
2123                         skb->dev = ppp->dev;
2124                         skb->protocol = htons(npindex_to_ethertype[npi]);
2125                         skb_reset_mac_header(skb);
2126                         skb_scrub_packet(skb, !net_eq(ppp->ppp_net,
2127                                                       dev_net(ppp->dev)));
2128                         netif_rx(skb);
2129                 }
2130         }
2131         return;
2132
2133  err:
2134         kfree_skb(skb);
2135         ppp_receive_error(ppp);
2136 }
2137
2138 static struct sk_buff *
2139 ppp_decompress_frame(struct ppp *ppp, struct sk_buff *skb)
2140 {
2141         int proto = PPP_PROTO(skb);
2142         struct sk_buff *ns;
2143         int len;
2144
2145         /* Until we fix all the decompressor's need to make sure
2146          * data portion is linear.
2147          */
2148         if (!pskb_may_pull(skb, skb->len))
2149                 goto err;
2150
2151         if (proto == PPP_COMP) {
2152                 int obuff_size;
2153
2154                 switch(ppp->rcomp->compress_proto) {
2155                 case CI_MPPE:
2156                         obuff_size = ppp->mru + PPP_HDRLEN + 1;
2157                         break;
2158                 default:
2159                         obuff_size = ppp->mru + PPP_HDRLEN;
2160                         break;
2161                 }
2162
2163                 ns = dev_alloc_skb(obuff_size);
2164                 if (!ns) {
2165                         netdev_err(ppp->dev, "ppp_decompress_frame: "
2166                                    "no memory\n");
2167                         goto err;
2168                 }
2169                 /* the decompressor still expects the A/C bytes in the hdr */
2170                 len = ppp->rcomp->decompress(ppp->rc_state, skb->data - 2,
2171                                 skb->len + 2, ns->data, obuff_size);
2172                 if (len < 0) {
2173                         /* Pass the compressed frame to pppd as an
2174                            error indication. */
2175                         if (len == DECOMP_FATALERROR)
2176                                 ppp->rstate |= SC_DC_FERROR;
2177                         kfree_skb(ns);
2178                         goto err;
2179                 }
2180
2181                 consume_skb(skb);
2182                 skb = ns;
2183                 skb_put(skb, len);
2184                 skb_pull(skb, 2);       /* pull off the A/C bytes */
2185
2186         } else {
2187                 /* Uncompressed frame - pass to decompressor so it
2188                    can update its dictionary if necessary. */
2189                 if (ppp->rcomp->incomp)
2190                         ppp->rcomp->incomp(ppp->rc_state, skb->data - 2,
2191                                            skb->len + 2);
2192         }
2193
2194         return skb;
2195
2196  err:
2197         ppp->rstate |= SC_DC_ERROR;
2198         ppp_receive_error(ppp);
2199         return skb;
2200 }
2201
2202 #ifdef CONFIG_PPP_MULTILINK
2203 /*
2204  * Receive a multilink frame.
2205  * We put it on the reconstruction queue and then pull off
2206  * as many completed frames as we can.
2207  */
2208 static void
2209 ppp_receive_mp_frame(struct ppp *ppp, struct sk_buff *skb, struct channel *pch)
2210 {
2211         u32 mask, seq;
2212         struct channel *ch;
2213         int mphdrlen = (ppp->flags & SC_MP_SHORTSEQ)? MPHDRLEN_SSN: MPHDRLEN;
2214
2215         if (!pskb_may_pull(skb, mphdrlen + 1) || ppp->mrru == 0)
2216                 goto err;               /* no good, throw it away */
2217
2218         /* Decode sequence number and begin/end bits */
2219         if (ppp->flags & SC_MP_SHORTSEQ) {
2220                 seq = ((skb->data[2] & 0x0f) << 8) | skb->data[3];
2221                 mask = 0xfff;
2222         } else {
2223                 seq = (skb->data[3] << 16) | (skb->data[4] << 8)| skb->data[5];
2224                 mask = 0xffffff;
2225         }
2226         PPP_MP_CB(skb)->BEbits = skb->data[2];
2227         skb_pull(skb, mphdrlen);        /* pull off PPP and MP headers */
2228
2229         /*
2230          * Do protocol ID decompression on the first fragment of each packet.
2231          */
2232         if ((PPP_MP_CB(skb)->BEbits & B) && (skb->data[0] & 1))
2233                 *skb_push(skb, 1) = 0;
2234
2235         /*
2236          * Expand sequence number to 32 bits, making it as close
2237          * as possible to ppp->minseq.
2238          */
2239         seq |= ppp->minseq & ~mask;
2240         if ((int)(ppp->minseq - seq) > (int)(mask >> 1))
2241                 seq += mask + 1;
2242         else if ((int)(seq - ppp->minseq) > (int)(mask >> 1))
2243                 seq -= mask + 1;        /* should never happen */
2244         PPP_MP_CB(skb)->sequence = seq;
2245         pch->lastseq = seq;
2246
2247         /*
2248          * If this packet comes before the next one we were expecting,
2249          * drop it.
2250          */
2251         if (seq_before(seq, ppp->nextseq)) {
2252                 kfree_skb(skb);
2253                 ++ppp->dev->stats.rx_dropped;
2254                 ppp_receive_error(ppp);
2255                 return;
2256         }
2257
2258         /*
2259          * Reevaluate minseq, the minimum over all channels of the
2260          * last sequence number received on each channel.  Because of
2261          * the increasing sequence number rule, we know that any fragment
2262          * before `minseq' which hasn't arrived is never going to arrive.
2263          * The list of channels can't change because we have the receive
2264          * side of the ppp unit locked.
2265          */
2266         list_for_each_entry(ch, &ppp->channels, clist) {
2267                 if (seq_before(ch->lastseq, seq))
2268                         seq = ch->lastseq;
2269         }
2270         if (seq_before(ppp->minseq, seq))
2271                 ppp->minseq = seq;
2272
2273         /* Put the fragment on the reconstruction queue */
2274         ppp_mp_insert(ppp, skb);
2275
2276         /* If the queue is getting long, don't wait any longer for packets
2277            before the start of the queue. */
2278         if (skb_queue_len(&ppp->mrq) >= PPP_MP_MAX_QLEN) {
2279                 struct sk_buff *mskb = skb_peek(&ppp->mrq);
2280                 if (seq_before(ppp->minseq, PPP_MP_CB(mskb)->sequence))
2281                         ppp->minseq = PPP_MP_CB(mskb)->sequence;
2282         }
2283
2284         /* Pull completed packets off the queue and receive them. */
2285         while ((skb = ppp_mp_reconstruct(ppp))) {
2286                 if (pskb_may_pull(skb, 2))
2287                         ppp_receive_nonmp_frame(ppp, skb);
2288                 else {
2289                         ++ppp->dev->stats.rx_length_errors;
2290                         kfree_skb(skb);
2291                         ppp_receive_error(ppp);
2292                 }
2293         }
2294
2295         return;
2296
2297  err:
2298         kfree_skb(skb);
2299         ppp_receive_error(ppp);
2300 }
2301
2302 /*
2303  * Insert a fragment on the MP reconstruction queue.
2304  * The queue is ordered by increasing sequence number.
2305  */
2306 static void
2307 ppp_mp_insert(struct ppp *ppp, struct sk_buff *skb)
2308 {
2309         struct sk_buff *p;
2310         struct sk_buff_head *list = &ppp->mrq;
2311         u32 seq = PPP_MP_CB(skb)->sequence;
2312
2313         /* N.B. we don't need to lock the list lock because we have the
2314            ppp unit receive-side lock. */
2315         skb_queue_walk(list, p) {
2316                 if (seq_before(seq, PPP_MP_CB(p)->sequence))
2317                         break;
2318         }
2319         __skb_queue_before(list, p, skb);
2320 }
2321
2322 /*
2323  * Reconstruct a packet from the MP fragment queue.
2324  * We go through increasing sequence numbers until we find a
2325  * complete packet, or we get to the sequence number for a fragment
2326  * which hasn't arrived but might still do so.
2327  */
2328 static struct sk_buff *
2329 ppp_mp_reconstruct(struct ppp *ppp)
2330 {
2331         u32 seq = ppp->nextseq;
2332         u32 minseq = ppp->minseq;
2333         struct sk_buff_head *list = &ppp->mrq;
2334         struct sk_buff *p, *tmp;
2335         struct sk_buff *head, *tail;
2336         struct sk_buff *skb = NULL;
2337         int lost = 0, len = 0;
2338
2339         if (ppp->mrru == 0)     /* do nothing until mrru is set */
2340                 return NULL;
2341         head = list->next;
2342         tail = NULL;
2343         skb_queue_walk_safe(list, p, tmp) {
2344         again:
2345                 if (seq_before(PPP_MP_CB(p)->sequence, seq)) {
2346                         /* this can't happen, anyway ignore the skb */
2347                         netdev_err(ppp->dev, "ppp_mp_reconstruct bad "
2348                                    "seq %u < %u\n",
2349                                    PPP_MP_CB(p)->sequence, seq);
2350                         __skb_unlink(p, list);
2351                         kfree_skb(p);
2352                         continue;
2353                 }
2354                 if (PPP_MP_CB(p)->sequence != seq) {
2355                         u32 oldseq;
2356                         /* Fragment `seq' is missing.  If it is after
2357                            minseq, it might arrive later, so stop here. */
2358                         if (seq_after(seq, minseq))
2359                                 break;
2360                         /* Fragment `seq' is lost, keep going. */
2361                         lost = 1;
2362                         oldseq = seq;
2363                         seq = seq_before(minseq, PPP_MP_CB(p)->sequence)?
2364                                 minseq + 1: PPP_MP_CB(p)->sequence;
2365
2366                         if (ppp->debug & 1)
2367                                 netdev_printk(KERN_DEBUG, ppp->dev,
2368                                               "lost frag %u..%u\n",
2369                                               oldseq, seq-1);
2370
2371                         goto again;
2372                 }
2373
2374                 /*
2375                  * At this point we know that all the fragments from
2376                  * ppp->nextseq to seq are either present or lost.
2377                  * Also, there are no complete packets in the queue
2378                  * that have no missing fragments and end before this
2379                  * fragment.
2380                  */
2381
2382                 /* B bit set indicates this fragment starts a packet */
2383                 if (PPP_MP_CB(p)->BEbits & B) {
2384                         head = p;
2385                         lost = 0;
2386                         len = 0;
2387                 }
2388
2389                 len += p->len;
2390
2391                 /* Got a complete packet yet? */
2392                 if (lost == 0 && (PPP_MP_CB(p)->BEbits & E) &&
2393                     (PPP_MP_CB(head)->BEbits & B)) {
2394                         if (len > ppp->mrru + 2) {
2395                                 ++ppp->dev->stats.rx_length_errors;
2396                                 netdev_printk(KERN_DEBUG, ppp->dev,
2397                                               "PPP: reconstructed packet"
2398                                               " is too long (%d)\n", len);
2399                         } else {
2400                                 tail = p;
2401                                 break;
2402                         }
2403                         ppp->nextseq = seq + 1;
2404                 }
2405
2406                 /*
2407                  * If this is the ending fragment of a packet,
2408                  * and we haven't found a complete valid packet yet,
2409                  * we can discard up to and including this fragment.
2410                  */
2411                 if (PPP_MP_CB(p)->BEbits & E) {
2412                         struct sk_buff *tmp2;
2413
2414                         skb_queue_reverse_walk_from_safe(list, p, tmp2) {
2415                                 if (ppp->debug & 1)
2416                                         netdev_printk(KERN_DEBUG, ppp->dev,
2417                                                       "discarding frag %u\n",
2418                                                       PPP_MP_CB(p)->sequence);
2419                                 __skb_unlink(p, list);
2420                                 kfree_skb(p);
2421                         }
2422                         head = skb_peek(list);
2423                         if (!head)
2424                                 break;
2425                 }
2426                 ++seq;
2427         }
2428
2429         /* If we have a complete packet, copy it all into one skb. */
2430         if (tail != NULL) {
2431                 /* If we have discarded any fragments,
2432                    signal a receive error. */
2433                 if (PPP_MP_CB(head)->sequence != ppp->nextseq) {
2434                         skb_queue_walk_safe(list, p, tmp) {
2435                                 if (p == head)
2436                                         break;
2437                                 if (ppp->debug & 1)
2438                                         netdev_printk(KERN_DEBUG, ppp->dev,
2439                                                       "discarding frag %u\n",
2440                                                       PPP_MP_CB(p)->sequence);
2441                                 __skb_unlink(p, list);
2442                                 kfree_skb(p);
2443                         }
2444
2445                         if (ppp->debug & 1)
2446                                 netdev_printk(KERN_DEBUG, ppp->dev,
2447                                               "  missed pkts %u..%u\n",
2448                                               ppp->nextseq,
2449                                               PPP_MP_CB(head)->sequence-1);
2450                         ++ppp->dev->stats.rx_dropped;
2451                         ppp_receive_error(ppp);
2452                 }
2453
2454                 skb = head;
2455                 if (head != tail) {
2456                         struct sk_buff **fragpp = &skb_shinfo(skb)->frag_list;
2457                         p = skb_queue_next(list, head);
2458                         __skb_unlink(skb, list);
2459                         skb_queue_walk_from_safe(list, p, tmp) {
2460                                 __skb_unlink(p, list);
2461                                 *fragpp = p;
2462                                 p->next = NULL;
2463                                 fragpp = &p->next;
2464
2465                                 skb->len += p->len;
2466                                 skb->data_len += p->len;
2467                                 skb->truesize += p->truesize;
2468
2469                                 if (p == tail)
2470                                         break;
2471                         }
2472                 } else {
2473                         __skb_unlink(skb, list);
2474                 }
2475
2476                 ppp->nextseq = PPP_MP_CB(tail)->sequence + 1;
2477         }
2478
2479         return skb;
2480 }
2481 #endif /* CONFIG_PPP_MULTILINK */
2482
2483 /*
2484  * Channel interface.
2485  */
2486
2487 /* Create a new, unattached ppp channel. */
2488 int ppp_register_channel(struct ppp_channel *chan)
2489 {
2490         return ppp_register_net_channel(current->nsproxy->net_ns, chan);
2491 }
2492
2493 /* Create a new, unattached ppp channel for specified net. */
2494 int ppp_register_net_channel(struct net *net, struct ppp_channel *chan)
2495 {
2496         struct channel *pch;
2497         struct ppp_net *pn;
2498
2499         pch = kzalloc(sizeof(struct channel), GFP_KERNEL);
2500         if (!pch)
2501                 return -ENOMEM;
2502
2503         pn = ppp_pernet(net);
2504
2505         pch->ppp = NULL;
2506         pch->chan = chan;
2507         pch->chan_net = get_net(net);
2508         chan->ppp = pch;
2509         init_ppp_file(&pch->file, CHANNEL);
2510         pch->file.hdrlen = chan->hdrlen;
2511 #ifdef CONFIG_PPP_MULTILINK
2512         pch->lastseq = -1;
2513 #endif /* CONFIG_PPP_MULTILINK */
2514         init_rwsem(&pch->chan_sem);
2515         spin_lock_init(&pch->downl);
2516         rwlock_init(&pch->upl);
2517
2518         spin_lock_bh(&pn->all_channels_lock);
2519         pch->file.index = ++pn->last_channel_index;
2520         list_add(&pch->list, &pn->new_channels);
2521         atomic_inc(&channel_count);
2522         spin_unlock_bh(&pn->all_channels_lock);
2523
2524         return 0;
2525 }
2526
2527 /*
2528  * Return the index of a channel.
2529  */
2530 int ppp_channel_index(struct ppp_channel *chan)
2531 {
2532         struct channel *pch = chan->ppp;
2533
2534         if (pch)
2535                 return pch->file.index;
2536         return -1;
2537 }
2538
2539 /*
2540  * Return the PPP unit number to which a channel is connected.
2541  */
2542 int ppp_unit_number(struct ppp_channel *chan)
2543 {
2544         struct channel *pch = chan->ppp;
2545         int unit = -1;
2546
2547         if (pch) {
2548                 read_lock_bh(&pch->upl);
2549                 if (pch->ppp)
2550                         unit = pch->ppp->file.index;
2551                 read_unlock_bh(&pch->upl);
2552         }
2553         return unit;
2554 }
2555
2556 /*
2557  * Return the PPP device interface name of a channel.
2558  */
2559 char *ppp_dev_name(struct ppp_channel *chan)
2560 {
2561         struct channel *pch = chan->ppp;
2562         char *name = NULL;
2563
2564         if (pch) {
2565                 read_lock_bh(&pch->upl);
2566                 if (pch->ppp && pch->ppp->dev)
2567                         name = pch->ppp->dev->name;
2568                 read_unlock_bh(&pch->upl);
2569         }
2570         return name;
2571 }
2572
2573
2574 /*
2575  * Disconnect a channel from the generic layer.
2576  * This must be called in process context.
2577  */
2578 void
2579 ppp_unregister_channel(struct ppp_channel *chan)
2580 {
2581         struct channel *pch = chan->ppp;
2582         struct ppp_net *pn;
2583
2584         if (!pch)
2585                 return;         /* should never happen */
2586
2587         chan->ppp = NULL;
2588
2589         /*
2590          * This ensures that we have returned from any calls into the
2591          * the channel's start_xmit or ioctl routine before we proceed.
2592          */
2593         down_write(&pch->chan_sem);
2594         spin_lock_bh(&pch->downl);
2595         pch->chan = NULL;
2596         spin_unlock_bh(&pch->downl);
2597         up_write(&pch->chan_sem);
2598         ppp_disconnect_channel(pch);
2599
2600         pn = ppp_pernet(pch->chan_net);
2601         spin_lock_bh(&pn->all_channels_lock);
2602         list_del(&pch->list);
2603         spin_unlock_bh(&pn->all_channels_lock);
2604
2605         pch->file.dead = 1;
2606         wake_up_interruptible(&pch->file.rwait);
2607         if (atomic_dec_and_test(&pch->file.refcnt))
2608                 ppp_destroy_channel(pch);
2609 }
2610
2611 /*
2612  * Callback from a channel when it can accept more to transmit.
2613  * This should be called at BH/softirq level, not interrupt level.
2614  */
2615 void
2616 ppp_output_wakeup(struct ppp_channel *chan)
2617 {
2618         struct channel *pch = chan->ppp;
2619
2620         if (!pch)
2621                 return;
2622         ppp_channel_push(pch);
2623 }
2624
2625 /*
2626  * Compression control.
2627  */
2628
2629 /* Process the PPPIOCSCOMPRESS ioctl. */
2630 static int
2631 ppp_set_compress(struct ppp *ppp, unsigned long arg)
2632 {
2633         int err;
2634         struct compressor *cp, *ocomp;
2635         struct ppp_option_data data;
2636         void *state, *ostate;
2637         unsigned char ccp_option[CCP_MAX_OPTION_LENGTH];
2638
2639         err = -EFAULT;
2640         if (copy_from_user(&data, (void __user *) arg, sizeof(data)))
2641                 goto out;
2642         if (data.length > CCP_MAX_OPTION_LENGTH)
2643                 goto out;
2644         if (copy_from_user(ccp_option, (void __user *) data.ptr, data.length))
2645                 goto out;
2646
2647         err = -EINVAL;
2648         if (data.length < 2 || ccp_option[1] < 2 || ccp_option[1] > data.length)
2649                 goto out;
2650
2651         cp = try_then_request_module(
2652                 find_compressor(ccp_option[0]),
2653                 "ppp-compress-%d", ccp_option[0]);
2654         if (!cp)
2655                 goto out;
2656
2657         err = -ENOBUFS;
2658         if (data.transmit) {
2659                 state = cp->comp_alloc(ccp_option, data.length);
2660                 if (state) {
2661                         ppp_xmit_lock(ppp);
2662                         ppp->xstate &= ~SC_COMP_RUN;
2663                         ocomp = ppp->xcomp;
2664                         ostate = ppp->xc_state;
2665                         ppp->xcomp = cp;
2666                         ppp->xc_state = state;
2667                         ppp_xmit_unlock(ppp);
2668                         if (ostate) {
2669                                 ocomp->comp_free(ostate);
2670                                 module_put(ocomp->owner);
2671                         }
2672                         err = 0;
2673                 } else
2674                         module_put(cp->owner);
2675
2676         } else {
2677                 state = cp->decomp_alloc(ccp_option, data.length);
2678                 if (state) {
2679                         ppp_recv_lock(ppp);
2680                         ppp->rstate &= ~SC_DECOMP_RUN;
2681                         ocomp = ppp->rcomp;
2682                         ostate = ppp->rc_state;
2683                         ppp->rcomp = cp;
2684                         ppp->rc_state = state;
2685                         ppp_recv_unlock(ppp);
2686                         if (ostate) {
2687                                 ocomp->decomp_free(ostate);
2688                                 module_put(ocomp->owner);
2689                         }
2690                         err = 0;
2691                 } else
2692                         module_put(cp->owner);
2693         }
2694
2695  out:
2696         return err;
2697 }
2698
2699 /*
2700  * Look at a CCP packet and update our state accordingly.
2701  * We assume the caller has the xmit or recv path locked.
2702  */
2703 static void
2704 ppp_ccp_peek(struct ppp *ppp, struct sk_buff *skb, int inbound)
2705 {
2706         unsigned char *dp;
2707         int len;
2708
2709         if (!pskb_may_pull(skb, CCP_HDRLEN + 2))
2710                 return; /* no header */
2711         dp = skb->data + 2;
2712
2713         switch (CCP_CODE(dp)) {
2714         case CCP_CONFREQ:
2715
2716                 /* A ConfReq starts negotiation of compression
2717                  * in one direction of transmission,
2718                  * and hence brings it down...but which way?
2719                  *
2720                  * Remember:
2721                  * A ConfReq indicates what the sender would like to receive
2722                  */
2723                 if(inbound)
2724                         /* He is proposing what I should send */
2725                         ppp->xstate &= ~SC_COMP_RUN;
2726                 else
2727                         /* I am proposing to what he should send */
2728                         ppp->rstate &= ~SC_DECOMP_RUN;
2729
2730                 break;
2731
2732         case CCP_TERMREQ:
2733         case CCP_TERMACK:
2734                 /*
2735                  * CCP is going down, both directions of transmission
2736                  */
2737                 ppp->rstate &= ~SC_DECOMP_RUN;
2738                 ppp->xstate &= ~SC_COMP_RUN;
2739                 break;
2740
2741         case CCP_CONFACK:
2742                 if ((ppp->flags & (SC_CCP_OPEN | SC_CCP_UP)) != SC_CCP_OPEN)
2743                         break;
2744                 len = CCP_LENGTH(dp);
2745                 if (!pskb_may_pull(skb, len + 2))
2746                         return;         /* too short */
2747                 dp += CCP_HDRLEN;
2748                 len -= CCP_HDRLEN;
2749                 if (len < CCP_OPT_MINLEN || len < CCP_OPT_LENGTH(dp))
2750                         break;
2751                 if (inbound) {
2752                         /* we will start receiving compressed packets */
2753                         if (!ppp->rc_state)
2754                                 break;
2755                         if (ppp->rcomp->decomp_init(ppp->rc_state, dp, len,
2756                                         ppp->file.index, 0, ppp->mru, ppp->debug)) {
2757                                 ppp->rstate |= SC_DECOMP_RUN;
2758                                 ppp->rstate &= ~(SC_DC_ERROR | SC_DC_FERROR);
2759                         }
2760                 } else {
2761                         /* we will soon start sending compressed packets */
2762                         if (!ppp->xc_state)
2763                                 break;
2764                         if (ppp->xcomp->comp_init(ppp->xc_state, dp, len,
2765                                         ppp->file.index, 0, ppp->debug))
2766                                 ppp->xstate |= SC_COMP_RUN;
2767                 }
2768                 break;
2769
2770         case CCP_RESETACK:
2771                 /* reset the [de]compressor */
2772                 if ((ppp->flags & SC_CCP_UP) == 0)
2773                         break;
2774                 if (inbound) {
2775                         if (ppp->rc_state && (ppp->rstate & SC_DECOMP_RUN)) {
2776                                 ppp->rcomp->decomp_reset(ppp->rc_state);
2777                                 ppp->rstate &= ~SC_DC_ERROR;
2778                         }
2779                 } else {
2780                         if (ppp->xc_state && (ppp->xstate & SC_COMP_RUN))
2781                                 ppp->xcomp->comp_reset(ppp->xc_state);
2782                 }
2783                 break;
2784         }
2785 }
2786
2787 /* Free up compression resources. */
2788 static void
2789 ppp_ccp_closed(struct ppp *ppp)
2790 {
2791         void *xstate, *rstate;
2792         struct compressor *xcomp, *rcomp;
2793
2794         ppp_lock(ppp);
2795         ppp->flags &= ~(SC_CCP_OPEN | SC_CCP_UP);
2796         ppp->xstate = 0;
2797         xcomp = ppp->xcomp;
2798         xstate = ppp->xc_state;
2799         ppp->xc_state = NULL;
2800         ppp->rstate = 0;
2801         rcomp = ppp->rcomp;
2802         rstate = ppp->rc_state;
2803         ppp->rc_state = NULL;
2804         ppp_unlock(ppp);
2805
2806         if (xstate) {
2807                 xcomp->comp_free(xstate);
2808                 module_put(xcomp->owner);
2809         }
2810         if (rstate) {
2811                 rcomp->decomp_free(rstate);
2812                 module_put(rcomp->owner);
2813         }
2814 }
2815
2816 /* List of compressors. */
2817 static LIST_HEAD(compressor_list);
2818 static DEFINE_SPINLOCK(compressor_list_lock);
2819
2820 struct compressor_entry {
2821         struct list_head list;
2822         struct compressor *comp;
2823 };
2824
2825 static struct compressor_entry *
2826 find_comp_entry(int proto)
2827 {
2828         struct compressor_entry *ce;
2829
2830         list_for_each_entry(ce, &compressor_list, list) {
2831                 if (ce->comp->compress_proto == proto)
2832                         return ce;
2833         }
2834         return NULL;
2835 }
2836
2837 /* Register a compressor */
2838 int
2839 ppp_register_compressor(struct compressor *cp)
2840 {
2841         struct compressor_entry *ce;
2842         int ret;
2843         spin_lock(&compressor_list_lock);
2844         ret = -EEXIST;
2845         if (find_comp_entry(cp->compress_proto))
2846                 goto out;
2847         ret = -ENOMEM;
2848         ce = kmalloc(sizeof(struct compressor_entry), GFP_ATOMIC);
2849         if (!ce)
2850                 goto out;
2851         ret = 0;
2852         ce->comp = cp;
2853         list_add(&ce->list, &compressor_list);
2854  out:
2855         spin_unlock(&compressor_list_lock);
2856         return ret;
2857 }
2858
2859 /* Unregister a compressor */
2860 void
2861 ppp_unregister_compressor(struct compressor *cp)
2862 {
2863         struct compressor_entry *ce;
2864
2865         spin_lock(&compressor_list_lock);
2866         ce = find_comp_entry(cp->compress_proto);
2867         if (ce && ce->comp == cp) {
2868                 list_del(&ce->list);
2869                 kfree(ce);
2870         }
2871         spin_unlock(&compressor_list_lock);
2872 }
2873
2874 /* Find a compressor. */
2875 static struct compressor *
2876 find_compressor(int type)
2877 {
2878         struct compressor_entry *ce;
2879         struct compressor *cp = NULL;
2880
2881         spin_lock(&compressor_list_lock);
2882         ce = find_comp_entry(type);
2883         if (ce) {
2884                 cp = ce->comp;
2885                 if (!try_module_get(cp->owner))
2886                         cp = NULL;
2887         }
2888         spin_unlock(&compressor_list_lock);
2889         return cp;
2890 }
2891
2892 /*
2893  * Miscelleneous stuff.
2894  */
2895
2896 static void
2897 ppp_get_stats(struct ppp *ppp, struct ppp_stats *st)
2898 {
2899         struct slcompress *vj = ppp->vj;
2900
2901         memset(st, 0, sizeof(*st));
2902         st->p.ppp_ipackets = ppp->stats64.rx_packets;
2903         st->p.ppp_ierrors = ppp->dev->stats.rx_errors;
2904         st->p.ppp_ibytes = ppp->stats64.rx_bytes;
2905         st->p.ppp_opackets = ppp->stats64.tx_packets;
2906         st->p.ppp_oerrors = ppp->dev->stats.tx_errors;
2907         st->p.ppp_obytes = ppp->stats64.tx_bytes;
2908         if (!vj)
2909                 return;
2910         st->vj.vjs_packets = vj->sls_o_compressed + vj->sls_o_uncompressed;
2911         st->vj.vjs_compressed = vj->sls_o_compressed;
2912         st->vj.vjs_searches = vj->sls_o_searches;
2913         st->vj.vjs_misses = vj->sls_o_misses;
2914         st->vj.vjs_errorin = vj->sls_i_error;
2915         st->vj.vjs_tossed = vj->sls_i_tossed;
2916         st->vj.vjs_uncompressedin = vj->sls_i_uncompressed;
2917         st->vj.vjs_compressedin = vj->sls_i_compressed;
2918 }
2919
2920 /*
2921  * Stuff for handling the lists of ppp units and channels
2922  * and for initialization.
2923  */
2924
2925 /*
2926  * Create a new ppp interface unit.  Fails if it can't allocate memory
2927  * or if there is already a unit with the requested number.
2928  * unit == -1 means allocate a new number.
2929  */
2930 static int ppp_create_interface(struct net *net, struct file *file, int *unit)
2931 {
2932         struct ppp_config conf = {
2933                 .file = file,
2934                 .unit = *unit,
2935                 .ifname_is_set = false,
2936         };
2937         struct net_device *dev;
2938         struct ppp *ppp;
2939         int err;
2940
2941         dev = alloc_netdev(sizeof(struct ppp), "", NET_NAME_ENUM, ppp_setup);
2942         if (!dev) {
2943                 err = -ENOMEM;
2944                 goto err;
2945         }
2946         dev_net_set(dev, net);
2947         dev->rtnl_link_ops = &ppp_link_ops;
2948
2949         rtnl_lock();
2950
2951         err = ppp_dev_configure(net, dev, &conf);
2952         if (err < 0)
2953                 goto err_dev;
2954         ppp = netdev_priv(dev);
2955         *unit = ppp->file.index;
2956
2957         rtnl_unlock();
2958
2959         return 0;
2960
2961 err_dev:
2962         rtnl_unlock();
2963         free_netdev(dev);
2964 err:
2965         return err;
2966 }
2967
2968 /*
2969  * Initialize a ppp_file structure.
2970  */
2971 static void
2972 init_ppp_file(struct ppp_file *pf, int kind)
2973 {
2974         pf->kind = kind;
2975         skb_queue_head_init(&pf->xq);
2976         skb_queue_head_init(&pf->rq);
2977         atomic_set(&pf->refcnt, 1);
2978         init_waitqueue_head(&pf->rwait);
2979 }
2980
2981 /*
2982  * Free the memory used by a ppp unit.  This is only called once
2983  * there are no channels connected to the unit and no file structs
2984  * that reference the unit.
2985  */
2986 static void ppp_destroy_interface(struct ppp *ppp)
2987 {
2988         atomic_dec(&ppp_unit_count);
2989
2990         if (!ppp->file.dead || ppp->n_channels) {
2991                 /* "can't happen" */
2992                 netdev_err(ppp->dev, "ppp: destroying ppp struct %p "
2993                            "but dead=%d n_channels=%d !\n",
2994                            ppp, ppp->file.dead, ppp->n_channels);
2995                 return;
2996         }
2997
2998         ppp_ccp_closed(ppp);
2999         if (ppp->vj) {
3000                 slhc_free(ppp->vj);
3001                 ppp->vj = NULL;
3002         }
3003         skb_queue_purge(&ppp->file.xq);
3004         skb_queue_purge(&ppp->file.rq);
3005 #ifdef CONFIG_PPP_MULTILINK
3006         skb_queue_purge(&ppp->mrq);
3007 #endif /* CONFIG_PPP_MULTILINK */
3008 #ifdef CONFIG_PPP_FILTER
3009         if (ppp->pass_filter) {
3010                 bpf_prog_destroy(ppp->pass_filter);
3011                 ppp->pass_filter = NULL;
3012         }
3013
3014         if (ppp->active_filter) {
3015                 bpf_prog_destroy(ppp->active_filter);
3016                 ppp->active_filter = NULL;
3017         }
3018 #endif /* CONFIG_PPP_FILTER */
3019
3020         kfree_skb(ppp->xmit_pending);
3021
3022         free_netdev(ppp->dev);
3023 }
3024
3025 /*
3026  * Locate an existing ppp unit.
3027  * The caller should have locked the all_ppp_mutex.
3028  */
3029 static struct ppp *
3030 ppp_find_unit(struct ppp_net *pn, int unit)
3031 {
3032         return unit_find(&pn->units_idr, unit);
3033 }
3034
3035 /*
3036  * Locate an existing ppp channel.
3037  * The caller should have locked the all_channels_lock.
3038  * First we look in the new_channels list, then in the
3039  * all_channels list.  If found in the new_channels list,
3040  * we move it to the all_channels list.  This is for speed
3041  * when we have a lot of channels in use.
3042  */
3043 static struct channel *
3044 ppp_find_channel(struct ppp_net *pn, int unit)
3045 {
3046         struct channel *pch;
3047
3048         list_for_each_entry(pch, &pn->new_channels, list) {
3049                 if (pch->file.index == unit) {
3050                         list_move(&pch->list, &pn->all_channels);
3051                         return pch;
3052                 }
3053         }
3054
3055         list_for_each_entry(pch, &pn->all_channels, list) {
3056                 if (pch->file.index == unit)
3057                         return pch;
3058         }
3059
3060         return NULL;
3061 }
3062
3063 /*
3064  * Connect a PPP channel to a PPP interface unit.
3065  */
3066 static int
3067 ppp_connect_channel(struct channel *pch, int unit)
3068 {
3069         struct ppp *ppp;
3070         struct ppp_net *pn;
3071         int ret = -ENXIO;
3072         int hdrlen;
3073
3074         pn = ppp_pernet(pch->chan_net);
3075
3076         mutex_lock(&pn->all_ppp_mutex);
3077         ppp = ppp_find_unit(pn, unit);
3078         if (!ppp)
3079                 goto out;
3080         write_lock_bh(&pch->upl);
3081         ret = -EINVAL;
3082         if (pch->ppp)
3083                 goto outl;
3084
3085         ppp_lock(ppp);
3086         if (pch->file.hdrlen > ppp->file.hdrlen)
3087                 ppp->file.hdrlen = pch->file.hdrlen;
3088         hdrlen = pch->file.hdrlen + 2;  /* for protocol bytes */
3089         if (hdrlen > ppp->dev->hard_header_len)
3090                 ppp->dev->hard_header_len = hdrlen;
3091         list_add_tail(&pch->clist, &ppp->channels);
3092         ++ppp->n_channels;
3093         pch->ppp = ppp;
3094         atomic_inc(&ppp->file.refcnt);
3095         ppp_unlock(ppp);
3096         ret = 0;
3097
3098  outl:
3099         write_unlock_bh(&pch->upl);
3100  out:
3101         mutex_unlock(&pn->all_ppp_mutex);
3102         return ret;
3103 }
3104
3105 /*
3106  * Disconnect a channel from its ppp unit.
3107  */
3108 static int
3109 ppp_disconnect_channel(struct channel *pch)
3110 {
3111         struct ppp *ppp;
3112         int err = -EINVAL;
3113
3114         write_lock_bh(&pch->upl);
3115         ppp = pch->ppp;
3116         pch->ppp = NULL;
3117         write_unlock_bh(&pch->upl);
3118         if (ppp) {
3119                 /* remove it from the ppp unit's list */
3120                 ppp_lock(ppp);
3121                 list_del(&pch->clist);
3122                 if (--ppp->n_channels == 0)
3123                         wake_up_interruptible(&ppp->file.rwait);
3124                 ppp_unlock(ppp);
3125                 if (atomic_dec_and_test(&ppp->file.refcnt))
3126                         ppp_destroy_interface(ppp);
3127                 err = 0;
3128         }
3129         return err;
3130 }
3131
3132 /*
3133  * Free up the resources used by a ppp channel.
3134  */
3135 static void ppp_destroy_channel(struct channel *pch)
3136 {
3137         put_net(pch->chan_net);
3138         pch->chan_net = NULL;
3139
3140         atomic_dec(&channel_count);
3141
3142         if (!pch->file.dead) {
3143                 /* "can't happen" */
3144                 pr_err("ppp: destroying undead channel %p !\n", pch);
3145                 return;
3146         }
3147         skb_queue_purge(&pch->file.xq);
3148         skb_queue_purge(&pch->file.rq);
3149         kfree(pch);
3150 }
3151
3152 static void __exit ppp_cleanup(void)
3153 {
3154         /* should never happen */
3155         if (atomic_read(&ppp_unit_count) || atomic_read(&channel_count))
3156                 pr_err("PPP: removing module but units remain!\n");
3157         rtnl_link_unregister(&ppp_link_ops);
3158         unregister_chrdev(PPP_MAJOR, "ppp");
3159         device_destroy(ppp_class, MKDEV(PPP_MAJOR, 0));
3160         class_destroy(ppp_class);
3161         unregister_pernet_device(&ppp_net_ops);
3162 }
3163
3164 /*
3165  * Units handling. Caller must protect concurrent access
3166  * by holding all_ppp_mutex
3167  */
3168
3169 /* associate pointer with specified number */
3170 static int unit_set(struct idr *p, void *ptr, int n)
3171 {
3172         int unit;
3173
3174         unit = idr_alloc(p, ptr, n, n + 1, GFP_KERNEL);
3175         if (unit == -ENOSPC)
3176                 unit = -EINVAL;
3177         return unit;
3178 }
3179
3180 /* get new free unit number and associate pointer with it */
3181 static int unit_get(struct idr *p, void *ptr)
3182 {
3183         return idr_alloc(p, ptr, 0, 0, GFP_KERNEL);
3184 }
3185
3186 /* put unit number back to a pool */
3187 static void unit_put(struct idr *p, int n)
3188 {
3189         idr_remove(p, n);
3190 }
3191
3192 /* get pointer associated with the number */
3193 static void *unit_find(struct idr *p, int n)
3194 {
3195         return idr_find(p, n);
3196 }
3197
3198 /* Module/initialization stuff */
3199
3200 module_init(ppp_init);
3201 module_exit(ppp_cleanup);
3202
3203 EXPORT_SYMBOL(ppp_register_net_channel);
3204 EXPORT_SYMBOL(ppp_register_channel);
3205 EXPORT_SYMBOL(ppp_unregister_channel);
3206 EXPORT_SYMBOL(ppp_channel_index);
3207 EXPORT_SYMBOL(ppp_unit_number);
3208 EXPORT_SYMBOL(ppp_dev_name);
3209 EXPORT_SYMBOL(ppp_input);
3210 EXPORT_SYMBOL(ppp_input_error);
3211 EXPORT_SYMBOL(ppp_output_wakeup);
3212 EXPORT_SYMBOL(ppp_register_compressor);
3213 EXPORT_SYMBOL(ppp_unregister_compressor);
3214 MODULE_LICENSE("GPL");
3215 MODULE_ALIAS_CHARDEV(PPP_MAJOR, 0);
3216 MODULE_ALIAS_RTNL_LINK("ppp");
3217 MODULE_ALIAS("devname:ppp");