1 // SPDX-License-Identifier: GPL-2.0-only
2 /* Copyright (c) 2022 Meta Platforms, Inc. and affiliates. */
3 #include <linux/mm.h>
4 #include <linux/llist.h>
5 #include <linux/bpf.h>
6 #include <linux/irq_work.h>
7 #include <linux/bpf_mem_alloc.h>
8 #include <linux/memcontrol.h>
9 #include <asm/local.h>
10
11 /* Any context (including NMI) BPF specific memory allocator.
12 *
13 * Tracing BPF programs can attach to kprobe and fentry. Hence they
14 * run in unknown context where calling plain kmalloc() might not be safe.
15 *
16 * Front-end kmalloc() with per-cpu per-bucket cache of free elements.
17 * Refill this cache asynchronously from irq_work.
18 *
19 * CPU_0 buckets
20 * 16 32 64 96 128 196 256 512 1024 2048 4096
21 * ...
22 * CPU_N buckets
23 * 16 32 64 96 128 196 256 512 1024 2048 4096
24 *
25 * The buckets are prefilled at the start.
26 * BPF programs always run with migration disabled.
27 * It's safe to allocate from cache of the current cpu with irqs disabled.
28 * Free-ing is always done into bucket of the current cpu as well.
29 * irq_work trims extra free elements from buckets with kfree
30 * and refills them with kmalloc, so global kmalloc logic takes care
31 * of freeing objects allocated by one cpu and freed on another.
32 *
33 * Every allocated objected is padded with extra 8 bytes that contains
34 * struct llist_node.
35 */
36 #define LLIST_NODE_SZ sizeof(struct llist_node)
37
38 #define BPF_MEM_ALLOC_SIZE_MAX 4096
39
40 /* similar to kmalloc, but sizeof == 8 bucket is gone */
41 static u8 size_index[24] __ro_after_init = {
42 3, /* 8 */
43 3, /* 16 */
44 4, /* 24 */
45 4, /* 32 */
46 5, /* 40 */
47 5, /* 48 */
48 5, /* 56 */
49 5, /* 64 */
50 1, /* 72 */
51 1, /* 80 */
52 1, /* 88 */
53 1, /* 96 */
54 6, /* 104 */
55 6, /* 112 */
56 6, /* 120 */
57 6, /* 128 */
58 2, /* 136 */
59 2, /* 144 */
60 2, /* 152 */
61 2, /* 160 */
62 2, /* 168 */
63 2, /* 176 */
64 2, /* 184 */
65 2 /* 192 */
66 };
67
bpf_mem_cache_idx(size_t size)68 static int bpf_mem_cache_idx(size_t size)
69 {
70 if (!size || size > BPF_MEM_ALLOC_SIZE_MAX)
71 return -1;
72
73 if (size <= 192)
74 return size_index[(size - 1) / 8] - 1;
75
76 return fls(size - 1) - 2;
77 }
78
79 #define NUM_CACHES 11
80
81 struct bpf_mem_cache {
82 /* per-cpu list of free objects of size 'unit_size'.
83 * All accesses are done with interrupts disabled and 'active' counter
84 * protection with __llist_add() and __llist_del_first().
85 */
86 struct llist_head free_llist;
87 local_t active;
88
89 /* Operations on the free_list from unit_alloc/unit_free/bpf_mem_refill
90 * are sequenced by per-cpu 'active' counter. But unit_free() cannot
91 * fail. When 'active' is busy the unit_free() will add an object to
92 * free_llist_extra.
93 */
94 struct llist_head free_llist_extra;
95
96 struct irq_work refill_work;
97 struct obj_cgroup *objcg;
98 int unit_size;
99 /* count of objects in free_llist */
100 int free_cnt;
101 int low_watermark, high_watermark, batch;
102 int percpu_size;
103 bool draining;
104 struct bpf_mem_cache *tgt;
105 void (*dtor)(void *obj, void *ctx);
106 void *dtor_ctx;
107
108 /* list of objects to be freed after RCU GP */
109 struct llist_head free_by_rcu;
110 struct llist_node *free_by_rcu_tail;
111 struct llist_head waiting_for_gp;
112 struct llist_node *waiting_for_gp_tail;
113 struct rcu_head rcu;
114 atomic_t call_rcu_in_progress;
115 struct llist_head free_llist_extra_rcu;
116
117 /* list of objects to be freed after RCU tasks trace GP */
118 struct llist_head free_by_rcu_ttrace;
119 struct llist_head waiting_for_gp_ttrace;
120 struct rcu_head rcu_ttrace;
121 atomic_t call_rcu_ttrace_in_progress;
122 raw_spinlock_t lock;
123 };
124
125 struct bpf_mem_caches {
126 struct bpf_mem_cache cache[NUM_CACHES];
127 };
128
129 static const u16 sizes[NUM_CACHES] = {96, 192, 16, 32, 64, 128, 256, 512, 1024, 2048, 4096};
130
__llist_del_first(struct llist_head * head)131 static struct llist_node notrace *__llist_del_first(struct llist_head *head)
132 {
133 struct llist_node *entry, *next;
134
135 entry = head->first;
136 if (!entry)
137 return NULL;
138 next = entry->next;
139 head->first = next;
140 return entry;
141 }
142
__alloc(struct bpf_mem_cache * c,int node,gfp_t flags)143 static void *__alloc(struct bpf_mem_cache *c, int node, gfp_t flags)
144 {
145 if (c->percpu_size) {
146 void __percpu **obj = kmalloc_node(c->percpu_size, flags, node);
147 void __percpu *pptr = __alloc_percpu_gfp(c->unit_size, 8, flags);
148
149 if (!obj || !pptr) {
150 free_percpu(pptr);
151 kfree(obj);
152 return NULL;
153 }
154 obj[1] = pptr;
155 return obj;
156 }
157
158 return kmalloc_node(c->unit_size, flags | __GFP_ZERO, node);
159 }
160
get_memcg(const struct bpf_mem_cache * c)161 static struct mem_cgroup *get_memcg(const struct bpf_mem_cache *c)
162 {
163 #ifdef CONFIG_MEMCG
164 if (c->objcg)
165 return get_mem_cgroup_from_objcg(c->objcg);
166 return root_mem_cgroup;
167 #else
168 return NULL;
169 #endif
170 }
171
inc_active(struct bpf_mem_cache * c,unsigned long * flags)172 static void inc_active(struct bpf_mem_cache *c, unsigned long *flags)
173 {
174 if (IS_ENABLED(CONFIG_PREEMPT_RT))
175 /* In RT irq_work runs in per-cpu kthread, so disable
176 * interrupts to avoid preemption and interrupts and
177 * reduce the chance of bpf prog executing on this cpu
178 * when active counter is busy.
179 */
180 local_irq_save(*flags);
181 /* alloc_bulk runs from irq_work which will not preempt a bpf
182 * program that does unit_alloc/unit_free since IRQs are
183 * disabled there. There is no race to increment 'active'
184 * counter. It protects free_llist from corruption in case NMI
185 * bpf prog preempted this loop.
186 */
187 WARN_ON_ONCE(local_inc_return(&c->active) != 1);
188 }
189
dec_active(struct bpf_mem_cache * c,unsigned long * flags)190 static void dec_active(struct bpf_mem_cache *c, unsigned long *flags)
191 {
192 local_dec(&c->active);
193 if (IS_ENABLED(CONFIG_PREEMPT_RT))
194 local_irq_restore(*flags);
195 }
196
add_obj_to_free_list(struct bpf_mem_cache * c,void * obj)197 static void add_obj_to_free_list(struct bpf_mem_cache *c, void *obj)
198 {
199 unsigned long flags;
200
201 inc_active(c, &flags);
202 __llist_add(obj, &c->free_llist);
203 c->free_cnt++;
204 dec_active(c, &flags);
205 }
206
207 /* Mostly runs from irq_work except __init phase. */
alloc_bulk(struct bpf_mem_cache * c,int cnt,int node,bool atomic)208 static void alloc_bulk(struct bpf_mem_cache *c, int cnt, int node, bool atomic)
209 {
210 struct mem_cgroup *memcg = NULL, *old_memcg;
211 gfp_t gfp;
212 void *obj;
213 int i;
214
215 gfp = __GFP_NOWARN | __GFP_ACCOUNT;
216 gfp |= atomic ? GFP_NOWAIT : GFP_KERNEL;
217
218 /*
219 * c->lock serializes concurrent llist_del_first() against
220 * llist_del_all() in __free_rcu() and do_call_rcu_ttrace().
221 */
222 scoped_guard(raw_spinlock_irqsave, &c->lock) {
223 for (i = 0; i < cnt; i++) {
224 obj = llist_del_first(&c->free_by_rcu_ttrace);
225 if (!obj)
226 break;
227 add_obj_to_free_list(c, obj);
228 }
229
230 for (; i < cnt; i++) {
231 obj = llist_del_first(&c->waiting_for_gp_ttrace);
232 if (!obj)
233 break;
234 add_obj_to_free_list(c, obj);
235 }
236 }
237 if (i >= cnt)
238 return;
239
240 memcg = get_memcg(c);
241 old_memcg = set_active_memcg(memcg);
242 for (; i < cnt; i++) {
243 /* Allocate, but don't deplete atomic reserves that typical
244 * GFP_ATOMIC would do. irq_work runs on this cpu and kmalloc
245 * will allocate from the current numa node which is what we
246 * want here.
247 */
248 obj = __alloc(c, node, gfp);
249 if (!obj)
250 break;
251 add_obj_to_free_list(c, obj);
252 }
253 set_active_memcg(old_memcg);
254 mem_cgroup_put(memcg);
255 }
256
free_one(void * obj,bool percpu)257 static void free_one(void *obj, bool percpu)
258 {
259 if (percpu)
260 free_percpu(((void __percpu **)obj)[1]);
261
262 kfree(obj);
263 }
264
free_all(struct bpf_mem_cache * c,struct llist_node * llnode,bool percpu)265 static int free_all(struct bpf_mem_cache *c, struct llist_node *llnode, bool percpu)
266 {
267 struct llist_node *pos, *t;
268 int cnt = 0;
269
270 llist_for_each_safe(pos, t, llnode) {
271 if (c->dtor)
272 c->dtor((void *)pos + LLIST_NODE_SZ, c->dtor_ctx);
273 free_one(pos, percpu);
274 cnt++;
275 }
276 return cnt;
277 }
278
__free_rcu(struct rcu_head * head)279 static void __free_rcu(struct rcu_head *head)
280 {
281 struct bpf_mem_cache *c = container_of(head, struct bpf_mem_cache, rcu_ttrace);
282 struct llist_node *llnode;
283
284 scoped_guard(raw_spinlock_irqsave, &c->lock)
285 llnode = llist_del_all(&c->waiting_for_gp_ttrace);
286
287 free_all(c, llnode, !!c->percpu_size);
288 atomic_set(&c->call_rcu_ttrace_in_progress, 0);
289 }
290
enque_to_free(struct bpf_mem_cache * c,void * obj)291 static void enque_to_free(struct bpf_mem_cache *c, void *obj)
292 {
293 struct llist_node *llnode = obj;
294
295 /* bpf_mem_cache is a per-cpu object. Freeing happens in irq_work.
296 * Nothing races to add to free_by_rcu_ttrace list.
297 */
298 llist_add(llnode, &c->free_by_rcu_ttrace);
299 }
300
do_call_rcu_ttrace(struct bpf_mem_cache * c)301 static void do_call_rcu_ttrace(struct bpf_mem_cache *c)
302 {
303 struct llist_node *llnode, *t;
304
305 if (atomic_xchg(&c->call_rcu_ttrace_in_progress, 1)) {
306 if (unlikely(READ_ONCE(c->draining))) {
307 scoped_guard(raw_spinlock_irqsave, &c->lock)
308 llnode = llist_del_all(&c->free_by_rcu_ttrace);
309 free_all(c, llnode, !!c->percpu_size);
310 }
311 return;
312 }
313
314 WARN_ON_ONCE(!llist_empty(&c->waiting_for_gp_ttrace));
315 llist_for_each_safe(llnode, t, llist_del_all(&c->free_by_rcu_ttrace))
316 llist_add(llnode, &c->waiting_for_gp_ttrace);
317
318 if (unlikely(READ_ONCE(c->draining))) {
319 __free_rcu(&c->rcu_ttrace);
320 return;
321 }
322
323 /*
324 * Use call_rcu_tasks_trace() to wait for sleepable progs to finish.
325 * RCU Tasks Trace grace period implies RCU grace period, so pass
326 * __free_rcu directly as the callback.
327 */
328 call_rcu_tasks_trace(&c->rcu_ttrace, __free_rcu);
329 }
330
free_bulk(struct bpf_mem_cache * c)331 static void free_bulk(struct bpf_mem_cache *c)
332 {
333 struct bpf_mem_cache *tgt = c->tgt;
334 struct llist_node *llnode, *t;
335 unsigned long flags;
336 int cnt;
337
338 WARN_ON_ONCE(tgt->unit_size != c->unit_size);
339 WARN_ON_ONCE(tgt->percpu_size != c->percpu_size);
340
341 do {
342 inc_active(c, &flags);
343 llnode = __llist_del_first(&c->free_llist);
344 if (llnode)
345 cnt = --c->free_cnt;
346 else
347 cnt = 0;
348 dec_active(c, &flags);
349 if (llnode)
350 enque_to_free(tgt, llnode);
351 } while (cnt > (c->high_watermark + c->low_watermark) / 2);
352
353 /* and drain free_llist_extra */
354 llist_for_each_safe(llnode, t, llist_del_all(&c->free_llist_extra))
355 enque_to_free(tgt, llnode);
356 do_call_rcu_ttrace(tgt);
357 }
358
__free_by_rcu(struct rcu_head * head)359 static void __free_by_rcu(struct rcu_head *head)
360 {
361 struct bpf_mem_cache *c = container_of(head, struct bpf_mem_cache, rcu);
362 struct bpf_mem_cache *tgt = c->tgt;
363 struct llist_node *llnode;
364
365 WARN_ON_ONCE(tgt->unit_size != c->unit_size);
366 WARN_ON_ONCE(tgt->percpu_size != c->percpu_size);
367
368 llnode = llist_del_all(&c->waiting_for_gp);
369 if (!llnode)
370 goto out;
371
372 llist_add_batch(llnode, c->waiting_for_gp_tail, &tgt->free_by_rcu_ttrace);
373
374 /* Objects went through regular RCU GP. Send them to RCU tasks trace */
375 do_call_rcu_ttrace(tgt);
376 out:
377 atomic_set(&c->call_rcu_in_progress, 0);
378 }
379
check_free_by_rcu(struct bpf_mem_cache * c)380 static void check_free_by_rcu(struct bpf_mem_cache *c)
381 {
382 struct llist_node *llnode, *t;
383 unsigned long flags;
384
385 /* drain free_llist_extra_rcu */
386 if (unlikely(!llist_empty(&c->free_llist_extra_rcu))) {
387 inc_active(c, &flags);
388 llist_for_each_safe(llnode, t, llist_del_all(&c->free_llist_extra_rcu))
389 if (__llist_add(llnode, &c->free_by_rcu))
390 c->free_by_rcu_tail = llnode;
391 dec_active(c, &flags);
392 }
393
394 if (llist_empty(&c->free_by_rcu))
395 return;
396
397 if (atomic_xchg(&c->call_rcu_in_progress, 1)) {
398 /*
399 * Instead of kmalloc-ing new rcu_head and triggering 10k
400 * call_rcu() to hit rcutree.qhimark and force RCU to notice
401 * the overload just ask RCU to hurry up. There could be many
402 * objects in free_by_rcu list.
403 * This hint reduces memory consumption for an artificial
404 * benchmark from 2 Gbyte to 150 Mbyte.
405 */
406 rcu_request_urgent_qs_task(current);
407 return;
408 }
409
410 WARN_ON_ONCE(!llist_empty(&c->waiting_for_gp));
411
412 inc_active(c, &flags);
413 WRITE_ONCE(c->waiting_for_gp.first, __llist_del_all(&c->free_by_rcu));
414 c->waiting_for_gp_tail = c->free_by_rcu_tail;
415 dec_active(c, &flags);
416
417 if (unlikely(READ_ONCE(c->draining))) {
418 free_all(c, llist_del_all(&c->waiting_for_gp), !!c->percpu_size);
419 atomic_set(&c->call_rcu_in_progress, 0);
420 } else {
421 call_rcu_hurry(&c->rcu, __free_by_rcu);
422 }
423 }
424
bpf_mem_refill(struct irq_work * work)425 static void bpf_mem_refill(struct irq_work *work)
426 {
427 struct bpf_mem_cache *c = container_of(work, struct bpf_mem_cache, refill_work);
428 int cnt;
429
430 /* Racy access to free_cnt. It doesn't need to be 100% accurate */
431 cnt = c->free_cnt;
432 if (cnt < c->low_watermark)
433 /* irq_work runs on this cpu and kmalloc will allocate
434 * from the current numa node which is what we want here.
435 */
436 alloc_bulk(c, c->batch, NUMA_NO_NODE, true);
437 else if (cnt > c->high_watermark)
438 free_bulk(c);
439
440 check_free_by_rcu(c);
441 }
442
irq_work_raise(struct bpf_mem_cache * c)443 static void notrace irq_work_raise(struct bpf_mem_cache *c)
444 {
445 irq_work_queue(&c->refill_work);
446 }
447
448 /* For typical bpf map case that uses bpf_mem_cache_alloc and single bucket
449 * the freelist cache will be elem_size * 64 (or less) on each cpu.
450 *
451 * For bpf programs that don't have statically known allocation sizes and
452 * assuming (low_mark + high_mark) / 2 as an average number of elements per
453 * bucket and all buckets are used the total amount of memory in freelists
454 * on each cpu will be:
455 * 64*16 + 64*32 + 64*64 + 64*96 + 64*128 + 64*196 + 64*256 + 32*512 + 16*1024 + 8*2048 + 4*4096
456 * == ~ 116 Kbyte using below heuristic.
457 * Initialized, but unused bpf allocator (not bpf map specific one) will
458 * consume ~ 11 Kbyte per cpu.
459 * Typical case will be between 11K and 116K closer to 11K.
460 * bpf progs can and should share bpf_mem_cache when possible.
461 *
462 * Percpu allocation is typically rare. To avoid potential unnecessary large
463 * memory consumption, set low_mark = 1 and high_mark = 3, resulting in c->batch = 1.
464 */
init_refill_work(struct bpf_mem_cache * c)465 static void init_refill_work(struct bpf_mem_cache *c)
466 {
467 init_irq_work(&c->refill_work, bpf_mem_refill);
468 if (c->percpu_size) {
469 c->low_watermark = 1;
470 c->high_watermark = 3;
471 } else if (c->unit_size <= 256) {
472 c->low_watermark = 32;
473 c->high_watermark = 96;
474 } else {
475 /* When page_size == 4k, order-0 cache will have low_mark == 2
476 * and high_mark == 6 with batch alloc of 3 individual pages at
477 * a time.
478 * 8k allocs and above low == 1, high == 3, batch == 1.
479 */
480 c->low_watermark = max(32 * 256 / c->unit_size, 1);
481 c->high_watermark = max(96 * 256 / c->unit_size, 3);
482 }
483 c->batch = max((c->high_watermark - c->low_watermark) / 4 * 3, 1);
484 }
485
prefill_mem_cache(struct bpf_mem_cache * c,int cpu)486 static void prefill_mem_cache(struct bpf_mem_cache *c, int cpu)
487 {
488 int cnt = 1;
489
490 /* To avoid consuming memory, for non-percpu allocation, assume that
491 * 1st run of bpf prog won't be doing more than 4 map_update_elem from
492 * irq disabled region if unit size is less than or equal to 256.
493 * For all other cases, let us just do one allocation.
494 */
495 if (!c->percpu_size && c->unit_size <= 256)
496 cnt = 4;
497 alloc_bulk(c, cnt, cpu_to_node(cpu), false);
498 }
499
500 /* When size != 0 bpf_mem_cache for each cpu.
501 * This is typical bpf hash map use case when all elements have equal size.
502 *
503 * When size == 0 allocate 11 bpf_mem_cache-s for each cpu, then rely on
504 * kmalloc/kfree. Max allocation size is 4096 in this case.
505 * This is bpf_dynptr and bpf_kptr use case.
506 */
bpf_mem_alloc_init(struct bpf_mem_alloc * ma,int size,bool percpu)507 int bpf_mem_alloc_init(struct bpf_mem_alloc *ma, int size, bool percpu)
508 {
509 struct bpf_mem_caches *cc; struct bpf_mem_caches __percpu *pcc;
510 struct bpf_mem_cache *c; struct bpf_mem_cache __percpu *pc;
511 struct obj_cgroup *objcg = NULL;
512 int cpu, i, unit_size, percpu_size = 0;
513
514 if (percpu && size == 0)
515 return -EINVAL;
516
517 /* room for llist_node and per-cpu pointer */
518 if (percpu)
519 percpu_size = LLIST_NODE_SZ + sizeof(void *);
520 ma->percpu = percpu;
521
522 if (size) {
523 pc = __alloc_percpu_gfp(sizeof(*pc), 8, GFP_KERNEL);
524 if (!pc)
525 return -ENOMEM;
526
527 if (!percpu)
528 size += LLIST_NODE_SZ; /* room for llist_node */
529 unit_size = size;
530
531 #ifdef CONFIG_MEMCG
532 if (memcg_bpf_enabled())
533 objcg = get_obj_cgroup_from_current();
534 #endif
535 ma->objcg = objcg;
536
537 for_each_possible_cpu(cpu) {
538 c = per_cpu_ptr(pc, cpu);
539 c->unit_size = unit_size;
540 c->objcg = objcg;
541 c->percpu_size = percpu_size;
542 c->tgt = c;
543 raw_spin_lock_init(&c->lock);
544 init_refill_work(c);
545 prefill_mem_cache(c, cpu);
546 }
547 ma->cache = pc;
548 return 0;
549 }
550
551 pcc = __alloc_percpu_gfp(sizeof(*cc), 8, GFP_KERNEL);
552 if (!pcc)
553 return -ENOMEM;
554 #ifdef CONFIG_MEMCG
555 objcg = get_obj_cgroup_from_current();
556 #endif
557 ma->objcg = objcg;
558 for_each_possible_cpu(cpu) {
559 cc = per_cpu_ptr(pcc, cpu);
560 for (i = 0; i < NUM_CACHES; i++) {
561 c = &cc->cache[i];
562 c->unit_size = sizes[i];
563 c->objcg = objcg;
564 c->percpu_size = percpu_size;
565 c->tgt = c;
566 raw_spin_lock_init(&c->lock);
567 init_refill_work(c);
568 prefill_mem_cache(c, cpu);
569 }
570 }
571
572 ma->caches = pcc;
573 return 0;
574 }
575
bpf_mem_alloc_percpu_init(struct bpf_mem_alloc * ma,struct obj_cgroup * objcg)576 int bpf_mem_alloc_percpu_init(struct bpf_mem_alloc *ma, struct obj_cgroup *objcg)
577 {
578 struct bpf_mem_caches __percpu *pcc;
579
580 pcc = __alloc_percpu_gfp(sizeof(struct bpf_mem_caches), 8, GFP_KERNEL);
581 if (!pcc)
582 return -ENOMEM;
583
584 ma->caches = pcc;
585 ma->objcg = objcg;
586 ma->percpu = true;
587 return 0;
588 }
589
bpf_mem_alloc_percpu_unit_init(struct bpf_mem_alloc * ma,int size)590 int bpf_mem_alloc_percpu_unit_init(struct bpf_mem_alloc *ma, int size)
591 {
592 struct bpf_mem_caches *cc; struct bpf_mem_caches __percpu *pcc;
593 int cpu, i, unit_size, percpu_size;
594 struct obj_cgroup *objcg;
595 struct bpf_mem_cache *c;
596
597 i = bpf_mem_cache_idx(size);
598 if (i < 0)
599 return -EINVAL;
600
601 /* room for llist_node and per-cpu pointer */
602 percpu_size = LLIST_NODE_SZ + sizeof(void *);
603
604 unit_size = sizes[i];
605 objcg = ma->objcg;
606 pcc = ma->caches;
607
608 for_each_possible_cpu(cpu) {
609 cc = per_cpu_ptr(pcc, cpu);
610 c = &cc->cache[i];
611 if (c->unit_size)
612 break;
613
614 c->unit_size = unit_size;
615 c->objcg = objcg;
616 c->percpu_size = percpu_size;
617 c->tgt = c;
618 raw_spin_lock_init(&c->lock);
619 init_refill_work(c);
620 prefill_mem_cache(c, cpu);
621 }
622
623 return 0;
624 }
625
drain_mem_cache(struct bpf_mem_cache * c)626 static void drain_mem_cache(struct bpf_mem_cache *c)
627 {
628 bool percpu = !!c->percpu_size;
629
630 /* No progs are using this bpf_mem_cache, but htab_map_free() called
631 * bpf_mem_cache_free() for all remaining elements and they can be in
632 * free_by_rcu_ttrace or in waiting_for_gp_ttrace lists, so drain those lists now.
633 *
634 * Except for waiting_for_gp_ttrace list, there are no concurrent operations
635 * on these lists, so it is safe to use __llist_del_all().
636 */
637 free_all(c, llist_del_all(&c->free_by_rcu_ttrace), percpu);
638 free_all(c, llist_del_all(&c->waiting_for_gp_ttrace), percpu);
639 free_all(c, __llist_del_all(&c->free_llist), percpu);
640 free_all(c, __llist_del_all(&c->free_llist_extra), percpu);
641 free_all(c, __llist_del_all(&c->free_by_rcu), percpu);
642 free_all(c, __llist_del_all(&c->free_llist_extra_rcu), percpu);
643 free_all(c, llist_del_all(&c->waiting_for_gp), percpu);
644 }
645
check_mem_cache(struct bpf_mem_cache * c)646 static void check_mem_cache(struct bpf_mem_cache *c)
647 {
648 WARN_ON_ONCE(!llist_empty(&c->free_by_rcu_ttrace));
649 WARN_ON_ONCE(!llist_empty(&c->waiting_for_gp_ttrace));
650 WARN_ON_ONCE(!llist_empty(&c->free_llist));
651 WARN_ON_ONCE(!llist_empty(&c->free_llist_extra));
652 WARN_ON_ONCE(!llist_empty(&c->free_by_rcu));
653 WARN_ON_ONCE(!llist_empty(&c->free_llist_extra_rcu));
654 WARN_ON_ONCE(!llist_empty(&c->waiting_for_gp));
655 }
656
check_leaked_objs(struct bpf_mem_alloc * ma)657 static void check_leaked_objs(struct bpf_mem_alloc *ma)
658 {
659 struct bpf_mem_caches *cc;
660 struct bpf_mem_cache *c;
661 int cpu, i;
662
663 if (ma->cache) {
664 for_each_possible_cpu(cpu) {
665 c = per_cpu_ptr(ma->cache, cpu);
666 check_mem_cache(c);
667 }
668 }
669 if (ma->caches) {
670 for_each_possible_cpu(cpu) {
671 cc = per_cpu_ptr(ma->caches, cpu);
672 for (i = 0; i < NUM_CACHES; i++) {
673 c = &cc->cache[i];
674 check_mem_cache(c);
675 }
676 }
677 }
678 }
679
free_mem_alloc_no_barrier(struct bpf_mem_alloc * ma)680 static void free_mem_alloc_no_barrier(struct bpf_mem_alloc *ma)
681 {
682 /* We can free dtor ctx only once all callbacks are done using it. */
683 if (ma->dtor_ctx_free)
684 ma->dtor_ctx_free(ma->dtor_ctx);
685 check_leaked_objs(ma);
686 free_percpu(ma->cache);
687 free_percpu(ma->caches);
688 ma->cache = NULL;
689 ma->caches = NULL;
690 }
691
free_mem_alloc(struct bpf_mem_alloc * ma)692 static void free_mem_alloc(struct bpf_mem_alloc *ma)
693 {
694 /*
695 * waiting_for_gp[_ttrace] lists were drained, but RCU callbacks
696 * might still execute. Wait for them.
697 *
698 * rcu_barrier_tasks_trace() doesn't imply synchronize_rcu_tasks_trace(),
699 * but rcu_barrier_tasks_trace() and rcu_barrier() below are only used
700 * to wait for the pending __free_by_rcu(), and __free_rcu(). RCU Tasks
701 * Trace grace period implies RCU grace period, so all __free_rcu don't
702 * need extra call_rcu() (and thus extra rcu_barrier() here).
703 */
704 rcu_barrier(); /* wait for __free_by_rcu */
705 rcu_barrier_tasks_trace(); /* wait for __free_rcu */
706 free_mem_alloc_no_barrier(ma);
707 }
708
free_mem_alloc_deferred(struct work_struct * work)709 static void free_mem_alloc_deferred(struct work_struct *work)
710 {
711 struct bpf_mem_alloc *ma = container_of(work, struct bpf_mem_alloc, work);
712
713 free_mem_alloc(ma);
714 kfree(ma);
715 }
716
destroy_mem_alloc(struct bpf_mem_alloc * ma,int rcu_in_progress)717 static void destroy_mem_alloc(struct bpf_mem_alloc *ma, int rcu_in_progress)
718 {
719 struct bpf_mem_alloc *copy;
720
721 if (!rcu_in_progress) {
722 /* Fast path. No callbacks are pending, hence no need to do
723 * rcu_barrier-s.
724 */
725 free_mem_alloc_no_barrier(ma);
726 return;
727 }
728
729 copy = kmemdup(ma, sizeof(*ma), GFP_KERNEL);
730 if (!copy) {
731 /* Slow path with inline barrier-s */
732 free_mem_alloc(ma);
733 return;
734 }
735
736 /* Defer barriers into worker to let the rest of map memory to be freed */
737 memset(ma, 0, sizeof(*ma));
738 INIT_WORK(©->work, free_mem_alloc_deferred);
739 queue_work(system_dfl_wq, ©->work);
740 }
741
bpf_mem_alloc_destroy(struct bpf_mem_alloc * ma)742 void bpf_mem_alloc_destroy(struct bpf_mem_alloc *ma)
743 {
744 struct bpf_mem_caches *cc;
745 struct bpf_mem_cache *c;
746 int cpu, i, rcu_in_progress;
747
748 if (ma->cache) {
749 rcu_in_progress = 0;
750 for_each_possible_cpu(cpu) {
751 c = per_cpu_ptr(ma->cache, cpu);
752 WRITE_ONCE(c->draining, true);
753 irq_work_sync(&c->refill_work);
754 drain_mem_cache(c);
755 rcu_in_progress += atomic_read(&c->call_rcu_ttrace_in_progress);
756 rcu_in_progress += atomic_read(&c->call_rcu_in_progress);
757 }
758 obj_cgroup_put(ma->objcg);
759 destroy_mem_alloc(ma, rcu_in_progress);
760 }
761 if (ma->caches) {
762 rcu_in_progress = 0;
763 for_each_possible_cpu(cpu) {
764 cc = per_cpu_ptr(ma->caches, cpu);
765 for (i = 0; i < NUM_CACHES; i++) {
766 c = &cc->cache[i];
767 WRITE_ONCE(c->draining, true);
768 irq_work_sync(&c->refill_work);
769 drain_mem_cache(c);
770 rcu_in_progress += atomic_read(&c->call_rcu_ttrace_in_progress);
771 rcu_in_progress += atomic_read(&c->call_rcu_in_progress);
772 }
773 }
774 obj_cgroup_put(ma->objcg);
775 destroy_mem_alloc(ma, rcu_in_progress);
776 }
777 }
778
779 /* notrace is necessary here and in other functions to make sure
780 * bpf programs cannot attach to them and cause llist corruptions.
781 */
unit_alloc(struct bpf_mem_cache * c)782 static void notrace *unit_alloc(struct bpf_mem_cache *c)
783 {
784 struct llist_node *llnode = NULL;
785 unsigned long flags;
786 int cnt = 0;
787
788 /* Disable irqs to prevent the following race for majority of prog types:
789 * prog_A
790 * bpf_mem_alloc
791 * preemption or irq -> prog_B
792 * bpf_mem_alloc
793 *
794 * but prog_B could be a perf_event NMI prog.
795 * Use per-cpu 'active' counter to order free_list access between
796 * unit_alloc/unit_free/bpf_mem_refill.
797 */
798 local_irq_save(flags);
799 if (local_inc_return(&c->active) == 1) {
800 llnode = __llist_del_first(&c->free_llist);
801 if (llnode) {
802 cnt = --c->free_cnt;
803 *(struct bpf_mem_cache **)llnode = c;
804 }
805 }
806 local_dec(&c->active);
807
808 WARN_ON(cnt < 0);
809
810 if (cnt < c->low_watermark)
811 irq_work_raise(c);
812 /* Enable IRQ after the enqueue of irq work completes, so irq work
813 * will run after IRQ is enabled and free_llist may be refilled by
814 * irq work before other task preempts current task.
815 */
816 local_irq_restore(flags);
817
818 return llnode;
819 }
820
821 /* Though 'ptr' object could have been allocated on a different cpu
822 * add it to the free_llist of the current cpu.
823 * Let kfree() logic deal with it when it's later called from irq_work.
824 */
unit_free(struct bpf_mem_cache * c,void * ptr)825 static void notrace unit_free(struct bpf_mem_cache *c, void *ptr)
826 {
827 struct llist_node *llnode = ptr - LLIST_NODE_SZ;
828 unsigned long flags;
829 int cnt = 0;
830
831 BUILD_BUG_ON(LLIST_NODE_SZ > 8);
832
833 /*
834 * Remember bpf_mem_cache that allocated this object.
835 * The hint is not accurate.
836 */
837 c->tgt = *(struct bpf_mem_cache **)llnode;
838
839 local_irq_save(flags);
840 if (local_inc_return(&c->active) == 1) {
841 __llist_add(llnode, &c->free_llist);
842 cnt = ++c->free_cnt;
843 } else {
844 /* unit_free() cannot fail. Therefore add an object to atomic
845 * llist. free_bulk() will drain it. Though free_llist_extra is
846 * a per-cpu list we have to use atomic llist_add here, since
847 * it also can be interrupted by bpf nmi prog that does another
848 * unit_free() into the same free_llist_extra.
849 */
850 llist_add(llnode, &c->free_llist_extra);
851 }
852 local_dec(&c->active);
853
854 if (cnt > c->high_watermark)
855 /* free few objects from current cpu into global kmalloc pool */
856 irq_work_raise(c);
857 /* Enable IRQ after irq_work_raise() completes, otherwise when current
858 * task is preempted by task which does unit_alloc(), unit_alloc() may
859 * return NULL unexpectedly because irq work is already pending but can
860 * not been triggered and free_llist can not be refilled timely.
861 */
862 local_irq_restore(flags);
863 }
864
unit_free_rcu(struct bpf_mem_cache * c,void * ptr)865 static void notrace unit_free_rcu(struct bpf_mem_cache *c, void *ptr)
866 {
867 struct llist_node *llnode = ptr - LLIST_NODE_SZ;
868 unsigned long flags;
869
870 c->tgt = *(struct bpf_mem_cache **)llnode;
871
872 local_irq_save(flags);
873 if (local_inc_return(&c->active) == 1) {
874 if (__llist_add(llnode, &c->free_by_rcu))
875 c->free_by_rcu_tail = llnode;
876 } else {
877 llist_add(llnode, &c->free_llist_extra_rcu);
878 }
879 local_dec(&c->active);
880
881 if (!atomic_read(&c->call_rcu_in_progress))
882 irq_work_raise(c);
883 local_irq_restore(flags);
884 }
885
886 /* Called from BPF program or from sys_bpf syscall.
887 * In both cases migration is disabled.
888 */
bpf_mem_alloc(struct bpf_mem_alloc * ma,size_t size)889 void notrace *bpf_mem_alloc(struct bpf_mem_alloc *ma, size_t size)
890 {
891 int idx;
892 void *ret;
893
894 if (!size)
895 return NULL;
896
897 if (!ma->percpu)
898 size += LLIST_NODE_SZ;
899 idx = bpf_mem_cache_idx(size);
900 if (idx < 0)
901 return NULL;
902
903 ret = unit_alloc(this_cpu_ptr(ma->caches)->cache + idx);
904 return !ret ? NULL : ret + LLIST_NODE_SZ;
905 }
906
bpf_mem_free(struct bpf_mem_alloc * ma,void * ptr)907 void notrace bpf_mem_free(struct bpf_mem_alloc *ma, void *ptr)
908 {
909 struct bpf_mem_cache *c;
910 int idx;
911
912 if (!ptr)
913 return;
914
915 c = *(void **)(ptr - LLIST_NODE_SZ);
916 idx = bpf_mem_cache_idx(c->unit_size);
917 if (WARN_ON_ONCE(idx < 0))
918 return;
919
920 unit_free(this_cpu_ptr(ma->caches)->cache + idx, ptr);
921 }
922
bpf_mem_free_rcu(struct bpf_mem_alloc * ma,void * ptr)923 void notrace bpf_mem_free_rcu(struct bpf_mem_alloc *ma, void *ptr)
924 {
925 struct bpf_mem_cache *c;
926 int idx;
927
928 if (!ptr)
929 return;
930
931 c = *(void **)(ptr - LLIST_NODE_SZ);
932 idx = bpf_mem_cache_idx(c->unit_size);
933 if (WARN_ON_ONCE(idx < 0))
934 return;
935
936 unit_free_rcu(this_cpu_ptr(ma->caches)->cache + idx, ptr);
937 }
938
bpf_mem_cache_alloc(struct bpf_mem_alloc * ma)939 void notrace *bpf_mem_cache_alloc(struct bpf_mem_alloc *ma)
940 {
941 void *ret;
942
943 ret = unit_alloc(this_cpu_ptr(ma->cache));
944 return !ret ? NULL : ret + LLIST_NODE_SZ;
945 }
946
bpf_mem_cache_free(struct bpf_mem_alloc * ma,void * ptr)947 void notrace bpf_mem_cache_free(struct bpf_mem_alloc *ma, void *ptr)
948 {
949 if (!ptr)
950 return;
951
952 unit_free(this_cpu_ptr(ma->cache), ptr);
953 }
954
bpf_mem_cache_free_rcu(struct bpf_mem_alloc * ma,void * ptr)955 void notrace bpf_mem_cache_free_rcu(struct bpf_mem_alloc *ma, void *ptr)
956 {
957 if (!ptr)
958 return;
959
960 unit_free_rcu(this_cpu_ptr(ma->cache), ptr);
961 }
962
963 /* Directly does a kfree() without putting 'ptr' back to the free_llist
964 * for reuse and without waiting for a rcu_tasks_trace gp.
965 * The caller must first go through the rcu_tasks_trace gp for 'ptr'
966 * before calling bpf_mem_cache_raw_free().
967 * It could be used when the rcu_tasks_trace callback does not have
968 * a hold on the original bpf_mem_alloc object that allocated the
969 * 'ptr'. This should only be used in the uncommon code path.
970 * Otherwise, the bpf_mem_alloc's free_llist cannot be refilled
971 * and may affect performance.
972 */
bpf_mem_cache_raw_free(void * ptr)973 void bpf_mem_cache_raw_free(void *ptr)
974 {
975 if (!ptr)
976 return;
977
978 kfree(ptr - LLIST_NODE_SZ);
979 }
980
981 /* When flags == GFP_KERNEL, it signals that the caller will not cause
982 * deadlock when using kmalloc. bpf_mem_cache_alloc_flags() will use
983 * kmalloc if the free_llist is empty.
984 */
bpf_mem_cache_alloc_flags(struct bpf_mem_alloc * ma,gfp_t flags)985 void notrace *bpf_mem_cache_alloc_flags(struct bpf_mem_alloc *ma, gfp_t flags)
986 {
987 struct bpf_mem_cache *c;
988 void *ret;
989
990 c = this_cpu_ptr(ma->cache);
991
992 ret = unit_alloc(c);
993 if (!ret && flags == GFP_KERNEL) {
994 struct mem_cgroup *memcg, *old_memcg;
995
996 memcg = get_memcg(c);
997 old_memcg = set_active_memcg(memcg);
998 ret = __alloc(c, NUMA_NO_NODE, GFP_KERNEL | __GFP_NOWARN | __GFP_ACCOUNT);
999 if (ret)
1000 *(struct bpf_mem_cache **)ret = c;
1001 set_active_memcg(old_memcg);
1002 mem_cgroup_put(memcg);
1003 }
1004
1005 return !ret ? NULL : ret + LLIST_NODE_SZ;
1006 }
1007
bpf_mem_alloc_check_size(bool percpu,size_t size)1008 int bpf_mem_alloc_check_size(bool percpu, size_t size)
1009 {
1010 /* The size of percpu allocation doesn't have LLIST_NODE_SZ overhead */
1011 if ((percpu && size > BPF_MEM_ALLOC_SIZE_MAX) ||
1012 (!percpu && size > BPF_MEM_ALLOC_SIZE_MAX - LLIST_NODE_SZ))
1013 return -E2BIG;
1014
1015 return 0;
1016 }
1017
bpf_mem_alloc_set_dtor(struct bpf_mem_alloc * ma,void (* dtor)(void * obj,void * ctx),void (* dtor_ctx_free)(void * ctx),void * ctx)1018 void bpf_mem_alloc_set_dtor(struct bpf_mem_alloc *ma, void (*dtor)(void *obj, void *ctx),
1019 void (*dtor_ctx_free)(void *ctx), void *ctx)
1020 {
1021 struct bpf_mem_caches *cc;
1022 struct bpf_mem_cache *c;
1023 int cpu, i;
1024
1025 ma->dtor_ctx_free = dtor_ctx_free;
1026 ma->dtor_ctx = ctx;
1027
1028 if (ma->cache) {
1029 for_each_possible_cpu(cpu) {
1030 c = per_cpu_ptr(ma->cache, cpu);
1031 c->dtor = dtor;
1032 c->dtor_ctx = ctx;
1033 }
1034 }
1035 if (ma->caches) {
1036 for_each_possible_cpu(cpu) {
1037 cc = per_cpu_ptr(ma->caches, cpu);
1038 for (i = 0; i < NUM_CACHES; i++) {
1039 c = &cc->cache[i];
1040 c->dtor = dtor;
1041 c->dtor_ctx = ctx;
1042 }
1043 }
1044 }
1045 }
1046