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[releases.git] / sched / cls_u32.c
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * net/sched/cls_u32.c  Ugly (or Universal) 32bit key Packet Classifier.
4  *
5  * Authors:     Alexey Kuznetsov, <kuznet@ms2.inr.ac.ru>
6  *
7  *      The filters are packed to hash tables of key nodes
8  *      with a set of 32bit key/mask pairs at every node.
9  *      Nodes reference next level hash tables etc.
10  *
11  *      This scheme is the best universal classifier I managed to
12  *      invent; it is not super-fast, but it is not slow (provided you
13  *      program it correctly), and general enough.  And its relative
14  *      speed grows as the number of rules becomes larger.
15  *
16  *      It seems that it represents the best middle point between
17  *      speed and manageability both by human and by machine.
18  *
19  *      It is especially useful for link sharing combined with QoS;
20  *      pure RSVP doesn't need such a general approach and can use
21  *      much simpler (and faster) schemes, sort of cls_rsvp.c.
22  *
23  *      nfmark match added by Catalin(ux aka Dino) BOIE <catab at umbrella.ro>
24  */
25
26 #include <linux/module.h>
27 #include <linux/slab.h>
28 #include <linux/types.h>
29 #include <linux/kernel.h>
30 #include <linux/string.h>
31 #include <linux/errno.h>
32 #include <linux/percpu.h>
33 #include <linux/rtnetlink.h>
34 #include <linux/skbuff.h>
35 #include <linux/bitmap.h>
36 #include <linux/netdevice.h>
37 #include <linux/hash.h>
38 #include <net/netlink.h>
39 #include <net/act_api.h>
40 #include <net/pkt_cls.h>
41 #include <linux/idr.h>
42
43 struct tc_u_knode {
44         struct tc_u_knode __rcu *next;
45         u32                     handle;
46         struct tc_u_hnode __rcu *ht_up;
47         struct tcf_exts         exts;
48         int                     ifindex;
49         u8                      fshift;
50         struct tcf_result       res;
51         struct tc_u_hnode __rcu *ht_down;
52 #ifdef CONFIG_CLS_U32_PERF
53         struct tc_u32_pcnt __percpu *pf;
54 #endif
55         u32                     flags;
56         unsigned int            in_hw_count;
57 #ifdef CONFIG_CLS_U32_MARK
58         u32                     val;
59         u32                     mask;
60         u32 __percpu            *pcpu_success;
61 #endif
62         struct rcu_work         rwork;
63         /* The 'sel' field MUST be the last field in structure to allow for
64          * tc_u32_keys allocated at end of structure.
65          */
66         struct tc_u32_sel       sel;
67 };
68
69 struct tc_u_hnode {
70         struct tc_u_hnode __rcu *next;
71         u32                     handle;
72         u32                     prio;
73         int                     refcnt;
74         unsigned int            divisor;
75         struct idr              handle_idr;
76         bool                    is_root;
77         struct rcu_head         rcu;
78         u32                     flags;
79         /* The 'ht' field MUST be the last field in structure to allow for
80          * more entries allocated at end of structure.
81          */
82         struct tc_u_knode __rcu *ht[];
83 };
84
85 struct tc_u_common {
86         struct tc_u_hnode __rcu *hlist;
87         void                    *ptr;
88         int                     refcnt;
89         struct idr              handle_idr;
90         struct hlist_node       hnode;
91         long                    knodes;
92 };
93
94 static inline unsigned int u32_hash_fold(__be32 key,
95                                          const struct tc_u32_sel *sel,
96                                          u8 fshift)
97 {
98         unsigned int h = ntohl(key & sel->hmask) >> fshift;
99
100         return h;
101 }
102
103 static int u32_classify(struct sk_buff *skb, const struct tcf_proto *tp,
104                         struct tcf_result *res)
105 {
106         struct {
107                 struct tc_u_knode *knode;
108                 unsigned int      off;
109         } stack[TC_U32_MAXDEPTH];
110
111         struct tc_u_hnode *ht = rcu_dereference_bh(tp->root);
112         unsigned int off = skb_network_offset(skb);
113         struct tc_u_knode *n;
114         int sdepth = 0;
115         int off2 = 0;
116         int sel = 0;
117 #ifdef CONFIG_CLS_U32_PERF
118         int j;
119 #endif
120         int i, r;
121
122 next_ht:
123         n = rcu_dereference_bh(ht->ht[sel]);
124
125 next_knode:
126         if (n) {
127                 struct tc_u32_key *key = n->sel.keys;
128
129 #ifdef CONFIG_CLS_U32_PERF
130                 __this_cpu_inc(n->pf->rcnt);
131                 j = 0;
132 #endif
133
134                 if (tc_skip_sw(n->flags)) {
135                         n = rcu_dereference_bh(n->next);
136                         goto next_knode;
137                 }
138
139 #ifdef CONFIG_CLS_U32_MARK
140                 if ((skb->mark & n->mask) != n->val) {
141                         n = rcu_dereference_bh(n->next);
142                         goto next_knode;
143                 } else {
144                         __this_cpu_inc(*n->pcpu_success);
145                 }
146 #endif
147
148                 for (i = n->sel.nkeys; i > 0; i--, key++) {
149                         int toff = off + key->off + (off2 & key->offmask);
150                         __be32 *data, hdata;
151
152                         if (skb_headroom(skb) + toff > INT_MAX)
153                                 goto out;
154
155                         data = skb_header_pointer(skb, toff, 4, &hdata);
156                         if (!data)
157                                 goto out;
158                         if ((*data ^ key->val) & key->mask) {
159                                 n = rcu_dereference_bh(n->next);
160                                 goto next_knode;
161                         }
162 #ifdef CONFIG_CLS_U32_PERF
163                         __this_cpu_inc(n->pf->kcnts[j]);
164                         j++;
165 #endif
166                 }
167
168                 ht = rcu_dereference_bh(n->ht_down);
169                 if (!ht) {
170 check_terminal:
171                         if (n->sel.flags & TC_U32_TERMINAL) {
172
173                                 *res = n->res;
174                                 if (!tcf_match_indev(skb, n->ifindex)) {
175                                         n = rcu_dereference_bh(n->next);
176                                         goto next_knode;
177                                 }
178 #ifdef CONFIG_CLS_U32_PERF
179                                 __this_cpu_inc(n->pf->rhit);
180 #endif
181                                 r = tcf_exts_exec(skb, &n->exts, res);
182                                 if (r < 0) {
183                                         n = rcu_dereference_bh(n->next);
184                                         goto next_knode;
185                                 }
186
187                                 return r;
188                         }
189                         n = rcu_dereference_bh(n->next);
190                         goto next_knode;
191                 }
192
193                 /* PUSH */
194                 if (sdepth >= TC_U32_MAXDEPTH)
195                         goto deadloop;
196                 stack[sdepth].knode = n;
197                 stack[sdepth].off = off;
198                 sdepth++;
199
200                 ht = rcu_dereference_bh(n->ht_down);
201                 sel = 0;
202                 if (ht->divisor) {
203                         __be32 *data, hdata;
204
205                         data = skb_header_pointer(skb, off + n->sel.hoff, 4,
206                                                   &hdata);
207                         if (!data)
208                                 goto out;
209                         sel = ht->divisor & u32_hash_fold(*data, &n->sel,
210                                                           n->fshift);
211                 }
212                 if (!(n->sel.flags & (TC_U32_VAROFFSET | TC_U32_OFFSET | TC_U32_EAT)))
213                         goto next_ht;
214
215                 if (n->sel.flags & (TC_U32_OFFSET | TC_U32_VAROFFSET)) {
216                         off2 = n->sel.off + 3;
217                         if (n->sel.flags & TC_U32_VAROFFSET) {
218                                 __be16 *data, hdata;
219
220                                 data = skb_header_pointer(skb,
221                                                           off + n->sel.offoff,
222                                                           2, &hdata);
223                                 if (!data)
224                                         goto out;
225                                 off2 += ntohs(n->sel.offmask & *data) >>
226                                         n->sel.offshift;
227                         }
228                         off2 &= ~3;
229                 }
230                 if (n->sel.flags & TC_U32_EAT) {
231                         off += off2;
232                         off2 = 0;
233                 }
234
235                 if (off < skb->len)
236                         goto next_ht;
237         }
238
239         /* POP */
240         if (sdepth--) {
241                 n = stack[sdepth].knode;
242                 ht = rcu_dereference_bh(n->ht_up);
243                 off = stack[sdepth].off;
244                 goto check_terminal;
245         }
246 out:
247         return -1;
248
249 deadloop:
250         net_warn_ratelimited("cls_u32: dead loop\n");
251         return -1;
252 }
253
254 static struct tc_u_hnode *u32_lookup_ht(struct tc_u_common *tp_c, u32 handle)
255 {
256         struct tc_u_hnode *ht;
257
258         for (ht = rtnl_dereference(tp_c->hlist);
259              ht;
260              ht = rtnl_dereference(ht->next))
261                 if (ht->handle == handle)
262                         break;
263
264         return ht;
265 }
266
267 static struct tc_u_knode *u32_lookup_key(struct tc_u_hnode *ht, u32 handle)
268 {
269         unsigned int sel;
270         struct tc_u_knode *n = NULL;
271
272         sel = TC_U32_HASH(handle);
273         if (sel > ht->divisor)
274                 goto out;
275
276         for (n = rtnl_dereference(ht->ht[sel]);
277              n;
278              n = rtnl_dereference(n->next))
279                 if (n->handle == handle)
280                         break;
281 out:
282         return n;
283 }
284
285
286 static void *u32_get(struct tcf_proto *tp, u32 handle)
287 {
288         struct tc_u_hnode *ht;
289         struct tc_u_common *tp_c = tp->data;
290
291         if (TC_U32_HTID(handle) == TC_U32_ROOT)
292                 ht = rtnl_dereference(tp->root);
293         else
294                 ht = u32_lookup_ht(tp_c, TC_U32_HTID(handle));
295
296         if (!ht)
297                 return NULL;
298
299         if (TC_U32_KEY(handle) == 0)
300                 return ht;
301
302         return u32_lookup_key(ht, handle);
303 }
304
305 /* Protected by rtnl lock */
306 static u32 gen_new_htid(struct tc_u_common *tp_c, struct tc_u_hnode *ptr)
307 {
308         int id = idr_alloc_cyclic(&tp_c->handle_idr, ptr, 1, 0x7FF, GFP_KERNEL);
309         if (id < 0)
310                 return 0;
311         return (id | 0x800U) << 20;
312 }
313
314 static struct hlist_head *tc_u_common_hash;
315
316 #define U32_HASH_SHIFT 10
317 #define U32_HASH_SIZE (1 << U32_HASH_SHIFT)
318
319 static void *tc_u_common_ptr(const struct tcf_proto *tp)
320 {
321         struct tcf_block *block = tp->chain->block;
322
323         /* The block sharing is currently supported only
324          * for classless qdiscs. In that case we use block
325          * for tc_u_common identification. In case the
326          * block is not shared, block->q is a valid pointer
327          * and we can use that. That works for classful qdiscs.
328          */
329         if (tcf_block_shared(block))
330                 return block;
331         else
332                 return block->q;
333 }
334
335 static struct hlist_head *tc_u_hash(void *key)
336 {
337         return tc_u_common_hash + hash_ptr(key, U32_HASH_SHIFT);
338 }
339
340 static struct tc_u_common *tc_u_common_find(void *key)
341 {
342         struct tc_u_common *tc;
343         hlist_for_each_entry(tc, tc_u_hash(key), hnode) {
344                 if (tc->ptr == key)
345                         return tc;
346         }
347         return NULL;
348 }
349
350 static int u32_init(struct tcf_proto *tp)
351 {
352         struct tc_u_hnode *root_ht;
353         void *key = tc_u_common_ptr(tp);
354         struct tc_u_common *tp_c = tc_u_common_find(key);
355
356         root_ht = kzalloc(struct_size(root_ht, ht, 1), GFP_KERNEL);
357         if (root_ht == NULL)
358                 return -ENOBUFS;
359
360         root_ht->refcnt++;
361         root_ht->handle = tp_c ? gen_new_htid(tp_c, root_ht) : 0x80000000;
362         root_ht->prio = tp->prio;
363         root_ht->is_root = true;
364         idr_init(&root_ht->handle_idr);
365
366         if (tp_c == NULL) {
367                 tp_c = kzalloc(sizeof(*tp_c), GFP_KERNEL);
368                 if (tp_c == NULL) {
369                         kfree(root_ht);
370                         return -ENOBUFS;
371                 }
372                 tp_c->ptr = key;
373                 INIT_HLIST_NODE(&tp_c->hnode);
374                 idr_init(&tp_c->handle_idr);
375
376                 hlist_add_head(&tp_c->hnode, tc_u_hash(key));
377         }
378
379         tp_c->refcnt++;
380         RCU_INIT_POINTER(root_ht->next, tp_c->hlist);
381         rcu_assign_pointer(tp_c->hlist, root_ht);
382
383         root_ht->refcnt++;
384         rcu_assign_pointer(tp->root, root_ht);
385         tp->data = tp_c;
386         return 0;
387 }
388
389 static void __u32_destroy_key(struct tc_u_knode *n)
390 {
391         struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
392
393         tcf_exts_destroy(&n->exts);
394         if (ht && --ht->refcnt == 0)
395                 kfree(ht);
396         kfree(n);
397 }
398
399 static void u32_destroy_key(struct tc_u_knode *n, bool free_pf)
400 {
401         tcf_exts_put_net(&n->exts);
402 #ifdef CONFIG_CLS_U32_PERF
403         if (free_pf)
404                 free_percpu(n->pf);
405 #endif
406 #ifdef CONFIG_CLS_U32_MARK
407         if (free_pf)
408                 free_percpu(n->pcpu_success);
409 #endif
410         __u32_destroy_key(n);
411 }
412
413 /* u32_delete_key_rcu should be called when free'ing a copied
414  * version of a tc_u_knode obtained from u32_init_knode(). When
415  * copies are obtained from u32_init_knode() the statistics are
416  * shared between the old and new copies to allow readers to
417  * continue to update the statistics during the copy. To support
418  * this the u32_delete_key_rcu variant does not free the percpu
419  * statistics.
420  */
421 static void u32_delete_key_work(struct work_struct *work)
422 {
423         struct tc_u_knode *key = container_of(to_rcu_work(work),
424                                               struct tc_u_knode,
425                                               rwork);
426         rtnl_lock();
427         u32_destroy_key(key, false);
428         rtnl_unlock();
429 }
430
431 /* u32_delete_key_freepf_rcu is the rcu callback variant
432  * that free's the entire structure including the statistics
433  * percpu variables. Only use this if the key is not a copy
434  * returned by u32_init_knode(). See u32_delete_key_rcu()
435  * for the variant that should be used with keys return from
436  * u32_init_knode()
437  */
438 static void u32_delete_key_freepf_work(struct work_struct *work)
439 {
440         struct tc_u_knode *key = container_of(to_rcu_work(work),
441                                               struct tc_u_knode,
442                                               rwork);
443         rtnl_lock();
444         u32_destroy_key(key, true);
445         rtnl_unlock();
446 }
447
448 static int u32_delete_key(struct tcf_proto *tp, struct tc_u_knode *key)
449 {
450         struct tc_u_common *tp_c = tp->data;
451         struct tc_u_knode __rcu **kp;
452         struct tc_u_knode *pkp;
453         struct tc_u_hnode *ht = rtnl_dereference(key->ht_up);
454
455         if (ht) {
456                 kp = &ht->ht[TC_U32_HASH(key->handle)];
457                 for (pkp = rtnl_dereference(*kp); pkp;
458                      kp = &pkp->next, pkp = rtnl_dereference(*kp)) {
459                         if (pkp == key) {
460                                 RCU_INIT_POINTER(*kp, key->next);
461                                 tp_c->knodes--;
462
463                                 tcf_unbind_filter(tp, &key->res);
464                                 idr_remove(&ht->handle_idr, key->handle);
465                                 tcf_exts_get_net(&key->exts);
466                                 tcf_queue_work(&key->rwork, u32_delete_key_freepf_work);
467                                 return 0;
468                         }
469                 }
470         }
471         WARN_ON(1);
472         return 0;
473 }
474
475 static void u32_clear_hw_hnode(struct tcf_proto *tp, struct tc_u_hnode *h,
476                                struct netlink_ext_ack *extack)
477 {
478         struct tcf_block *block = tp->chain->block;
479         struct tc_cls_u32_offload cls_u32 = {};
480
481         tc_cls_common_offload_init(&cls_u32.common, tp, h->flags, extack);
482         cls_u32.command = TC_CLSU32_DELETE_HNODE;
483         cls_u32.hnode.divisor = h->divisor;
484         cls_u32.hnode.handle = h->handle;
485         cls_u32.hnode.prio = h->prio;
486
487         tc_setup_cb_call(block, TC_SETUP_CLSU32, &cls_u32, false, true);
488 }
489
490 static int u32_replace_hw_hnode(struct tcf_proto *tp, struct tc_u_hnode *h,
491                                 u32 flags, struct netlink_ext_ack *extack)
492 {
493         struct tcf_block *block = tp->chain->block;
494         struct tc_cls_u32_offload cls_u32 = {};
495         bool skip_sw = tc_skip_sw(flags);
496         bool offloaded = false;
497         int err;
498
499         tc_cls_common_offload_init(&cls_u32.common, tp, flags, extack);
500         cls_u32.command = TC_CLSU32_NEW_HNODE;
501         cls_u32.hnode.divisor = h->divisor;
502         cls_u32.hnode.handle = h->handle;
503         cls_u32.hnode.prio = h->prio;
504
505         err = tc_setup_cb_call(block, TC_SETUP_CLSU32, &cls_u32, skip_sw, true);
506         if (err < 0) {
507                 u32_clear_hw_hnode(tp, h, NULL);
508                 return err;
509         } else if (err > 0) {
510                 offloaded = true;
511         }
512
513         if (skip_sw && !offloaded)
514                 return -EINVAL;
515
516         return 0;
517 }
518
519 static void u32_remove_hw_knode(struct tcf_proto *tp, struct tc_u_knode *n,
520                                 struct netlink_ext_ack *extack)
521 {
522         struct tcf_block *block = tp->chain->block;
523         struct tc_cls_u32_offload cls_u32 = {};
524
525         tc_cls_common_offload_init(&cls_u32.common, tp, n->flags, extack);
526         cls_u32.command = TC_CLSU32_DELETE_KNODE;
527         cls_u32.knode.handle = n->handle;
528
529         tc_setup_cb_destroy(block, tp, TC_SETUP_CLSU32, &cls_u32, false,
530                             &n->flags, &n->in_hw_count, true);
531 }
532
533 static int u32_replace_hw_knode(struct tcf_proto *tp, struct tc_u_knode *n,
534                                 u32 flags, struct netlink_ext_ack *extack)
535 {
536         struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
537         struct tcf_block *block = tp->chain->block;
538         struct tc_cls_u32_offload cls_u32 = {};
539         bool skip_sw = tc_skip_sw(flags);
540         int err;
541
542         tc_cls_common_offload_init(&cls_u32.common, tp, flags, extack);
543         cls_u32.command = TC_CLSU32_REPLACE_KNODE;
544         cls_u32.knode.handle = n->handle;
545         cls_u32.knode.fshift = n->fshift;
546 #ifdef CONFIG_CLS_U32_MARK
547         cls_u32.knode.val = n->val;
548         cls_u32.knode.mask = n->mask;
549 #else
550         cls_u32.knode.val = 0;
551         cls_u32.knode.mask = 0;
552 #endif
553         cls_u32.knode.sel = &n->sel;
554         cls_u32.knode.res = &n->res;
555         cls_u32.knode.exts = &n->exts;
556         if (n->ht_down)
557                 cls_u32.knode.link_handle = ht->handle;
558
559         err = tc_setup_cb_add(block, tp, TC_SETUP_CLSU32, &cls_u32, skip_sw,
560                               &n->flags, &n->in_hw_count, true);
561         if (err) {
562                 u32_remove_hw_knode(tp, n, NULL);
563                 return err;
564         }
565
566         if (skip_sw && !(n->flags & TCA_CLS_FLAGS_IN_HW))
567                 return -EINVAL;
568
569         return 0;
570 }
571
572 static void u32_clear_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
573                             struct netlink_ext_ack *extack)
574 {
575         struct tc_u_common *tp_c = tp->data;
576         struct tc_u_knode *n;
577         unsigned int h;
578
579         for (h = 0; h <= ht->divisor; h++) {
580                 while ((n = rtnl_dereference(ht->ht[h])) != NULL) {
581                         RCU_INIT_POINTER(ht->ht[h],
582                                          rtnl_dereference(n->next));
583                         tp_c->knodes--;
584                         tcf_unbind_filter(tp, &n->res);
585                         u32_remove_hw_knode(tp, n, extack);
586                         idr_remove(&ht->handle_idr, n->handle);
587                         if (tcf_exts_get_net(&n->exts))
588                                 tcf_queue_work(&n->rwork, u32_delete_key_freepf_work);
589                         else
590                                 u32_destroy_key(n, true);
591                 }
592         }
593 }
594
595 static int u32_destroy_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
596                              struct netlink_ext_ack *extack)
597 {
598         struct tc_u_common *tp_c = tp->data;
599         struct tc_u_hnode __rcu **hn;
600         struct tc_u_hnode *phn;
601
602         WARN_ON(--ht->refcnt);
603
604         u32_clear_hnode(tp, ht, extack);
605
606         hn = &tp_c->hlist;
607         for (phn = rtnl_dereference(*hn);
608              phn;
609              hn = &phn->next, phn = rtnl_dereference(*hn)) {
610                 if (phn == ht) {
611                         u32_clear_hw_hnode(tp, ht, extack);
612                         idr_destroy(&ht->handle_idr);
613                         idr_remove(&tp_c->handle_idr, ht->handle);
614                         RCU_INIT_POINTER(*hn, ht->next);
615                         kfree_rcu(ht, rcu);
616                         return 0;
617                 }
618         }
619
620         return -ENOENT;
621 }
622
623 static void u32_destroy(struct tcf_proto *tp, bool rtnl_held,
624                         struct netlink_ext_ack *extack)
625 {
626         struct tc_u_common *tp_c = tp->data;
627         struct tc_u_hnode *root_ht = rtnl_dereference(tp->root);
628
629         WARN_ON(root_ht == NULL);
630
631         if (root_ht && --root_ht->refcnt == 1)
632                 u32_destroy_hnode(tp, root_ht, extack);
633
634         if (--tp_c->refcnt == 0) {
635                 struct tc_u_hnode *ht;
636
637                 hlist_del(&tp_c->hnode);
638
639                 while ((ht = rtnl_dereference(tp_c->hlist)) != NULL) {
640                         u32_clear_hnode(tp, ht, extack);
641                         RCU_INIT_POINTER(tp_c->hlist, ht->next);
642
643                         /* u32_destroy_key() will later free ht for us, if it's
644                          * still referenced by some knode
645                          */
646                         if (--ht->refcnt == 0)
647                                 kfree_rcu(ht, rcu);
648                 }
649
650                 idr_destroy(&tp_c->handle_idr);
651                 kfree(tp_c);
652         }
653
654         tp->data = NULL;
655 }
656
657 static int u32_delete(struct tcf_proto *tp, void *arg, bool *last,
658                       bool rtnl_held, struct netlink_ext_ack *extack)
659 {
660         struct tc_u_hnode *ht = arg;
661         struct tc_u_common *tp_c = tp->data;
662         int ret = 0;
663
664         if (TC_U32_KEY(ht->handle)) {
665                 u32_remove_hw_knode(tp, (struct tc_u_knode *)ht, extack);
666                 ret = u32_delete_key(tp, (struct tc_u_knode *)ht);
667                 goto out;
668         }
669
670         if (ht->is_root) {
671                 NL_SET_ERR_MSG_MOD(extack, "Not allowed to delete root node");
672                 return -EINVAL;
673         }
674
675         if (ht->refcnt == 1) {
676                 u32_destroy_hnode(tp, ht, extack);
677         } else {
678                 NL_SET_ERR_MSG_MOD(extack, "Can not delete in-use filter");
679                 return -EBUSY;
680         }
681
682 out:
683         *last = tp_c->refcnt == 1 && tp_c->knodes == 0;
684         return ret;
685 }
686
687 static u32 gen_new_kid(struct tc_u_hnode *ht, u32 htid)
688 {
689         u32 index = htid | 0x800;
690         u32 max = htid | 0xFFF;
691
692         if (idr_alloc_u32(&ht->handle_idr, NULL, &index, max, GFP_KERNEL)) {
693                 index = htid + 1;
694                 if (idr_alloc_u32(&ht->handle_idr, NULL, &index, max,
695                                  GFP_KERNEL))
696                         index = max;
697         }
698
699         return index;
700 }
701
702 static const struct nla_policy u32_policy[TCA_U32_MAX + 1] = {
703         [TCA_U32_CLASSID]       = { .type = NLA_U32 },
704         [TCA_U32_HASH]          = { .type = NLA_U32 },
705         [TCA_U32_LINK]          = { .type = NLA_U32 },
706         [TCA_U32_DIVISOR]       = { .type = NLA_U32 },
707         [TCA_U32_SEL]           = { .len = sizeof(struct tc_u32_sel) },
708         [TCA_U32_INDEV]         = { .type = NLA_STRING, .len = IFNAMSIZ },
709         [TCA_U32_MARK]          = { .len = sizeof(struct tc_u32_mark) },
710         [TCA_U32_FLAGS]         = { .type = NLA_U32 },
711 };
712
713 static void u32_unbind_filter(struct tcf_proto *tp, struct tc_u_knode *n,
714                               struct nlattr **tb)
715 {
716         if (tb[TCA_U32_CLASSID])
717                 tcf_unbind_filter(tp, &n->res);
718 }
719
720 static void u32_bind_filter(struct tcf_proto *tp, struct tc_u_knode *n,
721                             unsigned long base, struct nlattr **tb)
722 {
723         if (tb[TCA_U32_CLASSID]) {
724                 n->res.classid = nla_get_u32(tb[TCA_U32_CLASSID]);
725                 tcf_bind_filter(tp, &n->res, base);
726         }
727 }
728
729 static int u32_set_parms(struct net *net, struct tcf_proto *tp,
730                          struct tc_u_knode *n, struct nlattr **tb,
731                          struct nlattr *est, u32 flags, u32 fl_flags,
732                          struct netlink_ext_ack *extack)
733 {
734         int err, ifindex = -1;
735
736         err = tcf_exts_validate_ex(net, tp, tb, est, &n->exts, flags,
737                                    fl_flags, extack);
738         if (err < 0)
739                 return err;
740
741         if (tb[TCA_U32_INDEV]) {
742                 ifindex = tcf_change_indev(net, tb[TCA_U32_INDEV], extack);
743                 if (ifindex < 0)
744                         return -EINVAL;
745         }
746
747         if (tb[TCA_U32_LINK]) {
748                 u32 handle = nla_get_u32(tb[TCA_U32_LINK]);
749                 struct tc_u_hnode *ht_down = NULL, *ht_old;
750
751                 if (TC_U32_KEY(handle)) {
752                         NL_SET_ERR_MSG_MOD(extack, "u32 Link handle must be a hash table");
753                         return -EINVAL;
754                 }
755
756                 if (handle) {
757                         ht_down = u32_lookup_ht(tp->data, handle);
758
759                         if (!ht_down) {
760                                 NL_SET_ERR_MSG_MOD(extack, "Link hash table not found");
761                                 return -EINVAL;
762                         }
763                         if (ht_down->is_root) {
764                                 NL_SET_ERR_MSG_MOD(extack, "Not linking to root node");
765                                 return -EINVAL;
766                         }
767                         ht_down->refcnt++;
768                 }
769
770                 ht_old = rtnl_dereference(n->ht_down);
771                 rcu_assign_pointer(n->ht_down, ht_down);
772
773                 if (ht_old)
774                         ht_old->refcnt--;
775         }
776
777         if (ifindex >= 0)
778                 n->ifindex = ifindex;
779
780         return 0;
781 }
782
783 static void u32_replace_knode(struct tcf_proto *tp, struct tc_u_common *tp_c,
784                               struct tc_u_knode *n)
785 {
786         struct tc_u_knode __rcu **ins;
787         struct tc_u_knode *pins;
788         struct tc_u_hnode *ht;
789
790         if (TC_U32_HTID(n->handle) == TC_U32_ROOT)
791                 ht = rtnl_dereference(tp->root);
792         else
793                 ht = u32_lookup_ht(tp_c, TC_U32_HTID(n->handle));
794
795         ins = &ht->ht[TC_U32_HASH(n->handle)];
796
797         /* The node must always exist for it to be replaced if this is not the
798          * case then something went very wrong elsewhere.
799          */
800         for (pins = rtnl_dereference(*ins); ;
801              ins = &pins->next, pins = rtnl_dereference(*ins))
802                 if (pins->handle == n->handle)
803                         break;
804
805         idr_replace(&ht->handle_idr, n, n->handle);
806         RCU_INIT_POINTER(n->next, pins->next);
807         rcu_assign_pointer(*ins, n);
808 }
809
810 static struct tc_u_knode *u32_init_knode(struct net *net, struct tcf_proto *tp,
811                                          struct tc_u_knode *n)
812 {
813         struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
814         struct tc_u32_sel *s = &n->sel;
815         struct tc_u_knode *new;
816
817         new = kzalloc(struct_size(new, sel.keys, s->nkeys), GFP_KERNEL);
818         if (!new)
819                 return NULL;
820
821         RCU_INIT_POINTER(new->next, n->next);
822         new->handle = n->handle;
823         RCU_INIT_POINTER(new->ht_up, n->ht_up);
824
825         new->ifindex = n->ifindex;
826         new->fshift = n->fshift;
827         new->flags = n->flags;
828         RCU_INIT_POINTER(new->ht_down, ht);
829
830 #ifdef CONFIG_CLS_U32_PERF
831         /* Statistics may be incremented by readers during update
832          * so we must keep them in tact. When the node is later destroyed
833          * a special destroy call must be made to not free the pf memory.
834          */
835         new->pf = n->pf;
836 #endif
837
838 #ifdef CONFIG_CLS_U32_MARK
839         new->val = n->val;
840         new->mask = n->mask;
841         /* Similarly success statistics must be moved as pointers */
842         new->pcpu_success = n->pcpu_success;
843 #endif
844         memcpy(&new->sel, s, struct_size(s, keys, s->nkeys));
845
846         if (tcf_exts_init(&new->exts, net, TCA_U32_ACT, TCA_U32_POLICE)) {
847                 kfree(new);
848                 return NULL;
849         }
850
851         /* bump reference count as long as we hold pointer to structure */
852         if (ht)
853                 ht->refcnt++;
854
855         return new;
856 }
857
858 static int u32_change(struct net *net, struct sk_buff *in_skb,
859                       struct tcf_proto *tp, unsigned long base, u32 handle,
860                       struct nlattr **tca, void **arg, u32 flags,
861                       struct netlink_ext_ack *extack)
862 {
863         struct tc_u_common *tp_c = tp->data;
864         struct tc_u_hnode *ht;
865         struct tc_u_knode *n;
866         struct tc_u32_sel *s;
867         struct nlattr *opt = tca[TCA_OPTIONS];
868         struct nlattr *tb[TCA_U32_MAX + 1];
869         u32 htid, userflags = 0;
870         size_t sel_size;
871         int err;
872
873         if (!opt) {
874                 if (handle) {
875                         NL_SET_ERR_MSG_MOD(extack, "Filter handle requires options");
876                         return -EINVAL;
877                 } else {
878                         return 0;
879                 }
880         }
881
882         err = nla_parse_nested_deprecated(tb, TCA_U32_MAX, opt, u32_policy,
883                                           extack);
884         if (err < 0)
885                 return err;
886
887         if (tb[TCA_U32_FLAGS]) {
888                 userflags = nla_get_u32(tb[TCA_U32_FLAGS]);
889                 if (!tc_flags_valid(userflags)) {
890                         NL_SET_ERR_MSG_MOD(extack, "Invalid filter flags");
891                         return -EINVAL;
892                 }
893         }
894
895         n = *arg;
896         if (n) {
897                 struct tc_u_knode *new;
898
899                 if (TC_U32_KEY(n->handle) == 0) {
900                         NL_SET_ERR_MSG_MOD(extack, "Key node id cannot be zero");
901                         return -EINVAL;
902                 }
903
904                 if ((n->flags ^ userflags) &
905                     ~(TCA_CLS_FLAGS_IN_HW | TCA_CLS_FLAGS_NOT_IN_HW)) {
906                         NL_SET_ERR_MSG_MOD(extack, "Key node flags do not match passed flags");
907                         return -EINVAL;
908                 }
909
910                 new = u32_init_knode(net, tp, n);
911                 if (!new)
912                         return -ENOMEM;
913
914                 err = u32_set_parms(net, tp, new, tb, tca[TCA_RATE],
915                                     flags, new->flags, extack);
916
917                 if (err) {
918                         __u32_destroy_key(new);
919                         return err;
920                 }
921
922                 u32_bind_filter(tp, new, base, tb);
923
924                 err = u32_replace_hw_knode(tp, new, flags, extack);
925                 if (err) {
926                         u32_unbind_filter(tp, new, tb);
927
928                         if (tb[TCA_U32_LINK]) {
929                                 struct tc_u_hnode *ht_old;
930
931                                 ht_old = rtnl_dereference(n->ht_down);
932                                 if (ht_old)
933                                         ht_old->refcnt++;
934                         }
935                         __u32_destroy_key(new);
936                         return err;
937                 }
938
939                 if (!tc_in_hw(new->flags))
940                         new->flags |= TCA_CLS_FLAGS_NOT_IN_HW;
941
942                 u32_replace_knode(tp, tp_c, new);
943                 tcf_unbind_filter(tp, &n->res);
944                 tcf_exts_get_net(&n->exts);
945                 tcf_queue_work(&n->rwork, u32_delete_key_work);
946                 return 0;
947         }
948
949         if (tb[TCA_U32_DIVISOR]) {
950                 unsigned int divisor = nla_get_u32(tb[TCA_U32_DIVISOR]);
951
952                 if (!is_power_of_2(divisor)) {
953                         NL_SET_ERR_MSG_MOD(extack, "Divisor is not a power of 2");
954                         return -EINVAL;
955                 }
956                 if (divisor-- > 0x100) {
957                         NL_SET_ERR_MSG_MOD(extack, "Exceeded maximum 256 hash buckets");
958                         return -EINVAL;
959                 }
960                 if (TC_U32_KEY(handle)) {
961                         NL_SET_ERR_MSG_MOD(extack, "Divisor can only be used on a hash table");
962                         return -EINVAL;
963                 }
964                 ht = kzalloc(struct_size(ht, ht, divisor + 1), GFP_KERNEL);
965                 if (ht == NULL)
966                         return -ENOBUFS;
967                 if (handle == 0) {
968                         handle = gen_new_htid(tp->data, ht);
969                         if (handle == 0) {
970                                 kfree(ht);
971                                 return -ENOMEM;
972                         }
973                 } else {
974                         err = idr_alloc_u32(&tp_c->handle_idr, ht, &handle,
975                                             handle, GFP_KERNEL);
976                         if (err) {
977                                 kfree(ht);
978                                 return err;
979                         }
980                 }
981                 ht->refcnt = 1;
982                 ht->divisor = divisor;
983                 ht->handle = handle;
984                 ht->prio = tp->prio;
985                 idr_init(&ht->handle_idr);
986                 ht->flags = userflags;
987
988                 err = u32_replace_hw_hnode(tp, ht, userflags, extack);
989                 if (err) {
990                         idr_remove(&tp_c->handle_idr, handle);
991                         kfree(ht);
992                         return err;
993                 }
994
995                 RCU_INIT_POINTER(ht->next, tp_c->hlist);
996                 rcu_assign_pointer(tp_c->hlist, ht);
997                 *arg = ht;
998
999                 return 0;
1000         }
1001
1002         if (tb[TCA_U32_HASH]) {
1003                 htid = nla_get_u32(tb[TCA_U32_HASH]);
1004                 if (TC_U32_HTID(htid) == TC_U32_ROOT) {
1005                         ht = rtnl_dereference(tp->root);
1006                         htid = ht->handle;
1007                 } else {
1008                         ht = u32_lookup_ht(tp->data, TC_U32_HTID(htid));
1009                         if (!ht) {
1010                                 NL_SET_ERR_MSG_MOD(extack, "Specified hash table not found");
1011                                 return -EINVAL;
1012                         }
1013                 }
1014         } else {
1015                 ht = rtnl_dereference(tp->root);
1016                 htid = ht->handle;
1017         }
1018
1019         if (ht->divisor < TC_U32_HASH(htid)) {
1020                 NL_SET_ERR_MSG_MOD(extack, "Specified hash table buckets exceed configured value");
1021                 return -EINVAL;
1022         }
1023
1024         /* At this point, we need to derive the new handle that will be used to
1025          * uniquely map the identity of this table match entry. The
1026          * identity of the entry that we need to construct is 32 bits made of:
1027          *     htid(12b):bucketid(8b):node/entryid(12b)
1028          *
1029          * At this point _we have the table(ht)_ in which we will insert this
1030          * entry. We carry the table's id in variable "htid".
1031          * Note that earlier code picked the ht selection either by a) the user
1032          * providing the htid specified via TCA_U32_HASH attribute or b) when
1033          * no such attribute is passed then the root ht, is default to at ID
1034          * 0x[800][00][000]. Rule: the root table has a single bucket with ID 0.
1035          * If OTOH the user passed us the htid, they may also pass a bucketid of
1036          * choice. 0 is fine. For example a user htid is 0x[600][01][000] it is
1037          * indicating hash bucketid of 1. Rule: the entry/node ID _cannot_ be
1038          * passed via the htid, so even if it was non-zero it will be ignored.
1039          *
1040          * We may also have a handle, if the user passed one. The handle also
1041          * carries the same addressing of htid(12b):bucketid(8b):node/entryid(12b).
1042          * Rule: the bucketid on the handle is ignored even if one was passed;
1043          * rather the value on "htid" is always assumed to be the bucketid.
1044          */
1045         if (handle) {
1046                 /* Rule: The htid from handle and tableid from htid must match */
1047                 if (TC_U32_HTID(handle) && TC_U32_HTID(handle ^ htid)) {
1048                         NL_SET_ERR_MSG_MOD(extack, "Handle specified hash table address mismatch");
1049                         return -EINVAL;
1050                 }
1051                 /* Ok, so far we have a valid htid(12b):bucketid(8b) but we
1052                  * need to finalize the table entry identification with the last
1053                  * part - the node/entryid(12b)). Rule: Nodeid _cannot be 0_ for
1054                  * entries. Rule: nodeid of 0 is reserved only for tables(see
1055                  * earlier code which processes TC_U32_DIVISOR attribute).
1056                  * Rule: The nodeid can only be derived from the handle (and not
1057                  * htid).
1058                  * Rule: if the handle specified zero for the node id example
1059                  * 0x60000000, then pick a new nodeid from the pool of IDs
1060                  * this hash table has been allocating from.
1061                  * If OTOH it is specified (i.e for example the user passed a
1062                  * handle such as 0x60000123), then we use it generate our final
1063                  * handle which is used to uniquely identify the match entry.
1064                  */
1065                 if (!TC_U32_NODE(handle)) {
1066                         handle = gen_new_kid(ht, htid);
1067                 } else {
1068                         handle = htid | TC_U32_NODE(handle);
1069                         err = idr_alloc_u32(&ht->handle_idr, NULL, &handle,
1070                                             handle, GFP_KERNEL);
1071                         if (err)
1072                                 return err;
1073                 }
1074         } else {
1075                 /* The user did not give us a handle; lets just generate one
1076                  * from the table's pool of nodeids.
1077                  */
1078                 handle = gen_new_kid(ht, htid);
1079         }
1080
1081         if (tb[TCA_U32_SEL] == NULL) {
1082                 NL_SET_ERR_MSG_MOD(extack, "Selector not specified");
1083                 err = -EINVAL;
1084                 goto erridr;
1085         }
1086
1087         s = nla_data(tb[TCA_U32_SEL]);
1088         sel_size = struct_size(s, keys, s->nkeys);
1089         if (nla_len(tb[TCA_U32_SEL]) < sel_size) {
1090                 err = -EINVAL;
1091                 goto erridr;
1092         }
1093
1094         n = kzalloc(struct_size(n, sel.keys, s->nkeys), GFP_KERNEL);
1095         if (n == NULL) {
1096                 err = -ENOBUFS;
1097                 goto erridr;
1098         }
1099
1100 #ifdef CONFIG_CLS_U32_PERF
1101         n->pf = __alloc_percpu(struct_size(n->pf, kcnts, s->nkeys),
1102                                __alignof__(struct tc_u32_pcnt));
1103         if (!n->pf) {
1104                 err = -ENOBUFS;
1105                 goto errfree;
1106         }
1107 #endif
1108
1109         unsafe_memcpy(&n->sel, s, sel_size,
1110                       /* A composite flex-array structure destination,
1111                        * which was correctly sized with struct_size(),
1112                        * bounds-checked against nla_len(), and allocated
1113                        * above. */);
1114         RCU_INIT_POINTER(n->ht_up, ht);
1115         n->handle = handle;
1116         n->fshift = s->hmask ? ffs(ntohl(s->hmask)) - 1 : 0;
1117         n->flags = userflags;
1118
1119         err = tcf_exts_init(&n->exts, net, TCA_U32_ACT, TCA_U32_POLICE);
1120         if (err < 0)
1121                 goto errout;
1122
1123 #ifdef CONFIG_CLS_U32_MARK
1124         n->pcpu_success = alloc_percpu(u32);
1125         if (!n->pcpu_success) {
1126                 err = -ENOMEM;
1127                 goto errout;
1128         }
1129
1130         if (tb[TCA_U32_MARK]) {
1131                 struct tc_u32_mark *mark;
1132
1133                 mark = nla_data(tb[TCA_U32_MARK]);
1134                 n->val = mark->val;
1135                 n->mask = mark->mask;
1136         }
1137 #endif
1138
1139         err = u32_set_parms(net, tp, n, tb, tca[TCA_RATE],
1140                             flags, n->flags, extack);
1141
1142         u32_bind_filter(tp, n, base, tb);
1143
1144         if (err == 0) {
1145                 struct tc_u_knode __rcu **ins;
1146                 struct tc_u_knode *pins;
1147
1148                 err = u32_replace_hw_knode(tp, n, flags, extack);
1149                 if (err)
1150                         goto errunbind;
1151
1152                 if (!tc_in_hw(n->flags))
1153                         n->flags |= TCA_CLS_FLAGS_NOT_IN_HW;
1154
1155                 ins = &ht->ht[TC_U32_HASH(handle)];
1156                 for (pins = rtnl_dereference(*ins); pins;
1157                      ins = &pins->next, pins = rtnl_dereference(*ins))
1158                         if (TC_U32_NODE(handle) < TC_U32_NODE(pins->handle))
1159                                 break;
1160
1161                 RCU_INIT_POINTER(n->next, pins);
1162                 rcu_assign_pointer(*ins, n);
1163                 tp_c->knodes++;
1164                 *arg = n;
1165                 return 0;
1166         }
1167
1168 errunbind:
1169         u32_unbind_filter(tp, n, tb);
1170
1171 #ifdef CONFIG_CLS_U32_MARK
1172         free_percpu(n->pcpu_success);
1173 #endif
1174
1175 errout:
1176         tcf_exts_destroy(&n->exts);
1177 #ifdef CONFIG_CLS_U32_PERF
1178 errfree:
1179         free_percpu(n->pf);
1180 #endif
1181         kfree(n);
1182 erridr:
1183         idr_remove(&ht->handle_idr, handle);
1184         return err;
1185 }
1186
1187 static void u32_walk(struct tcf_proto *tp, struct tcf_walker *arg,
1188                      bool rtnl_held)
1189 {
1190         struct tc_u_common *tp_c = tp->data;
1191         struct tc_u_hnode *ht;
1192         struct tc_u_knode *n;
1193         unsigned int h;
1194
1195         if (arg->stop)
1196                 return;
1197
1198         for (ht = rtnl_dereference(tp_c->hlist);
1199              ht;
1200              ht = rtnl_dereference(ht->next)) {
1201                 if (ht->prio != tp->prio)
1202                         continue;
1203
1204                 if (!tc_cls_stats_dump(tp, arg, ht))
1205                         return;
1206
1207                 for (h = 0; h <= ht->divisor; h++) {
1208                         for (n = rtnl_dereference(ht->ht[h]);
1209                              n;
1210                              n = rtnl_dereference(n->next)) {
1211                                 if (!tc_cls_stats_dump(tp, arg, n))
1212                                         return;
1213                         }
1214                 }
1215         }
1216 }
1217
1218 static int u32_reoffload_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
1219                                bool add, flow_setup_cb_t *cb, void *cb_priv,
1220                                struct netlink_ext_ack *extack)
1221 {
1222         struct tc_cls_u32_offload cls_u32 = {};
1223         int err;
1224
1225         tc_cls_common_offload_init(&cls_u32.common, tp, ht->flags, extack);
1226         cls_u32.command = add ? TC_CLSU32_NEW_HNODE : TC_CLSU32_DELETE_HNODE;
1227         cls_u32.hnode.divisor = ht->divisor;
1228         cls_u32.hnode.handle = ht->handle;
1229         cls_u32.hnode.prio = ht->prio;
1230
1231         err = cb(TC_SETUP_CLSU32, &cls_u32, cb_priv);
1232         if (err && add && tc_skip_sw(ht->flags))
1233                 return err;
1234
1235         return 0;
1236 }
1237
1238 static int u32_reoffload_knode(struct tcf_proto *tp, struct tc_u_knode *n,
1239                                bool add, flow_setup_cb_t *cb, void *cb_priv,
1240                                struct netlink_ext_ack *extack)
1241 {
1242         struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
1243         struct tcf_block *block = tp->chain->block;
1244         struct tc_cls_u32_offload cls_u32 = {};
1245
1246         tc_cls_common_offload_init(&cls_u32.common, tp, n->flags, extack);
1247         cls_u32.command = add ?
1248                 TC_CLSU32_REPLACE_KNODE : TC_CLSU32_DELETE_KNODE;
1249         cls_u32.knode.handle = n->handle;
1250
1251         if (add) {
1252                 cls_u32.knode.fshift = n->fshift;
1253 #ifdef CONFIG_CLS_U32_MARK
1254                 cls_u32.knode.val = n->val;
1255                 cls_u32.knode.mask = n->mask;
1256 #else
1257                 cls_u32.knode.val = 0;
1258                 cls_u32.knode.mask = 0;
1259 #endif
1260                 cls_u32.knode.sel = &n->sel;
1261                 cls_u32.knode.res = &n->res;
1262                 cls_u32.knode.exts = &n->exts;
1263                 if (n->ht_down)
1264                         cls_u32.knode.link_handle = ht->handle;
1265         }
1266
1267         return tc_setup_cb_reoffload(block, tp, add, cb, TC_SETUP_CLSU32,
1268                                      &cls_u32, cb_priv, &n->flags,
1269                                      &n->in_hw_count);
1270 }
1271
1272 static int u32_reoffload(struct tcf_proto *tp, bool add, flow_setup_cb_t *cb,
1273                          void *cb_priv, struct netlink_ext_ack *extack)
1274 {
1275         struct tc_u_common *tp_c = tp->data;
1276         struct tc_u_hnode *ht;
1277         struct tc_u_knode *n;
1278         unsigned int h;
1279         int err;
1280
1281         for (ht = rtnl_dereference(tp_c->hlist);
1282              ht;
1283              ht = rtnl_dereference(ht->next)) {
1284                 if (ht->prio != tp->prio)
1285                         continue;
1286
1287                 /* When adding filters to a new dev, try to offload the
1288                  * hashtable first. When removing, do the filters before the
1289                  * hashtable.
1290                  */
1291                 if (add && !tc_skip_hw(ht->flags)) {
1292                         err = u32_reoffload_hnode(tp, ht, add, cb, cb_priv,
1293                                                   extack);
1294                         if (err)
1295                                 return err;
1296                 }
1297
1298                 for (h = 0; h <= ht->divisor; h++) {
1299                         for (n = rtnl_dereference(ht->ht[h]);
1300                              n;
1301                              n = rtnl_dereference(n->next)) {
1302                                 if (tc_skip_hw(n->flags))
1303                                         continue;
1304
1305                                 err = u32_reoffload_knode(tp, n, add, cb,
1306                                                           cb_priv, extack);
1307                                 if (err)
1308                                         return err;
1309                         }
1310                 }
1311
1312                 if (!add && !tc_skip_hw(ht->flags))
1313                         u32_reoffload_hnode(tp, ht, add, cb, cb_priv, extack);
1314         }
1315
1316         return 0;
1317 }
1318
1319 static void u32_bind_class(void *fh, u32 classid, unsigned long cl, void *q,
1320                            unsigned long base)
1321 {
1322         struct tc_u_knode *n = fh;
1323
1324         tc_cls_bind_class(classid, cl, q, &n->res, base);
1325 }
1326
1327 static int u32_dump(struct net *net, struct tcf_proto *tp, void *fh,
1328                     struct sk_buff *skb, struct tcmsg *t, bool rtnl_held)
1329 {
1330         struct tc_u_knode *n = fh;
1331         struct tc_u_hnode *ht_up, *ht_down;
1332         struct nlattr *nest;
1333
1334         if (n == NULL)
1335                 return skb->len;
1336
1337         t->tcm_handle = n->handle;
1338
1339         nest = nla_nest_start_noflag(skb, TCA_OPTIONS);
1340         if (nest == NULL)
1341                 goto nla_put_failure;
1342
1343         if (TC_U32_KEY(n->handle) == 0) {
1344                 struct tc_u_hnode *ht = fh;
1345                 u32 divisor = ht->divisor + 1;
1346
1347                 if (nla_put_u32(skb, TCA_U32_DIVISOR, divisor))
1348                         goto nla_put_failure;
1349         } else {
1350 #ifdef CONFIG_CLS_U32_PERF
1351                 struct tc_u32_pcnt *gpf;
1352                 int cpu;
1353 #endif
1354
1355                 if (nla_put(skb, TCA_U32_SEL, struct_size(&n->sel, keys, n->sel.nkeys),
1356                             &n->sel))
1357                         goto nla_put_failure;
1358
1359                 ht_up = rtnl_dereference(n->ht_up);
1360                 if (ht_up) {
1361                         u32 htid = n->handle & 0xFFFFF000;
1362                         if (nla_put_u32(skb, TCA_U32_HASH, htid))
1363                                 goto nla_put_failure;
1364                 }
1365                 if (n->res.classid &&
1366                     nla_put_u32(skb, TCA_U32_CLASSID, n->res.classid))
1367                         goto nla_put_failure;
1368
1369                 ht_down = rtnl_dereference(n->ht_down);
1370                 if (ht_down &&
1371                     nla_put_u32(skb, TCA_U32_LINK, ht_down->handle))
1372                         goto nla_put_failure;
1373
1374                 if (n->flags && nla_put_u32(skb, TCA_U32_FLAGS, n->flags))
1375                         goto nla_put_failure;
1376
1377 #ifdef CONFIG_CLS_U32_MARK
1378                 if ((n->val || n->mask)) {
1379                         struct tc_u32_mark mark = {.val = n->val,
1380                                                    .mask = n->mask,
1381                                                    .success = 0};
1382                         int cpum;
1383
1384                         for_each_possible_cpu(cpum) {
1385                                 __u32 cnt = *per_cpu_ptr(n->pcpu_success, cpum);
1386
1387                                 mark.success += cnt;
1388                         }
1389
1390                         if (nla_put(skb, TCA_U32_MARK, sizeof(mark), &mark))
1391                                 goto nla_put_failure;
1392                 }
1393 #endif
1394
1395                 if (tcf_exts_dump(skb, &n->exts) < 0)
1396                         goto nla_put_failure;
1397
1398                 if (n->ifindex) {
1399                         struct net_device *dev;
1400                         dev = __dev_get_by_index(net, n->ifindex);
1401                         if (dev && nla_put_string(skb, TCA_U32_INDEV, dev->name))
1402                                 goto nla_put_failure;
1403                 }
1404 #ifdef CONFIG_CLS_U32_PERF
1405                 gpf = kzalloc(struct_size(gpf, kcnts, n->sel.nkeys), GFP_KERNEL);
1406                 if (!gpf)
1407                         goto nla_put_failure;
1408
1409                 for_each_possible_cpu(cpu) {
1410                         int i;
1411                         struct tc_u32_pcnt *pf = per_cpu_ptr(n->pf, cpu);
1412
1413                         gpf->rcnt += pf->rcnt;
1414                         gpf->rhit += pf->rhit;
1415                         for (i = 0; i < n->sel.nkeys; i++)
1416                                 gpf->kcnts[i] += pf->kcnts[i];
1417                 }
1418
1419                 if (nla_put_64bit(skb, TCA_U32_PCNT, struct_size(gpf, kcnts, n->sel.nkeys),
1420                                   gpf, TCA_U32_PAD)) {
1421                         kfree(gpf);
1422                         goto nla_put_failure;
1423                 }
1424                 kfree(gpf);
1425 #endif
1426         }
1427
1428         nla_nest_end(skb, nest);
1429
1430         if (TC_U32_KEY(n->handle))
1431                 if (tcf_exts_dump_stats(skb, &n->exts) < 0)
1432                         goto nla_put_failure;
1433         return skb->len;
1434
1435 nla_put_failure:
1436         nla_nest_cancel(skb, nest);
1437         return -1;
1438 }
1439
1440 static struct tcf_proto_ops cls_u32_ops __read_mostly = {
1441         .kind           =       "u32",
1442         .classify       =       u32_classify,
1443         .init           =       u32_init,
1444         .destroy        =       u32_destroy,
1445         .get            =       u32_get,
1446         .change         =       u32_change,
1447         .delete         =       u32_delete,
1448         .walk           =       u32_walk,
1449         .reoffload      =       u32_reoffload,
1450         .dump           =       u32_dump,
1451         .bind_class     =       u32_bind_class,
1452         .owner          =       THIS_MODULE,
1453 };
1454
1455 static int __init init_u32(void)
1456 {
1457         int i, ret;
1458
1459         pr_info("u32 classifier\n");
1460 #ifdef CONFIG_CLS_U32_PERF
1461         pr_info("    Performance counters on\n");
1462 #endif
1463         pr_info("    input device check on\n");
1464 #ifdef CONFIG_NET_CLS_ACT
1465         pr_info("    Actions configured\n");
1466 #endif
1467         tc_u_common_hash = kvmalloc_array(U32_HASH_SIZE,
1468                                           sizeof(struct hlist_head),
1469                                           GFP_KERNEL);
1470         if (!tc_u_common_hash)
1471                 return -ENOMEM;
1472
1473         for (i = 0; i < U32_HASH_SIZE; i++)
1474                 INIT_HLIST_HEAD(&tc_u_common_hash[i]);
1475
1476         ret = register_tcf_proto_ops(&cls_u32_ops);
1477         if (ret)
1478                 kvfree(tc_u_common_hash);
1479         return ret;
1480 }
1481
1482 static void __exit exit_u32(void)
1483 {
1484         unregister_tcf_proto_ops(&cls_u32_ops);
1485         kvfree(tc_u_common_hash);
1486 }
1487
1488 module_init(init_u32)
1489 module_exit(exit_u32)
1490 MODULE_LICENSE("GPL");