xref: /linux/net/sched/cls_u32.c (revision d7e7e98d23f42a92d9ab7e36302bd96bd9b33b5f)
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 #include <net/tc_wrapper.h>
43 
44 struct tc_u_knode {
45 	struct tc_u_knode __rcu	*next;
46 	u32			handle;
47 	struct tc_u_hnode __rcu	*ht_up;
48 	struct tcf_exts		exts;
49 	int			ifindex;
50 	u8			fshift;
51 	struct tcf_result	res;
52 	struct tc_u_hnode __rcu	*ht_down;
53 #ifdef CONFIG_CLS_U32_PERF
54 	struct tc_u32_pcnt __percpu *pf;
55 #endif
56 	u32			flags;
57 	unsigned int		in_hw_count;
58 #ifdef CONFIG_CLS_U32_MARK
59 	u32			val;
60 	u32			mask;
61 	u32 __percpu		*pcpu_success;
62 #endif
63 	struct rcu_work		rwork;
64 	/* The 'sel' field MUST be the last field in structure to allow for
65 	 * tc_u32_keys allocated at end of structure.
66 	 */
67 	struct tc_u32_sel	sel;
68 };
69 
70 struct tc_u_hnode {
71 	struct tc_u_hnode __rcu	*next;
72 	u32			handle;
73 	u32			prio;
74 	refcount_t		refcnt;
75 	unsigned int		divisor;
76 	struct idr		handle_idr;
77 	bool			is_root;
78 	struct rcu_head		rcu;
79 	u32			flags;
80 	/* The 'ht' field MUST be the last field in structure to allow for
81 	 * more entries allocated at end of structure.
82 	 */
83 	struct tc_u_knode __rcu	*ht[];
84 };
85 
86 struct tc_u_common {
87 	struct tc_u_hnode __rcu	*hlist;
88 	void			*ptr;
89 	refcount_t		refcnt;
90 	struct idr		handle_idr;
91 	struct hlist_node	hnode;
92 	long			knodes;
93 };
94 
95 static u32 handle2id(u32 h)
96 {
97 	return ((h & 0x80000000) ? ((h >> 20) & 0x7FF) : h);
98 }
99 
100 static u32 id2handle(u32 id)
101 {
102 	return (id | 0x800U) << 20;
103 }
104 
105 static inline unsigned int u32_hash_fold(__be32 key,
106 					 const struct tc_u32_sel *sel,
107 					 u8 fshift)
108 {
109 	unsigned int h = ntohl(key & sel->hmask) >> fshift;
110 
111 	return h;
112 }
113 
114 TC_INDIRECT_SCOPE int u32_classify(struct sk_buff *skb,
115 				   const struct tcf_proto *tp,
116 				   struct tcf_result *res)
117 {
118 	struct {
119 		struct tc_u_knode *knode;
120 		unsigned int	  off;
121 	} stack[TC_U32_MAXDEPTH];
122 
123 	struct tc_u_hnode *ht = rcu_dereference_bh(tp->root);
124 	unsigned int off = skb_network_offset(skb);
125 	struct tc_u_knode *n;
126 	int sdepth = 0;
127 	int off2 = 0;
128 	int sel = 0;
129 #ifdef CONFIG_CLS_U32_PERF
130 	int j;
131 #endif
132 	int i, r;
133 
134 next_ht:
135 	n = rcu_dereference_bh(ht->ht[sel]);
136 
137 next_knode:
138 	if (n) {
139 		struct tc_u32_key *key = n->sel.keys;
140 
141 #ifdef CONFIG_CLS_U32_PERF
142 		__this_cpu_inc(n->pf->rcnt);
143 		j = 0;
144 #endif
145 
146 		if (tc_skip_sw(n->flags)) {
147 			n = rcu_dereference_bh(n->next);
148 			goto next_knode;
149 		}
150 
151 #ifdef CONFIG_CLS_U32_MARK
152 		if ((skb->mark & n->mask) != n->val) {
153 			n = rcu_dereference_bh(n->next);
154 			goto next_knode;
155 		} else {
156 			__this_cpu_inc(*n->pcpu_success);
157 		}
158 #endif
159 
160 		for (i = n->sel.nkeys; i > 0; i--, key++) {
161 			int toff = off + key->off + (off2 & key->offmask);
162 			__be32 *data, hdata;
163 
164 			data = skb_header_pointer_careful(skb, toff, 4,
165 							  &hdata);
166 			if (!data)
167 				goto out;
168 			if ((*data ^ key->val) & key->mask) {
169 				n = rcu_dereference_bh(n->next);
170 				goto next_knode;
171 			}
172 #ifdef CONFIG_CLS_U32_PERF
173 			__this_cpu_inc(n->pf->kcnts[j]);
174 			j++;
175 #endif
176 		}
177 
178 		ht = rcu_dereference_bh(n->ht_down);
179 		if (!ht) {
180 check_terminal:
181 			if (n->sel.flags & TC_U32_TERMINAL) {
182 
183 				*res = n->res;
184 				if (!tcf_match_indev(skb, n->ifindex)) {
185 					n = rcu_dereference_bh(n->next);
186 					goto next_knode;
187 				}
188 #ifdef CONFIG_CLS_U32_PERF
189 				__this_cpu_inc(n->pf->rhit);
190 #endif
191 				r = tcf_exts_exec(skb, &n->exts, res);
192 				if (r < 0) {
193 					n = rcu_dereference_bh(n->next);
194 					goto next_knode;
195 				}
196 
197 				return r;
198 			}
199 			n = rcu_dereference_bh(n->next);
200 			goto next_knode;
201 		}
202 
203 		/* PUSH */
204 		if (sdepth >= TC_U32_MAXDEPTH)
205 			goto deadloop;
206 		stack[sdepth].knode = n;
207 		stack[sdepth].off = off;
208 		sdepth++;
209 
210 		ht = rcu_dereference_bh(n->ht_down);
211 		sel = 0;
212 		if (ht->divisor) {
213 			__be32 *data, hdata;
214 
215 			data = skb_header_pointer_careful(skb,
216 							  off + n->sel.hoff,
217 							  4, &hdata);
218 			if (!data)
219 				goto out;
220 			sel = ht->divisor & u32_hash_fold(*data, &n->sel,
221 							  n->fshift);
222 		}
223 		if (!(n->sel.flags & (TC_U32_VAROFFSET | TC_U32_OFFSET | TC_U32_EAT)))
224 			goto next_ht;
225 
226 		if (n->sel.flags & (TC_U32_OFFSET | TC_U32_VAROFFSET)) {
227 			off2 = n->sel.off + 3;
228 			if (n->sel.flags & TC_U32_VAROFFSET) {
229 				__be16 *data, hdata;
230 
231 				data = skb_header_pointer_careful(skb,
232 							  off + n->sel.offoff,
233 							  2, &hdata);
234 				if (!data)
235 					goto out;
236 				off2 += ntohs(n->sel.offmask & *data) >>
237 					n->sel.offshift;
238 			}
239 			off2 &= ~3;
240 		}
241 		if (n->sel.flags & TC_U32_EAT) {
242 			off += off2;
243 			off2 = 0;
244 		}
245 
246 		if (off < skb->len)
247 			goto next_ht;
248 	}
249 
250 	/* POP */
251 	if (sdepth--) {
252 		n = stack[sdepth].knode;
253 		ht = rcu_dereference_bh(n->ht_up);
254 		off = stack[sdepth].off;
255 		goto check_terminal;
256 	}
257 out:
258 	return -1;
259 
260 deadloop:
261 	net_warn_ratelimited("cls_u32: dead loop\n");
262 	return -1;
263 }
264 
265 static struct tc_u_hnode *u32_lookup_ht(struct tc_u_common *tp_c, u32 handle)
266 {
267 	struct tc_u_hnode *ht;
268 
269 	for (ht = rtnl_dereference(tp_c->hlist);
270 	     ht;
271 	     ht = rtnl_dereference(ht->next))
272 		if (ht->handle == handle)
273 			break;
274 
275 	return ht;
276 }
277 
278 static struct tc_u_knode *u32_lookup_key(struct tc_u_hnode *ht, u32 handle)
279 {
280 	unsigned int sel;
281 	struct tc_u_knode *n = NULL;
282 
283 	sel = TC_U32_HASH(handle);
284 	if (sel > ht->divisor)
285 		goto out;
286 
287 	for (n = rtnl_dereference(ht->ht[sel]);
288 	     n;
289 	     n = rtnl_dereference(n->next))
290 		if (n->handle == handle)
291 			break;
292 out:
293 	return n;
294 }
295 
296 
297 static void *u32_get(struct tcf_proto *tp, u32 handle)
298 {
299 	struct tc_u_hnode *ht;
300 	struct tc_u_common *tp_c = tp->data;
301 
302 	if (TC_U32_HTID(handle) == TC_U32_ROOT)
303 		ht = rtnl_dereference(tp->root);
304 	else
305 		ht = u32_lookup_ht(tp_c, TC_U32_HTID(handle));
306 
307 	if (!ht)
308 		return NULL;
309 
310 	if (TC_U32_KEY(handle) == 0)
311 		return ht;
312 
313 	return u32_lookup_key(ht, handle);
314 }
315 
316 /* Protected by rtnl lock */
317 static u32 gen_new_htid(struct tc_u_common *tp_c, struct tc_u_hnode *ptr)
318 {
319 	int id = idr_alloc_cyclic(&tp_c->handle_idr, ptr, 1, 0x7FF, GFP_KERNEL);
320 	if (id < 0)
321 		return 0;
322 	return id2handle(id);
323 }
324 
325 static struct hlist_head *tc_u_common_hash;
326 
327 #define U32_HASH_SHIFT 10
328 #define U32_HASH_SIZE (1 << U32_HASH_SHIFT)
329 
330 static void *tc_u_common_ptr(const struct tcf_proto *tp)
331 {
332 	struct tcf_block *block = tp->chain->block;
333 
334 	/* The block sharing is currently supported only
335 	 * for classless qdiscs. In that case we use block
336 	 * for tc_u_common identification. In case the
337 	 * block is not shared, block->q is a valid pointer
338 	 * and we can use that. That works for classful qdiscs.
339 	 */
340 	if (tcf_block_shared(block))
341 		return block;
342 	else
343 		return block->q;
344 }
345 
346 static struct hlist_head *tc_u_hash(void *key)
347 {
348 	return tc_u_common_hash + hash_ptr(key, U32_HASH_SHIFT);
349 }
350 
351 static struct tc_u_common *tc_u_common_find(void *key)
352 {
353 	struct tc_u_common *tc;
354 	hlist_for_each_entry(tc, tc_u_hash(key), hnode) {
355 		if (tc->ptr == key)
356 			return tc;
357 	}
358 	return NULL;
359 }
360 
361 static int u32_init(struct tcf_proto *tp)
362 {
363 	struct tc_u_hnode *root_ht;
364 	void *key = tc_u_common_ptr(tp);
365 	struct tc_u_common *tp_c = tc_u_common_find(key);
366 
367 	root_ht = kzalloc_flex(*root_ht, ht, 1);
368 	if (root_ht == NULL)
369 		return -ENOBUFS;
370 
371 	refcount_set(&root_ht->refcnt, 1);
372 	root_ht->handle = tp_c ? gen_new_htid(tp_c, root_ht) : id2handle(0);
373 	if (root_ht->handle == 0) {
374 		kfree(root_ht);
375 		return -ENOMEM;
376 	}
377 	root_ht->prio = tp->prio;
378 	root_ht->is_root = true;
379 	idr_init(&root_ht->handle_idr);
380 
381 	if (tp_c == NULL) {
382 		tp_c = kzalloc_obj(*tp_c);
383 		if (tp_c == NULL) {
384 			kfree(root_ht);
385 			return -ENOBUFS;
386 		}
387 		refcount_set(&tp_c->refcnt, 1);
388 		tp_c->ptr = key;
389 		INIT_HLIST_NODE(&tp_c->hnode);
390 		idr_init(&tp_c->handle_idr);
391 
392 		hlist_add_head(&tp_c->hnode, tc_u_hash(key));
393 	} else {
394 		refcount_inc(&tp_c->refcnt);
395 	}
396 
397 	RCU_INIT_POINTER(root_ht->next, tp_c->hlist);
398 	rcu_assign_pointer(tp_c->hlist, root_ht);
399 
400 	/* root_ht must be destroyed when tcf_proto is destroyed */
401 	rcu_assign_pointer(tp->root, root_ht);
402 	tp->data = tp_c;
403 	return 0;
404 }
405 
406 static void __u32_destroy_key(struct tc_u_knode *n)
407 {
408 	struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
409 
410 	tcf_exts_destroy(&n->exts);
411 	if (ht && refcount_dec_and_test(&ht->refcnt))
412 		kfree(ht);
413 	kfree(n);
414 }
415 
416 static void u32_destroy_key(struct tc_u_knode *n, bool free_pf)
417 {
418 	tcf_exts_put_net(&n->exts);
419 #ifdef CONFIG_CLS_U32_PERF
420 	if (free_pf)
421 		free_percpu(n->pf);
422 #endif
423 #ifdef CONFIG_CLS_U32_MARK
424 	if (free_pf)
425 		free_percpu(n->pcpu_success);
426 #endif
427 	__u32_destroy_key(n);
428 }
429 
430 /* u32_delete_key_rcu should be called when free'ing a copied
431  * version of a tc_u_knode obtained from u32_init_knode(). When
432  * copies are obtained from u32_init_knode() the statistics are
433  * shared between the old and new copies to allow readers to
434  * continue to update the statistics during the copy. To support
435  * this the u32_delete_key_rcu variant does not free the percpu
436  * statistics.
437  */
438 static void u32_delete_key_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, false);
445 	rtnl_unlock();
446 }
447 
448 /* u32_delete_key_freepf_rcu is the rcu callback variant
449  * that free's the entire structure including the statistics
450  * percpu variables. Only use this if the key is not a copy
451  * returned by u32_init_knode(). See u32_delete_key_rcu()
452  * for the variant that should be used with keys return from
453  * u32_init_knode()
454  */
455 static void u32_delete_key_freepf_work(struct work_struct *work)
456 {
457 	struct tc_u_knode *key = container_of(to_rcu_work(work),
458 					      struct tc_u_knode,
459 					      rwork);
460 	rtnl_lock();
461 	u32_destroy_key(key, true);
462 	rtnl_unlock();
463 }
464 
465 static int u32_delete_key(struct tcf_proto *tp, struct tc_u_knode *key)
466 {
467 	struct tc_u_common *tp_c = tp->data;
468 	struct tc_u_knode __rcu **kp;
469 	struct tc_u_knode *pkp;
470 	struct tc_u_hnode *ht = rtnl_dereference(key->ht_up);
471 
472 	if (ht) {
473 		kp = &ht->ht[TC_U32_HASH(key->handle)];
474 		for (pkp = rtnl_dereference(*kp); pkp;
475 		     kp = &pkp->next, pkp = rtnl_dereference(*kp)) {
476 			if (pkp == key) {
477 				RCU_INIT_POINTER(*kp, key->next);
478 				tp_c->knodes--;
479 
480 				tcf_unbind_filter(tp, &key->res);
481 				idr_remove(&ht->handle_idr, key->handle);
482 				tcf_exts_get_net(&key->exts);
483 				tcf_queue_work(&key->rwork, u32_delete_key_freepf_work);
484 				return 0;
485 			}
486 		}
487 	}
488 	WARN_ON(1);
489 	return 0;
490 }
491 
492 static void u32_clear_hw_hnode(struct tcf_proto *tp, struct tc_u_hnode *h,
493 			       struct netlink_ext_ack *extack)
494 {
495 	struct tcf_block *block = tp->chain->block;
496 	struct tc_cls_u32_offload cls_u32 = {};
497 
498 	tc_cls_common_offload_init(&cls_u32.common, tp, h->flags, extack);
499 	cls_u32.command = TC_CLSU32_DELETE_HNODE;
500 	cls_u32.hnode.divisor = h->divisor;
501 	cls_u32.hnode.handle = h->handle;
502 	cls_u32.hnode.prio = h->prio;
503 
504 	tc_setup_cb_call(block, TC_SETUP_CLSU32, &cls_u32, false, true);
505 }
506 
507 static int u32_replace_hw_hnode(struct tcf_proto *tp, struct tc_u_hnode *h,
508 				u32 flags, struct netlink_ext_ack *extack)
509 {
510 	struct tcf_block *block = tp->chain->block;
511 	struct tc_cls_u32_offload cls_u32 = {};
512 	bool skip_sw = tc_skip_sw(flags);
513 	bool offloaded = false;
514 	int err;
515 
516 	tc_cls_common_offload_init(&cls_u32.common, tp, flags, extack);
517 	cls_u32.command = TC_CLSU32_NEW_HNODE;
518 	cls_u32.hnode.divisor = h->divisor;
519 	cls_u32.hnode.handle = h->handle;
520 	cls_u32.hnode.prio = h->prio;
521 
522 	err = tc_setup_cb_call(block, TC_SETUP_CLSU32, &cls_u32, skip_sw, true);
523 	if (err < 0) {
524 		u32_clear_hw_hnode(tp, h, NULL);
525 		return err;
526 	} else if (err > 0) {
527 		offloaded = true;
528 	}
529 
530 	if (skip_sw && !offloaded)
531 		return -EINVAL;
532 
533 	return 0;
534 }
535 
536 static void u32_remove_hw_knode(struct tcf_proto *tp, struct tc_u_knode *n,
537 				struct netlink_ext_ack *extack)
538 {
539 	struct tcf_block *block = tp->chain->block;
540 	struct tc_cls_u32_offload cls_u32 = {};
541 
542 	tc_cls_common_offload_init(&cls_u32.common, tp, n->flags, extack);
543 	cls_u32.command = TC_CLSU32_DELETE_KNODE;
544 	cls_u32.knode.handle = n->handle;
545 
546 	tc_setup_cb_destroy(block, tp, TC_SETUP_CLSU32, &cls_u32, false,
547 			    &n->flags, &n->in_hw_count, true);
548 }
549 
550 static int u32_replace_hw_knode(struct tcf_proto *tp, struct tc_u_knode *n,
551 				u32 flags, struct netlink_ext_ack *extack)
552 {
553 	struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
554 	struct tcf_block *block = tp->chain->block;
555 	struct tc_cls_u32_offload cls_u32 = {};
556 	bool skip_sw = tc_skip_sw(flags);
557 	int err;
558 
559 	tc_cls_common_offload_init(&cls_u32.common, tp, flags, extack);
560 	cls_u32.command = TC_CLSU32_REPLACE_KNODE;
561 	cls_u32.knode.handle = n->handle;
562 	cls_u32.knode.fshift = n->fshift;
563 #ifdef CONFIG_CLS_U32_MARK
564 	cls_u32.knode.val = n->val;
565 	cls_u32.knode.mask = n->mask;
566 #else
567 	cls_u32.knode.val = 0;
568 	cls_u32.knode.mask = 0;
569 #endif
570 	cls_u32.knode.sel = &n->sel;
571 	cls_u32.knode.res = &n->res;
572 	cls_u32.knode.exts = &n->exts;
573 	if (n->ht_down)
574 		cls_u32.knode.link_handle = ht->handle;
575 
576 	err = tc_setup_cb_add(block, tp, TC_SETUP_CLSU32, &cls_u32, skip_sw,
577 			      &n->flags, &n->in_hw_count, true);
578 	if (err) {
579 		u32_remove_hw_knode(tp, n, NULL);
580 		return err;
581 	}
582 
583 	if (skip_sw && !(n->flags & TCA_CLS_FLAGS_IN_HW))
584 		return -EINVAL;
585 
586 	return 0;
587 }
588 
589 static void u32_clear_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
590 			    struct netlink_ext_ack *extack)
591 {
592 	struct tc_u_common *tp_c = tp->data;
593 	struct tc_u_knode *n;
594 	unsigned int h;
595 
596 	for (h = 0; h <= ht->divisor; h++) {
597 		while ((n = rtnl_dereference(ht->ht[h])) != NULL) {
598 			RCU_INIT_POINTER(ht->ht[h],
599 					 rtnl_dereference(n->next));
600 			tp_c->knodes--;
601 			tcf_unbind_filter(tp, &n->res);
602 			u32_remove_hw_knode(tp, n, extack);
603 			idr_remove(&ht->handle_idr, n->handle);
604 			if (tcf_exts_get_net(&n->exts))
605 				tcf_queue_work(&n->rwork, u32_delete_key_freepf_work);
606 			else
607 				u32_destroy_key(n, true);
608 		}
609 	}
610 }
611 
612 static int u32_destroy_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
613 			     struct netlink_ext_ack *extack)
614 {
615 	struct tc_u_common *tp_c = tp->data;
616 	struct tc_u_hnode __rcu **hn;
617 	struct tc_u_hnode *phn;
618 
619 	u32_clear_hnode(tp, ht, extack);
620 
621 	hn = &tp_c->hlist;
622 	for (phn = rtnl_dereference(*hn);
623 	     phn;
624 	     hn = &phn->next, phn = rtnl_dereference(*hn)) {
625 		if (phn == ht) {
626 			u32_clear_hw_hnode(tp, ht, extack);
627 			idr_destroy(&ht->handle_idr);
628 			idr_remove(&tp_c->handle_idr, handle2id(ht->handle));
629 			RCU_INIT_POINTER(*hn, ht->next);
630 			kfree_rcu(ht, rcu);
631 			return 0;
632 		}
633 	}
634 
635 	return -ENOENT;
636 }
637 
638 static void u32_destroy(struct tcf_proto *tp, bool rtnl_held,
639 			struct netlink_ext_ack *extack)
640 {
641 	struct tc_u_common *tp_c = tp->data;
642 	struct tc_u_hnode *root_ht = rtnl_dereference(tp->root);
643 
644 	WARN_ON(root_ht == NULL);
645 
646 	if (root_ht && refcount_dec_and_test(&root_ht->refcnt))
647 		u32_destroy_hnode(tp, root_ht, extack);
648 
649 	if (refcount_dec_and_test(&tp_c->refcnt)) {
650 		struct tc_u_hnode *ht;
651 
652 		hlist_del(&tp_c->hnode);
653 
654 		while ((ht = rtnl_dereference(tp_c->hlist)) != NULL) {
655 			u32_clear_hnode(tp, ht, extack);
656 			RCU_INIT_POINTER(tp_c->hlist, ht->next);
657 
658 			/* u32_destroy_key() will later free ht for us, if it's
659 			 * still referenced by some knode
660 			 */
661 			if (refcount_dec_and_test(&ht->refcnt))
662 				kfree_rcu(ht, rcu);
663 		}
664 
665 		idr_destroy(&tp_c->handle_idr);
666 		kfree(tp_c);
667 	}
668 
669 	tp->data = NULL;
670 }
671 
672 static int u32_delete(struct tcf_proto *tp, void *arg, bool *last,
673 		      bool rtnl_held, struct netlink_ext_ack *extack)
674 {
675 	struct tc_u_hnode *ht = arg;
676 	struct tc_u_common *tp_c = tp->data;
677 	int ret = 0;
678 
679 	if (TC_U32_KEY(ht->handle)) {
680 		u32_remove_hw_knode(tp, (struct tc_u_knode *)ht, extack);
681 		ret = u32_delete_key(tp, (struct tc_u_knode *)ht);
682 		goto out;
683 	}
684 
685 	if (ht->is_root) {
686 		NL_SET_ERR_MSG_MOD(extack, "Not allowed to delete root node");
687 		return -EINVAL;
688 	}
689 
690 	if (refcount_dec_if_one(&ht->refcnt)) {
691 		u32_destroy_hnode(tp, ht, extack);
692 	} else {
693 		NL_SET_ERR_MSG_MOD(extack, "Can not delete in-use filter");
694 		return -EBUSY;
695 	}
696 
697 out:
698 	*last = refcount_read(&tp_c->refcnt) == 1 && tp_c->knodes == 0;
699 	return ret;
700 }
701 
702 static u32 gen_new_kid(struct tc_u_hnode *ht, u32 htid, int *err)
703 {
704 	u32 index = htid | 0x800;
705 	u32 max = htid | 0xFFF;
706 
707 	*err = 0;
708 
709 	if (idr_alloc_u32(&ht->handle_idr, NULL, &index, max, GFP_KERNEL)) {
710 		index = htid + 1;
711 		*err = idr_alloc_u32(&ht->handle_idr, NULL, &index, max,
712 				     GFP_KERNEL);
713 		if (*err)
714 			return 0;
715 	}
716 
717 	return index;
718 }
719 
720 static int u32_kid_extack(int err, struct netlink_ext_ack *extack)
721 {
722 	if (err == -ENOSPC)
723 		NL_SET_ERR_MSG_MOD(extack, "Hash table node ID pool exhausted");
724 	else
725 		NL_SET_ERR_MSG_MOD(extack, "Failed to allocate node ID");
726 	return err;
727 }
728 
729 static const struct nla_policy u32_policy[TCA_U32_MAX + 1] = {
730 	[TCA_U32_CLASSID]	= { .type = NLA_U32 },
731 	[TCA_U32_HASH]		= { .type = NLA_U32 },
732 	[TCA_U32_LINK]		= { .type = NLA_U32 },
733 	[TCA_U32_DIVISOR]	= { .type = NLA_U32 },
734 	[TCA_U32_SEL]		= { .len = sizeof(struct tc_u32_sel) },
735 	[TCA_U32_INDEV]		= { .type = NLA_STRING, .len = IFNAMSIZ },
736 	[TCA_U32_MARK]		= { .len = sizeof(struct tc_u32_mark) },
737 	[TCA_U32_FLAGS]		= { .type = NLA_U32 },
738 };
739 
740 static void u32_unbind_filter(struct tcf_proto *tp, struct tc_u_knode *n,
741 			      struct nlattr **tb)
742 {
743 	if (tb[TCA_U32_CLASSID])
744 		tcf_unbind_filter(tp, &n->res);
745 }
746 
747 static void u32_bind_filter(struct tcf_proto *tp, struct tc_u_knode *n,
748 			    unsigned long base, struct nlattr **tb)
749 {
750 	if (tb[TCA_U32_CLASSID]) {
751 		n->res.classid = nla_get_u32(tb[TCA_U32_CLASSID]);
752 		tcf_bind_filter(tp, &n->res, base);
753 	}
754 }
755 
756 static int u32_set_parms(struct net *net, struct tcf_proto *tp,
757 			 struct tc_u_knode *n, struct nlattr **tb,
758 			 struct nlattr *est, u32 flags, u32 fl_flags,
759 			 struct netlink_ext_ack *extack)
760 {
761 	int err, ifindex = -1;
762 
763 	err = tcf_exts_validate_ex(net, tp, tb, est, &n->exts, flags,
764 				   fl_flags, extack);
765 	if (err < 0)
766 		return err;
767 
768 	if (tb[TCA_U32_INDEV]) {
769 		ifindex = tcf_change_indev(net, tb[TCA_U32_INDEV], extack);
770 		if (ifindex < 0)
771 			return -EINVAL;
772 	}
773 
774 	if (tb[TCA_U32_LINK]) {
775 		u32 handle = nla_get_u32(tb[TCA_U32_LINK]);
776 		struct tc_u_hnode *ht_down = NULL, *ht_old;
777 
778 		if (TC_U32_KEY(handle)) {
779 			NL_SET_ERR_MSG_MOD(extack, "u32 Link handle must be a hash table");
780 			return -EINVAL;
781 		}
782 
783 		if (handle) {
784 			ht_down = u32_lookup_ht(tp->data, handle);
785 
786 			if (!ht_down) {
787 				NL_SET_ERR_MSG_MOD(extack, "Link hash table not found");
788 				return -EINVAL;
789 			}
790 			if (ht_down->is_root) {
791 				NL_SET_ERR_MSG_MOD(extack, "Not linking to root node");
792 				return -EINVAL;
793 			}
794 			refcount_inc(&ht_down->refcnt);
795 		}
796 
797 		ht_old = rtnl_dereference(n->ht_down);
798 		rcu_assign_pointer(n->ht_down, ht_down);
799 
800 		if (ht_old)
801 			refcount_dec(&ht_old->refcnt);
802 	}
803 
804 	if (ifindex >= 0)
805 		n->ifindex = ifindex;
806 
807 	return 0;
808 }
809 
810 static void u32_replace_knode(struct tcf_proto *tp, struct tc_u_common *tp_c,
811 			      struct tc_u_knode *n)
812 {
813 	struct tc_u_knode __rcu **ins;
814 	struct tc_u_knode *pins;
815 	struct tc_u_hnode *ht;
816 
817 	if (TC_U32_HTID(n->handle) == TC_U32_ROOT)
818 		ht = rtnl_dereference(tp->root);
819 	else
820 		ht = u32_lookup_ht(tp_c, TC_U32_HTID(n->handle));
821 
822 	ins = &ht->ht[TC_U32_HASH(n->handle)];
823 
824 	/* The node must always exist for it to be replaced if this is not the
825 	 * case then something went very wrong elsewhere.
826 	 */
827 	for (pins = rtnl_dereference(*ins); ;
828 	     ins = &pins->next, pins = rtnl_dereference(*ins))
829 		if (pins->handle == n->handle)
830 			break;
831 
832 	idr_replace(&ht->handle_idr, n, n->handle);
833 	RCU_INIT_POINTER(n->next, pins->next);
834 	rcu_assign_pointer(*ins, n);
835 }
836 
837 static struct tc_u_knode *u32_init_knode(struct net *net, struct tcf_proto *tp,
838 					 struct tc_u_knode *n)
839 {
840 	struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
841 	struct tc_u32_sel *s = &n->sel;
842 	struct tc_u_knode *new;
843 
844 	new = kzalloc_flex(*new, sel.keys, s->nkeys, GFP_KERNEL_ACCOUNT);
845 	if (!new)
846 		return NULL;
847 
848 	RCU_INIT_POINTER(new->next, n->next);
849 	new->handle = n->handle;
850 	RCU_INIT_POINTER(new->ht_up, n->ht_up);
851 
852 	new->ifindex = n->ifindex;
853 	new->fshift = n->fshift;
854 	new->flags = n->flags;
855 	RCU_INIT_POINTER(new->ht_down, ht);
856 
857 #ifdef CONFIG_CLS_U32_PERF
858 	/* Statistics may be incremented by readers during update
859 	 * so we must keep them in tact. When the node is later destroyed
860 	 * a special destroy call must be made to not free the pf memory.
861 	 */
862 	new->pf = n->pf;
863 #endif
864 
865 #ifdef CONFIG_CLS_U32_MARK
866 	new->val = n->val;
867 	new->mask = n->mask;
868 	/* Similarly success statistics must be moved as pointers */
869 	new->pcpu_success = n->pcpu_success;
870 #endif
871 	unsafe_memcpy(&new->sel, s, struct_size(s, keys, s->nkeys),
872 		      /* A composite flex-array structure destination,
873 		       * which was correctly sized with kzalloc_flex(),
874 		       * above. */);
875 
876 	if (tcf_exts_init(&new->exts, net, TCA_U32_ACT, TCA_U32_POLICE)) {
877 		kfree(new);
878 		return NULL;
879 	}
880 
881 	/* bump reference count as long as we hold pointer to structure */
882 	if (ht)
883 		refcount_inc(&ht->refcnt);
884 
885 	return new;
886 }
887 
888 static int u32_change(struct net *net, struct sk_buff *in_skb,
889 		      struct tcf_proto *tp, unsigned long base, u32 handle,
890 		      struct nlattr **tca, void **arg, u32 flags,
891 		      struct netlink_ext_ack *extack)
892 {
893 	struct tc_u_common *tp_c = tp->data;
894 	struct tc_u_hnode *ht;
895 	struct tc_u_knode *n;
896 	struct tc_u32_sel *s;
897 	struct nlattr *opt = tca[TCA_OPTIONS];
898 	struct nlattr *tb[TCA_U32_MAX + 1];
899 	u32 htid, userflags = 0;
900 	size_t sel_size;
901 	int err;
902 
903 	if (!opt) {
904 		if (handle) {
905 			NL_SET_ERR_MSG_MOD(extack, "Filter handle requires options");
906 			return -EINVAL;
907 		} else {
908 			return 0;
909 		}
910 	}
911 
912 	err = nla_parse_nested_deprecated(tb, TCA_U32_MAX, opt, u32_policy,
913 					  extack);
914 	if (err < 0)
915 		return err;
916 
917 	if (tb[TCA_U32_FLAGS]) {
918 		userflags = nla_get_u32(tb[TCA_U32_FLAGS]);
919 		if (!tc_flags_valid(userflags)) {
920 			NL_SET_ERR_MSG_MOD(extack, "Invalid filter flags");
921 			return -EINVAL;
922 		}
923 	}
924 
925 	n = *arg;
926 	if (n) {
927 		struct tc_u_knode *new;
928 
929 		if (TC_U32_KEY(n->handle) == 0) {
930 			NL_SET_ERR_MSG_MOD(extack, "Key node id cannot be zero");
931 			return -EINVAL;
932 		}
933 
934 		if ((n->flags ^ userflags) &
935 		    ~(TCA_CLS_FLAGS_IN_HW | TCA_CLS_FLAGS_NOT_IN_HW)) {
936 			NL_SET_ERR_MSG_MOD(extack, "Key node flags do not match passed flags");
937 			return -EINVAL;
938 		}
939 
940 		new = u32_init_knode(net, tp, n);
941 		if (!new)
942 			return -ENOMEM;
943 
944 		err = u32_set_parms(net, tp, new, tb, tca[TCA_RATE],
945 				    flags, new->flags, extack);
946 
947 		if (err) {
948 			__u32_destroy_key(new);
949 			return err;
950 		}
951 
952 		u32_bind_filter(tp, new, base, tb);
953 
954 		err = u32_replace_hw_knode(tp, new, flags, extack);
955 		if (err) {
956 			u32_unbind_filter(tp, new, tb);
957 
958 			if (tb[TCA_U32_LINK]) {
959 				struct tc_u_hnode *ht_old;
960 
961 				ht_old = rtnl_dereference(n->ht_down);
962 				if (ht_old)
963 					refcount_inc(&ht_old->refcnt);
964 			}
965 			__u32_destroy_key(new);
966 			return err;
967 		}
968 
969 		if (!tc_in_hw(new->flags))
970 			new->flags |= TCA_CLS_FLAGS_NOT_IN_HW;
971 
972 		tcf_proto_update_usesw(tp, new->flags);
973 
974 		u32_replace_knode(tp, tp_c, new);
975 		tcf_unbind_filter(tp, &n->res);
976 		tcf_exts_get_net(&n->exts);
977 		tcf_queue_work(&n->rwork, u32_delete_key_work);
978 		return 0;
979 	}
980 
981 	if (tb[TCA_U32_DIVISOR]) {
982 		unsigned int divisor = nla_get_u32(tb[TCA_U32_DIVISOR]);
983 
984 		if (!is_power_of_2(divisor)) {
985 			NL_SET_ERR_MSG_MOD(extack, "Divisor is not a power of 2");
986 			return -EINVAL;
987 		}
988 		if (divisor-- > 0x100) {
989 			NL_SET_ERR_MSG_MOD(extack, "Exceeded maximum 256 hash buckets");
990 			return -EINVAL;
991 		}
992 		if (TC_U32_KEY(handle)) {
993 			NL_SET_ERR_MSG_MOD(extack, "Divisor can only be used on a hash table");
994 			return -EINVAL;
995 		}
996 		ht = kzalloc_flex(*ht, ht, divisor + 1);
997 		if (ht == NULL)
998 			return -ENOBUFS;
999 		if (handle == 0) {
1000 			handle = gen_new_htid(tp->data, ht);
1001 			if (handle == 0) {
1002 				kfree(ht);
1003 				return -ENOMEM;
1004 			}
1005 		} else {
1006 			err = idr_alloc_u32(&tp_c->handle_idr, ht, &handle,
1007 					    handle, GFP_KERNEL);
1008 			if (err) {
1009 				kfree(ht);
1010 				return err;
1011 			}
1012 		}
1013 		refcount_set(&ht->refcnt, 1);
1014 		ht->divisor = divisor;
1015 		ht->handle = handle;
1016 		ht->prio = tp->prio;
1017 		idr_init(&ht->handle_idr);
1018 		ht->flags = userflags;
1019 
1020 		err = u32_replace_hw_hnode(tp, ht, userflags, extack);
1021 		if (err) {
1022 			idr_remove(&tp_c->handle_idr, handle2id(handle));
1023 			kfree(ht);
1024 			return err;
1025 		}
1026 
1027 		RCU_INIT_POINTER(ht->next, tp_c->hlist);
1028 		rcu_assign_pointer(tp_c->hlist, ht);
1029 		*arg = ht;
1030 
1031 		return 0;
1032 	}
1033 
1034 	if (tb[TCA_U32_HASH]) {
1035 		htid = nla_get_u32(tb[TCA_U32_HASH]);
1036 		if (TC_U32_HTID(htid) == TC_U32_ROOT) {
1037 			ht = rtnl_dereference(tp->root);
1038 			htid = ht->handle;
1039 		} else {
1040 			ht = u32_lookup_ht(tp->data, TC_U32_HTID(htid));
1041 			if (!ht) {
1042 				NL_SET_ERR_MSG_MOD(extack, "Specified hash table not found");
1043 				return -EINVAL;
1044 			}
1045 		}
1046 	} else {
1047 		ht = rtnl_dereference(tp->root);
1048 		htid = ht->handle;
1049 	}
1050 
1051 	if (ht->divisor < TC_U32_HASH(htid)) {
1052 		NL_SET_ERR_MSG_MOD(extack, "Specified hash table buckets exceed configured value");
1053 		return -EINVAL;
1054 	}
1055 
1056 	/* At this point, we need to derive the new handle that will be used to
1057 	 * uniquely map the identity of this table match entry. The
1058 	 * identity of the entry that we need to construct is 32 bits made of:
1059 	 *     htid(12b):bucketid(8b):node/entryid(12b)
1060 	 *
1061 	 * At this point _we have the table(ht)_ in which we will insert this
1062 	 * entry. We carry the table's id in variable "htid".
1063 	 * Note that earlier code picked the ht selection either by a) the user
1064 	 * providing the htid specified via TCA_U32_HASH attribute or b) when
1065 	 * no such attribute is passed then the root ht, is default to at ID
1066 	 * 0x[800][00][000]. Rule: the root table has a single bucket with ID 0.
1067 	 * If OTOH the user passed us the htid, they may also pass a bucketid of
1068 	 * choice. 0 is fine. For example a user htid is 0x[600][01][000] it is
1069 	 * indicating hash bucketid of 1. Rule: the entry/node ID _cannot_ be
1070 	 * passed via the htid, so even if it was non-zero it will be ignored.
1071 	 *
1072 	 * We may also have a handle, if the user passed one. The handle also
1073 	 * carries the same addressing of htid(12b):bucketid(8b):node/entryid(12b).
1074 	 * Rule: the bucketid on the handle is ignored even if one was passed;
1075 	 * rather the value on "htid" is always assumed to be the bucketid.
1076 	 */
1077 	if (handle) {
1078 		/* Rule: The htid from handle and tableid from htid must match */
1079 		if (TC_U32_HTID(handle) && TC_U32_HTID(handle ^ htid)) {
1080 			NL_SET_ERR_MSG_MOD(extack, "Handle specified hash table address mismatch");
1081 			return -EINVAL;
1082 		}
1083 		/* Ok, so far we have a valid htid(12b):bucketid(8b) but we
1084 		 * need to finalize the table entry identification with the last
1085 		 * part - the node/entryid(12b)). Rule: Nodeid _cannot be 0_ for
1086 		 * entries. Rule: nodeid of 0 is reserved only for tables(see
1087 		 * earlier code which processes TC_U32_DIVISOR attribute).
1088 		 * Rule: The nodeid can only be derived from the handle (and not
1089 		 * htid).
1090 		 * Rule: if the handle specified zero for the node id example
1091 		 * 0x60000000, then pick a new nodeid from the pool of IDs
1092 		 * this hash table has been allocating from.
1093 		 * If OTOH it is specified (i.e for example the user passed a
1094 		 * handle such as 0x60000123), then we use it generate our final
1095 		 * handle which is used to uniquely identify the match entry.
1096 		 */
1097 		if (!TC_U32_NODE(handle)) {
1098 			handle = gen_new_kid(ht, htid, &err);
1099 			if (err)
1100 				return u32_kid_extack(err, extack);
1101 		} else {
1102 			handle = htid | TC_U32_NODE(handle);
1103 			err = idr_alloc_u32(&ht->handle_idr, NULL, &handle,
1104 					    handle, GFP_KERNEL);
1105 			if (err)
1106 				return err;
1107 		}
1108 	} else {
1109 		/* The user did not give us a handle; lets just generate one
1110 		 * from the table's pool of nodeids.
1111 		 */
1112 		handle = gen_new_kid(ht, htid, &err);
1113 		if (err)
1114 			return u32_kid_extack(err, extack);
1115 	}
1116 
1117 	if (tb[TCA_U32_SEL] == NULL) {
1118 		NL_SET_ERR_MSG_MOD(extack, "Selector not specified");
1119 		err = -EINVAL;
1120 		goto erridr;
1121 	}
1122 
1123 	s = nla_data(tb[TCA_U32_SEL]);
1124 	sel_size = struct_size(s, keys, s->nkeys);
1125 	if (nla_len(tb[TCA_U32_SEL]) < sel_size) {
1126 		err = -EINVAL;
1127 		goto erridr;
1128 	}
1129 
1130 	if (s->offshift >= 16) {
1131 		NL_SET_ERR_MSG_MOD(extack,
1132 				   "offshift must be less than 16");
1133 		err = -EINVAL;
1134 		goto erridr;
1135 	}
1136 
1137 	n = kzalloc_flex(*n, sel.keys, s->nkeys, GFP_KERNEL_ACCOUNT);
1138 	if (n == NULL) {
1139 		err = -ENOBUFS;
1140 		goto erridr;
1141 	}
1142 
1143 #ifdef CONFIG_CLS_U32_PERF
1144 	n->pf = __alloc_percpu_gfp(struct_size(n->pf, kcnts, s->nkeys),
1145 				   __alignof__(struct tc_u32_pcnt),
1146 				   GFP_KERNEL_ACCOUNT);
1147 	if (!n->pf) {
1148 		err = -ENOBUFS;
1149 		goto errfree;
1150 	}
1151 #endif
1152 
1153 	unsafe_memcpy(&n->sel, s, sel_size,
1154 		      /* A composite flex-array structure destination,
1155 		       * which was correctly sized with struct_size(),
1156 		       * bounds-checked against nla_len(), and allocated
1157 		       * above. */);
1158 	RCU_INIT_POINTER(n->ht_up, ht);
1159 	n->handle = handle;
1160 	n->fshift = s->hmask ? ffs(ntohl(s->hmask)) - 1 : 0;
1161 	n->flags = userflags;
1162 
1163 	err = tcf_exts_init(&n->exts, net, TCA_U32_ACT, TCA_U32_POLICE);
1164 	if (err < 0)
1165 		goto errout;
1166 
1167 #ifdef CONFIG_CLS_U32_MARK
1168 	n->pcpu_success = alloc_percpu_gfp(u32, GFP_KERNEL_ACCOUNT);
1169 	if (!n->pcpu_success) {
1170 		err = -ENOMEM;
1171 		goto errout;
1172 	}
1173 
1174 	if (tb[TCA_U32_MARK]) {
1175 		struct tc_u32_mark *mark;
1176 
1177 		mark = nla_data(tb[TCA_U32_MARK]);
1178 		n->val = mark->val;
1179 		n->mask = mark->mask;
1180 	}
1181 #endif
1182 
1183 	err = u32_set_parms(net, tp, n, tb, tca[TCA_RATE],
1184 			    flags, n->flags, extack);
1185 
1186 	u32_bind_filter(tp, n, base, tb);
1187 
1188 	if (err == 0) {
1189 		struct tc_u_knode __rcu **ins;
1190 		struct tc_u_knode *pins;
1191 
1192 		err = u32_replace_hw_knode(tp, n, flags, extack);
1193 		if (err)
1194 			goto errunbind;
1195 
1196 		if (!tc_in_hw(n->flags))
1197 			n->flags |= TCA_CLS_FLAGS_NOT_IN_HW;
1198 
1199 		tcf_proto_update_usesw(tp, n->flags);
1200 
1201 		ins = &ht->ht[TC_U32_HASH(handle)];
1202 		for (pins = rtnl_dereference(*ins); pins;
1203 		     ins = &pins->next, pins = rtnl_dereference(*ins))
1204 			if (TC_U32_NODE(handle) < TC_U32_NODE(pins->handle))
1205 				break;
1206 
1207 		RCU_INIT_POINTER(n->next, pins);
1208 		rcu_assign_pointer(*ins, n);
1209 		tp_c->knodes++;
1210 		*arg = n;
1211 		return 0;
1212 	}
1213 
1214 errunbind:
1215 	u32_unbind_filter(tp, n, tb);
1216 
1217 #ifdef CONFIG_CLS_U32_MARK
1218 	free_percpu(n->pcpu_success);
1219 #endif
1220 
1221 errout:
1222 	tcf_exts_destroy(&n->exts);
1223 #ifdef CONFIG_CLS_U32_PERF
1224 errfree:
1225 	free_percpu(n->pf);
1226 #endif
1227 	kfree(n);
1228 erridr:
1229 	idr_remove(&ht->handle_idr, handle);
1230 	return err;
1231 }
1232 
1233 static void u32_walk(struct tcf_proto *tp, struct tcf_walker *arg,
1234 		     bool rtnl_held)
1235 {
1236 	struct tc_u_common *tp_c = tp->data;
1237 	struct tc_u_hnode *ht;
1238 	struct tc_u_knode *n;
1239 	unsigned int h;
1240 
1241 	if (arg->stop)
1242 		return;
1243 
1244 	for (ht = rtnl_dereference(tp_c->hlist);
1245 	     ht;
1246 	     ht = rtnl_dereference(ht->next)) {
1247 		if (ht->prio != tp->prio)
1248 			continue;
1249 
1250 		if (!tc_cls_stats_dump(tp, arg, ht))
1251 			return;
1252 
1253 		for (h = 0; h <= ht->divisor; h++) {
1254 			for (n = rtnl_dereference(ht->ht[h]);
1255 			     n;
1256 			     n = rtnl_dereference(n->next)) {
1257 				if (!tc_cls_stats_dump(tp, arg, n))
1258 					return;
1259 			}
1260 		}
1261 	}
1262 }
1263 
1264 static int u32_reoffload_hnode(struct tcf_proto *tp, struct tc_u_hnode *ht,
1265 			       bool add, flow_setup_cb_t *cb, void *cb_priv,
1266 			       struct netlink_ext_ack *extack)
1267 {
1268 	struct tc_cls_u32_offload cls_u32 = {};
1269 	int err;
1270 
1271 	tc_cls_common_offload_init(&cls_u32.common, tp, ht->flags, extack);
1272 	cls_u32.command = add ? TC_CLSU32_NEW_HNODE : TC_CLSU32_DELETE_HNODE;
1273 	cls_u32.hnode.divisor = ht->divisor;
1274 	cls_u32.hnode.handle = ht->handle;
1275 	cls_u32.hnode.prio = ht->prio;
1276 
1277 	err = cb(TC_SETUP_CLSU32, &cls_u32, cb_priv);
1278 	if (err && add && tc_skip_sw(ht->flags))
1279 		return err;
1280 
1281 	return 0;
1282 }
1283 
1284 static int u32_reoffload_knode(struct tcf_proto *tp, struct tc_u_knode *n,
1285 			       bool add, flow_setup_cb_t *cb, void *cb_priv,
1286 			       struct netlink_ext_ack *extack)
1287 {
1288 	struct tc_u_hnode *ht = rtnl_dereference(n->ht_down);
1289 	struct tcf_block *block = tp->chain->block;
1290 	struct tc_cls_u32_offload cls_u32 = {};
1291 
1292 	tc_cls_common_offload_init(&cls_u32.common, tp, n->flags, extack);
1293 	cls_u32.command = add ?
1294 		TC_CLSU32_REPLACE_KNODE : TC_CLSU32_DELETE_KNODE;
1295 	cls_u32.knode.handle = n->handle;
1296 
1297 	if (add) {
1298 		cls_u32.knode.fshift = n->fshift;
1299 #ifdef CONFIG_CLS_U32_MARK
1300 		cls_u32.knode.val = n->val;
1301 		cls_u32.knode.mask = n->mask;
1302 #else
1303 		cls_u32.knode.val = 0;
1304 		cls_u32.knode.mask = 0;
1305 #endif
1306 		cls_u32.knode.sel = &n->sel;
1307 		cls_u32.knode.res = &n->res;
1308 		cls_u32.knode.exts = &n->exts;
1309 		if (n->ht_down)
1310 			cls_u32.knode.link_handle = ht->handle;
1311 	}
1312 
1313 	return tc_setup_cb_reoffload(block, tp, add, cb, TC_SETUP_CLSU32,
1314 				     &cls_u32, cb_priv, &n->flags,
1315 				     &n->in_hw_count);
1316 }
1317 
1318 static int u32_reoffload(struct tcf_proto *tp, bool add, flow_setup_cb_t *cb,
1319 			 void *cb_priv, struct netlink_ext_ack *extack)
1320 {
1321 	struct tc_u_common *tp_c = tp->data;
1322 	struct tc_u_hnode *ht;
1323 	struct tc_u_knode *n;
1324 	unsigned int h;
1325 	int err;
1326 
1327 	for (ht = rtnl_dereference(tp_c->hlist);
1328 	     ht;
1329 	     ht = rtnl_dereference(ht->next)) {
1330 		if (ht->prio != tp->prio)
1331 			continue;
1332 
1333 		/* When adding filters to a new dev, try to offload the
1334 		 * hashtable first. When removing, do the filters before the
1335 		 * hashtable.
1336 		 */
1337 		if (add && !tc_skip_hw(ht->flags)) {
1338 			err = u32_reoffload_hnode(tp, ht, add, cb, cb_priv,
1339 						  extack);
1340 			if (err)
1341 				return err;
1342 		}
1343 
1344 		for (h = 0; h <= ht->divisor; h++) {
1345 			for (n = rtnl_dereference(ht->ht[h]);
1346 			     n;
1347 			     n = rtnl_dereference(n->next)) {
1348 				if (tc_skip_hw(n->flags))
1349 					continue;
1350 
1351 				err = u32_reoffload_knode(tp, n, add, cb,
1352 							  cb_priv, extack);
1353 				if (err)
1354 					return err;
1355 			}
1356 		}
1357 
1358 		if (!add && !tc_skip_hw(ht->flags))
1359 			u32_reoffload_hnode(tp, ht, add, cb, cb_priv, extack);
1360 	}
1361 
1362 	return 0;
1363 }
1364 
1365 static void u32_bind_class(void *fh, u32 classid, unsigned long cl, void *q,
1366 			   unsigned long base)
1367 {
1368 	struct tc_u_knode *n = fh;
1369 
1370 	if (TC_U32_KEY(n->handle) == 0)
1371 		return;
1372 
1373 	tc_cls_bind_class(classid, cl, q, &n->res, base);
1374 }
1375 
1376 static int u32_dump(struct net *net, struct tcf_proto *tp, void *fh,
1377 		    struct sk_buff *skb, struct tcmsg *t, bool rtnl_held)
1378 {
1379 	struct tc_u_knode *n = fh;
1380 	struct tc_u_hnode *ht_up, *ht_down;
1381 	struct nlattr *nest;
1382 
1383 	if (n == NULL)
1384 		return skb->len;
1385 
1386 	t->tcm_handle = n->handle;
1387 
1388 	nest = nla_nest_start_noflag(skb, TCA_OPTIONS);
1389 	if (nest == NULL)
1390 		goto nla_put_failure;
1391 
1392 	if (TC_U32_KEY(n->handle) == 0) {
1393 		struct tc_u_hnode *ht = fh;
1394 		u32 divisor = ht->divisor + 1;
1395 
1396 		if (nla_put_u32(skb, TCA_U32_DIVISOR, divisor))
1397 			goto nla_put_failure;
1398 	} else {
1399 #ifdef CONFIG_CLS_U32_PERF
1400 		struct tc_u32_pcnt *gpf;
1401 		int cpu;
1402 #endif
1403 
1404 		if (nla_put(skb, TCA_U32_SEL, struct_size(&n->sel, keys, n->sel.nkeys),
1405 			    &n->sel))
1406 			goto nla_put_failure;
1407 
1408 		ht_up = rtnl_dereference(n->ht_up);
1409 		if (ht_up) {
1410 			u32 htid = n->handle & 0xFFFFF000;
1411 			if (nla_put_u32(skb, TCA_U32_HASH, htid))
1412 				goto nla_put_failure;
1413 		}
1414 		if (n->res.classid &&
1415 		    nla_put_u32(skb, TCA_U32_CLASSID, n->res.classid))
1416 			goto nla_put_failure;
1417 
1418 		ht_down = rtnl_dereference(n->ht_down);
1419 		if (ht_down &&
1420 		    nla_put_u32(skb, TCA_U32_LINK, ht_down->handle))
1421 			goto nla_put_failure;
1422 
1423 		if (n->flags && nla_put_u32(skb, TCA_U32_FLAGS, n->flags))
1424 			goto nla_put_failure;
1425 
1426 #ifdef CONFIG_CLS_U32_MARK
1427 		if ((n->val || n->mask)) {
1428 			struct tc_u32_mark mark = {.val = n->val,
1429 						   .mask = n->mask,
1430 						   .success = 0};
1431 			int cpum;
1432 
1433 			for_each_possible_cpu(cpum) {
1434 				__u32 cnt = *per_cpu_ptr(n->pcpu_success, cpum);
1435 
1436 				mark.success += cnt;
1437 			}
1438 
1439 			if (nla_put(skb, TCA_U32_MARK, sizeof(mark), &mark))
1440 				goto nla_put_failure;
1441 		}
1442 #endif
1443 
1444 		if (tcf_exts_dump(skb, &n->exts) < 0)
1445 			goto nla_put_failure;
1446 
1447 		if (n->ifindex) {
1448 			struct net_device *dev;
1449 			dev = __dev_get_by_index(net, n->ifindex);
1450 			if (dev && nla_put_string(skb, TCA_U32_INDEV, dev->name))
1451 				goto nla_put_failure;
1452 		}
1453 #ifdef CONFIG_CLS_U32_PERF
1454 		gpf = kzalloc_flex(*gpf, kcnts, n->sel.nkeys);
1455 		if (!gpf)
1456 			goto nla_put_failure;
1457 
1458 		for_each_possible_cpu(cpu) {
1459 			int i;
1460 			struct tc_u32_pcnt *pf = per_cpu_ptr(n->pf, cpu);
1461 
1462 			gpf->rcnt += pf->rcnt;
1463 			gpf->rhit += pf->rhit;
1464 			for (i = 0; i < n->sel.nkeys; i++)
1465 				gpf->kcnts[i] += pf->kcnts[i];
1466 		}
1467 
1468 		if (nla_put_64bit(skb, TCA_U32_PCNT, struct_size(gpf, kcnts, n->sel.nkeys),
1469 				  gpf, TCA_U32_PAD)) {
1470 			kfree(gpf);
1471 			goto nla_put_failure;
1472 		}
1473 		kfree(gpf);
1474 #endif
1475 	}
1476 
1477 	nla_nest_end(skb, nest);
1478 
1479 	if (TC_U32_KEY(n->handle))
1480 		if (tcf_exts_dump_stats(skb, &n->exts) < 0)
1481 			goto nla_put_failure;
1482 	return skb->len;
1483 
1484 nla_put_failure:
1485 	nla_nest_cancel(skb, nest);
1486 	return -1;
1487 }
1488 
1489 static struct tcf_proto_ops cls_u32_ops __read_mostly = {
1490 	.kind		=	"u32",
1491 	.classify	=	u32_classify,
1492 	.init		=	u32_init,
1493 	.destroy	=	u32_destroy,
1494 	.get		=	u32_get,
1495 	.change		=	u32_change,
1496 	.delete		=	u32_delete,
1497 	.walk		=	u32_walk,
1498 	.reoffload	=	u32_reoffload,
1499 	.dump		=	u32_dump,
1500 	.bind_class	=	u32_bind_class,
1501 	.owner		=	THIS_MODULE,
1502 };
1503 MODULE_ALIAS_NET_CLS("u32");
1504 
1505 static int __init init_u32(void)
1506 {
1507 	int i, ret;
1508 
1509 	pr_info("u32 classifier\n");
1510 #ifdef CONFIG_CLS_U32_PERF
1511 	pr_info("    Performance counters on\n");
1512 #endif
1513 	pr_info("    input device check on\n");
1514 #ifdef CONFIG_NET_CLS_ACT
1515 	pr_info("    Actions configured\n");
1516 #endif
1517 	tc_u_common_hash = kvmalloc_objs(struct hlist_head, U32_HASH_SIZE);
1518 	if (!tc_u_common_hash)
1519 		return -ENOMEM;
1520 
1521 	for (i = 0; i < U32_HASH_SIZE; i++)
1522 		INIT_HLIST_HEAD(&tc_u_common_hash[i]);
1523 
1524 	ret = register_tcf_proto_ops(&cls_u32_ops);
1525 	if (ret)
1526 		kvfree(tc_u_common_hash);
1527 	return ret;
1528 }
1529 
1530 static void __exit exit_u32(void)
1531 {
1532 	unregister_tcf_proto_ops(&cls_u32_ops);
1533 	kvfree(tc_u_common_hash);
1534 }
1535 
1536 module_init(init_u32)
1537 module_exit(exit_u32)
1538 MODULE_DESCRIPTION("Universal 32bit based TC Classifier");
1539 MODULE_LICENSE("GPL");
1540