1 // SPDX-License-Identifier: GPL-2.0-only
2 /* Connection state tracking for netfilter. This is separated from,
3 but required by, the NAT layer; it can also be used by an iptables
4 extension. */
5
6 /* (C) 1999-2001 Paul `Rusty' Russell
7 * (C) 2002-2006 Netfilter Core Team <coreteam@netfilter.org>
8 * (C) 2003,2004 USAGI/WIDE Project <http://www.linux-ipv6.org>
9 * (C) 2005-2012 Patrick McHardy <kaber@trash.net>
10 */
11
12 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
13
14 #include <linux/types.h>
15 #include <linux/netfilter.h>
16 #include <linux/module.h>
17 #include <linux/sched.h>
18 #include <linux/skbuff.h>
19 #include <linux/proc_fs.h>
20 #include <linux/vmalloc.h>
21 #include <linux/stddef.h>
22 #include <linux/slab.h>
23 #include <linux/random.h>
24 #include <linux/siphash.h>
25 #include <linux/err.h>
26 #include <linux/percpu.h>
27 #include <linux/moduleparam.h>
28 #include <linux/notifier.h>
29 #include <linux/kernel.h>
30 #include <linux/netdevice.h>
31 #include <linux/socket.h>
32 #include <linux/mm.h>
33 #include <linux/nsproxy.h>
34 #include <linux/rculist_nulls.h>
35
36 #include <net/netfilter/nf_conntrack.h>
37 #include <net/netfilter/nf_conntrack_bpf.h>
38 #include <net/netfilter/nf_conntrack_l4proto.h>
39 #include <net/netfilter/nf_conntrack_expect.h>
40 #include <net/netfilter/nf_conntrack_helper.h>
41 #include <net/netfilter/nf_conntrack_core.h>
42 #include <net/netfilter/nf_conntrack_extend.h>
43 #include <net/netfilter/nf_conntrack_acct.h>
44 #include <net/netfilter/nf_conntrack_ecache.h>
45 #include <net/netfilter/nf_conntrack_zones.h>
46 #include <net/netfilter/nf_conntrack_timestamp.h>
47 #include <net/netfilter/nf_conntrack_timeout.h>
48 #include <net/netfilter/nf_conntrack_labels.h>
49 #include <net/netfilter/nf_conntrack_synproxy.h>
50 #include <net/netfilter/nf_nat.h>
51 #include <net/netfilter/nf_nat_helper.h>
52 #include <net/netns/hash.h>
53 #include <net/ip.h>
54
55 #include "nf_internals.h"
56
57 __cacheline_aligned_in_smp spinlock_t nf_conntrack_locks[CONNTRACK_LOCKS];
58 EXPORT_SYMBOL_GPL(nf_conntrack_locks);
59
60 __cacheline_aligned_in_smp DEFINE_SPINLOCK(nf_conntrack_expect_lock);
61 EXPORT_SYMBOL_GPL(nf_conntrack_expect_lock);
62
63 struct hlist_nulls_head *nf_conntrack_hash __read_mostly;
64 EXPORT_SYMBOL_GPL(nf_conntrack_hash);
65
66 struct conntrack_gc_work {
67 struct delayed_work dwork;
68 u32 next_bucket;
69 u32 avg_timeout;
70 u32 count;
71 u32 start_time;
72 bool exiting;
73 bool early_drop;
74 };
75
76 static __read_mostly struct kmem_cache *nf_conntrack_cachep;
77 static DEFINE_SPINLOCK(nf_conntrack_locks_all_lock);
78 static __read_mostly bool nf_conntrack_locks_all;
79
80 /* serialize hash resizes and nf_ct_iterate_cleanup */
81 static DEFINE_MUTEX(nf_conntrack_mutex);
82
83 #define GC_SCAN_INTERVAL_MAX (60ul * HZ)
84 #define GC_SCAN_INTERVAL_MIN (1ul * HZ)
85
86 /* clamp timeouts to this value (TCP unacked) */
87 #define GC_SCAN_INTERVAL_CLAMP (300ul * HZ)
88
89 /* Initial bias pretending we have 100 entries at the upper bound so we don't
90 * wakeup often just because we have three entries with a 1s timeout while still
91 * allowing non-idle machines to wakeup more often when needed.
92 */
93 #define GC_SCAN_INITIAL_COUNT 100
94 #define GC_SCAN_INTERVAL_INIT GC_SCAN_INTERVAL_MAX
95
96 #define GC_SCAN_MAX_DURATION msecs_to_jiffies(10)
97 #define GC_SCAN_EXPIRED_MAX (64000u / HZ)
98
99 #define MIN_CHAINLEN 50u
100 #define MAX_CHAINLEN (80u - MIN_CHAINLEN)
101
102 static struct conntrack_gc_work conntrack_gc_work;
103
nf_conntrack_lock(spinlock_t * lock)104 void nf_conntrack_lock(spinlock_t *lock) __acquires(lock)
105 {
106 /* 1) Acquire the lock */
107 spin_lock(lock);
108
109 /* 2) read nf_conntrack_locks_all, with ACQUIRE semantics
110 * It pairs with the smp_store_release() in nf_conntrack_all_unlock()
111 */
112 if (likely(smp_load_acquire(&nf_conntrack_locks_all) == false))
113 return;
114
115 /* fast path failed, unlock */
116 spin_unlock(lock);
117
118 /* Slow path 1) get global lock */
119 spin_lock(&nf_conntrack_locks_all_lock);
120
121 /* Slow path 2) get the lock we want */
122 spin_lock(lock);
123
124 /* Slow path 3) release the global lock */
125 spin_unlock(&nf_conntrack_locks_all_lock);
126 }
127 EXPORT_SYMBOL_GPL(nf_conntrack_lock);
128
nf_conntrack_double_unlock(unsigned int h1,unsigned int h2)129 static void nf_conntrack_double_unlock(unsigned int h1, unsigned int h2)
130 {
131 h1 %= CONNTRACK_LOCKS;
132 h2 %= CONNTRACK_LOCKS;
133 spin_unlock(&nf_conntrack_locks[h1]);
134 if (h1 != h2)
135 spin_unlock(&nf_conntrack_locks[h2]);
136 }
137
138 /* return true if we need to recompute hashes (in case hash table was resized) */
nf_conntrack_double_lock(unsigned int h1,unsigned int h2,unsigned int sequence)139 static bool nf_conntrack_double_lock(unsigned int h1, unsigned int h2,
140 unsigned int sequence)
141 {
142 h1 %= CONNTRACK_LOCKS;
143 h2 %= CONNTRACK_LOCKS;
144 if (h1 <= h2) {
145 nf_conntrack_lock(&nf_conntrack_locks[h1]);
146 if (h1 != h2)
147 spin_lock_nested(&nf_conntrack_locks[h2],
148 SINGLE_DEPTH_NESTING);
149 } else {
150 nf_conntrack_lock(&nf_conntrack_locks[h2]);
151 spin_lock_nested(&nf_conntrack_locks[h1],
152 SINGLE_DEPTH_NESTING);
153 }
154 if (read_seqcount_retry(&nf_conntrack_generation, sequence)) {
155 nf_conntrack_double_unlock(h1, h2);
156 return true;
157 }
158 return false;
159 }
160
nf_conntrack_all_lock(void)161 static void nf_conntrack_all_lock(void)
162 __acquires(&nf_conntrack_locks_all_lock)
163 {
164 int i;
165
166 spin_lock(&nf_conntrack_locks_all_lock);
167
168 /* For nf_contrack_locks_all, only the latest time when another
169 * CPU will see an update is controlled, by the "release" of the
170 * spin_lock below.
171 * The earliest time is not controlled, an thus KCSAN could detect
172 * a race when nf_conntract_lock() reads the variable.
173 * WRITE_ONCE() is used to ensure the compiler will not
174 * optimize the write.
175 */
176 WRITE_ONCE(nf_conntrack_locks_all, true);
177
178 for (i = 0; i < CONNTRACK_LOCKS; i++) {
179 spin_lock(&nf_conntrack_locks[i]);
180
181 /* This spin_unlock provides the "release" to ensure that
182 * nf_conntrack_locks_all==true is visible to everyone that
183 * acquired spin_lock(&nf_conntrack_locks[]).
184 */
185 spin_unlock(&nf_conntrack_locks[i]);
186 }
187 }
188
nf_conntrack_all_unlock(void)189 static void nf_conntrack_all_unlock(void)
190 __releases(&nf_conntrack_locks_all_lock)
191 {
192 /* All prior stores must be complete before we clear
193 * 'nf_conntrack_locks_all'. Otherwise nf_conntrack_lock()
194 * might observe the false value but not the entire
195 * critical section.
196 * It pairs with the smp_load_acquire() in nf_conntrack_lock()
197 */
198 smp_store_release(&nf_conntrack_locks_all, false);
199 spin_unlock(&nf_conntrack_locks_all_lock);
200 }
201
202 unsigned int nf_conntrack_htable_size __read_mostly;
203 EXPORT_SYMBOL_GPL(nf_conntrack_htable_size);
204
205 unsigned int nf_conntrack_max __read_mostly;
206 EXPORT_SYMBOL_GPL(nf_conntrack_max);
207 seqcount_spinlock_t nf_conntrack_generation __read_mostly;
208 static siphash_aligned_key_t nf_conntrack_hash_rnd;
209
hash_conntrack_raw(const struct nf_conntrack_tuple * tuple,unsigned int zoneid,const struct net * net)210 static u32 hash_conntrack_raw(const struct nf_conntrack_tuple *tuple,
211 unsigned int zoneid,
212 const struct net *net)
213 {
214 siphash_key_t key;
215
216 get_random_once(&nf_conntrack_hash_rnd, sizeof(nf_conntrack_hash_rnd));
217
218 key = nf_conntrack_hash_rnd;
219
220 key.key[0] ^= zoneid;
221 key.key[1] ^= net_hash_mix(net);
222
223 return siphash((void *)tuple,
224 offsetofend(struct nf_conntrack_tuple, dst.__nfct_hash_offsetend),
225 &key);
226 }
227
scale_hash(u32 hash)228 static u32 scale_hash(u32 hash)
229 {
230 return reciprocal_scale(hash, nf_conntrack_htable_size);
231 }
232
__hash_conntrack(const struct net * net,const struct nf_conntrack_tuple * tuple,unsigned int zoneid,unsigned int size)233 static u32 __hash_conntrack(const struct net *net,
234 const struct nf_conntrack_tuple *tuple,
235 unsigned int zoneid,
236 unsigned int size)
237 {
238 return reciprocal_scale(hash_conntrack_raw(tuple, zoneid, net), size);
239 }
240
hash_conntrack(const struct net * net,const struct nf_conntrack_tuple * tuple,unsigned int zoneid)241 static u32 hash_conntrack(const struct net *net,
242 const struct nf_conntrack_tuple *tuple,
243 unsigned int zoneid)
244 {
245 return scale_hash(hash_conntrack_raw(tuple, zoneid, net));
246 }
247
nf_ct_get_tuple_ports(const struct sk_buff * skb,unsigned int dataoff,struct nf_conntrack_tuple * tuple)248 static bool nf_ct_get_tuple_ports(const struct sk_buff *skb,
249 unsigned int dataoff,
250 struct nf_conntrack_tuple *tuple)
251 { struct {
252 __be16 sport;
253 __be16 dport;
254 } _inet_hdr, *inet_hdr;
255
256 /* Actually only need first 4 bytes to get ports. */
257 inet_hdr = skb_header_pointer(skb, dataoff, sizeof(_inet_hdr), &_inet_hdr);
258 if (!inet_hdr)
259 return false;
260
261 tuple->src.u.udp.port = inet_hdr->sport;
262 tuple->dst.u.udp.port = inet_hdr->dport;
263 return true;
264 }
265
266 static bool
nf_ct_get_tuple(const struct sk_buff * skb,unsigned int nhoff,unsigned int dataoff,u_int16_t l3num,u_int8_t protonum,struct net * net,struct nf_conntrack_tuple * tuple)267 nf_ct_get_tuple(const struct sk_buff *skb,
268 unsigned int nhoff,
269 unsigned int dataoff,
270 u_int16_t l3num,
271 u_int8_t protonum,
272 struct net *net,
273 struct nf_conntrack_tuple *tuple)
274 {
275 unsigned int size;
276 const __be32 *ap;
277 __be32 _addrs[8];
278
279 memset(tuple, 0, sizeof(*tuple));
280
281 tuple->src.l3num = l3num;
282 switch (l3num) {
283 case NFPROTO_IPV4:
284 nhoff += offsetof(struct iphdr, saddr);
285 size = 2 * sizeof(__be32);
286 break;
287 case NFPROTO_IPV6:
288 nhoff += offsetof(struct ipv6hdr, saddr);
289 size = sizeof(_addrs);
290 break;
291 default:
292 return true;
293 }
294
295 ap = skb_header_pointer(skb, nhoff, size, _addrs);
296 if (!ap)
297 return false;
298
299 switch (l3num) {
300 case NFPROTO_IPV4:
301 tuple->src.u3.ip = ap[0];
302 tuple->dst.u3.ip = ap[1];
303 break;
304 case NFPROTO_IPV6:
305 memcpy(tuple->src.u3.ip6, ap, sizeof(tuple->src.u3.ip6));
306 memcpy(tuple->dst.u3.ip6, ap + 4, sizeof(tuple->dst.u3.ip6));
307 break;
308 }
309
310 tuple->dst.protonum = protonum;
311 tuple->dst.dir = IP_CT_DIR_ORIGINAL;
312
313 switch (protonum) {
314 #if IS_ENABLED(CONFIG_IPV6)
315 case IPPROTO_ICMPV6:
316 return icmpv6_pkt_to_tuple(skb, dataoff, net, tuple);
317 #endif
318 case IPPROTO_ICMP:
319 return icmp_pkt_to_tuple(skb, dataoff, net, tuple);
320 #ifdef CONFIG_NF_CT_PROTO_GRE
321 case IPPROTO_GRE:
322 return gre_pkt_to_tuple(skb, dataoff, net, tuple);
323 #endif
324 case IPPROTO_TCP:
325 case IPPROTO_UDP:
326 #ifdef CONFIG_NF_CT_PROTO_SCTP
327 case IPPROTO_SCTP:
328 #endif
329 /* fallthrough */
330 return nf_ct_get_tuple_ports(skb, dataoff, tuple);
331 default:
332 break;
333 }
334
335 return true;
336 }
337
ipv4_get_l4proto(const struct sk_buff * skb,unsigned int nhoff,u_int8_t * protonum)338 static int ipv4_get_l4proto(const struct sk_buff *skb, unsigned int nhoff,
339 u_int8_t *protonum)
340 {
341 int dataoff = -1;
342 const struct iphdr *iph;
343 struct iphdr _iph;
344
345 iph = skb_header_pointer(skb, nhoff, sizeof(_iph), &_iph);
346 if (!iph)
347 return -1;
348
349 /* Conntrack defragments packets, we might still see fragments
350 * inside ICMP packets though.
351 */
352 if (iph->frag_off & htons(IP_OFFSET))
353 return -1;
354
355 dataoff = nhoff + (iph->ihl << 2);
356 *protonum = iph->protocol;
357
358 /* Check bogus IP headers */
359 if (dataoff > skb->len) {
360 pr_debug("bogus IPv4 packet: nhoff %u, ihl %u, skblen %u\n",
361 nhoff, iph->ihl << 2, skb->len);
362 return -1;
363 }
364 return dataoff;
365 }
366
367 #if IS_ENABLED(CONFIG_IPV6)
ipv6_get_l4proto(const struct sk_buff * skb,unsigned int nhoff,u8 * protonum)368 static int ipv6_get_l4proto(const struct sk_buff *skb, unsigned int nhoff,
369 u8 *protonum)
370 {
371 int protoff = -1;
372 unsigned int extoff = nhoff + sizeof(struct ipv6hdr);
373 __be16 frag_off;
374 u8 nexthdr;
375
376 if (skb_copy_bits(skb, nhoff + offsetof(struct ipv6hdr, nexthdr),
377 &nexthdr, sizeof(nexthdr)) != 0) {
378 pr_debug("can't get nexthdr\n");
379 return -1;
380 }
381 protoff = ipv6_skip_exthdr(skb, extoff, &nexthdr, &frag_off);
382 /*
383 * (protoff == skb->len) means the packet has not data, just
384 * IPv6 and possibly extensions headers, but it is tracked anyway
385 */
386 if (protoff < 0 || (frag_off & htons(~0x7)) != 0) {
387 pr_debug("can't find proto in pkt\n");
388 return -1;
389 }
390
391 *protonum = nexthdr;
392 return protoff;
393 }
394 #endif
395
get_l4proto(const struct sk_buff * skb,unsigned int nhoff,u8 pf,u8 * l4num)396 static int get_l4proto(const struct sk_buff *skb,
397 unsigned int nhoff, u8 pf, u8 *l4num)
398 {
399 switch (pf) {
400 case NFPROTO_IPV4:
401 return ipv4_get_l4proto(skb, nhoff, l4num);
402 #if IS_ENABLED(CONFIG_IPV6)
403 case NFPROTO_IPV6:
404 return ipv6_get_l4proto(skb, nhoff, l4num);
405 #endif
406 default:
407 *l4num = 0;
408 break;
409 }
410 return -1;
411 }
412
nf_ct_get_tuplepr(const struct sk_buff * skb,unsigned int nhoff,u_int16_t l3num,struct net * net,struct nf_conntrack_tuple * tuple)413 bool nf_ct_get_tuplepr(const struct sk_buff *skb, unsigned int nhoff,
414 u_int16_t l3num,
415 struct net *net, struct nf_conntrack_tuple *tuple)
416 {
417 u8 protonum;
418 int protoff;
419
420 protoff = get_l4proto(skb, nhoff, l3num, &protonum);
421 if (protoff <= 0)
422 return false;
423
424 return nf_ct_get_tuple(skb, nhoff, protoff, l3num, protonum, net, tuple);
425 }
426 EXPORT_SYMBOL_GPL(nf_ct_get_tuplepr);
427
428 bool
nf_ct_invert_tuple(struct nf_conntrack_tuple * inverse,const struct nf_conntrack_tuple * orig)429 nf_ct_invert_tuple(struct nf_conntrack_tuple *inverse,
430 const struct nf_conntrack_tuple *orig)
431 {
432 memset(inverse, 0, sizeof(*inverse));
433
434 inverse->src.l3num = orig->src.l3num;
435
436 switch (orig->src.l3num) {
437 case NFPROTO_IPV4:
438 inverse->src.u3.ip = orig->dst.u3.ip;
439 inverse->dst.u3.ip = orig->src.u3.ip;
440 break;
441 case NFPROTO_IPV6:
442 inverse->src.u3.in6 = orig->dst.u3.in6;
443 inverse->dst.u3.in6 = orig->src.u3.in6;
444 break;
445 default:
446 break;
447 }
448
449 inverse->dst.dir = !orig->dst.dir;
450
451 inverse->dst.protonum = orig->dst.protonum;
452
453 switch (orig->dst.protonum) {
454 case IPPROTO_ICMP:
455 return nf_conntrack_invert_icmp_tuple(inverse, orig);
456 #if IS_ENABLED(CONFIG_IPV6)
457 case IPPROTO_ICMPV6:
458 return nf_conntrack_invert_icmpv6_tuple(inverse, orig);
459 #endif
460 }
461
462 inverse->src.u.all = orig->dst.u.all;
463 inverse->dst.u.all = orig->src.u.all;
464 return true;
465 }
466 EXPORT_SYMBOL_GPL(nf_ct_invert_tuple);
467
468 /* Generate a almost-unique pseudo-id for a given conntrack.
469 *
470 * intentionally doesn't re-use any of the seeds used for hash
471 * table location, we assume id gets exposed to userspace.
472 *
473 * Following nf_conn items do not change throughout lifetime
474 * of the nf_conn:
475 *
476 * 1. nf_conn address
477 * 2. nf_conn->master address (normally NULL)
478 * 3. the associated net namespace
479 * 4. the original direction tuple
480 */
nf_ct_get_id(const struct nf_conn * ct)481 u32 nf_ct_get_id(const struct nf_conn *ct)
482 {
483 static siphash_aligned_key_t ct_id_seed;
484 unsigned long a, b, c, d;
485
486 net_get_random_once(&ct_id_seed, sizeof(ct_id_seed));
487
488 a = (unsigned long)ct;
489 b = (unsigned long)ct->master;
490 c = (unsigned long)nf_ct_net(ct);
491 d = (unsigned long)siphash(&ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
492 sizeof(ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple),
493 &ct_id_seed);
494 #ifdef CONFIG_64BIT
495 return siphash_4u64((u64)a, (u64)b, (u64)c, (u64)d, &ct_id_seed);
496 #else
497 return siphash_4u32((u32)a, (u32)b, (u32)c, (u32)d, &ct_id_seed);
498 #endif
499 }
500 EXPORT_SYMBOL_GPL(nf_ct_get_id);
501
nf_conntrack_get_id(const struct nf_conntrack * nfct)502 static u32 nf_conntrack_get_id(const struct nf_conntrack *nfct)
503 {
504 return nf_ct_get_id(nf_ct_to_nf_conn(nfct));
505 }
506
507 static void
clean_from_lists(struct nf_conn * ct)508 clean_from_lists(struct nf_conn *ct)
509 {
510 hlist_nulls_del_rcu(&ct->tuplehash[IP_CT_DIR_ORIGINAL].hnnode);
511 hlist_nulls_del_rcu(&ct->tuplehash[IP_CT_DIR_REPLY].hnnode);
512
513 /* Destroy all pending expectations */
514 nf_ct_remove_expectations(ct);
515 }
516
517 #define NFCT_ALIGN(len) (((len) + NFCT_INFOMASK) & ~NFCT_INFOMASK)
518
519 /* Released via nf_ct_destroy() */
nf_ct_tmpl_alloc(struct net * net,const struct nf_conntrack_zone * zone,gfp_t flags)520 struct nf_conn *nf_ct_tmpl_alloc(struct net *net,
521 const struct nf_conntrack_zone *zone,
522 gfp_t flags)
523 {
524 struct nf_conn *tmpl, *p;
525
526 if (ARCH_KMALLOC_MINALIGN <= NFCT_INFOMASK) {
527 tmpl = kzalloc(sizeof(*tmpl) + NFCT_INFOMASK, flags);
528 if (!tmpl)
529 return NULL;
530
531 p = tmpl;
532 tmpl = (struct nf_conn *)NFCT_ALIGN((unsigned long)p);
533 if (tmpl != p)
534 tmpl->proto.tmpl_padto = (char *)tmpl - (char *)p;
535 } else {
536 tmpl = kzalloc_obj(*tmpl, flags);
537 if (!tmpl)
538 return NULL;
539 }
540
541 tmpl->status = IPS_TEMPLATE;
542 write_pnet(&tmpl->ct_net, net);
543 nf_ct_zone_add(tmpl, zone);
544 refcount_set(&tmpl->ct_general.use, 1);
545
546 return tmpl;
547 }
548 EXPORT_SYMBOL_GPL(nf_ct_tmpl_alloc);
549
nf_ct_tmpl_free(struct nf_conn * tmpl)550 void nf_ct_tmpl_free(struct nf_conn *tmpl)
551 {
552 kfree(tmpl->ext);
553
554 if (ARCH_KMALLOC_MINALIGN <= NFCT_INFOMASK)
555 kfree((char *)tmpl - tmpl->proto.tmpl_padto);
556 else
557 kfree(tmpl);
558 }
559 EXPORT_SYMBOL_GPL(nf_ct_tmpl_free);
560
destroy_gre_conntrack(struct nf_conn * ct)561 static void destroy_gre_conntrack(struct nf_conn *ct)
562 {
563 #ifdef CONFIG_NF_CT_PROTO_GRE
564 struct nf_conn *master = ct->master;
565 struct nf_conn_help *help;
566
567 if (!master)
568 return;
569
570 help = nfct_help(master);
571 if (help) {
572 struct nf_conntrack_helper *helper;
573
574 rcu_read_lock();
575 helper = rcu_dereference(help->helper);
576 /* Only pptp helper has a destroy callback. */
577 if (helper && helper->destroy)
578 nf_ct_gre_keymap_destroy(master);
579
580 rcu_read_unlock();
581 }
582 #endif
583 }
584
warn_on_keymap_list_leak(const struct net * net)585 static void warn_on_keymap_list_leak(const struct net *net)
586 {
587 #ifdef CONFIG_NF_CT_PROTO_GRE
588 WARN_ON_ONCE(!list_empty(&net->ct.nf_ct_proto.gre.keymap_list));
589 #endif
590 }
591
nf_ct_destroy(struct nf_conntrack * nfct)592 void nf_ct_destroy(struct nf_conntrack *nfct)
593 {
594 struct nf_conn *ct = (struct nf_conn *)nfct;
595
596 WARN_ON(refcount_read(&nfct->use) != 0);
597
598 if (unlikely(nf_ct_is_template(ct))) {
599 nf_ct_tmpl_free(ct);
600 return;
601 }
602
603 if (unlikely(nf_ct_protonum(ct) == IPPROTO_GRE))
604 destroy_gre_conntrack(ct);
605
606 /* Expectations will have been removed in clean_from_lists,
607 * except TFTP can create an expectation on the first packet,
608 * before connection is in the list, so we need to clean here,
609 * too.
610 */
611 nf_ct_remove_expectations(ct);
612
613 if (ct->master)
614 nf_ct_put(ct->master);
615
616 nf_conntrack_free(ct);
617 }
618 EXPORT_SYMBOL(nf_ct_destroy);
619
__nf_ct_delete_from_lists(struct nf_conn * ct)620 static void __nf_ct_delete_from_lists(struct nf_conn *ct)
621 {
622 struct net *net = nf_ct_net(ct);
623 unsigned int hash, reply_hash;
624 unsigned int sequence;
625
626 do {
627 sequence = read_seqcount_begin(&nf_conntrack_generation);
628 hash = hash_conntrack(net,
629 &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
630 nf_ct_zone_id(nf_ct_zone(ct), IP_CT_DIR_ORIGINAL));
631 reply_hash = hash_conntrack(net,
632 &ct->tuplehash[IP_CT_DIR_REPLY].tuple,
633 nf_ct_zone_id(nf_ct_zone(ct), IP_CT_DIR_REPLY));
634 } while (nf_conntrack_double_lock(hash, reply_hash, sequence));
635
636 clean_from_lists(ct);
637 nf_conntrack_double_unlock(hash, reply_hash);
638 }
639
nf_ct_delete_from_lists(struct nf_conn * ct)640 static void nf_ct_delete_from_lists(struct nf_conn *ct)
641 {
642 nf_ct_helper_destroy(ct);
643 local_bh_disable();
644
645 __nf_ct_delete_from_lists(ct);
646
647 local_bh_enable();
648 }
649
nf_ct_add_to_ecache_list(struct nf_conn * ct)650 static void nf_ct_add_to_ecache_list(struct nf_conn *ct)
651 {
652 #ifdef CONFIG_NF_CONNTRACK_EVENTS
653 struct nf_conntrack_net *cnet = nf_ct_pernet(nf_ct_net(ct));
654
655 spin_lock(&cnet->ecache.dying_lock);
656 hlist_nulls_add_head_rcu(&ct->tuplehash[IP_CT_DIR_ORIGINAL].hnnode,
657 &cnet->ecache.dying_list);
658 spin_unlock(&cnet->ecache.dying_lock);
659 #endif
660 }
661
nf_ct_delete(struct nf_conn * ct,u32 portid,int report)662 bool nf_ct_delete(struct nf_conn *ct, u32 portid, int report)
663 {
664 struct nf_conn_tstamp *tstamp;
665 struct net *net;
666
667 if (test_and_set_bit(IPS_DYING_BIT, &ct->status))
668 return false;
669
670 tstamp = nf_conn_tstamp_find(ct);
671 if (tstamp) {
672 s32 timeout = READ_ONCE(ct->timeout) - nfct_time_stamp;
673
674 tstamp->stop = ktime_get_real_ns();
675 if (timeout < 0)
676 tstamp->stop -= jiffies_to_nsecs(-timeout);
677 }
678
679 if (nf_conntrack_event_report(IPCT_DESTROY, ct,
680 portid, report) < 0) {
681 /* destroy event was not delivered. nf_ct_put will
682 * be done by event cache worker on redelivery.
683 */
684 nf_ct_helper_destroy(ct);
685 local_bh_disable();
686 __nf_ct_delete_from_lists(ct);
687 nf_ct_add_to_ecache_list(ct);
688 local_bh_enable();
689
690 nf_conntrack_ecache_work(nf_ct_net(ct), NFCT_ECACHE_DESTROY_FAIL);
691 return false;
692 }
693
694 net = nf_ct_net(ct);
695 if (nf_conntrack_ecache_dwork_pending(net))
696 nf_conntrack_ecache_work(net, NFCT_ECACHE_DESTROY_SENT);
697 nf_ct_delete_from_lists(ct);
698 nf_ct_put(ct);
699 return true;
700 }
701 EXPORT_SYMBOL_GPL(nf_ct_delete);
702
703 static inline bool
nf_ct_key_equal(struct nf_conntrack_tuple_hash * h,const struct nf_conntrack_tuple * tuple,const struct nf_conntrack_zone * zone,const struct net * net)704 nf_ct_key_equal(struct nf_conntrack_tuple_hash *h,
705 const struct nf_conntrack_tuple *tuple,
706 const struct nf_conntrack_zone *zone,
707 const struct net *net)
708 {
709 struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
710
711 /* A conntrack can be recreated with the equal tuple,
712 * so we need to check that the conntrack is confirmed
713 */
714 return nf_ct_tuple_equal(tuple, &h->tuple) &&
715 nf_ct_zone_equal(ct, zone, NF_CT_DIRECTION(h)) &&
716 nf_ct_is_confirmed(ct) &&
717 net_eq(net, nf_ct_net(ct));
718 }
719
720 static inline bool
nf_ct_match(const struct nf_conn * ct1,const struct nf_conn * ct2)721 nf_ct_match(const struct nf_conn *ct1, const struct nf_conn *ct2)
722 {
723 return nf_ct_tuple_equal(&ct1->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
724 &ct2->tuplehash[IP_CT_DIR_ORIGINAL].tuple) &&
725 nf_ct_tuple_equal(&ct1->tuplehash[IP_CT_DIR_REPLY].tuple,
726 &ct2->tuplehash[IP_CT_DIR_REPLY].tuple) &&
727 nf_ct_zone_equal(ct1, nf_ct_zone(ct2), IP_CT_DIR_ORIGINAL) &&
728 nf_ct_zone_equal(ct1, nf_ct_zone(ct2), IP_CT_DIR_REPLY) &&
729 net_eq(nf_ct_net(ct1), nf_ct_net(ct2));
730 }
731
732 /* caller must hold rcu readlock and none of the nf_conntrack_locks */
nf_ct_gc_expired(struct nf_conn * ct)733 static void nf_ct_gc_expired(struct nf_conn *ct)
734 {
735 if (!refcount_inc_not_zero(&ct->ct_general.use))
736 return;
737
738 /* load ->status after refcount increase */
739 smp_acquire__after_ctrl_dep();
740
741 if (nf_ct_should_gc(ct))
742 nf_ct_kill(ct);
743
744 nf_ct_put(ct);
745 }
746
747 /*
748 * Warning :
749 * - Caller must take a reference on returned object
750 * and recheck nf_ct_tuple_equal(tuple, &h->tuple)
751 */
752 static struct nf_conntrack_tuple_hash *
____nf_conntrack_find(struct net * net,const struct nf_conntrack_zone * zone,const struct nf_conntrack_tuple * tuple,u32 hash)753 ____nf_conntrack_find(struct net *net, const struct nf_conntrack_zone *zone,
754 const struct nf_conntrack_tuple *tuple, u32 hash)
755 {
756 struct nf_conntrack_tuple_hash *h;
757 struct hlist_nulls_head *ct_hash;
758 struct hlist_nulls_node *n;
759 unsigned int bucket, hsize;
760
761 begin:
762 nf_conntrack_get_ht(&ct_hash, &hsize);
763 bucket = reciprocal_scale(hash, hsize);
764
765 hlist_nulls_for_each_entry_rcu(h, n, &ct_hash[bucket], hnnode) {
766 struct nf_conn *ct;
767
768 ct = nf_ct_tuplehash_to_ctrack(h);
769 if (nf_ct_is_expired(ct)) {
770 nf_ct_gc_expired(ct);
771 continue;
772 }
773
774 if (nf_ct_key_equal(h, tuple, zone, net))
775 return h;
776 }
777 /*
778 * if the nulls value we got at the end of this lookup is
779 * not the expected one, we must restart lookup.
780 * We probably met an item that was moved to another chain.
781 */
782 if (get_nulls_value(n) != bucket) {
783 NF_CT_STAT_INC_ATOMIC(net, search_restart);
784 goto begin;
785 }
786
787 return NULL;
788 }
789
790 /* Find a connection corresponding to a tuple. */
791 static struct nf_conntrack_tuple_hash *
__nf_conntrack_find_get(struct net * net,const struct nf_conntrack_zone * zone,const struct nf_conntrack_tuple * tuple,u32 hash)792 __nf_conntrack_find_get(struct net *net, const struct nf_conntrack_zone *zone,
793 const struct nf_conntrack_tuple *tuple, u32 hash)
794 {
795 struct nf_conntrack_tuple_hash *h;
796 struct nf_conn *ct;
797
798 h = ____nf_conntrack_find(net, zone, tuple, hash);
799 if (h) {
800 /* We have a candidate that matches the tuple we're interested
801 * in, try to obtain a reference and re-check tuple
802 */
803 ct = nf_ct_tuplehash_to_ctrack(h);
804 if (likely(refcount_inc_not_zero(&ct->ct_general.use))) {
805 /* re-check key after refcount */
806 smp_acquire__after_ctrl_dep();
807
808 if (likely(nf_ct_key_equal(h, tuple, zone, net)))
809 return h;
810
811 /* TYPESAFE_BY_RCU recycled the candidate */
812 nf_ct_put(ct);
813 }
814
815 h = NULL;
816 }
817
818 return h;
819 }
820
821 struct nf_conntrack_tuple_hash *
nf_conntrack_find_get(struct net * net,const struct nf_conntrack_zone * zone,const struct nf_conntrack_tuple * tuple)822 nf_conntrack_find_get(struct net *net, const struct nf_conntrack_zone *zone,
823 const struct nf_conntrack_tuple *tuple)
824 {
825 unsigned int rid, zone_id = nf_ct_zone_id(zone, IP_CT_DIR_ORIGINAL);
826 struct nf_conntrack_tuple_hash *thash;
827
828 rcu_read_lock();
829
830 thash = __nf_conntrack_find_get(net, zone, tuple,
831 hash_conntrack_raw(tuple, zone_id, net));
832
833 if (thash)
834 goto out_unlock;
835
836 rid = nf_ct_zone_id(zone, IP_CT_DIR_REPLY);
837 if (rid != zone_id)
838 thash = __nf_conntrack_find_get(net, zone, tuple,
839 hash_conntrack_raw(tuple, rid, net));
840
841 out_unlock:
842 rcu_read_unlock();
843 return thash;
844 }
845 EXPORT_SYMBOL_GPL(nf_conntrack_find_get);
846
__nf_conntrack_hash_insert(struct nf_conn * ct,unsigned int hash,unsigned int reply_hash)847 static void __nf_conntrack_hash_insert(struct nf_conn *ct,
848 unsigned int hash,
849 unsigned int reply_hash)
850 {
851 hlist_nulls_add_head_rcu(&ct->tuplehash[IP_CT_DIR_ORIGINAL].hnnode,
852 &nf_conntrack_hash[hash]);
853 hlist_nulls_add_head_rcu(&ct->tuplehash[IP_CT_DIR_REPLY].hnnode,
854 &nf_conntrack_hash[reply_hash]);
855 }
856
857 int
nf_conntrack_hash_check_insert(struct nf_conn * ct)858 nf_conntrack_hash_check_insert(struct nf_conn *ct)
859 {
860 const struct nf_conntrack_zone *zone;
861 struct net *net = nf_ct_net(ct);
862 unsigned int hash, reply_hash;
863 struct nf_conntrack_tuple_hash *h;
864 struct hlist_nulls_node *n;
865 unsigned int max_chainlen;
866 unsigned int chainlen = 0;
867 unsigned int sequence;
868 int err = -EEXIST;
869
870 zone = nf_ct_zone(ct);
871
872 local_bh_disable();
873 do {
874 sequence = read_seqcount_begin(&nf_conntrack_generation);
875 hash = hash_conntrack(net,
876 &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
877 nf_ct_zone_id(nf_ct_zone(ct), IP_CT_DIR_ORIGINAL));
878 reply_hash = hash_conntrack(net,
879 &ct->tuplehash[IP_CT_DIR_REPLY].tuple,
880 nf_ct_zone_id(nf_ct_zone(ct), IP_CT_DIR_REPLY));
881 } while (nf_conntrack_double_lock(hash, reply_hash, sequence));
882
883 max_chainlen = MIN_CHAINLEN + get_random_u32_below(MAX_CHAINLEN);
884
885 /* See if there's one in the list already, including reverse */
886 hlist_nulls_for_each_entry(h, n, &nf_conntrack_hash[hash], hnnode) {
887 if (nf_ct_key_equal(h, &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
888 zone, net))
889 goto out;
890
891 if (chainlen++ > max_chainlen)
892 goto chaintoolong;
893 }
894
895 chainlen = 0;
896
897 hlist_nulls_for_each_entry(h, n, &nf_conntrack_hash[reply_hash], hnnode) {
898 if (nf_ct_key_equal(h, &ct->tuplehash[IP_CT_DIR_REPLY].tuple,
899 zone, net))
900 goto out;
901 if (chainlen++ > max_chainlen)
902 goto chaintoolong;
903 }
904
905 smp_wmb();
906 /* The caller holds a reference to this object */
907 refcount_set(&ct->ct_general.use, 2);
908 __nf_conntrack_hash_insert(ct, hash, reply_hash);
909 nf_conntrack_double_unlock(hash, reply_hash);
910 NF_CT_STAT_INC(net, insert);
911 local_bh_enable();
912
913 return 0;
914 chaintoolong:
915 NF_CT_STAT_INC(net, chaintoolong);
916 err = -ENOSPC;
917 out:
918 nf_conntrack_double_unlock(hash, reply_hash);
919 local_bh_enable();
920 return err;
921 }
922 EXPORT_SYMBOL_GPL(nf_conntrack_hash_check_insert);
923
nf_ct_acct_add(struct nf_conn * ct,u32 dir,unsigned int packets,unsigned int bytes)924 void nf_ct_acct_add(struct nf_conn *ct, u32 dir, unsigned int packets,
925 unsigned int bytes)
926 {
927 struct nf_conn_acct *acct;
928
929 acct = nf_conn_acct_find(ct);
930 if (acct) {
931 struct nf_conn_counter *counter = acct->counter;
932
933 atomic64_add(packets, &counter[dir].packets);
934 atomic64_add(bytes, &counter[dir].bytes);
935 }
936 }
937 EXPORT_SYMBOL_GPL(nf_ct_acct_add);
938
nf_ct_acct_merge(struct nf_conn * ct,enum ip_conntrack_info ctinfo,const struct nf_conn * loser_ct)939 static void nf_ct_acct_merge(struct nf_conn *ct, enum ip_conntrack_info ctinfo,
940 const struct nf_conn *loser_ct)
941 {
942 struct nf_conn_acct *acct;
943
944 acct = nf_conn_acct_find(loser_ct);
945 if (acct) {
946 struct nf_conn_counter *counter = acct->counter;
947 unsigned int bytes;
948
949 /* u32 should be fine since we must have seen one packet. */
950 bytes = atomic64_read(&counter[CTINFO2DIR(ctinfo)].bytes);
951 nf_ct_acct_update(ct, CTINFO2DIR(ctinfo), bytes);
952 }
953 }
954
__nf_conntrack_insert_prepare(struct nf_conn * ct)955 static void __nf_conntrack_insert_prepare(struct nf_conn *ct)
956 {
957 struct nf_conn_tstamp *tstamp;
958
959 refcount_inc(&ct->ct_general.use);
960
961 /* set conntrack timestamp, if enabled. */
962 tstamp = nf_conn_tstamp_find(ct);
963 if (tstamp)
964 tstamp->start = ktime_get_real_ns();
965 }
966
967 /**
968 * nf_ct_match_reverse - check if ct1 and ct2 refer to identical flow
969 * @ct1: conntrack in hash table to check against
970 * @ct2: merge candidate
971 *
972 * returns true if ct1 and ct2 happen to refer to the same flow, but
973 * in opposing directions, i.e.
974 * ct1: a:b -> c:d
975 * ct2: c:d -> a:b
976 * for both directions. If so, @ct2 should not have been created
977 * as the skb should have been picked up as ESTABLISHED flow.
978 * But ct1 was not yet committed to hash table before skb that created
979 * ct2 had arrived.
980 *
981 * Note we don't compare netns because ct entries in different net
982 * namespace cannot clash to begin with.
983 *
984 * @return: true if ct1 and ct2 are identical when swapping origin/reply.
985 */
986 static bool
nf_ct_match_reverse(const struct nf_conn * ct1,const struct nf_conn * ct2)987 nf_ct_match_reverse(const struct nf_conn *ct1, const struct nf_conn *ct2)
988 {
989 u16 id1, id2;
990
991 if (!nf_ct_tuple_equal(&ct1->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
992 &ct2->tuplehash[IP_CT_DIR_REPLY].tuple))
993 return false;
994
995 if (!nf_ct_tuple_equal(&ct1->tuplehash[IP_CT_DIR_REPLY].tuple,
996 &ct2->tuplehash[IP_CT_DIR_ORIGINAL].tuple))
997 return false;
998
999 id1 = nf_ct_zone_id(nf_ct_zone(ct1), IP_CT_DIR_ORIGINAL);
1000 id2 = nf_ct_zone_id(nf_ct_zone(ct2), IP_CT_DIR_REPLY);
1001 if (id1 != id2)
1002 return false;
1003
1004 id1 = nf_ct_zone_id(nf_ct_zone(ct1), IP_CT_DIR_REPLY);
1005 id2 = nf_ct_zone_id(nf_ct_zone(ct2), IP_CT_DIR_ORIGINAL);
1006
1007 return id1 == id2;
1008 }
1009
nf_ct_can_merge(const struct nf_conn * ct,const struct nf_conn * loser_ct)1010 static int nf_ct_can_merge(const struct nf_conn *ct,
1011 const struct nf_conn *loser_ct)
1012 {
1013 return nf_ct_match(ct, loser_ct) ||
1014 nf_ct_match_reverse(ct, loser_ct);
1015 }
1016
1017 /* caller must hold locks to prevent concurrent changes */
__nf_ct_resolve_clash(struct sk_buff * skb,struct nf_conntrack_tuple_hash * h)1018 static int __nf_ct_resolve_clash(struct sk_buff *skb,
1019 struct nf_conntrack_tuple_hash *h)
1020 {
1021 /* This is the conntrack entry already in hashes that won race. */
1022 struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
1023 enum ip_conntrack_info ctinfo;
1024 struct nf_conn *loser_ct;
1025
1026 loser_ct = nf_ct_get(skb, &ctinfo);
1027
1028 if (nf_ct_can_merge(ct, loser_ct)) {
1029 struct net *net = nf_ct_net(ct);
1030
1031 nf_conntrack_get(&ct->ct_general);
1032
1033 nf_ct_acct_merge(ct, ctinfo, loser_ct);
1034 nf_reset_ct(skb);
1035 nf_ct_set(skb, ct, ctinfo);
1036
1037 NF_CT_STAT_INC(net, clash_resolve);
1038 return NF_ACCEPT;
1039 }
1040
1041 return NF_DROP;
1042 }
1043
1044 /**
1045 * nf_ct_resolve_clash_harder - attempt to insert clashing conntrack entry
1046 *
1047 * @skb: skb that causes the collision
1048 * @repl_idx: hash slot for reply direction
1049 *
1050 * Called when origin or reply direction had a clash.
1051 * The skb can be handled without packet drop provided the reply direction
1052 * is unique or there the existing entry has the identical tuple in both
1053 * directions.
1054 *
1055 * Caller must hold conntrack table locks to prevent concurrent updates.
1056 *
1057 * Returns NF_DROP if the clash could not be handled.
1058 */
nf_ct_resolve_clash_harder(struct sk_buff * skb,u32 repl_idx)1059 static int nf_ct_resolve_clash_harder(struct sk_buff *skb, u32 repl_idx)
1060 {
1061 struct nf_conn *loser_ct = (struct nf_conn *)skb_nfct(skb);
1062 const struct nf_conntrack_zone *zone;
1063 struct nf_conntrack_tuple_hash *h;
1064 struct hlist_nulls_node *n;
1065 struct net *net;
1066
1067 zone = nf_ct_zone(loser_ct);
1068 net = nf_ct_net(loser_ct);
1069
1070 /* Reply direction must never result in a clash, unless both origin
1071 * and reply tuples are identical.
1072 */
1073 hlist_nulls_for_each_entry(h, n, &nf_conntrack_hash[repl_idx], hnnode) {
1074 if (nf_ct_key_equal(h,
1075 &loser_ct->tuplehash[IP_CT_DIR_REPLY].tuple,
1076 zone, net))
1077 return __nf_ct_resolve_clash(skb, h);
1078 }
1079
1080 /* We want the clashing entry to go away real soon: 1 second timeout. */
1081 WRITE_ONCE(loser_ct->timeout, nfct_time_stamp + HZ);
1082
1083 /* IPS_NAT_CLASH removes the entry automatically on the first
1084 * reply. Also prevents UDP tracker from moving the entry to
1085 * ASSURED state, i.e. the entry can always be evicted under
1086 * pressure.
1087 */
1088 loser_ct->status |= IPS_FIXED_TIMEOUT | IPS_NAT_CLASH;
1089
1090 __nf_conntrack_insert_prepare(loser_ct);
1091
1092 /* fake add for ORIGINAL dir: we want lookups to only find the entry
1093 * already in the table. This also hides the clashing entry from
1094 * ctnetlink iteration, i.e. conntrack -L won't show them.
1095 */
1096 hlist_nulls_add_fake(&loser_ct->tuplehash[IP_CT_DIR_ORIGINAL].hnnode);
1097
1098 hlist_nulls_add_head_rcu(&loser_ct->tuplehash[IP_CT_DIR_REPLY].hnnode,
1099 &nf_conntrack_hash[repl_idx]);
1100 /* confirmed bit must be set after hlist add, not before:
1101 * loser_ct can still be visible to other cpu due to
1102 * SLAB_TYPESAFE_BY_RCU.
1103 */
1104 smp_mb__before_atomic();
1105 set_bit(IPS_CONFIRMED_BIT, &loser_ct->status);
1106
1107 NF_CT_STAT_INC(net, clash_resolve);
1108 return NF_ACCEPT;
1109 }
1110
1111 /**
1112 * nf_ct_resolve_clash - attempt to handle clash without packet drop
1113 *
1114 * @skb: skb that causes the clash
1115 * @h: tuplehash of the clashing entry already in table
1116 * @reply_hash: hash slot for reply direction
1117 *
1118 * A conntrack entry can be inserted to the connection tracking table
1119 * if there is no existing entry with an identical tuple.
1120 *
1121 * If there is one, @skb (and the associated, unconfirmed conntrack) has
1122 * to be dropped. In case @skb is retransmitted, next conntrack lookup
1123 * will find the already-existing entry.
1124 *
1125 * The major problem with such packet drop is the extra delay added by
1126 * the packet loss -- it will take some time for a retransmit to occur
1127 * (or the sender to time out when waiting for a reply).
1128 *
1129 * This function attempts to handle the situation without packet drop.
1130 *
1131 * If @skb has no NAT transformation or if the colliding entries are
1132 * exactly the same, only the to-be-confirmed conntrack entry is discarded
1133 * and @skb is associated with the conntrack entry already in the table.
1134 *
1135 * Failing that, the new, unconfirmed conntrack is still added to the table
1136 * provided that the collision only occurs in the ORIGINAL direction.
1137 * The new entry will be added only in the non-clashing REPLY direction,
1138 * so packets in the ORIGINAL direction will continue to match the existing
1139 * entry. The new entry will also have a fixed timeout so it expires --
1140 * due to the collision, it will only see reply traffic.
1141 *
1142 * Returns NF_DROP if the clash could not be resolved.
1143 */
1144 static __cold noinline int
nf_ct_resolve_clash(struct sk_buff * skb,struct nf_conntrack_tuple_hash * h,u32 reply_hash)1145 nf_ct_resolve_clash(struct sk_buff *skb, struct nf_conntrack_tuple_hash *h,
1146 u32 reply_hash)
1147 {
1148 /* This is the conntrack entry already in hashes that won race. */
1149 struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
1150 const struct nf_conntrack_l4proto *l4proto;
1151 enum ip_conntrack_info ctinfo;
1152 struct nf_conn *loser_ct;
1153 struct net *net;
1154 int ret;
1155
1156 loser_ct = nf_ct_get(skb, &ctinfo);
1157 net = nf_ct_net(loser_ct);
1158
1159 l4proto = nf_ct_l4proto_find(nf_ct_protonum(ct));
1160 if (!l4proto->allow_clash)
1161 goto drop;
1162
1163 ret = __nf_ct_resolve_clash(skb, h);
1164 if (ret == NF_ACCEPT)
1165 return ret;
1166
1167 ret = nf_ct_resolve_clash_harder(skb, reply_hash);
1168 if (ret == NF_ACCEPT)
1169 return ret;
1170
1171 drop:
1172 NF_CT_STAT_INC(net, drop);
1173 NF_CT_STAT_INC(net, insert_failed);
1174 return NF_DROP;
1175 }
1176
1177 /* Confirm a connection given skb; places it in hash table */
1178 int
__nf_conntrack_confirm(struct sk_buff * skb)1179 __nf_conntrack_confirm(struct sk_buff *skb)
1180 {
1181 unsigned int chainlen = 0, sequence, max_chainlen;
1182 const struct nf_conntrack_zone *zone;
1183 unsigned int hash, reply_hash;
1184 struct nf_conntrack_tuple_hash *h;
1185 struct nf_conn *ct;
1186 struct nf_conn_help *help;
1187 struct hlist_nulls_node *n;
1188 enum ip_conntrack_info ctinfo;
1189 struct net *net;
1190 int ret = NF_DROP;
1191
1192 ct = nf_ct_get(skb, &ctinfo);
1193 net = nf_ct_net(ct);
1194
1195 /* ipt_REJECT uses nf_conntrack_attach to attach related
1196 ICMP/TCP RST packets in other direction. Actual packet
1197 which created connection will be IP_CT_NEW or for an
1198 expected connection, IP_CT_RELATED. */
1199 if (CTINFO2DIR(ctinfo) != IP_CT_DIR_ORIGINAL)
1200 return NF_ACCEPT;
1201
1202 zone = nf_ct_zone(ct);
1203 local_bh_disable();
1204
1205 do {
1206 sequence = read_seqcount_begin(&nf_conntrack_generation);
1207 /* reuse the hash saved before */
1208 hash = *(unsigned long *)&ct->tuplehash[IP_CT_DIR_REPLY].hnnode.pprev;
1209 hash = scale_hash(hash);
1210 reply_hash = hash_conntrack(net,
1211 &ct->tuplehash[IP_CT_DIR_REPLY].tuple,
1212 nf_ct_zone_id(nf_ct_zone(ct), IP_CT_DIR_REPLY));
1213 } while (nf_conntrack_double_lock(hash, reply_hash, sequence));
1214
1215 /* We're not in hash table, and we refuse to set up related
1216 * connections for unconfirmed conns. But packet copies and
1217 * REJECT will give spurious warnings here.
1218 */
1219
1220 /* Another skb with the same unconfirmed conntrack may
1221 * win the race. This may happen for bridge(br_flood)
1222 * or broadcast/multicast packets do skb_clone with
1223 * unconfirmed conntrack.
1224 */
1225 if (unlikely(nf_ct_is_confirmed(ct))) {
1226 WARN_ON_ONCE(1);
1227 nf_conntrack_double_unlock(hash, reply_hash);
1228 local_bh_enable();
1229 return NF_DROP;
1230 }
1231
1232 /* We have to check the DYING flag after unlink to prevent
1233 * a race against nf_ct_get_next_corpse() possibly called from
1234 * user context, else we insert an already 'dead' hash, blocking
1235 * further use of that particular connection -JM.
1236 */
1237 if (unlikely(nf_ct_is_dying(ct))) {
1238 NF_CT_STAT_INC(net, insert_failed);
1239 goto dying;
1240 }
1241
1242 max_chainlen = MIN_CHAINLEN + get_random_u32_below(MAX_CHAINLEN);
1243 /* See if there's one in the list already, including reverse:
1244 NAT could have grabbed it without realizing, since we're
1245 not in the hash. If there is, we lost race. */
1246 hlist_nulls_for_each_entry(h, n, &nf_conntrack_hash[hash], hnnode) {
1247 if (nf_ct_key_equal(h, &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
1248 zone, net))
1249 goto out;
1250 if (chainlen++ > max_chainlen)
1251 goto chaintoolong;
1252 }
1253
1254 chainlen = 0;
1255 hlist_nulls_for_each_entry(h, n, &nf_conntrack_hash[reply_hash], hnnode) {
1256 if (nf_ct_key_equal(h, &ct->tuplehash[IP_CT_DIR_REPLY].tuple,
1257 zone, net))
1258 goto out;
1259 if (chainlen++ > max_chainlen) {
1260 chaintoolong:
1261 NF_CT_STAT_INC(net, chaintoolong);
1262 NF_CT_STAT_INC(net, insert_failed);
1263 ret = NF_DROP;
1264 goto dying;
1265 }
1266 }
1267
1268 /* Timeout is relative to confirmation time, not original
1269 setting time, otherwise we'd get timer wrap in
1270 weird delay cases. */
1271 ct->timeout += nfct_time_stamp;
1272
1273 __nf_conntrack_insert_prepare(ct);
1274
1275 /* Since the lookup is lockless, hash insertion must be done after
1276 * setting ct->timeout. The RCU barriers guarantee that no other CPU
1277 * can find the conntrack before the above stores are visible.
1278 */
1279 __nf_conntrack_hash_insert(ct, hash, reply_hash);
1280
1281 /* IPS_CONFIRMED unset means 'ct not (yet) in hash', conntrack lookups
1282 * skip entries that lack this bit. This happens when a CPU is looking
1283 * at a stale entry that is being recycled due to SLAB_TYPESAFE_BY_RCU
1284 * or when another CPU encounters this entry right after the insertion
1285 * but before the set-confirm-bit below. This bit must not be set until
1286 * after __nf_conntrack_hash_insert().
1287 */
1288 smp_mb__before_atomic();
1289 set_bit(IPS_CONFIRMED_BIT, &ct->status);
1290
1291 nf_conntrack_double_unlock(hash, reply_hash);
1292 local_bh_enable();
1293
1294 help = nfct_help(ct);
1295 if (help && help->helper)
1296 nf_conntrack_event_cache(IPCT_HELPER, ct);
1297
1298 nf_conntrack_event_cache(master_ct(ct) ?
1299 IPCT_RELATED : IPCT_NEW, ct);
1300 return NF_ACCEPT;
1301
1302 out:
1303 ret = nf_ct_resolve_clash(skb, h, reply_hash);
1304 dying:
1305 nf_conntrack_double_unlock(hash, reply_hash);
1306 local_bh_enable();
1307 return ret;
1308 }
1309 EXPORT_SYMBOL_GPL(__nf_conntrack_confirm);
1310
1311 /* Returns true if a connection corresponds to the tuple (required
1312 for NAT). */
1313 int
nf_conntrack_tuple_taken(const struct nf_conntrack_tuple * tuple,const struct nf_conn * ignored_conntrack)1314 nf_conntrack_tuple_taken(const struct nf_conntrack_tuple *tuple,
1315 const struct nf_conn *ignored_conntrack)
1316 {
1317 struct net *net = nf_ct_net(ignored_conntrack);
1318 const struct nf_conntrack_zone *zone;
1319 struct nf_conntrack_tuple_hash *h;
1320 struct hlist_nulls_head *ct_hash;
1321 unsigned int hash, hsize;
1322 struct hlist_nulls_node *n;
1323 struct nf_conn *ct;
1324
1325 zone = nf_ct_zone(ignored_conntrack);
1326
1327 rcu_read_lock();
1328 begin:
1329 nf_conntrack_get_ht(&ct_hash, &hsize);
1330 hash = __hash_conntrack(net, tuple, nf_ct_zone_id(zone, IP_CT_DIR_REPLY), hsize);
1331
1332 hlist_nulls_for_each_entry_rcu(h, n, &ct_hash[hash], hnnode) {
1333 ct = nf_ct_tuplehash_to_ctrack(h);
1334
1335 if (ct == ignored_conntrack)
1336 continue;
1337
1338 if (nf_ct_is_expired(ct)) {
1339 nf_ct_gc_expired(ct);
1340 continue;
1341 }
1342
1343 if (nf_ct_key_equal(h, tuple, zone, net)) {
1344 /* Tuple is taken already, so caller will need to find
1345 * a new source port to use.
1346 *
1347 * Only exception:
1348 * If the *original tuples* are identical, then both
1349 * conntracks refer to the same flow.
1350 * This is a rare situation, it can occur e.g. when
1351 * more than one UDP packet is sent from same socket
1352 * in different threads.
1353 *
1354 * Let nf_ct_resolve_clash() deal with this later.
1355 */
1356 if (nf_ct_tuple_equal(&ignored_conntrack->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
1357 &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple) &&
1358 nf_ct_zone_equal(ct, zone, IP_CT_DIR_ORIGINAL))
1359 continue;
1360
1361 NF_CT_STAT_INC_ATOMIC(net, found);
1362 rcu_read_unlock();
1363 return 1;
1364 }
1365 }
1366
1367 if (get_nulls_value(n) != hash) {
1368 NF_CT_STAT_INC_ATOMIC(net, search_restart);
1369 goto begin;
1370 }
1371
1372 rcu_read_unlock();
1373
1374 return 0;
1375 }
1376 EXPORT_SYMBOL_GPL(nf_conntrack_tuple_taken);
1377
1378 #define NF_CT_EVICTION_RANGE 8
1379
1380 /* There's a small race here where we may free a just-assured
1381 connection. Too bad: we're in trouble anyway. */
early_drop_list(struct net * net,struct hlist_nulls_head * head)1382 static unsigned int early_drop_list(struct net *net,
1383 struct hlist_nulls_head *head)
1384 {
1385 struct nf_conntrack_tuple_hash *h;
1386 struct hlist_nulls_node *n;
1387 unsigned int drops = 0;
1388 struct nf_conn *tmp;
1389
1390 hlist_nulls_for_each_entry_rcu(h, n, head, hnnode) {
1391 tmp = nf_ct_tuplehash_to_ctrack(h);
1392
1393 if (nf_ct_is_expired(tmp)) {
1394 nf_ct_gc_expired(tmp);
1395 continue;
1396 }
1397
1398 if (test_bit(IPS_ASSURED_BIT, &tmp->status) ||
1399 !net_eq(nf_ct_net(tmp), net) ||
1400 nf_ct_is_dying(tmp))
1401 continue;
1402
1403 if (!refcount_inc_not_zero(&tmp->ct_general.use))
1404 continue;
1405
1406 /* load ->ct_net and ->status after refcount increase */
1407 smp_acquire__after_ctrl_dep();
1408
1409 /* kill only if still in same netns -- might have moved due to
1410 * SLAB_TYPESAFE_BY_RCU rules.
1411 *
1412 * We steal the timer reference. If that fails timer has
1413 * already fired or someone else deleted it. Just drop ref
1414 * and move to next entry.
1415 */
1416 if (net_eq(nf_ct_net(tmp), net) &&
1417 nf_ct_is_confirmed(tmp) &&
1418 nf_ct_delete(tmp, 0, 0))
1419 drops++;
1420
1421 nf_ct_put(tmp);
1422 }
1423
1424 return drops;
1425 }
1426
early_drop(struct net * net,unsigned int hash)1427 static noinline int early_drop(struct net *net, unsigned int hash)
1428 {
1429 unsigned int i, bucket;
1430
1431 for (i = 0; i < NF_CT_EVICTION_RANGE; i++) {
1432 struct hlist_nulls_head *ct_hash;
1433 unsigned int hsize, drops;
1434
1435 rcu_read_lock();
1436 nf_conntrack_get_ht(&ct_hash, &hsize);
1437 if (!i)
1438 bucket = reciprocal_scale(hash, hsize);
1439 else
1440 bucket = (bucket + 1) % hsize;
1441
1442 drops = early_drop_list(net, &ct_hash[bucket]);
1443 rcu_read_unlock();
1444
1445 if (drops) {
1446 NF_CT_STAT_ADD_ATOMIC(net, early_drop, drops);
1447 return true;
1448 }
1449 }
1450
1451 return false;
1452 }
1453
gc_worker_skip_ct(const struct nf_conn * ct)1454 static bool gc_worker_skip_ct(const struct nf_conn *ct)
1455 {
1456 return !nf_ct_is_confirmed(ct) || nf_ct_is_dying(ct);
1457 }
1458
gc_worker_can_early_drop(const struct nf_conn * ct)1459 static bool gc_worker_can_early_drop(const struct nf_conn *ct)
1460 {
1461 const struct nf_conntrack_l4proto *l4proto;
1462 u8 protonum = nf_ct_protonum(ct);
1463
1464 if (!test_bit(IPS_ASSURED_BIT, &ct->status))
1465 return true;
1466
1467 l4proto = nf_ct_l4proto_find(protonum);
1468 if (l4proto->can_early_drop && l4proto->can_early_drop(ct))
1469 return true;
1470
1471 return false;
1472 }
1473
nf_ct_help_gc(struct nf_conn * ct)1474 static void nf_ct_help_gc(struct nf_conn *ct)
1475 {
1476 struct nf_conn_help *help;
1477
1478 if (!refcount_inc_not_zero(&ct->ct_general.use))
1479 return;
1480
1481 /* load ->status after refcount increase */
1482 smp_acquire__after_ctrl_dep();
1483
1484 if (!nf_ct_is_confirmed(ct) || nf_ct_is_dying(ct)) {
1485 nf_ct_put(ct);
1486 return;
1487 }
1488
1489 /* re-check helper due to SLAB_TYPESAFE_BY_RCU */
1490 if (test_bit(IPS_HELPER_BIT, &ct->status)) {
1491 help = nfct_help(ct);
1492 if (help)
1493 nf_ct_expectation_gc(help);
1494 }
1495
1496 nf_ct_put(ct);
1497 }
1498
gc_worker(struct work_struct * work)1499 static void gc_worker(struct work_struct *work)
1500 {
1501 unsigned int i, hashsz, nf_conntrack_max95 = 0;
1502 u32 end_time, start_time = nfct_time_stamp;
1503 struct conntrack_gc_work *gc_work;
1504 unsigned int expired_count = 0;
1505 unsigned long next_run;
1506 s32 delta_time;
1507 long count;
1508
1509 gc_work = container_of(work, struct conntrack_gc_work, dwork.work);
1510
1511 i = gc_work->next_bucket;
1512 if (gc_work->early_drop)
1513 nf_conntrack_max95 = nf_conntrack_max / 100u * 95u;
1514
1515 if (i == 0) {
1516 gc_work->avg_timeout = GC_SCAN_INTERVAL_INIT;
1517 gc_work->count = GC_SCAN_INITIAL_COUNT;
1518 gc_work->start_time = start_time;
1519 }
1520
1521 next_run = gc_work->avg_timeout;
1522 count = gc_work->count;
1523
1524 end_time = start_time + GC_SCAN_MAX_DURATION;
1525
1526 do {
1527 struct nf_conntrack_tuple_hash *h;
1528 struct hlist_nulls_head *ct_hash;
1529 struct hlist_nulls_node *n;
1530 struct nf_conn *tmp;
1531
1532 rcu_read_lock();
1533
1534 nf_conntrack_get_ht(&ct_hash, &hashsz);
1535 if (i >= hashsz) {
1536 rcu_read_unlock();
1537 break;
1538 }
1539
1540 hlist_nulls_for_each_entry_rcu(h, n, &ct_hash[i], hnnode) {
1541 struct nf_conntrack_net *cnet;
1542 struct net *net;
1543 long expires;
1544
1545 tmp = nf_ct_tuplehash_to_ctrack(h);
1546
1547 if (expired_count > GC_SCAN_EXPIRED_MAX) {
1548 rcu_read_unlock();
1549
1550 gc_work->next_bucket = i;
1551 gc_work->avg_timeout = next_run;
1552 gc_work->count = count;
1553
1554 delta_time = nfct_time_stamp - gc_work->start_time;
1555
1556 /* re-sched immediately if total cycle time is exceeded */
1557 next_run = delta_time < (s32)GC_SCAN_INTERVAL_MAX;
1558 goto early_exit;
1559 }
1560
1561 if (nf_ct_is_expired(tmp)) {
1562 nf_ct_gc_expired(tmp);
1563 expired_count++;
1564 continue;
1565 }
1566
1567 expires = clamp(nf_ct_expires(tmp), GC_SCAN_INTERVAL_MIN, GC_SCAN_INTERVAL_CLAMP);
1568 expires = (expires - (long)next_run) / ++count;
1569 next_run += expires;
1570
1571 if (gc_worker_skip_ct(tmp))
1572 continue;
1573
1574 if (test_bit(IPS_HELPER_BIT, &tmp->status))
1575 nf_ct_help_gc(tmp);
1576
1577 if (nf_conntrack_max95 == 0)
1578 continue;
1579
1580 net = nf_ct_net(tmp);
1581 cnet = nf_ct_pernet(net);
1582 if (atomic_read(&cnet->count) < nf_conntrack_max95)
1583 continue;
1584
1585 /* need to take reference to avoid possible races */
1586 if (!refcount_inc_not_zero(&tmp->ct_general.use))
1587 continue;
1588
1589 /* load ->status after refcount increase */
1590 smp_acquire__after_ctrl_dep();
1591
1592 if (gc_worker_skip_ct(tmp)) {
1593 nf_ct_put(tmp);
1594 continue;
1595 }
1596
1597 if (gc_worker_can_early_drop(tmp)) {
1598 nf_ct_kill(tmp);
1599 expired_count++;
1600 }
1601
1602 nf_ct_put(tmp);
1603 }
1604
1605 /* could check get_nulls_value() here and restart if ct
1606 * was moved to another chain. But given gc is best-effort
1607 * we will just continue with next hash slot.
1608 */
1609 rcu_read_unlock();
1610 cond_resched();
1611 i++;
1612
1613 delta_time = nfct_time_stamp - end_time;
1614 if (delta_time > 0 && i < hashsz) {
1615 gc_work->avg_timeout = next_run;
1616 gc_work->count = count;
1617 gc_work->next_bucket = i;
1618 next_run = 0;
1619 goto early_exit;
1620 }
1621 } while (i < hashsz);
1622
1623 gc_work->next_bucket = 0;
1624
1625 next_run = clamp(next_run, GC_SCAN_INTERVAL_MIN, GC_SCAN_INTERVAL_MAX);
1626
1627 delta_time = max_t(s32, nfct_time_stamp - gc_work->start_time, 1);
1628 if (next_run > (unsigned long)delta_time)
1629 next_run -= delta_time;
1630 else
1631 next_run = 1;
1632
1633 early_exit:
1634 if (gc_work->exiting)
1635 return;
1636
1637 if (next_run)
1638 gc_work->early_drop = false;
1639
1640 queue_delayed_work(system_power_efficient_wq, &gc_work->dwork, next_run);
1641 }
1642
conntrack_gc_work_init(struct conntrack_gc_work * gc_work)1643 static void conntrack_gc_work_init(struct conntrack_gc_work *gc_work)
1644 {
1645 INIT_DELAYED_WORK(&gc_work->dwork, gc_worker);
1646 gc_work->exiting = false;
1647 }
1648
1649 static struct nf_conn *
__nf_conntrack_alloc(struct net * net,const struct nf_conntrack_zone * zone,const struct nf_conntrack_tuple * orig,const struct nf_conntrack_tuple * repl,gfp_t gfp,u32 hash)1650 __nf_conntrack_alloc(struct net *net,
1651 const struct nf_conntrack_zone *zone,
1652 const struct nf_conntrack_tuple *orig,
1653 const struct nf_conntrack_tuple *repl,
1654 gfp_t gfp, u32 hash)
1655 {
1656 struct nf_conntrack_net *cnet = nf_ct_pernet(net);
1657 unsigned int ct_count;
1658 struct nf_conn *ct;
1659
1660 /* We don't want any race condition at early drop stage */
1661 ct_count = atomic_inc_return(&cnet->count);
1662
1663 if (unlikely(ct_count > nf_conntrack_max)) {
1664 if (!early_drop(net, hash)) {
1665 if (!conntrack_gc_work.early_drop)
1666 conntrack_gc_work.early_drop = true;
1667 atomic_dec(&cnet->count);
1668 if (net == &init_net)
1669 net_warn_ratelimited("nf_conntrack: table full, dropping packet\n");
1670 else
1671 net_warn_ratelimited("nf_conntrack: table full in netns %u, dropping packet\n",
1672 net->ns.inum);
1673 return ERR_PTR(-ENOMEM);
1674 }
1675 }
1676
1677 /*
1678 * Do not use kmem_cache_zalloc(), as this cache uses
1679 * SLAB_TYPESAFE_BY_RCU.
1680 */
1681 ct = kmem_cache_alloc(nf_conntrack_cachep, gfp);
1682 if (ct == NULL)
1683 goto out;
1684
1685 spin_lock_init(&ct->lock);
1686 ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple = *orig;
1687 ct->tuplehash[IP_CT_DIR_ORIGINAL].hnnode.pprev = NULL;
1688 ct->tuplehash[IP_CT_DIR_REPLY].tuple = *repl;
1689 /* save hash for reusing when confirming */
1690 *(unsigned long *)(&ct->tuplehash[IP_CT_DIR_REPLY].hnnode.pprev) = hash;
1691 ct->status = 0;
1692 WRITE_ONCE(ct->timeout, 0);
1693 write_pnet(&ct->ct_net, net);
1694 memset_after(ct, 0, __nfct_init_offset);
1695
1696 nf_ct_zone_add(ct, zone);
1697
1698 /* Because we use RCU lookups, we set ct_general.use to zero before
1699 * this is inserted in any list.
1700 */
1701 refcount_set(&ct->ct_general.use, 0);
1702 return ct;
1703 out:
1704 atomic_dec(&cnet->count);
1705 return ERR_PTR(-ENOMEM);
1706 }
1707
nf_conntrack_alloc(struct net * net,const struct nf_conntrack_zone * zone,const struct nf_conntrack_tuple * orig,const struct nf_conntrack_tuple * repl,gfp_t gfp)1708 struct nf_conn *nf_conntrack_alloc(struct net *net,
1709 const struct nf_conntrack_zone *zone,
1710 const struct nf_conntrack_tuple *orig,
1711 const struct nf_conntrack_tuple *repl,
1712 gfp_t gfp)
1713 {
1714 return __nf_conntrack_alloc(net, zone, orig, repl, gfp, 0);
1715 }
1716 EXPORT_SYMBOL_GPL(nf_conntrack_alloc);
1717
nf_conntrack_free(struct nf_conn * ct)1718 void nf_conntrack_free(struct nf_conn *ct)
1719 {
1720 struct net *net = nf_ct_net(ct);
1721 struct nf_conntrack_net *cnet;
1722
1723 /* A freed object has refcnt == 0, that's
1724 * the golden rule for SLAB_TYPESAFE_BY_RCU
1725 */
1726 WARN_ON(refcount_read(&ct->ct_general.use) != 0);
1727
1728 rcu_read_lock();
1729 if (ct->status & IPS_SRC_NAT_DONE) {
1730 const struct nf_nat_hook *nat_hook;
1731
1732 nat_hook = rcu_dereference(nf_nat_hook);
1733 if (nat_hook)
1734 nat_hook->remove_nat_bysrc(ct);
1735 }
1736
1737 nf_ct_help_put(ct);
1738 nf_ct_timeout_put(ct);
1739 rcu_read_unlock();
1740
1741 kfree(ct->ext);
1742 kmem_cache_free(nf_conntrack_cachep, ct);
1743 cnet = nf_ct_pernet(net);
1744
1745 smp_mb__before_atomic();
1746 atomic_dec(&cnet->count);
1747 }
1748 EXPORT_SYMBOL_GPL(nf_conntrack_free);
1749
1750
1751 /* Allocate a new conntrack: we return -ENOMEM if classification
1752 failed due to stress. Otherwise it really is unclassifiable. */
1753 static noinline struct nf_conntrack_tuple_hash *
init_conntrack(struct net * net,struct nf_conn * tmpl,const struct nf_conntrack_tuple * tuple,struct sk_buff * skb,unsigned int dataoff,u32 hash)1754 init_conntrack(struct net *net, struct nf_conn *tmpl,
1755 const struct nf_conntrack_tuple *tuple,
1756 struct sk_buff *skb,
1757 unsigned int dataoff, u32 hash)
1758 {
1759 struct nf_conn *ct;
1760 struct nf_conn_help *help;
1761 struct nf_conntrack_tuple repl_tuple;
1762 #ifdef CONFIG_NF_CONNTRACK_EVENTS
1763 struct nf_conntrack_ecache *ecache;
1764 #endif
1765 struct nf_conntrack_expect *exp = NULL;
1766 const struct nf_conntrack_zone *zone;
1767 struct nf_conn_timeout *timeout_ext;
1768 struct nf_conntrack_zone tmp;
1769 struct nf_conntrack_net *cnet;
1770
1771 if (!nf_ct_invert_tuple(&repl_tuple, tuple))
1772 return NULL;
1773
1774 zone = nf_ct_zone_tmpl(tmpl, skb, &tmp);
1775 ct = __nf_conntrack_alloc(net, zone, tuple, &repl_tuple, GFP_ATOMIC,
1776 hash);
1777 if (IS_ERR(ct))
1778 return ERR_CAST(ct);
1779
1780 if (!nf_ct_add_synproxy(ct, tmpl)) {
1781 nf_conntrack_free(ct);
1782 return ERR_PTR(-ENOMEM);
1783 }
1784
1785 timeout_ext = tmpl ? nf_ct_timeout_find(tmpl) : NULL;
1786
1787 if (timeout_ext)
1788 nf_ct_timeout_ext_add(ct, rcu_dereference(timeout_ext->timeout),
1789 GFP_ATOMIC);
1790
1791 nf_ct_acct_ext_add(ct, GFP_ATOMIC);
1792 nf_ct_tstamp_ext_add(ct, GFP_ATOMIC);
1793 nf_ct_labels_ext_add(ct);
1794
1795 #ifdef CONFIG_NF_CONNTRACK_EVENTS
1796 ecache = tmpl ? nf_ct_ecache_find(tmpl) : NULL;
1797
1798 if ((ecache || net->ct.sysctl_events) &&
1799 !nf_ct_ecache_ext_add(ct, ecache ? ecache->ctmask : 0,
1800 ecache ? ecache->expmask : 0,
1801 GFP_ATOMIC)) {
1802 nf_conntrack_free(ct);
1803 return ERR_PTR(-ENOMEM);
1804 }
1805 #endif
1806
1807 cnet = nf_ct_pernet(net);
1808 if (cnet->expect_count) {
1809 spin_lock_bh(&nf_conntrack_expect_lock);
1810 exp = nf_ct_find_expectation(net, zone, tuple, !tmpl || nf_ct_is_confirmed(tmpl));
1811 if (exp) {
1812 struct nf_conntrack_helper *assign_helper;
1813
1814 /* Welcome, Mr. Bond. We've been expecting you... */
1815 __set_bit(IPS_EXPECTED_BIT, &ct->status);
1816 /* exp->master safe, refcnt bumped in nf_ct_find_expectation */
1817 ct->master = exp->master;
1818 assign_helper = rcu_dereference(exp->assign_helper);
1819 if (assign_helper) {
1820 help = nf_ct_helper_ext_add(ct, GFP_ATOMIC);
1821 if (help && refcount_inc_not_zero(&assign_helper->ct_refcnt))
1822 rcu_assign_pointer(help->helper, assign_helper);
1823 }
1824
1825 #ifdef CONFIG_NF_CONNTRACK_MARK
1826 ct->mark = READ_ONCE(exp->master->mark);
1827 #endif
1828 #ifdef CONFIG_NF_CONNTRACK_SECMARK
1829 ct->secmark = exp->master->secmark;
1830 #endif
1831 NF_CT_STAT_INC(net, expect_new);
1832 }
1833 spin_unlock_bh(&nf_conntrack_expect_lock);
1834 }
1835 if (!exp && tmpl)
1836 __nf_ct_try_assign_helper(ct, tmpl, GFP_ATOMIC);
1837
1838 /* Other CPU might have obtained a pointer to this object before it was
1839 * released. Because refcount is 0, refcount_inc_not_zero() will fail.
1840 *
1841 * After refcount_set(1) it will succeed; ensure that zeroing of
1842 * ct->status and the correct ct->net pointer are visible; else other
1843 * core might observe CONFIRMED bit which means the entry is valid and
1844 * in the hash table, but its not (anymore).
1845 */
1846 smp_wmb();
1847
1848 /* Now it is going to be associated with an sk_buff, set refcount to 1. */
1849 refcount_set(&ct->ct_general.use, 1);
1850
1851 if (exp) {
1852 if (exp->expectfn)
1853 exp->expectfn(ct, exp);
1854 nf_ct_expect_put(exp);
1855 }
1856
1857 return &ct->tuplehash[IP_CT_DIR_ORIGINAL];
1858 }
1859
1860 /* On success, returns 0, sets skb->_nfct | ctinfo */
1861 static int
resolve_normal_ct(struct nf_conn * tmpl,struct sk_buff * skb,unsigned int dataoff,u_int8_t protonum,const struct nf_hook_state * state)1862 resolve_normal_ct(struct nf_conn *tmpl,
1863 struct sk_buff *skb,
1864 unsigned int dataoff,
1865 u_int8_t protonum,
1866 const struct nf_hook_state *state)
1867 {
1868 const struct nf_conntrack_zone *zone;
1869 struct nf_conntrack_tuple tuple;
1870 struct nf_conntrack_tuple_hash *h;
1871 enum ip_conntrack_info ctinfo;
1872 struct nf_conntrack_zone tmp;
1873 u32 hash, zone_id, rid;
1874 struct nf_conn *ct;
1875
1876 if (!nf_ct_get_tuple(skb, skb_network_offset(skb),
1877 dataoff, state->pf, protonum, state->net,
1878 &tuple))
1879 return 0;
1880
1881 /* look for tuple match */
1882 zone = nf_ct_zone_tmpl(tmpl, skb, &tmp);
1883
1884 zone_id = nf_ct_zone_id(zone, IP_CT_DIR_ORIGINAL);
1885 hash = hash_conntrack_raw(&tuple, zone_id, state->net);
1886 h = __nf_conntrack_find_get(state->net, zone, &tuple, hash);
1887
1888 if (!h) {
1889 rid = nf_ct_zone_id(zone, IP_CT_DIR_REPLY);
1890 if (zone_id != rid) {
1891 u32 tmp = hash_conntrack_raw(&tuple, rid, state->net);
1892
1893 h = __nf_conntrack_find_get(state->net, zone, &tuple, tmp);
1894 }
1895 }
1896
1897 if (!h) {
1898 h = init_conntrack(state->net, tmpl, &tuple,
1899 skb, dataoff, hash);
1900 if (!h)
1901 return 0;
1902 if (IS_ERR(h))
1903 return PTR_ERR(h);
1904 }
1905 ct = nf_ct_tuplehash_to_ctrack(h);
1906
1907 /* It exists; we have (non-exclusive) reference. */
1908 if (NF_CT_DIRECTION(h) == IP_CT_DIR_REPLY) {
1909 ctinfo = IP_CT_ESTABLISHED_REPLY;
1910 } else {
1911 unsigned long status = READ_ONCE(ct->status);
1912
1913 /* Once we've had two way comms, always ESTABLISHED. */
1914 if (likely(status & IPS_SEEN_REPLY))
1915 ctinfo = IP_CT_ESTABLISHED;
1916 else if (status & IPS_EXPECTED)
1917 ctinfo = IP_CT_RELATED;
1918 else
1919 ctinfo = IP_CT_NEW;
1920 }
1921 nf_ct_set(skb, ct, ctinfo);
1922 return 0;
1923 }
1924
1925 /*
1926 * icmp packets need special treatment to handle error messages that are
1927 * related to a connection.
1928 *
1929 * Callers need to check if skb has a conntrack assigned when this
1930 * helper returns; in such case skb belongs to an already known connection.
1931 */
1932 static unsigned int __cold
nf_conntrack_handle_icmp(struct nf_conn * tmpl,struct sk_buff * skb,unsigned int dataoff,u8 protonum,const struct nf_hook_state * state)1933 nf_conntrack_handle_icmp(struct nf_conn *tmpl,
1934 struct sk_buff *skb,
1935 unsigned int dataoff,
1936 u8 protonum,
1937 const struct nf_hook_state *state)
1938 {
1939 int ret;
1940
1941 if (state->pf == NFPROTO_IPV4 && protonum == IPPROTO_ICMP)
1942 ret = nf_conntrack_icmpv4_error(tmpl, skb, dataoff, state);
1943 #if IS_ENABLED(CONFIG_IPV6)
1944 else if (state->pf == NFPROTO_IPV6 && protonum == IPPROTO_ICMPV6)
1945 ret = nf_conntrack_icmpv6_error(tmpl, skb, dataoff, state);
1946 #endif
1947 else
1948 return NF_ACCEPT;
1949
1950 if (ret <= 0)
1951 NF_CT_STAT_INC_ATOMIC(state->net, error);
1952
1953 return ret;
1954 }
1955
generic_packet(struct nf_conn * ct,struct sk_buff * skb,enum ip_conntrack_info ctinfo)1956 static int generic_packet(struct nf_conn *ct, struct sk_buff *skb,
1957 enum ip_conntrack_info ctinfo)
1958 {
1959 const unsigned int *timeout = nf_ct_timeout_lookup(ct);
1960
1961 if (!timeout)
1962 timeout = &nf_generic_pernet(nf_ct_net(ct))->timeout;
1963
1964 nf_ct_refresh_acct(ct, ctinfo, skb, *timeout);
1965 return NF_ACCEPT;
1966 }
1967
1968 /* Returns verdict for packet, or -1 for invalid. */
nf_conntrack_handle_packet(struct nf_conn * ct,struct sk_buff * skb,unsigned int dataoff,enum ip_conntrack_info ctinfo,const struct nf_hook_state * state)1969 static int nf_conntrack_handle_packet(struct nf_conn *ct,
1970 struct sk_buff *skb,
1971 unsigned int dataoff,
1972 enum ip_conntrack_info ctinfo,
1973 const struct nf_hook_state *state)
1974 {
1975 switch (nf_ct_protonum(ct)) {
1976 case IPPROTO_TCP:
1977 return nf_conntrack_tcp_packet(ct, skb, dataoff,
1978 ctinfo, state);
1979 case IPPROTO_UDP:
1980 return nf_conntrack_udp_packet(ct, skb, dataoff,
1981 ctinfo, state);
1982 case IPPROTO_ICMP:
1983 return nf_conntrack_icmp_packet(ct, skb, ctinfo, state);
1984 #if IS_ENABLED(CONFIG_IPV6)
1985 case IPPROTO_ICMPV6:
1986 return nf_conntrack_icmpv6_packet(ct, skb, ctinfo, state);
1987 #endif
1988 #ifdef CONFIG_NF_CT_PROTO_SCTP
1989 case IPPROTO_SCTP:
1990 return nf_conntrack_sctp_packet(ct, skb, dataoff,
1991 ctinfo, state);
1992 #endif
1993 #ifdef CONFIG_NF_CT_PROTO_GRE
1994 case IPPROTO_GRE:
1995 return nf_conntrack_gre_packet(ct, skb, dataoff,
1996 ctinfo, state);
1997 #endif
1998 }
1999
2000 return generic_packet(ct, skb, ctinfo);
2001 }
2002
2003 unsigned int
nf_conntrack_in(struct sk_buff * skb,const struct nf_hook_state * state)2004 nf_conntrack_in(struct sk_buff *skb, const struct nf_hook_state *state)
2005 {
2006 enum ip_conntrack_info ctinfo;
2007 struct nf_conn *ct, *tmpl;
2008 u_int8_t protonum;
2009 int dataoff, ret;
2010
2011 tmpl = nf_ct_get(skb, &ctinfo);
2012 if (tmpl || ctinfo == IP_CT_UNTRACKED) {
2013 /* Previously seen (loopback or untracked)? Ignore. */
2014 if ((tmpl && !nf_ct_is_template(tmpl)) ||
2015 ctinfo == IP_CT_UNTRACKED)
2016 return NF_ACCEPT;
2017 skb->_nfct = 0;
2018 }
2019
2020 /* rcu_read_lock()ed by nf_hook_thresh */
2021 dataoff = get_l4proto(skb, skb_network_offset(skb), state->pf, &protonum);
2022 if (dataoff <= 0) {
2023 NF_CT_STAT_INC_ATOMIC(state->net, invalid);
2024 ret = NF_ACCEPT;
2025 goto out;
2026 }
2027
2028 if (protonum == IPPROTO_ICMP || protonum == IPPROTO_ICMPV6) {
2029 ret = nf_conntrack_handle_icmp(tmpl, skb, dataoff,
2030 protonum, state);
2031 if (ret <= 0) {
2032 ret = -ret;
2033 goto out;
2034 }
2035 /* ICMP[v6] protocol trackers may assign one conntrack. */
2036 if (skb->_nfct)
2037 goto out;
2038 }
2039 repeat:
2040 ret = resolve_normal_ct(tmpl, skb, dataoff,
2041 protonum, state);
2042 if (ret < 0) {
2043 /* Too stressed to deal. */
2044 NF_CT_STAT_INC_ATOMIC(state->net, drop);
2045 ret = NF_DROP;
2046 goto out;
2047 }
2048
2049 ct = nf_ct_get(skb, &ctinfo);
2050 if (!ct) {
2051 /* Not valid part of a connection */
2052 NF_CT_STAT_INC_ATOMIC(state->net, invalid);
2053 ret = NF_ACCEPT;
2054 goto out;
2055 }
2056
2057 ret = nf_conntrack_handle_packet(ct, skb, dataoff, ctinfo, state);
2058 if (ret <= 0) {
2059 /* Invalid: inverse of the return code tells
2060 * the netfilter core what to do */
2061 nf_ct_put(ct);
2062 skb->_nfct = 0;
2063 /* Special case: TCP tracker reports an attempt to reopen a
2064 * closed/aborted connection. We have to go back and create a
2065 * fresh conntrack.
2066 */
2067 if (ret == -NF_REPEAT)
2068 goto repeat;
2069
2070 NF_CT_STAT_INC_ATOMIC(state->net, invalid);
2071 if (ret == NF_DROP)
2072 NF_CT_STAT_INC_ATOMIC(state->net, drop);
2073
2074 ret = -ret;
2075 goto out;
2076 }
2077
2078 if (ctinfo == IP_CT_ESTABLISHED_REPLY &&
2079 !test_and_set_bit(IPS_SEEN_REPLY_BIT, &ct->status))
2080 nf_conntrack_event_cache(IPCT_REPLY, ct);
2081 out:
2082 if (tmpl)
2083 nf_ct_put(tmpl);
2084
2085 return ret;
2086 }
2087 EXPORT_SYMBOL_GPL(nf_conntrack_in);
2088
2089 /* Refresh conntrack for this many jiffies and do accounting if do_acct is 1 */
__nf_ct_refresh_acct(struct nf_conn * ct,enum ip_conntrack_info ctinfo,u32 extra_jiffies,unsigned int bytes)2090 void __nf_ct_refresh_acct(struct nf_conn *ct,
2091 enum ip_conntrack_info ctinfo,
2092 u32 extra_jiffies,
2093 unsigned int bytes)
2094 {
2095 /* Only update if this is not a fixed timeout */
2096 if (test_bit(IPS_FIXED_TIMEOUT_BIT, &ct->status))
2097 goto acct;
2098
2099 /* If not in hash table, timer will not be active yet */
2100 if (nf_ct_is_confirmed(ct))
2101 extra_jiffies += nfct_time_stamp;
2102
2103 if (READ_ONCE(ct->timeout) != extra_jiffies)
2104 WRITE_ONCE(ct->timeout, extra_jiffies);
2105 acct:
2106 if (bytes)
2107 nf_ct_acct_update(ct, CTINFO2DIR(ctinfo), bytes);
2108 }
2109 EXPORT_SYMBOL_GPL(__nf_ct_refresh_acct);
2110
nf_ct_kill_acct(struct nf_conn * ct,enum ip_conntrack_info ctinfo,const struct sk_buff * skb)2111 bool nf_ct_kill_acct(struct nf_conn *ct,
2112 enum ip_conntrack_info ctinfo,
2113 const struct sk_buff *skb)
2114 {
2115 nf_ct_acct_update(ct, CTINFO2DIR(ctinfo), skb->len);
2116
2117 return nf_ct_delete(ct, 0, 0);
2118 }
2119 EXPORT_SYMBOL_GPL(nf_ct_kill_acct);
2120
2121 #if IS_ENABLED(CONFIG_NF_CT_NETLINK)
2122
2123 #include <linux/netfilter/nfnetlink.h>
2124 #include <linux/netfilter/nfnetlink_conntrack.h>
2125 #include <linux/mutex.h>
2126
2127 /* Generic function for tcp/udp/sctp/dccp and alike. */
nf_ct_port_tuple_to_nlattr(struct sk_buff * skb,const struct nf_conntrack_tuple * tuple)2128 int nf_ct_port_tuple_to_nlattr(struct sk_buff *skb,
2129 const struct nf_conntrack_tuple *tuple)
2130 {
2131 if (nla_put_be16(skb, CTA_PROTO_SRC_PORT, tuple->src.u.tcp.port) ||
2132 nla_put_be16(skb, CTA_PROTO_DST_PORT, tuple->dst.u.tcp.port))
2133 goto nla_put_failure;
2134 return 0;
2135
2136 nla_put_failure:
2137 return -1;
2138 }
2139 EXPORT_SYMBOL_GPL(nf_ct_port_tuple_to_nlattr);
2140
2141 const struct nla_policy nf_ct_port_nla_policy[CTA_PROTO_MAX+1] = {
2142 [CTA_PROTO_SRC_PORT] = { .type = NLA_U16 },
2143 [CTA_PROTO_DST_PORT] = { .type = NLA_U16 },
2144 };
2145 EXPORT_SYMBOL_GPL(nf_ct_port_nla_policy);
2146
nf_ct_port_nlattr_to_tuple(struct nlattr * tb[],struct nf_conntrack_tuple * t,u_int32_t flags)2147 int nf_ct_port_nlattr_to_tuple(struct nlattr *tb[],
2148 struct nf_conntrack_tuple *t,
2149 u_int32_t flags)
2150 {
2151 if (flags & CTA_FILTER_FLAG(CTA_PROTO_SRC_PORT)) {
2152 if (!tb[CTA_PROTO_SRC_PORT])
2153 return -EINVAL;
2154
2155 t->src.u.tcp.port = nla_get_be16(tb[CTA_PROTO_SRC_PORT]);
2156 }
2157
2158 if (flags & CTA_FILTER_FLAG(CTA_PROTO_DST_PORT)) {
2159 if (!tb[CTA_PROTO_DST_PORT])
2160 return -EINVAL;
2161
2162 t->dst.u.tcp.port = nla_get_be16(tb[CTA_PROTO_DST_PORT]);
2163 }
2164
2165 return 0;
2166 }
2167 EXPORT_SYMBOL_GPL(nf_ct_port_nlattr_to_tuple);
2168
nf_ct_port_nlattr_tuple_size(void)2169 unsigned int nf_ct_port_nlattr_tuple_size(void)
2170 {
2171 static unsigned int size __read_mostly;
2172
2173 if (!size)
2174 size = nla_policy_len(nf_ct_port_nla_policy, CTA_PROTO_MAX + 1);
2175
2176 return size;
2177 }
2178 EXPORT_SYMBOL_GPL(nf_ct_port_nlattr_tuple_size);
2179 #endif
2180
2181 /* Used by ipt_REJECT and ip6t_REJECT. */
nf_conntrack_attach(struct sk_buff * nskb,const struct sk_buff * skb)2182 static void nf_conntrack_attach(struct sk_buff *nskb, const struct sk_buff *skb)
2183 {
2184 struct nf_conn *ct;
2185 enum ip_conntrack_info ctinfo;
2186
2187 /* This ICMP is in reverse direction to the packet which caused it */
2188 ct = nf_ct_get(skb, &ctinfo);
2189 if (CTINFO2DIR(ctinfo) == IP_CT_DIR_ORIGINAL)
2190 ctinfo = IP_CT_RELATED_REPLY;
2191 else
2192 ctinfo = IP_CT_RELATED;
2193
2194 /* Attach to new skbuff, and increment count */
2195 nf_ct_set(nskb, ct, ctinfo);
2196 nf_conntrack_get(skb_nfct(nskb));
2197 }
2198
2199 /* This packet is coming from userspace via nf_queue, complete the packet
2200 * processing after the helper invocation in nf_confirm().
2201 */
nf_confirm_cthelper(struct sk_buff * skb,struct nf_conn * ct,enum ip_conntrack_info ctinfo)2202 static int nf_confirm_cthelper(struct sk_buff *skb, struct nf_conn *ct,
2203 enum ip_conntrack_info ctinfo)
2204 {
2205 const struct nf_conntrack_helper *helper;
2206 const struct nf_conn_help *help;
2207 unsigned int helper_flags;
2208 int protoff;
2209
2210 help = nfct_help(ct);
2211 if (!help)
2212 return NF_ACCEPT;
2213
2214 helper = rcu_dereference(help->helper);
2215 if (!helper)
2216 return NF_ACCEPT;
2217
2218 helper_flags = READ_ONCE(helper->flags);
2219 if (!(helper_flags & NF_CT_HELPER_F_USERSPACE))
2220 return NF_ACCEPT;
2221
2222 switch (nf_ct_l3num(ct)) {
2223 case NFPROTO_IPV4:
2224 protoff = skb_network_offset(skb) + ip_hdrlen(skb);
2225 break;
2226 #if IS_ENABLED(CONFIG_IPV6)
2227 case NFPROTO_IPV6: {
2228 __be16 frag_off;
2229 u8 pnum;
2230
2231 pnum = ipv6_hdr(skb)->nexthdr;
2232 protoff = ipv6_skip_exthdr(skb, sizeof(struct ipv6hdr), &pnum,
2233 &frag_off);
2234 if (protoff < 0 || (frag_off & htons(~0x7)) != 0)
2235 return NF_ACCEPT;
2236 break;
2237 }
2238 #endif
2239 default:
2240 return NF_ACCEPT;
2241 }
2242
2243 if (test_bit(IPS_SEQ_ADJUST_BIT, &ct->status) &&
2244 !nf_is_loopback_packet(skb)) {
2245 if (!nf_ct_seq_adjust(skb, ct, ctinfo, protoff)) {
2246 NF_CT_STAT_INC_ATOMIC(nf_ct_net(ct), drop);
2247 return NF_DROP;
2248 }
2249 }
2250
2251 /* We've seen it coming out the other side: confirm it */
2252 return nf_conntrack_confirm(skb);
2253 }
2254
nf_conntrack_update(struct net * net,struct sk_buff * skb)2255 static int nf_conntrack_update(struct net *net, struct sk_buff *skb)
2256 {
2257 enum ip_conntrack_info ctinfo;
2258 struct nf_conn *ct;
2259
2260 ct = nf_ct_get(skb, &ctinfo);
2261 if (!ct)
2262 return NF_ACCEPT;
2263
2264 return nf_confirm_cthelper(skb, ct, ctinfo);
2265 }
2266
nf_conntrack_get_tuple_skb(struct nf_conntrack_tuple * dst_tuple,const struct sk_buff * skb)2267 static bool nf_conntrack_get_tuple_skb(struct nf_conntrack_tuple *dst_tuple,
2268 const struct sk_buff *skb)
2269 {
2270 const struct nf_conntrack_tuple *src_tuple;
2271 const struct nf_conntrack_tuple_hash *hash;
2272 struct nf_conntrack_tuple srctuple;
2273 enum ip_conntrack_info ctinfo;
2274 struct nf_conn *ct;
2275
2276 ct = nf_ct_get(skb, &ctinfo);
2277 if (ct) {
2278 src_tuple = nf_ct_tuple(ct, CTINFO2DIR(ctinfo));
2279 memcpy(dst_tuple, src_tuple, sizeof(*dst_tuple));
2280 return true;
2281 }
2282
2283 if (!nf_ct_get_tuplepr(skb, skb_network_offset(skb),
2284 NFPROTO_IPV4, dev_net(skb->dev),
2285 &srctuple))
2286 return false;
2287
2288 hash = nf_conntrack_find_get(dev_net(skb->dev),
2289 &nf_ct_zone_dflt,
2290 &srctuple);
2291 if (!hash)
2292 return false;
2293
2294 ct = nf_ct_tuplehash_to_ctrack(hash);
2295 src_tuple = nf_ct_tuple(ct, !hash->tuple.dst.dir);
2296 memcpy(dst_tuple, src_tuple, sizeof(*dst_tuple));
2297 nf_ct_put(ct);
2298
2299 return true;
2300 }
2301
2302 /* Bring out ya dead! */
2303 static struct nf_conn *
get_next_corpse(int (* iter)(struct nf_conn * i,void * data),const struct nf_ct_iter_data * iter_data,unsigned int * bucket)2304 get_next_corpse(int (*iter)(struct nf_conn *i, void *data),
2305 const struct nf_ct_iter_data *iter_data, unsigned int *bucket)
2306 {
2307 struct nf_conntrack_tuple_hash *h;
2308 struct nf_conn *ct;
2309 struct hlist_nulls_node *n;
2310 spinlock_t *lockp;
2311
2312 for (; *bucket < nf_conntrack_htable_size; (*bucket)++) {
2313 struct hlist_nulls_head *hslot = &nf_conntrack_hash[*bucket];
2314
2315 if (hlist_nulls_empty(hslot))
2316 continue;
2317
2318 lockp = &nf_conntrack_locks[*bucket % CONNTRACK_LOCKS];
2319 local_bh_disable();
2320 nf_conntrack_lock(lockp);
2321 hlist_nulls_for_each_entry(h, n, hslot, hnnode) {
2322 if (NF_CT_DIRECTION(h) != IP_CT_DIR_REPLY)
2323 continue;
2324 /* All nf_conn objects are added to hash table twice, one
2325 * for original direction tuple, once for the reply tuple.
2326 *
2327 * Exception: In the IPS_NAT_CLASH case, only the reply
2328 * tuple is added (the original tuple already existed for
2329 * a different object).
2330 *
2331 * We only need to call the iterator once for each
2332 * conntrack, so we just use the 'reply' direction
2333 * tuple while iterating.
2334 */
2335 ct = nf_ct_tuplehash_to_ctrack(h);
2336
2337 if (iter_data->net &&
2338 !net_eq(iter_data->net, nf_ct_net(ct)))
2339 continue;
2340
2341 if (iter(ct, iter_data->data))
2342 goto found;
2343 }
2344 spin_unlock(lockp);
2345 local_bh_enable();
2346 cond_resched();
2347 }
2348
2349 return NULL;
2350 found:
2351 refcount_inc(&ct->ct_general.use);
2352 spin_unlock(lockp);
2353 local_bh_enable();
2354 return ct;
2355 }
2356
nf_ct_iterate_cleanup(int (* iter)(struct nf_conn * i,void * data),const struct nf_ct_iter_data * iter_data)2357 static void nf_ct_iterate_cleanup(int (*iter)(struct nf_conn *i, void *data),
2358 const struct nf_ct_iter_data *iter_data)
2359 {
2360 unsigned int bucket = 0;
2361 struct nf_conn *ct;
2362
2363 might_sleep();
2364
2365 mutex_lock(&nf_conntrack_mutex);
2366 while ((ct = get_next_corpse(iter, iter_data, &bucket)) != NULL) {
2367 /* Time to push up daises... */
2368
2369 nf_ct_delete(ct, iter_data->portid, iter_data->report);
2370 nf_ct_put(ct);
2371 cond_resched();
2372 }
2373 mutex_unlock(&nf_conntrack_mutex);
2374 }
2375
nf_ct_iterate_cleanup_net(int (* iter)(struct nf_conn * i,void * data),const struct nf_ct_iter_data * iter_data)2376 void nf_ct_iterate_cleanup_net(int (*iter)(struct nf_conn *i, void *data),
2377 const struct nf_ct_iter_data *iter_data)
2378 {
2379 struct net *net = iter_data->net;
2380 struct nf_conntrack_net *cnet = nf_ct_pernet(net);
2381
2382 might_sleep();
2383
2384 if (atomic_read(&cnet->count) == 0)
2385 return;
2386
2387 nf_ct_iterate_cleanup(iter, iter_data);
2388 }
2389 EXPORT_SYMBOL_GPL(nf_ct_iterate_cleanup_net);
2390
2391 /**
2392 * nf_ct_iterate_destroy - destroy unconfirmed conntracks and iterate table
2393 * @iter: callback to invoke for each conntrack
2394 * @data: data to pass to @iter
2395 *
2396 * Like nf_ct_iterate_cleanup, but first marks conntracks on the
2397 * unconfirmed list as dying (so they will not be inserted into
2398 * main table).
2399 *
2400 * Can only be called in module exit path.
2401 */
2402 void
nf_ct_iterate_destroy(int (* iter)(struct nf_conn * i,void * data),void * data)2403 nf_ct_iterate_destroy(int (*iter)(struct nf_conn *i, void *data), void *data)
2404 {
2405 struct nf_ct_iter_data iter_data = {};
2406 struct net *net;
2407
2408 down_read(&net_rwsem);
2409 for_each_net(net) {
2410 struct nf_conntrack_net *cnet = nf_ct_pernet(net);
2411
2412 if (atomic_read(&cnet->count) == 0)
2413 continue;
2414 nf_queue_nf_hook_drop(net);
2415 }
2416 up_read(&net_rwsem);
2417
2418 /* Need to wait for netns cleanup worker to finish, if its
2419 * running -- it might have deleted a net namespace from
2420 * the global list, so hook drop above might not have
2421 * affected all namespaces.
2422 */
2423 net_ns_barrier();
2424
2425 /* a skb w. unconfirmed conntrack could have been reinjected just
2426 * before we called nf_queue_nf_hook_drop().
2427 *
2428 * This makes sure its inserted into conntrack table.
2429 */
2430 synchronize_net();
2431
2432 iter_data.data = data;
2433 nf_ct_iterate_cleanup(iter, &iter_data);
2434
2435 /* Another cpu might be in a rcu read section with
2436 * rcu protected pointer cleared in iter callback.
2437 *
2438 * Wait until those are done.
2439 */
2440 synchronize_rcu();
2441 }
2442 EXPORT_SYMBOL_GPL(nf_ct_iterate_destroy);
2443
kill_all(struct nf_conn * i,void * data)2444 static int kill_all(struct nf_conn *i, void *data)
2445 {
2446 return 1;
2447 }
2448
nf_conntrack_cleanup_start(void)2449 void nf_conntrack_cleanup_start(void)
2450 {
2451 cleanup_nf_conntrack_bpf();
2452 conntrack_gc_work.exiting = true;
2453 }
2454
nf_conntrack_cleanup_end(void)2455 void nf_conntrack_cleanup_end(void)
2456 {
2457 RCU_INIT_POINTER(nf_ct_hook, NULL);
2458 cancel_delayed_work_sync(&conntrack_gc_work.dwork);
2459 kvfree(nf_conntrack_hash);
2460
2461 nf_conntrack_proto_fini();
2462 nf_conntrack_helper_fini();
2463 nf_conntrack_expect_fini();
2464
2465 kmem_cache_destroy(nf_conntrack_cachep);
2466 }
2467
2468 /*
2469 * Mishearing the voices in his head, our hero wonders how he's
2470 * supposed to kill the mall.
2471 */
nf_conntrack_cleanup_net(struct net * net)2472 void nf_conntrack_cleanup_net(struct net *net)
2473 {
2474 LIST_HEAD(single);
2475
2476 list_add(&net->exit_list, &single);
2477 nf_conntrack_cleanup_net_list(&single);
2478 }
2479
nf_conntrack_cleanup_net_list(struct list_head * net_exit_list)2480 void nf_conntrack_cleanup_net_list(struct list_head *net_exit_list)
2481 {
2482 struct nf_ct_iter_data iter_data = {};
2483 unsigned long start = jiffies;
2484 struct net *net;
2485 int busy;
2486
2487 /*
2488 * This makes sure all current packets have passed through
2489 * netfilter framework. Roll on, two-stage module
2490 * delete...
2491 */
2492 synchronize_rcu_expedited();
2493 i_see_dead_people:
2494 busy = 0;
2495 list_for_each_entry(net, net_exit_list, exit_list) {
2496 struct nf_conntrack_net *cnet = nf_ct_pernet(net);
2497
2498 iter_data.net = net;
2499 nf_ct_iterate_cleanup_net(kill_all, &iter_data);
2500 if (atomic_read(&cnet->count) != 0)
2501 busy = 1;
2502 }
2503 if (busy) {
2504 DEBUG_NET_WARN_ONCE(time_after(jiffies, start + 60 * HZ),
2505 "conntrack cleanup blocked for 60s");
2506 schedule();
2507 goto i_see_dead_people;
2508 }
2509
2510 list_for_each_entry(net, net_exit_list, exit_list) {
2511 warn_on_keymap_list_leak(net);
2512 nf_conntrack_ecache_pernet_fini(net);
2513 nf_conntrack_expect_pernet_fini(net);
2514 free_percpu(net->ct.stat);
2515 }
2516 }
2517
nf_ct_alloc_hashtable(unsigned int * sizep,int nulls)2518 void *nf_ct_alloc_hashtable(unsigned int *sizep, int nulls)
2519 {
2520 struct hlist_nulls_head *hash;
2521 unsigned int nr_slots, i;
2522
2523 if (*sizep > (INT_MAX / sizeof(struct hlist_nulls_head)))
2524 return NULL;
2525
2526 BUILD_BUG_ON(sizeof(struct hlist_nulls_head) != sizeof(struct hlist_head));
2527 nr_slots = *sizep = roundup(*sizep, PAGE_SIZE / sizeof(struct hlist_nulls_head));
2528
2529 if (nr_slots > (INT_MAX / sizeof(struct hlist_nulls_head)))
2530 return NULL;
2531
2532 hash = kvzalloc_objs(struct hlist_nulls_head, nr_slots);
2533
2534 if (hash && nulls)
2535 for (i = 0; i < nr_slots; i++)
2536 INIT_HLIST_NULLS_HEAD(&hash[i], i);
2537
2538 return hash;
2539 }
2540 EXPORT_SYMBOL_GPL(nf_ct_alloc_hashtable);
2541
nf_conntrack_hash_resize(unsigned int hashsize)2542 int nf_conntrack_hash_resize(unsigned int hashsize)
2543 {
2544 int i, bucket;
2545 unsigned int old_size;
2546 struct hlist_nulls_head *hash, *old_hash;
2547 struct nf_conntrack_tuple_hash *h;
2548 struct nf_conn *ct;
2549
2550 if (!hashsize)
2551 return -EINVAL;
2552
2553 hash = nf_ct_alloc_hashtable(&hashsize, 1);
2554 if (!hash)
2555 return -ENOMEM;
2556
2557 mutex_lock(&nf_conntrack_mutex);
2558 old_size = nf_conntrack_htable_size;
2559 if (old_size == hashsize) {
2560 mutex_unlock(&nf_conntrack_mutex);
2561 kvfree(hash);
2562 return 0;
2563 }
2564
2565 local_bh_disable();
2566 nf_conntrack_all_lock();
2567 write_seqcount_begin(&nf_conntrack_generation);
2568
2569 /* Lookups in the old hash might happen in parallel, which means we
2570 * might get false negatives during connection lookup. New connections
2571 * created because of a false negative won't make it into the hash
2572 * though since that required taking the locks.
2573 */
2574
2575 for (i = 0; i < nf_conntrack_htable_size; i++) {
2576 while (!hlist_nulls_empty(&nf_conntrack_hash[i])) {
2577 unsigned int zone_id;
2578
2579 h = hlist_nulls_entry(nf_conntrack_hash[i].first,
2580 struct nf_conntrack_tuple_hash, hnnode);
2581 ct = nf_ct_tuplehash_to_ctrack(h);
2582 hlist_nulls_del_rcu(&h->hnnode);
2583
2584 zone_id = nf_ct_zone_id(nf_ct_zone(ct), NF_CT_DIRECTION(h));
2585 bucket = __hash_conntrack(nf_ct_net(ct),
2586 &h->tuple, zone_id, hashsize);
2587 hlist_nulls_add_head_rcu(&h->hnnode, &hash[bucket]);
2588 }
2589 }
2590 old_hash = nf_conntrack_hash;
2591
2592 nf_conntrack_hash = hash;
2593 nf_conntrack_htable_size = hashsize;
2594
2595 write_seqcount_end(&nf_conntrack_generation);
2596 nf_conntrack_all_unlock();
2597 local_bh_enable();
2598
2599 mutex_unlock(&nf_conntrack_mutex);
2600
2601 synchronize_net();
2602 kvfree(old_hash);
2603 return 0;
2604 }
2605
nf_conntrack_set_hashsize(const char * val,const struct kernel_param * kp)2606 int nf_conntrack_set_hashsize(const char *val, const struct kernel_param *kp)
2607 {
2608 unsigned int hashsize;
2609 int rc;
2610
2611 if (current->nsproxy->net_ns != &init_net)
2612 return -EOPNOTSUPP;
2613
2614 /* On boot, we can set this without any fancy locking. */
2615 if (!nf_conntrack_hash)
2616 return param_set_uint(val, kp);
2617
2618 rc = kstrtouint(val, 0, &hashsize);
2619 if (rc)
2620 return rc;
2621
2622 return nf_conntrack_hash_resize(hashsize);
2623 }
2624
nf_conntrack_init_start(void)2625 int nf_conntrack_init_start(void)
2626 {
2627 unsigned long nr_pages = totalram_pages();
2628 int max_factor = 8;
2629 int ret = -ENOMEM;
2630 int i;
2631
2632 seqcount_spinlock_init(&nf_conntrack_generation,
2633 &nf_conntrack_locks_all_lock);
2634
2635 for (i = 0; i < CONNTRACK_LOCKS; i++)
2636 spin_lock_init(&nf_conntrack_locks[i]);
2637
2638 if (!nf_conntrack_htable_size) {
2639 nf_conntrack_htable_size
2640 = (((nr_pages << PAGE_SHIFT) / 16384)
2641 / sizeof(struct hlist_head));
2642 if (BITS_PER_LONG >= 64 &&
2643 nr_pages > (4 * (1024 * 1024 * 1024 / PAGE_SIZE)))
2644 nf_conntrack_htable_size = 262144;
2645 else if (nr_pages > (1024 * 1024 * 1024 / PAGE_SIZE))
2646 nf_conntrack_htable_size = 65536;
2647
2648 if (nf_conntrack_htable_size < 1024)
2649 nf_conntrack_htable_size = 1024;
2650 /* Use a max. factor of one by default to keep the average
2651 * hash chain length at 2 entries. Each entry has to be added
2652 * twice (once for original direction, once for reply).
2653 * When a table size is given we use the old value of 8 to
2654 * avoid implicit reduction of the max entries setting.
2655 */
2656 max_factor = 1;
2657 }
2658
2659 nf_conntrack_hash = nf_ct_alloc_hashtable(&nf_conntrack_htable_size, 1);
2660 if (!nf_conntrack_hash)
2661 return -ENOMEM;
2662
2663 nf_conntrack_max = max_factor * nf_conntrack_htable_size;
2664
2665 nf_conntrack_cachep = kmem_cache_create("nf_conntrack",
2666 sizeof(struct nf_conn),
2667 NFCT_INFOMASK + 1,
2668 SLAB_TYPESAFE_BY_RCU | SLAB_HWCACHE_ALIGN, NULL);
2669 if (!nf_conntrack_cachep)
2670 goto err_cachep;
2671
2672 ret = nf_conntrack_expect_init();
2673 if (ret < 0)
2674 goto err_expect;
2675
2676 ret = nf_conntrack_helper_init();
2677 if (ret < 0)
2678 goto err_helper;
2679
2680 ret = nf_conntrack_proto_init();
2681 if (ret < 0)
2682 goto err_proto;
2683
2684 conntrack_gc_work_init(&conntrack_gc_work);
2685 queue_delayed_work(system_power_efficient_wq, &conntrack_gc_work.dwork, HZ);
2686
2687 ret = register_nf_conntrack_bpf();
2688 if (ret < 0)
2689 goto err_kfunc;
2690
2691 return 0;
2692
2693 err_kfunc:
2694 cancel_delayed_work_sync(&conntrack_gc_work.dwork);
2695 nf_conntrack_proto_fini();
2696 err_proto:
2697 nf_conntrack_helper_fini();
2698 err_helper:
2699 nf_conntrack_expect_fini();
2700 err_expect:
2701 kmem_cache_destroy(nf_conntrack_cachep);
2702 err_cachep:
2703 kvfree(nf_conntrack_hash);
2704 return ret;
2705 }
2706
nf_conntrack_set_closing(struct nf_conntrack * nfct)2707 static void nf_conntrack_set_closing(struct nf_conntrack *nfct)
2708 {
2709 struct nf_conn *ct = nf_ct_to_nf_conn(nfct);
2710
2711 switch (nf_ct_protonum(ct)) {
2712 case IPPROTO_TCP:
2713 nf_conntrack_tcp_set_closing(ct);
2714 break;
2715 }
2716 }
2717
2718 static const struct nf_ct_hook nf_conntrack_hook = {
2719 .update = nf_conntrack_update,
2720 .destroy = nf_ct_destroy,
2721 .get_tuple_skb = nf_conntrack_get_tuple_skb,
2722 .attach = nf_conntrack_attach,
2723 .set_closing = nf_conntrack_set_closing,
2724 .confirm = __nf_conntrack_confirm,
2725 .get_id = nf_conntrack_get_id,
2726 };
2727
nf_conntrack_init_end(void)2728 void nf_conntrack_init_end(void)
2729 {
2730 RCU_INIT_POINTER(nf_ct_hook, &nf_conntrack_hook);
2731 }
2732
2733 /*
2734 * We need to use special "null" values, not used in hash table
2735 */
2736 #define UNCONFIRMED_NULLS_VAL ((1<<30)+0)
2737
nf_conntrack_init_net(struct net * net)2738 int nf_conntrack_init_net(struct net *net)
2739 {
2740 struct nf_conntrack_net *cnet = nf_ct_pernet(net);
2741 int ret = -ENOMEM;
2742
2743 BUILD_BUG_ON(IP_CT_UNTRACKED == IP_CT_NUMBER);
2744 BUILD_BUG_ON_NOT_POWER_OF_2(CONNTRACK_LOCKS);
2745 atomic_set(&cnet->count, 0);
2746
2747 net->ct.stat = alloc_percpu(struct ip_conntrack_stat);
2748 if (!net->ct.stat)
2749 return ret;
2750
2751 ret = nf_conntrack_expect_pernet_init(net);
2752 if (ret < 0)
2753 goto err_expect;
2754
2755 nf_conntrack_acct_pernet_init(net);
2756 nf_conntrack_tstamp_pernet_init(net);
2757 nf_conntrack_ecache_pernet_init(net);
2758 nf_conntrack_proto_pernet_init(net);
2759
2760 return 0;
2761
2762 err_expect:
2763 free_percpu(net->ct.stat);
2764 return ret;
2765 }
2766
2767 /* ctnetlink code shared by both ctnetlink and nf_conntrack_bpf */
2768
__nf_ct_change_timeout(struct nf_conn * ct,u64 timeout)2769 int __nf_ct_change_timeout(struct nf_conn *ct, u64 timeout)
2770 {
2771 if (test_bit(IPS_FIXED_TIMEOUT_BIT, &ct->status))
2772 return -EPERM;
2773
2774 __nf_ct_set_timeout(ct, timeout);
2775
2776 if (test_bit(IPS_DYING_BIT, &ct->status))
2777 return -ETIME;
2778
2779 return 0;
2780 }
2781 EXPORT_SYMBOL_GPL(__nf_ct_change_timeout);
2782
__nf_ct_change_status(struct nf_conn * ct,unsigned long on,unsigned long off)2783 void __nf_ct_change_status(struct nf_conn *ct, unsigned long on, unsigned long off)
2784 {
2785 unsigned int bit;
2786
2787 /* Ignore these unchangable bits */
2788 on &= ~IPS_UNCHANGEABLE_MASK;
2789 off &= ~IPS_UNCHANGEABLE_MASK;
2790
2791 for (bit = 0; bit < __IPS_MAX_BIT; bit++) {
2792 if (on & (1 << bit))
2793 set_bit(bit, &ct->status);
2794 else if (off & (1 << bit))
2795 clear_bit(bit, &ct->status);
2796 }
2797 }
2798 EXPORT_SYMBOL_GPL(__nf_ct_change_status);
2799
nf_ct_change_status_common(struct nf_conn * ct,unsigned int status)2800 int nf_ct_change_status_common(struct nf_conn *ct, unsigned int status)
2801 {
2802 unsigned long d;
2803
2804 d = ct->status ^ status;
2805
2806 if (d & (IPS_EXPECTED|IPS_CONFIRMED|IPS_DYING))
2807 /* unchangeable */
2808 return -EBUSY;
2809
2810 if (d & IPS_SEEN_REPLY && !(status & IPS_SEEN_REPLY))
2811 /* SEEN_REPLY bit can only be set */
2812 return -EBUSY;
2813
2814 if (d & IPS_ASSURED && !(status & IPS_ASSURED))
2815 /* ASSURED bit can only be set */
2816 return -EBUSY;
2817
2818 __nf_ct_change_status(ct, status, 0);
2819 return 0;
2820 }
2821 EXPORT_SYMBOL_GPL(nf_ct_change_status_common);
2822