1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * xt_hashlimit - Netfilter module to limit the number of packets per time
4 * separately for each hashbucket (sourceip/sourceport/dstip/dstport)
5 *
6 * (C) 2003-2004 by Harald Welte <laforge@netfilter.org>
7 * (C) 2006-2012 Patrick McHardy <kaber@trash.net>
8 * Copyright © CC Computer Consultants GmbH, 2007 - 2008
9 *
10 * Development of this code was funded by Astaro AG, http://www.astaro.com/
11 */
12 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
13 #include <linux/module.h>
14 #include <linux/spinlock.h>
15 #include <linux/random.h>
16 #include <linux/jhash.h>
17 #include <linux/slab.h>
18 #include <linux/proc_fs.h>
19 #include <linux/seq_file.h>
20 #include <linux/list.h>
21 #include <linux/skbuff.h>
22 #include <linux/mm.h>
23 #include <linux/in.h>
24 #include <linux/ip.h>
25 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
26 #include <linux/ipv6.h>
27 #include <net/ipv6.h>
28 #endif
29
30 #include <net/net_namespace.h>
31 #include <net/netns/generic.h>
32
33 #include <linux/netfilter/x_tables.h>
34 #include <linux/netfilter_ipv4/ip_tables.h>
35 #include <linux/netfilter_ipv6/ip6_tables.h>
36 #include <linux/mutex.h>
37 #include <linux/kernel.h>
38 #include <linux/refcount.h>
39 #include <uapi/linux/netfilter/xt_hashlimit.h>
40
41 #define XT_HASHLIMIT_ALL (XT_HASHLIMIT_HASH_DIP | XT_HASHLIMIT_HASH_DPT | \
42 XT_HASHLIMIT_HASH_SIP | XT_HASHLIMIT_HASH_SPT | \
43 XT_HASHLIMIT_INVERT | XT_HASHLIMIT_BYTES |\
44 XT_HASHLIMIT_RATE_MATCH)
45
46 MODULE_LICENSE("GPL");
47 MODULE_AUTHOR("Harald Welte <laforge@netfilter.org>");
48 MODULE_AUTHOR("Jan Engelhardt <jengelh@medozas.de>");
49 MODULE_DESCRIPTION("Xtables: per hash-bucket rate-limit match");
50 MODULE_ALIAS("ipt_hashlimit");
51 MODULE_ALIAS("ip6t_hashlimit");
52
53 struct hashlimit_net {
54 struct hlist_head htables;
55 struct proc_dir_entry *ipt_hashlimit;
56 struct proc_dir_entry *ip6t_hashlimit;
57 };
58
59 static unsigned int hashlimit_net_id;
hashlimit_pernet(struct net * net)60 static inline struct hashlimit_net *hashlimit_pernet(struct net *net)
61 {
62 return net_generic(net, hashlimit_net_id);
63 }
64
65 /* need to declare this at the top */
66 static const struct seq_operations dl_seq_ops_v2;
67 static const struct seq_operations dl_seq_ops_v1;
68 static const struct seq_operations dl_seq_ops;
69
70 /* hash table crap */
71 struct dsthash_dst {
72 union {
73 struct {
74 __be32 src;
75 __be32 dst;
76 } ip;
77 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
78 struct {
79 __be32 src[4];
80 __be32 dst[4];
81 } ip6;
82 #endif
83 };
84 __be16 src_port;
85 __be16 dst_port;
86 };
87
88 struct dsthash_ent {
89 /* static / read-only parts in the beginning */
90 struct hlist_node node;
91 struct dsthash_dst dst;
92
93 /* modified structure members in the end */
94 spinlock_t lock;
95 unsigned long expires; /* precalculated expiry time */
96 struct {
97 unsigned long prev; /* last modification */
98 union {
99 struct {
100 u_int64_t credit;
101 u_int64_t credit_cap;
102 u_int64_t cost;
103 };
104 struct {
105 u_int32_t interval, prev_window;
106 u_int64_t current_rate;
107 u_int64_t rate;
108 int64_t burst;
109 };
110 };
111 } rateinfo;
112 struct rcu_head rcu;
113 };
114
115 struct xt_hashlimit_htable {
116 struct hlist_node node; /* global list of all htables */
117 refcount_t use;
118 u_int8_t family;
119 bool rnd_initialized;
120
121 struct hashlimit_cfg3 cfg; /* config */
122
123 /* used internally */
124 spinlock_t lock; /* lock for list_head */
125 u_int32_t rnd; /* random seed for hash */
126 unsigned int count; /* number entries in table */
127 struct delayed_work gc_work;
128
129 /* seq_file stuff */
130 struct proc_dir_entry *pde;
131 const char *name;
132 struct net *net;
133
134 struct hlist_head hash[]; /* hashtable itself */
135 };
136
137 static int
cfg_copy(struct hashlimit_cfg3 * to,const void * from,int revision)138 cfg_copy(struct hashlimit_cfg3 *to, const void *from, int revision)
139 {
140 if (revision == 1) {
141 struct hashlimit_cfg1 *cfg = (struct hashlimit_cfg1 *)from;
142
143 to->mode = cfg->mode;
144 to->avg = cfg->avg;
145 to->burst = cfg->burst;
146 to->size = cfg->size;
147 to->max = cfg->max;
148 to->gc_interval = cfg->gc_interval;
149 to->expire = cfg->expire;
150 to->srcmask = cfg->srcmask;
151 to->dstmask = cfg->dstmask;
152 } else if (revision == 2) {
153 struct hashlimit_cfg2 *cfg = (struct hashlimit_cfg2 *)from;
154
155 to->mode = cfg->mode;
156 to->avg = cfg->avg;
157 to->burst = cfg->burst;
158 to->size = cfg->size;
159 to->max = cfg->max;
160 to->gc_interval = cfg->gc_interval;
161 to->expire = cfg->expire;
162 to->srcmask = cfg->srcmask;
163 to->dstmask = cfg->dstmask;
164 } else if (revision == 3) {
165 memcpy(to, from, sizeof(struct hashlimit_cfg3));
166 } else {
167 return -EINVAL;
168 }
169
170 return 0;
171 }
172
173 static DEFINE_MUTEX(hashlimit_mutex); /* protects htables list */
174 static struct kmem_cache *hashlimit_cachep __read_mostly;
175
dst_cmp(const struct dsthash_ent * ent,const struct dsthash_dst * b)176 static inline bool dst_cmp(const struct dsthash_ent *ent,
177 const struct dsthash_dst *b)
178 {
179 return !memcmp(&ent->dst, b, sizeof(ent->dst));
180 }
181
182 static u_int32_t
hash_dst(const struct xt_hashlimit_htable * ht,const struct dsthash_dst * dst)183 hash_dst(const struct xt_hashlimit_htable *ht, const struct dsthash_dst *dst)
184 {
185 u_int32_t hash = jhash2((const u32 *)dst,
186 sizeof(*dst)/sizeof(u32),
187 ht->rnd);
188 /*
189 * Instead of returning hash % ht->cfg.size (implying a divide)
190 * we return the high 32 bits of the (hash * ht->cfg.size) that will
191 * give results between [0 and cfg.size-1] and same hash distribution,
192 * but using a multiply, less expensive than a divide
193 */
194 return reciprocal_scale(hash, ht->cfg.size);
195 }
196
197 static struct dsthash_ent *
dsthash_find(const struct xt_hashlimit_htable * ht,const struct dsthash_dst * dst)198 dsthash_find(const struct xt_hashlimit_htable *ht,
199 const struct dsthash_dst *dst)
200 {
201 struct dsthash_ent *ent;
202 u_int32_t hash = hash_dst(ht, dst);
203
204 if (!hlist_empty(&ht->hash[hash])) {
205 hlist_for_each_entry_rcu(ent, &ht->hash[hash], node)
206 if (dst_cmp(ent, dst)) {
207 spin_lock(&ent->lock);
208 return ent;
209 }
210 }
211 return NULL;
212 }
213
214 /* allocate dsthash_ent, initialize dst, put in htable and lock it */
215 static struct dsthash_ent *
dsthash_alloc_init(struct xt_hashlimit_htable * ht,const struct dsthash_dst * dst,bool * race)216 dsthash_alloc_init(struct xt_hashlimit_htable *ht,
217 const struct dsthash_dst *dst, bool *race)
218 {
219 struct dsthash_ent *ent;
220
221 spin_lock(&ht->lock);
222
223 /* Two or more packets may race to create the same entry in the
224 * hashtable, double check if this packet lost race.
225 */
226 ent = dsthash_find(ht, dst);
227 if (ent != NULL) {
228 spin_unlock(&ht->lock);
229 *race = true;
230 return ent;
231 }
232
233 /* initialize hash with random val at the time we allocate
234 * the first hashtable entry */
235 if (unlikely(!ht->rnd_initialized)) {
236 get_random_bytes(&ht->rnd, sizeof(ht->rnd));
237 ht->rnd_initialized = true;
238 }
239
240 if (ht->cfg.max && ht->count >= ht->cfg.max) {
241 /* FIXME: do something. question is what.. */
242 net_err_ratelimited("max count of %u reached\n", ht->cfg.max);
243 ent = NULL;
244 } else
245 ent = kmem_cache_alloc(hashlimit_cachep, GFP_ATOMIC);
246 if (ent) {
247 memcpy(&ent->dst, dst, sizeof(ent->dst));
248 spin_lock_init(&ent->lock);
249
250 spin_lock(&ent->lock);
251 hlist_add_head_rcu(&ent->node, &ht->hash[hash_dst(ht, dst)]);
252 ht->count++;
253 }
254 spin_unlock(&ht->lock);
255 return ent;
256 }
257
dsthash_free_rcu(struct rcu_head * head)258 static void dsthash_free_rcu(struct rcu_head *head)
259 {
260 struct dsthash_ent *ent = container_of(head, struct dsthash_ent, rcu);
261
262 kmem_cache_free(hashlimit_cachep, ent);
263 }
264
265 static inline void
dsthash_free(struct xt_hashlimit_htable * ht,struct dsthash_ent * ent)266 dsthash_free(struct xt_hashlimit_htable *ht, struct dsthash_ent *ent)
267 {
268 hlist_del_rcu(&ent->node);
269 call_rcu(&ent->rcu, dsthash_free_rcu);
270 ht->count--;
271 }
272 static void htable_gc(struct work_struct *work);
273
htable_create(struct net * net,struct hashlimit_cfg3 * cfg,const char * name,u_int8_t family,struct xt_hashlimit_htable ** out_hinfo,int revision)274 static int htable_create(struct net *net, struct hashlimit_cfg3 *cfg,
275 const char *name, u_int8_t family,
276 struct xt_hashlimit_htable **out_hinfo,
277 int revision)
278 {
279 struct hashlimit_net *hashlimit_net = hashlimit_pernet(net);
280 struct xt_hashlimit_htable *hinfo;
281 const struct seq_operations *ops;
282 unsigned int size, i;
283 unsigned long nr_pages = totalram_pages();
284 int ret;
285
286 if (cfg->size) {
287 size = cfg->size;
288 } else {
289 size = (nr_pages << PAGE_SHIFT) / 16384 /
290 sizeof(struct hlist_head);
291 if (nr_pages > 1024 * 1024 * 1024 / PAGE_SIZE)
292 size = 8192;
293 if (size < 16)
294 size = 16;
295 }
296 hinfo = kvmalloc_flex(*hinfo, hash, size);
297 if (hinfo == NULL)
298 return -ENOMEM;
299 *out_hinfo = hinfo;
300
301 /* copy match config into hashtable config */
302 ret = cfg_copy(&hinfo->cfg, (void *)cfg, 3);
303 if (ret) {
304 kvfree(hinfo);
305 return ret;
306 }
307
308 hinfo->cfg.size = size;
309 if (hinfo->cfg.max == 0)
310 hinfo->cfg.max = 8 * hinfo->cfg.size;
311 else if (hinfo->cfg.max < hinfo->cfg.size)
312 hinfo->cfg.max = hinfo->cfg.size;
313
314 for (i = 0; i < hinfo->cfg.size; i++)
315 INIT_HLIST_HEAD(&hinfo->hash[i]);
316
317 refcount_set(&hinfo->use, 1);
318 hinfo->count = 0;
319 hinfo->family = family;
320 hinfo->rnd_initialized = false;
321 hinfo->name = kstrdup(name, GFP_KERNEL);
322 if (!hinfo->name) {
323 kvfree(hinfo);
324 return -ENOMEM;
325 }
326 spin_lock_init(&hinfo->lock);
327
328 switch (revision) {
329 case 1:
330 ops = &dl_seq_ops_v1;
331 break;
332 case 2:
333 ops = &dl_seq_ops_v2;
334 break;
335 default:
336 ops = &dl_seq_ops;
337 }
338
339 hinfo->pde = proc_create_seq_data(name, 0,
340 (family == NFPROTO_IPV4) ?
341 hashlimit_net->ipt_hashlimit : hashlimit_net->ip6t_hashlimit,
342 ops, hinfo);
343 if (hinfo->pde == NULL) {
344 kfree(hinfo->name);
345 kvfree(hinfo);
346 return -ENOMEM;
347 }
348 hinfo->net = net;
349
350 INIT_DEFERRABLE_WORK(&hinfo->gc_work, htable_gc);
351 queue_delayed_work(system_power_efficient_wq, &hinfo->gc_work,
352 msecs_to_jiffies(hinfo->cfg.gc_interval));
353
354 hlist_add_head(&hinfo->node, &hashlimit_net->htables);
355
356 return 0;
357 }
358
htable_selective_cleanup(struct xt_hashlimit_htable * ht,bool select_all)359 static void htable_selective_cleanup(struct xt_hashlimit_htable *ht, bool select_all)
360 {
361 unsigned int i;
362
363 for (i = 0; i < ht->cfg.size; i++) {
364 struct hlist_head *head = &ht->hash[i];
365 struct dsthash_ent *dh;
366 struct hlist_node *n;
367
368 if (hlist_empty(head))
369 continue;
370
371 spin_lock_bh(&ht->lock);
372 hlist_for_each_entry_safe(dh, n, head, node) {
373 if (time_after_eq(jiffies, dh->expires) || select_all)
374 dsthash_free(ht, dh);
375 }
376 spin_unlock_bh(&ht->lock);
377 cond_resched();
378 }
379 }
380
htable_gc(struct work_struct * work)381 static void htable_gc(struct work_struct *work)
382 {
383 struct xt_hashlimit_htable *ht;
384
385 ht = container_of(work, struct xt_hashlimit_htable, gc_work.work);
386
387 htable_selective_cleanup(ht, false);
388
389 queue_delayed_work(system_power_efficient_wq,
390 &ht->gc_work, msecs_to_jiffies(ht->cfg.gc_interval));
391 }
392
htable_remove_proc_entry(struct xt_hashlimit_htable * hinfo)393 static void htable_remove_proc_entry(struct xt_hashlimit_htable *hinfo)
394 {
395 struct hashlimit_net *hashlimit_net = hashlimit_pernet(hinfo->net);
396 struct proc_dir_entry *parent;
397
398 if (hinfo->family == NFPROTO_IPV4)
399 parent = hashlimit_net->ipt_hashlimit;
400 else
401 parent = hashlimit_net->ip6t_hashlimit;
402
403 if (parent != NULL)
404 remove_proc_entry(hinfo->name, parent);
405 }
406
htable_find_get(struct net * net,const char * name,u_int8_t family)407 static struct xt_hashlimit_htable *htable_find_get(struct net *net,
408 const char *name,
409 u_int8_t family)
410 {
411 struct hashlimit_net *hashlimit_net = hashlimit_pernet(net);
412 struct xt_hashlimit_htable *hinfo;
413
414 hlist_for_each_entry(hinfo, &hashlimit_net->htables, node) {
415 if (!strcmp(name, hinfo->name) &&
416 hinfo->family == family) {
417 refcount_inc(&hinfo->use);
418 return hinfo;
419 }
420 }
421 return NULL;
422 }
423
htable_put(struct xt_hashlimit_htable * hinfo)424 static void htable_put(struct xt_hashlimit_htable *hinfo)
425 {
426 if (refcount_dec_and_mutex_lock(&hinfo->use, &hashlimit_mutex)) {
427 hlist_del(&hinfo->node);
428 htable_remove_proc_entry(hinfo);
429 mutex_unlock(&hashlimit_mutex);
430
431 cancel_delayed_work_sync(&hinfo->gc_work);
432 htable_selective_cleanup(hinfo, true);
433 kfree(hinfo->name);
434 kvfree(hinfo);
435 }
436 }
437
438 /* The algorithm used is the Simple Token Bucket Filter (TBF)
439 * see net/sched/sch_tbf.c in the linux source tree
440 */
441
442 /* Rusty: This is my (non-mathematically-inclined) understanding of
443 this algorithm. The `average rate' in jiffies becomes your initial
444 amount of credit `credit' and the most credit you can ever have
445 `credit_cap'. The `peak rate' becomes the cost of passing the
446 test, `cost'.
447
448 `prev' tracks the last packet hit: you gain one credit per jiffy.
449 If you get credit balance more than this, the extra credit is
450 discarded. Every time the match passes, you lose `cost' credits;
451 if you don't have that many, the test fails.
452
453 See Alexey's formal explanation in net/sched/sch_tbf.c.
454
455 To get the maximum range, we multiply by this factor (ie. you get N
456 credits per jiffy). We want to allow a rate as low as 1 per day
457 (slowest userspace tool allows), which means
458 CREDITS_PER_JIFFY*HZ*60*60*24 < 2^32 ie.
459 */
460 #define MAX_CPJ_v1 (0xFFFFFFFF / (HZ*60*60*24))
461 #define MAX_CPJ (0xFFFFFFFFFFFFFFFFULL / (HZ*60*60*24))
462
463 /* Repeated shift and or gives us all 1s, final shift and add 1 gives
464 * us the power of 2 below the theoretical max, so GCC simply does a
465 * shift. */
466 #define _POW2_BELOW2(x) ((x)|((x)>>1))
467 #define _POW2_BELOW4(x) (_POW2_BELOW2(x)|_POW2_BELOW2((x)>>2))
468 #define _POW2_BELOW8(x) (_POW2_BELOW4(x)|_POW2_BELOW4((x)>>4))
469 #define _POW2_BELOW16(x) (_POW2_BELOW8(x)|_POW2_BELOW8((x)>>8))
470 #define _POW2_BELOW32(x) (_POW2_BELOW16(x)|_POW2_BELOW16((x)>>16))
471 #define _POW2_BELOW64(x) (_POW2_BELOW32(x)|_POW2_BELOW32((x)>>32))
472 #define POW2_BELOW32(x) ((_POW2_BELOW32(x)>>1) + 1)
473 #define POW2_BELOW64(x) ((_POW2_BELOW64(x)>>1) + 1)
474
475 #define CREDITS_PER_JIFFY POW2_BELOW64(MAX_CPJ)
476 #define CREDITS_PER_JIFFY_v1 POW2_BELOW32(MAX_CPJ_v1)
477
478 /* in byte mode, the lowest possible rate is one packet/second.
479 * credit_cap is used as a counter that tells us how many times we can
480 * refill the "credits available" counter when it becomes empty.
481 */
482 #define MAX_CPJ_BYTES (0xFFFFFFFF / HZ)
483 #define CREDITS_PER_JIFFY_BYTES POW2_BELOW32(MAX_CPJ_BYTES)
484
xt_hashlimit_len_to_chunks(u32 len)485 static u32 xt_hashlimit_len_to_chunks(u32 len)
486 {
487 return (len >> XT_HASHLIMIT_BYTE_SHIFT) + 1;
488 }
489
490 /* Precision saver. */
user2credits(u64 user,int revision)491 static u64 user2credits(u64 user, int revision)
492 {
493 u64 scale = (revision == 1) ?
494 XT_HASHLIMIT_SCALE : XT_HASHLIMIT_SCALE_v2;
495 u64 cpj = (revision == 1) ?
496 CREDITS_PER_JIFFY_v1 : CREDITS_PER_JIFFY;
497
498 /* Avoid overflow: divide the constant operands first */
499 if (scale >= HZ * cpj)
500 return div64_u64(user, div64_u64(scale, HZ * cpj));
501
502 return user * div64_u64(HZ * cpj, scale);
503 }
504
user2credits_byte(u32 user)505 static u32 user2credits_byte(u32 user)
506 {
507 u64 us = user;
508 us *= HZ * CREDITS_PER_JIFFY_BYTES;
509 return (u32) (us >> 32);
510 }
511
user2rate(u64 user)512 static u64 user2rate(u64 user)
513 {
514 if (user != 0) {
515 return div64_u64(XT_HASHLIMIT_SCALE_v2, user);
516 } else {
517 pr_info_ratelimited("invalid rate from userspace: %llu\n",
518 user);
519 return 0;
520 }
521 }
522
user2rate_bytes(u32 user)523 static u64 user2rate_bytes(u32 user)
524 {
525 u64 r;
526
527 r = user ? U32_MAX / user : U32_MAX;
528 return (r - 1) << XT_HASHLIMIT_BYTE_SHIFT;
529 }
530
rateinfo_recalc(struct dsthash_ent * dh,unsigned long now,u32 mode,int revision)531 static void rateinfo_recalc(struct dsthash_ent *dh, unsigned long now,
532 u32 mode, int revision)
533 {
534 unsigned long delta = now - dh->rateinfo.prev;
535 u64 cap, cpj;
536
537 if (delta == 0)
538 return;
539
540 if (revision >= 3 && mode & XT_HASHLIMIT_RATE_MATCH) {
541 u64 interval = dh->rateinfo.interval * HZ;
542
543 if (delta < interval)
544 return;
545
546 dh->rateinfo.prev = now;
547 dh->rateinfo.prev_window =
548 ((dh->rateinfo.current_rate * interval) >
549 (delta * dh->rateinfo.rate));
550 dh->rateinfo.current_rate = 0;
551
552 return;
553 }
554
555 dh->rateinfo.prev = now;
556
557 if (mode & XT_HASHLIMIT_BYTES) {
558 u64 tmp = dh->rateinfo.credit;
559 dh->rateinfo.credit += CREDITS_PER_JIFFY_BYTES * delta;
560 cap = CREDITS_PER_JIFFY_BYTES * HZ;
561 if (tmp >= dh->rateinfo.credit) {/* overflow */
562 dh->rateinfo.credit = cap;
563 return;
564 }
565 } else {
566 cpj = (revision == 1) ?
567 CREDITS_PER_JIFFY_v1 : CREDITS_PER_JIFFY;
568 dh->rateinfo.credit += delta * cpj;
569 cap = dh->rateinfo.credit_cap;
570 }
571 if (dh->rateinfo.credit > cap)
572 dh->rateinfo.credit = cap;
573 }
574
rateinfo_init(struct dsthash_ent * dh,struct xt_hashlimit_htable * hinfo,int revision)575 static void rateinfo_init(struct dsthash_ent *dh,
576 struct xt_hashlimit_htable *hinfo, int revision)
577 {
578 dh->rateinfo.prev = jiffies;
579 if (revision >= 3 && hinfo->cfg.mode & XT_HASHLIMIT_RATE_MATCH) {
580 dh->rateinfo.prev_window = 0;
581 dh->rateinfo.current_rate = 0;
582 if (hinfo->cfg.mode & XT_HASHLIMIT_BYTES) {
583 dh->rateinfo.rate =
584 user2rate_bytes((u32)hinfo->cfg.avg);
585 if (hinfo->cfg.burst)
586 dh->rateinfo.burst =
587 hinfo->cfg.burst * dh->rateinfo.rate;
588 else
589 dh->rateinfo.burst = dh->rateinfo.rate;
590 } else {
591 dh->rateinfo.rate = user2rate(hinfo->cfg.avg);
592 dh->rateinfo.burst =
593 hinfo->cfg.burst + dh->rateinfo.rate;
594 }
595 dh->rateinfo.interval = hinfo->cfg.interval;
596 } else if (hinfo->cfg.mode & XT_HASHLIMIT_BYTES) {
597 dh->rateinfo.credit = CREDITS_PER_JIFFY_BYTES * HZ;
598 dh->rateinfo.cost = user2credits_byte(hinfo->cfg.avg);
599 dh->rateinfo.credit_cap = hinfo->cfg.burst;
600 } else {
601 dh->rateinfo.credit = user2credits(hinfo->cfg.avg *
602 hinfo->cfg.burst, revision);
603 dh->rateinfo.cost = user2credits(hinfo->cfg.avg, revision);
604 dh->rateinfo.credit_cap = dh->rateinfo.credit;
605 }
606 }
607
maskl(__be32 a,unsigned int l)608 static inline __be32 maskl(__be32 a, unsigned int l)
609 {
610 return l ? htonl(ntohl(a) & ~0 << (32 - l)) : 0;
611 }
612
613 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
hashlimit_ipv6_mask(__be32 * i,unsigned int p)614 static void hashlimit_ipv6_mask(__be32 *i, unsigned int p)
615 {
616 switch (p) {
617 case 0 ... 31:
618 i[0] = maskl(i[0], p);
619 i[1] = i[2] = i[3] = 0;
620 break;
621 case 32 ... 63:
622 i[1] = maskl(i[1], p - 32);
623 i[2] = i[3] = 0;
624 break;
625 case 64 ... 95:
626 i[2] = maskl(i[2], p - 64);
627 i[3] = 0;
628 break;
629 case 96 ... 127:
630 i[3] = maskl(i[3], p - 96);
631 break;
632 case 128:
633 break;
634 }
635 }
636 #endif
637
638 static int
hashlimit_init_dst(const struct xt_hashlimit_htable * hinfo,struct dsthash_dst * dst,const struct sk_buff * skb,unsigned int protoff)639 hashlimit_init_dst(const struct xt_hashlimit_htable *hinfo,
640 struct dsthash_dst *dst,
641 const struct sk_buff *skb, unsigned int protoff)
642 {
643 __be16 _ports[2], *ports;
644 u8 nexthdr;
645 int poff;
646
647 memset(dst, 0, sizeof(*dst));
648
649 switch (hinfo->family) {
650 case NFPROTO_IPV4:
651 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_DIP)
652 dst->ip.dst = maskl(ip_hdr(skb)->daddr,
653 hinfo->cfg.dstmask);
654 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_SIP)
655 dst->ip.src = maskl(ip_hdr(skb)->saddr,
656 hinfo->cfg.srcmask);
657
658 if (!(hinfo->cfg.mode &
659 (XT_HASHLIMIT_HASH_DPT | XT_HASHLIMIT_HASH_SPT)))
660 return 0;
661 if (ntohs(ip_hdr(skb)->frag_off) & IP_OFFSET)
662 return -1;
663 nexthdr = ip_hdr(skb)->protocol;
664 break;
665 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
666 case NFPROTO_IPV6:
667 {
668 __be16 frag_off;
669
670 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_DIP) {
671 memcpy(&dst->ip6.dst, &ipv6_hdr(skb)->daddr,
672 sizeof(dst->ip6.dst));
673 hashlimit_ipv6_mask(dst->ip6.dst, hinfo->cfg.dstmask);
674 }
675 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_SIP) {
676 memcpy(&dst->ip6.src, &ipv6_hdr(skb)->saddr,
677 sizeof(dst->ip6.src));
678 hashlimit_ipv6_mask(dst->ip6.src, hinfo->cfg.srcmask);
679 }
680
681 if (!(hinfo->cfg.mode &
682 (XT_HASHLIMIT_HASH_DPT | XT_HASHLIMIT_HASH_SPT)))
683 return 0;
684 nexthdr = ipv6_hdr(skb)->nexthdr;
685 protoff = ipv6_skip_exthdr(skb, sizeof(struct ipv6hdr), &nexthdr, &frag_off);
686 if ((int)protoff < 0 || ntohs(frag_off) & IP6_OFFSET)
687 return -1;
688 break;
689 }
690 #endif
691 default:
692 BUG();
693 return 0;
694 }
695
696 poff = proto_ports_offset(nexthdr);
697 if (poff >= 0) {
698 ports = skb_header_pointer(skb, protoff + poff, sizeof(_ports),
699 &_ports);
700 } else {
701 _ports[0] = _ports[1] = 0;
702 ports = _ports;
703 }
704 if (!ports)
705 return -1;
706 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_SPT)
707 dst->src_port = ports[0];
708 if (hinfo->cfg.mode & XT_HASHLIMIT_HASH_DPT)
709 dst->dst_port = ports[1];
710 return 0;
711 }
712
hashlimit_byte_cost(unsigned int len,struct dsthash_ent * dh)713 static u32 hashlimit_byte_cost(unsigned int len, struct dsthash_ent *dh)
714 {
715 u64 tmp = xt_hashlimit_len_to_chunks(len);
716 tmp = tmp * dh->rateinfo.cost;
717
718 if (unlikely(tmp > CREDITS_PER_JIFFY_BYTES * HZ))
719 tmp = CREDITS_PER_JIFFY_BYTES * HZ;
720
721 if (dh->rateinfo.credit < tmp && dh->rateinfo.credit_cap) {
722 dh->rateinfo.credit_cap--;
723 dh->rateinfo.credit = CREDITS_PER_JIFFY_BYTES * HZ;
724 }
725 return (u32) tmp;
726 }
727
728 static bool
hashlimit_mt_common(const struct sk_buff * skb,struct xt_action_param * par,struct xt_hashlimit_htable * hinfo,const struct hashlimit_cfg3 * cfg,int revision)729 hashlimit_mt_common(const struct sk_buff *skb, struct xt_action_param *par,
730 struct xt_hashlimit_htable *hinfo,
731 const struct hashlimit_cfg3 *cfg, int revision)
732 {
733 unsigned long now = jiffies;
734 struct dsthash_ent *dh;
735 struct dsthash_dst dst;
736 bool race = false;
737 u64 cost;
738
739 if (hashlimit_init_dst(hinfo, &dst, skb, par->thoff) < 0)
740 goto hotdrop;
741
742 local_bh_disable();
743 dh = dsthash_find(hinfo, &dst);
744 if (dh == NULL) {
745 dh = dsthash_alloc_init(hinfo, &dst, &race);
746 if (dh == NULL) {
747 local_bh_enable();
748 goto hotdrop;
749 } else if (race) {
750 /* Already got an entry, update expiration timeout */
751 dh->expires = now + msecs_to_jiffies(hinfo->cfg.expire);
752 rateinfo_recalc(dh, now, hinfo->cfg.mode, revision);
753 } else {
754 dh->expires = jiffies + msecs_to_jiffies(hinfo->cfg.expire);
755 rateinfo_init(dh, hinfo, revision);
756 }
757 } else {
758 /* update expiration timeout */
759 dh->expires = now + msecs_to_jiffies(hinfo->cfg.expire);
760 rateinfo_recalc(dh, now, hinfo->cfg.mode, revision);
761 }
762
763 if (cfg->mode & XT_HASHLIMIT_RATE_MATCH) {
764 cost = (cfg->mode & XT_HASHLIMIT_BYTES) ? skb->len : 1;
765 dh->rateinfo.current_rate += cost;
766
767 if (!dh->rateinfo.prev_window &&
768 (dh->rateinfo.current_rate <= dh->rateinfo.burst)) {
769 spin_unlock(&dh->lock);
770 local_bh_enable();
771 return !(cfg->mode & XT_HASHLIMIT_INVERT);
772 } else {
773 goto overlimit;
774 }
775 }
776
777 if (cfg->mode & XT_HASHLIMIT_BYTES)
778 cost = hashlimit_byte_cost(skb->len, dh);
779 else
780 cost = dh->rateinfo.cost;
781
782 if (dh->rateinfo.credit >= cost) {
783 /* below the limit */
784 dh->rateinfo.credit -= cost;
785 spin_unlock(&dh->lock);
786 local_bh_enable();
787 return !(cfg->mode & XT_HASHLIMIT_INVERT);
788 }
789
790 overlimit:
791 spin_unlock(&dh->lock);
792 local_bh_enable();
793 /* default match is underlimit - so over the limit, we need to invert */
794 return cfg->mode & XT_HASHLIMIT_INVERT;
795
796 hotdrop:
797 par->hotdrop = true;
798 return false;
799 }
800
801 static bool
hashlimit_mt_v1(const struct sk_buff * skb,struct xt_action_param * par)802 hashlimit_mt_v1(const struct sk_buff *skb, struct xt_action_param *par)
803 {
804 const struct xt_hashlimit_mtinfo1 *info = par->matchinfo;
805 struct xt_hashlimit_htable *hinfo = info->hinfo;
806 struct hashlimit_cfg3 cfg = {};
807 int ret;
808
809 ret = cfg_copy(&cfg, (void *)&info->cfg, 1);
810 if (ret)
811 return ret;
812
813 return hashlimit_mt_common(skb, par, hinfo, &cfg, 1);
814 }
815
816 static bool
hashlimit_mt_v2(const struct sk_buff * skb,struct xt_action_param * par)817 hashlimit_mt_v2(const struct sk_buff *skb, struct xt_action_param *par)
818 {
819 const struct xt_hashlimit_mtinfo2 *info = par->matchinfo;
820 struct xt_hashlimit_htable *hinfo = info->hinfo;
821 struct hashlimit_cfg3 cfg = {};
822 int ret;
823
824 ret = cfg_copy(&cfg, (void *)&info->cfg, 2);
825 if (ret)
826 return ret;
827
828 return hashlimit_mt_common(skb, par, hinfo, &cfg, 2);
829 }
830
831 static bool
hashlimit_mt(const struct sk_buff * skb,struct xt_action_param * par)832 hashlimit_mt(const struct sk_buff *skb, struct xt_action_param *par)
833 {
834 const struct xt_hashlimit_mtinfo3 *info = par->matchinfo;
835 struct xt_hashlimit_htable *hinfo = info->hinfo;
836
837 return hashlimit_mt_common(skb, par, hinfo, &info->cfg, 3);
838 }
839
840 #define HASHLIMIT_MAX_SIZE 1048576
841
hashlimit_mt_check_common(const struct xt_mtchk_param * par,struct xt_hashlimit_htable ** hinfo,struct hashlimit_cfg3 * cfg,const char * name,int revision)842 static int hashlimit_mt_check_common(const struct xt_mtchk_param *par,
843 struct xt_hashlimit_htable **hinfo,
844 struct hashlimit_cfg3 *cfg,
845 const char *name, int revision)
846 {
847 struct net *net = par->net;
848 int ret;
849
850 if (cfg->gc_interval == 0 || cfg->expire == 0)
851 return -EINVAL;
852 if (cfg->size > HASHLIMIT_MAX_SIZE) {
853 cfg->size = HASHLIMIT_MAX_SIZE;
854 pr_info_ratelimited("size too large, truncated to %u\n", cfg->size);
855 }
856 if (cfg->max > HASHLIMIT_MAX_SIZE) {
857 cfg->max = HASHLIMIT_MAX_SIZE;
858 pr_info_ratelimited("max too large, truncated to %u\n", cfg->max);
859 }
860 if (par->family == NFPROTO_IPV4) {
861 if (cfg->srcmask > 32 || cfg->dstmask > 32)
862 return -EINVAL;
863 } else {
864 if (cfg->srcmask > 128 || cfg->dstmask > 128)
865 return -EINVAL;
866 }
867
868 if (cfg->mode & ~XT_HASHLIMIT_ALL) {
869 pr_info_ratelimited("Unknown mode mask %X, kernel too old?\n",
870 cfg->mode);
871 return -EINVAL;
872 }
873
874 /* Check for overflow. */
875 if (revision >= 3 && cfg->mode & XT_HASHLIMIT_RATE_MATCH) {
876 if (cfg->avg == 0 || cfg->avg > U32_MAX) {
877 pr_info_ratelimited("invalid rate\n");
878 return -ERANGE;
879 }
880
881 if (cfg->interval == 0) {
882 pr_info_ratelimited("invalid interval\n");
883 return -EINVAL;
884 }
885 } else if (cfg->mode & XT_HASHLIMIT_BYTES) {
886 if (user2credits_byte(cfg->avg) == 0) {
887 pr_info_ratelimited("overflow, rate too high: %llu\n",
888 cfg->avg);
889 return -EINVAL;
890 }
891 } else if (cfg->burst == 0 ||
892 user2credits(cfg->avg * cfg->burst, revision) <
893 user2credits(cfg->avg, revision)) {
894 pr_info_ratelimited("overflow, try lower: %llu/%llu\n",
895 cfg->avg, cfg->burst);
896 return -ERANGE;
897 }
898
899 mutex_lock(&hashlimit_mutex);
900 *hinfo = htable_find_get(net, name, par->family);
901 if (*hinfo == NULL) {
902 ret = htable_create(net, cfg, name, par->family,
903 hinfo, revision);
904 if (ret < 0) {
905 mutex_unlock(&hashlimit_mutex);
906 return ret;
907 }
908 }
909 mutex_unlock(&hashlimit_mutex);
910
911 return 0;
912 }
913
hashlimit_mt_check_v1(const struct xt_mtchk_param * par)914 static int hashlimit_mt_check_v1(const struct xt_mtchk_param *par)
915 {
916 struct xt_hashlimit_mtinfo1 *info = par->matchinfo;
917 struct hashlimit_cfg3 cfg = {};
918 int ret;
919
920 ret = xt_check_proc_name(info->name, sizeof(info->name));
921 if (ret)
922 return ret;
923
924 ret = cfg_copy(&cfg, (void *)&info->cfg, 1);
925 if (ret)
926 return ret;
927
928 return hashlimit_mt_check_common(par, &info->hinfo,
929 &cfg, info->name, 1);
930 }
931
hashlimit_mt_check_v2(const struct xt_mtchk_param * par)932 static int hashlimit_mt_check_v2(const struct xt_mtchk_param *par)
933 {
934 struct xt_hashlimit_mtinfo2 *info = par->matchinfo;
935 struct hashlimit_cfg3 cfg = {};
936 int ret;
937
938 ret = xt_check_proc_name(info->name, sizeof(info->name));
939 if (ret)
940 return ret;
941
942 ret = cfg_copy(&cfg, (void *)&info->cfg, 2);
943 if (ret)
944 return ret;
945
946 return hashlimit_mt_check_common(par, &info->hinfo,
947 &cfg, info->name, 2);
948 }
949
hashlimit_mt_check(const struct xt_mtchk_param * par)950 static int hashlimit_mt_check(const struct xt_mtchk_param *par)
951 {
952 struct xt_hashlimit_mtinfo3 *info = par->matchinfo;
953 int ret;
954
955 ret = xt_check_proc_name(info->name, sizeof(info->name));
956 if (ret)
957 return ret;
958
959 return hashlimit_mt_check_common(par, &info->hinfo, &info->cfg,
960 info->name, 3);
961 }
962
hashlimit_mt_destroy_v2(const struct xt_mtdtor_param * par)963 static void hashlimit_mt_destroy_v2(const struct xt_mtdtor_param *par)
964 {
965 const struct xt_hashlimit_mtinfo2 *info = par->matchinfo;
966
967 htable_put(info->hinfo);
968 }
969
hashlimit_mt_destroy_v1(const struct xt_mtdtor_param * par)970 static void hashlimit_mt_destroy_v1(const struct xt_mtdtor_param *par)
971 {
972 const struct xt_hashlimit_mtinfo1 *info = par->matchinfo;
973
974 htable_put(info->hinfo);
975 }
976
hashlimit_mt_destroy(const struct xt_mtdtor_param * par)977 static void hashlimit_mt_destroy(const struct xt_mtdtor_param *par)
978 {
979 const struct xt_hashlimit_mtinfo3 *info = par->matchinfo;
980
981 htable_put(info->hinfo);
982 }
983
984 static struct xt_match hashlimit_mt_reg[] __read_mostly = {
985 {
986 .name = "hashlimit",
987 .revision = 1,
988 .family = NFPROTO_IPV4,
989 .match = hashlimit_mt_v1,
990 .matchsize = sizeof(struct xt_hashlimit_mtinfo1),
991 .usersize = offsetof(struct xt_hashlimit_mtinfo1, hinfo),
992 .checkentry = hashlimit_mt_check_v1,
993 .destroy = hashlimit_mt_destroy_v1,
994 .me = THIS_MODULE,
995 },
996 {
997 .name = "hashlimit",
998 .revision = 2,
999 .family = NFPROTO_IPV4,
1000 .match = hashlimit_mt_v2,
1001 .matchsize = sizeof(struct xt_hashlimit_mtinfo2),
1002 .usersize = offsetof(struct xt_hashlimit_mtinfo2, hinfo),
1003 .checkentry = hashlimit_mt_check_v2,
1004 .destroy = hashlimit_mt_destroy_v2,
1005 .me = THIS_MODULE,
1006 },
1007 {
1008 .name = "hashlimit",
1009 .revision = 3,
1010 .family = NFPROTO_IPV4,
1011 .match = hashlimit_mt,
1012 .matchsize = sizeof(struct xt_hashlimit_mtinfo3),
1013 .usersize = offsetof(struct xt_hashlimit_mtinfo3, hinfo),
1014 .checkentry = hashlimit_mt_check,
1015 .destroy = hashlimit_mt_destroy,
1016 .me = THIS_MODULE,
1017 },
1018 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
1019 {
1020 .name = "hashlimit",
1021 .revision = 1,
1022 .family = NFPROTO_IPV6,
1023 .match = hashlimit_mt_v1,
1024 .matchsize = sizeof(struct xt_hashlimit_mtinfo1),
1025 .usersize = offsetof(struct xt_hashlimit_mtinfo1, hinfo),
1026 .checkentry = hashlimit_mt_check_v1,
1027 .destroy = hashlimit_mt_destroy_v1,
1028 .me = THIS_MODULE,
1029 },
1030 {
1031 .name = "hashlimit",
1032 .revision = 2,
1033 .family = NFPROTO_IPV6,
1034 .match = hashlimit_mt_v2,
1035 .matchsize = sizeof(struct xt_hashlimit_mtinfo2),
1036 .usersize = offsetof(struct xt_hashlimit_mtinfo2, hinfo),
1037 .checkentry = hashlimit_mt_check_v2,
1038 .destroy = hashlimit_mt_destroy_v2,
1039 .me = THIS_MODULE,
1040 },
1041 {
1042 .name = "hashlimit",
1043 .revision = 3,
1044 .family = NFPROTO_IPV6,
1045 .match = hashlimit_mt,
1046 .matchsize = sizeof(struct xt_hashlimit_mtinfo3),
1047 .usersize = offsetof(struct xt_hashlimit_mtinfo3, hinfo),
1048 .checkentry = hashlimit_mt_check,
1049 .destroy = hashlimit_mt_destroy,
1050 .me = THIS_MODULE,
1051 },
1052 #endif
1053 };
1054
1055 /* PROC stuff */
dl_seq_start(struct seq_file * s,loff_t * pos)1056 static void *dl_seq_start(struct seq_file *s, loff_t *pos)
1057 __acquires(htable->lock)
1058 {
1059 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1060 unsigned int *bucket;
1061
1062 spin_lock_bh(&htable->lock);
1063 if (*pos >= htable->cfg.size)
1064 return NULL;
1065
1066 bucket = kmalloc(sizeof(unsigned int), GFP_ATOMIC);
1067 if (!bucket)
1068 return ERR_PTR(-ENOMEM);
1069
1070 *bucket = *pos;
1071 return bucket;
1072 }
1073
dl_seq_next(struct seq_file * s,void * v,loff_t * pos)1074 static void *dl_seq_next(struct seq_file *s, void *v, loff_t *pos)
1075 {
1076 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1077 unsigned int *bucket = v;
1078
1079 *pos = ++(*bucket);
1080 if (*pos >= htable->cfg.size) {
1081 kfree(v);
1082 return NULL;
1083 }
1084 return bucket;
1085 }
1086
dl_seq_stop(struct seq_file * s,void * v)1087 static void dl_seq_stop(struct seq_file *s, void *v)
1088 __releases(htable->lock)
1089 {
1090 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1091 unsigned int *bucket = v;
1092
1093 if (!IS_ERR(bucket))
1094 kfree(bucket);
1095 spin_unlock_bh(&htable->lock);
1096 }
1097
dl_seq_print(struct dsthash_ent * ent,u_int8_t family,struct seq_file * s)1098 static void dl_seq_print(struct dsthash_ent *ent, u_int8_t family,
1099 struct seq_file *s)
1100 {
1101 switch (family) {
1102 case NFPROTO_IPV4:
1103 seq_printf(s, "%ld %pI4:%u->%pI4:%u %llu %llu %llu\n",
1104 (long)(ent->expires - jiffies)/HZ,
1105 &ent->dst.ip.src,
1106 ntohs(ent->dst.src_port),
1107 &ent->dst.ip.dst,
1108 ntohs(ent->dst.dst_port),
1109 ent->rateinfo.credit, ent->rateinfo.credit_cap,
1110 ent->rateinfo.cost);
1111 break;
1112 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
1113 case NFPROTO_IPV6:
1114 seq_printf(s, "%ld %pI6:%u->%pI6:%u %llu %llu %llu\n",
1115 (long)(ent->expires - jiffies)/HZ,
1116 &ent->dst.ip6.src,
1117 ntohs(ent->dst.src_port),
1118 &ent->dst.ip6.dst,
1119 ntohs(ent->dst.dst_port),
1120 ent->rateinfo.credit, ent->rateinfo.credit_cap,
1121 ent->rateinfo.cost);
1122 break;
1123 #endif
1124 default:
1125 BUG();
1126 }
1127 }
1128
dl_seq_real_show_v2(struct dsthash_ent * ent,u_int8_t family,struct seq_file * s)1129 static int dl_seq_real_show_v2(struct dsthash_ent *ent, u_int8_t family,
1130 struct seq_file *s)
1131 {
1132 struct xt_hashlimit_htable *ht = pde_data(file_inode(s->file));
1133
1134 spin_lock(&ent->lock);
1135 /* recalculate to show accurate numbers */
1136 rateinfo_recalc(ent, jiffies, ht->cfg.mode, 2);
1137
1138 dl_seq_print(ent, family, s);
1139
1140 spin_unlock(&ent->lock);
1141 return seq_has_overflowed(s);
1142 }
1143
dl_seq_real_show_v1(struct dsthash_ent * ent,u_int8_t family,struct seq_file * s)1144 static int dl_seq_real_show_v1(struct dsthash_ent *ent, u_int8_t family,
1145 struct seq_file *s)
1146 {
1147 struct xt_hashlimit_htable *ht = pde_data(file_inode(s->file));
1148
1149 spin_lock(&ent->lock);
1150 /* recalculate to show accurate numbers */
1151 rateinfo_recalc(ent, jiffies, ht->cfg.mode, 1);
1152
1153 dl_seq_print(ent, family, s);
1154
1155 spin_unlock(&ent->lock);
1156 return seq_has_overflowed(s);
1157 }
1158
dl_seq_real_show(struct dsthash_ent * ent,u_int8_t family,struct seq_file * s)1159 static int dl_seq_real_show(struct dsthash_ent *ent, u_int8_t family,
1160 struct seq_file *s)
1161 {
1162 struct xt_hashlimit_htable *ht = pde_data(file_inode(s->file));
1163
1164 spin_lock(&ent->lock);
1165 /* recalculate to show accurate numbers */
1166 rateinfo_recalc(ent, jiffies, ht->cfg.mode, 3);
1167
1168 dl_seq_print(ent, family, s);
1169
1170 spin_unlock(&ent->lock);
1171 return seq_has_overflowed(s);
1172 }
1173
dl_seq_show_v2(struct seq_file * s,void * v)1174 static int dl_seq_show_v2(struct seq_file *s, void *v)
1175 {
1176 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1177 unsigned int *bucket = (unsigned int *)v;
1178 struct dsthash_ent *ent;
1179
1180 if (!hlist_empty(&htable->hash[*bucket])) {
1181 hlist_for_each_entry(ent, &htable->hash[*bucket], node)
1182 if (dl_seq_real_show_v2(ent, htable->family, s))
1183 return -1;
1184 }
1185 return 0;
1186 }
1187
dl_seq_show_v1(struct seq_file * s,void * v)1188 static int dl_seq_show_v1(struct seq_file *s, void *v)
1189 {
1190 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1191 unsigned int *bucket = v;
1192 struct dsthash_ent *ent;
1193
1194 if (!hlist_empty(&htable->hash[*bucket])) {
1195 hlist_for_each_entry(ent, &htable->hash[*bucket], node)
1196 if (dl_seq_real_show_v1(ent, htable->family, s))
1197 return -1;
1198 }
1199 return 0;
1200 }
1201
dl_seq_show(struct seq_file * s,void * v)1202 static int dl_seq_show(struct seq_file *s, void *v)
1203 {
1204 struct xt_hashlimit_htable *htable = pde_data(file_inode(s->file));
1205 unsigned int *bucket = v;
1206 struct dsthash_ent *ent;
1207
1208 if (!hlist_empty(&htable->hash[*bucket])) {
1209 hlist_for_each_entry(ent, &htable->hash[*bucket], node)
1210 if (dl_seq_real_show(ent, htable->family, s))
1211 return -1;
1212 }
1213 return 0;
1214 }
1215
1216 static const struct seq_operations dl_seq_ops_v1 = {
1217 .start = dl_seq_start,
1218 .next = dl_seq_next,
1219 .stop = dl_seq_stop,
1220 .show = dl_seq_show_v1
1221 };
1222
1223 static const struct seq_operations dl_seq_ops_v2 = {
1224 .start = dl_seq_start,
1225 .next = dl_seq_next,
1226 .stop = dl_seq_stop,
1227 .show = dl_seq_show_v2
1228 };
1229
1230 static const struct seq_operations dl_seq_ops = {
1231 .start = dl_seq_start,
1232 .next = dl_seq_next,
1233 .stop = dl_seq_stop,
1234 .show = dl_seq_show
1235 };
1236
hashlimit_proc_net_init(struct net * net)1237 static int __net_init hashlimit_proc_net_init(struct net *net)
1238 {
1239 struct hashlimit_net *hashlimit_net = hashlimit_pernet(net);
1240
1241 hashlimit_net->ipt_hashlimit = proc_mkdir("ipt_hashlimit", net->proc_net);
1242 if (!hashlimit_net->ipt_hashlimit)
1243 return -ENOMEM;
1244 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
1245 hashlimit_net->ip6t_hashlimit = proc_mkdir("ip6t_hashlimit", net->proc_net);
1246 if (!hashlimit_net->ip6t_hashlimit) {
1247 remove_proc_entry("ipt_hashlimit", net->proc_net);
1248 return -ENOMEM;
1249 }
1250 #endif
1251 return 0;
1252 }
1253
hashlimit_proc_net_exit(struct net * net)1254 static void __net_exit hashlimit_proc_net_exit(struct net *net)
1255 {
1256 struct xt_hashlimit_htable *hinfo;
1257 struct hashlimit_net *hashlimit_net = hashlimit_pernet(net);
1258
1259 /* hashlimit_net_exit() is called before hashlimit_mt_destroy().
1260 * Make sure that the parent ipt_hashlimit and ip6t_hashlimit proc
1261 * entries is empty before trying to remove it.
1262 */
1263 mutex_lock(&hashlimit_mutex);
1264 hlist_for_each_entry(hinfo, &hashlimit_net->htables, node)
1265 htable_remove_proc_entry(hinfo);
1266 hashlimit_net->ipt_hashlimit = NULL;
1267 hashlimit_net->ip6t_hashlimit = NULL;
1268 mutex_unlock(&hashlimit_mutex);
1269
1270 remove_proc_entry("ipt_hashlimit", net->proc_net);
1271 #if IS_ENABLED(CONFIG_IP6_NF_IPTABLES)
1272 remove_proc_entry("ip6t_hashlimit", net->proc_net);
1273 #endif
1274 }
1275
hashlimit_net_init(struct net * net)1276 static int __net_init hashlimit_net_init(struct net *net)
1277 {
1278 struct hashlimit_net *hashlimit_net = hashlimit_pernet(net);
1279
1280 INIT_HLIST_HEAD(&hashlimit_net->htables);
1281 return hashlimit_proc_net_init(net);
1282 }
1283
hashlimit_net_exit(struct net * net)1284 static void __net_exit hashlimit_net_exit(struct net *net)
1285 {
1286 hashlimit_proc_net_exit(net);
1287 }
1288
1289 static struct pernet_operations hashlimit_net_ops = {
1290 .init = hashlimit_net_init,
1291 .exit = hashlimit_net_exit,
1292 .id = &hashlimit_net_id,
1293 .size = sizeof(struct hashlimit_net),
1294 };
1295
hashlimit_mt_init(void)1296 static int __init hashlimit_mt_init(void)
1297 {
1298 int err;
1299
1300 err = register_pernet_subsys(&hashlimit_net_ops);
1301 if (err < 0)
1302 return err;
1303 err = xt_register_matches(hashlimit_mt_reg,
1304 ARRAY_SIZE(hashlimit_mt_reg));
1305 if (err < 0)
1306 goto err1;
1307
1308 err = -ENOMEM;
1309 hashlimit_cachep = kmem_cache_create("xt_hashlimit",
1310 sizeof(struct dsthash_ent), 0, 0,
1311 NULL);
1312 if (!hashlimit_cachep) {
1313 pr_warn("unable to create slab cache\n");
1314 goto err2;
1315 }
1316 return 0;
1317
1318 err2:
1319 xt_unregister_matches(hashlimit_mt_reg, ARRAY_SIZE(hashlimit_mt_reg));
1320 err1:
1321 unregister_pernet_subsys(&hashlimit_net_ops);
1322 return err;
1323
1324 }
1325
hashlimit_mt_exit(void)1326 static void __exit hashlimit_mt_exit(void)
1327 {
1328 xt_unregister_matches(hashlimit_mt_reg, ARRAY_SIZE(hashlimit_mt_reg));
1329 unregister_pernet_subsys(&hashlimit_net_ops);
1330
1331 rcu_barrier();
1332 kmem_cache_destroy(hashlimit_cachep);
1333 }
1334
1335 module_init(hashlimit_mt_init);
1336 module_exit(hashlimit_mt_exit);
1337