1 // SPDX-License-Identifier: GPL-2.0-only 2 /* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com 3 * Copyright (c) 2016 Facebook 4 */ 5 #include <linux/bpf.h> 6 #include <linux/btf.h> 7 #include <linux/jhash.h> 8 #include <linux/filter.h> 9 #include <linux/rculist_nulls.h> 10 #include <linux/rcupdate_wait.h> 11 #include <linux/random.h> 12 #include <uapi/linux/btf.h> 13 #include <linux/rcupdate_trace.h> 14 #include <linux/btf_ids.h> 15 #include "percpu_freelist.h" 16 #include "bpf_lru_list.h" 17 #include "map_in_map.h" 18 #include <linux/bpf_mem_alloc.h> 19 #include <asm/rqspinlock.h> 20 21 #define HTAB_CREATE_FLAG_MASK \ 22 (BPF_F_NO_PREALLOC | BPF_F_NO_COMMON_LRU | BPF_F_NUMA_NODE | \ 23 BPF_F_ACCESS_MASK | BPF_F_ZERO_SEED) 24 25 #define BATCH_OPS(_name) \ 26 .map_lookup_batch = \ 27 _name##_map_lookup_batch, \ 28 .map_lookup_and_delete_batch = \ 29 _name##_map_lookup_and_delete_batch, \ 30 .map_update_batch = \ 31 generic_map_update_batch, \ 32 .map_delete_batch = \ 33 generic_map_delete_batch 34 35 /* 36 * The bucket lock has two protection scopes: 37 * 38 * 1) Serializing concurrent operations from BPF programs on different 39 * CPUs 40 * 41 * 2) Serializing concurrent operations from BPF programs and sys_bpf() 42 * 43 * BPF programs can execute in any context including perf, kprobes and 44 * tracing. As there are almost no limits where perf, kprobes and tracing 45 * can be invoked from the lock operations need to be protected against 46 * deadlocks. Deadlocks can be caused by recursion and by an invocation in 47 * the lock held section when functions which acquire this lock are invoked 48 * from sys_bpf(). BPF recursion is prevented by incrementing the per CPU 49 * variable bpf_prog_active, which prevents BPF programs attached to perf 50 * events, kprobes and tracing to be invoked before the prior invocation 51 * from one of these contexts completed. sys_bpf() uses the same mechanism 52 * by pinning the task to the current CPU and incrementing the recursion 53 * protection across the map operation. 54 * 55 * This has subtle implications on PREEMPT_RT. PREEMPT_RT forbids certain 56 * operations like memory allocations (even with GFP_ATOMIC) from atomic 57 * contexts. This is required because even with GFP_ATOMIC the memory 58 * allocator calls into code paths which acquire locks with long held lock 59 * sections. To ensure the deterministic behaviour these locks are regular 60 * spinlocks, which are converted to 'sleepable' spinlocks on RT. The only 61 * true atomic contexts on an RT kernel are the low level hardware 62 * handling, scheduling, low level interrupt handling, NMIs etc. None of 63 * these contexts should ever do memory allocations. 64 * 65 * As regular device interrupt handlers and soft interrupts are forced into 66 * thread context, the existing code which does 67 * spin_lock*(); alloc(GFP_ATOMIC); spin_unlock*(); 68 * just works. 69 * 70 * In theory the BPF locks could be converted to regular spinlocks as well, 71 * but the bucket locks and percpu_freelist locks can be taken from 72 * arbitrary contexts (perf, kprobes, tracepoints) which are required to be 73 * atomic contexts even on RT. Before the introduction of bpf_mem_alloc, 74 * it is only safe to use raw spinlock for preallocated hash map on a RT kernel, 75 * because there is no memory allocation within the lock held sections. However 76 * after hash map was fully converted to use bpf_mem_alloc, there will be 77 * non-synchronous memory allocation for non-preallocated hash map, so it is 78 * safe to always use raw spinlock for bucket lock. 79 */ 80 struct bucket { 81 struct hlist_nulls_head head; 82 rqspinlock_t raw_lock; 83 }; 84 85 struct bpf_htab { 86 struct bpf_map map; 87 struct bpf_mem_alloc ma; 88 struct bpf_mem_alloc pcpu_ma; 89 struct bucket *buckets; 90 void *elems; 91 union { 92 struct pcpu_freelist freelist; 93 struct bpf_lru lru; 94 }; 95 struct htab_elem *__percpu *extra_elems; 96 /* number of elements in non-preallocated hashtable are kept 97 * in either pcount or count 98 */ 99 struct percpu_counter pcount; 100 atomic_t count; 101 bool use_percpu_counter; 102 u32 n_buckets; /* number of hash buckets */ 103 u32 elem_size; /* size of each element in bytes */ 104 u32 hashrnd; 105 }; 106 107 /* each htab element is struct htab_elem + key + value */ 108 struct htab_elem { 109 union { 110 struct hlist_nulls_node hash_node; 111 struct { 112 void *padding; 113 union { 114 struct pcpu_freelist_node fnode; 115 struct htab_elem *batch_flink; 116 }; 117 }; 118 }; 119 union { 120 /* pointer to per-cpu pointer */ 121 void *ptr_to_pptr; 122 struct bpf_lru_node lru_node; 123 }; 124 u32 hash; 125 char key[] __aligned(8); 126 }; 127 128 struct htab_btf_record { 129 struct btf_record *record; 130 u32 key_size; 131 }; 132 133 static inline bool htab_is_prealloc(const struct bpf_htab *htab) 134 { 135 return !(htab->map.map_flags & BPF_F_NO_PREALLOC); 136 } 137 138 static void htab_init_buckets(struct bpf_htab *htab) 139 { 140 unsigned int i; 141 142 for (i = 0; i < htab->n_buckets; i++) { 143 INIT_HLIST_NULLS_HEAD(&htab->buckets[i].head, i); 144 raw_res_spin_lock_init(&htab->buckets[i].raw_lock); 145 cond_resched(); 146 } 147 } 148 149 static inline int htab_lock_bucket(struct bucket *b, unsigned long *pflags) 150 { 151 unsigned long flags; 152 int ret; 153 154 ret = raw_res_spin_lock_irqsave(&b->raw_lock, flags); 155 if (ret) 156 return ret; 157 *pflags = flags; 158 return 0; 159 } 160 161 static inline void htab_unlock_bucket(struct bucket *b, unsigned long flags) 162 { 163 raw_res_spin_unlock_irqrestore(&b->raw_lock, flags); 164 } 165 166 static bool htab_lru_map_delete_node(void *arg, struct bpf_lru_node *node); 167 168 static bool htab_is_lru(const struct bpf_htab *htab) 169 { 170 return htab->map.map_type == BPF_MAP_TYPE_LRU_HASH || 171 htab->map.map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH; 172 } 173 174 static bool htab_is_percpu(const struct bpf_htab *htab) 175 { 176 return htab->map.map_type == BPF_MAP_TYPE_PERCPU_HASH || 177 htab->map.map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH; 178 } 179 180 static inline bool is_fd_htab(const struct bpf_htab *htab) 181 { 182 return htab->map.map_type == BPF_MAP_TYPE_HASH_OF_MAPS; 183 } 184 185 static inline void *htab_elem_value(struct htab_elem *l, u32 key_size) 186 { 187 return l->key + round_up(key_size, 8); 188 } 189 190 static inline void htab_elem_set_ptr(struct htab_elem *l, u32 key_size, 191 void __percpu *pptr) 192 { 193 *(void __percpu **)htab_elem_value(l, key_size) = pptr; 194 } 195 196 static inline void __percpu *htab_elem_get_ptr(struct htab_elem *l, u32 key_size) 197 { 198 return *(void __percpu **)htab_elem_value(l, key_size); 199 } 200 201 static void *fd_htab_map_get_ptr(const struct bpf_map *map, struct htab_elem *l) 202 { 203 return *(void **)htab_elem_value(l, map->key_size); 204 } 205 206 static struct htab_elem *get_htab_elem(struct bpf_htab *htab, int i) 207 { 208 return (struct htab_elem *) (htab->elems + i * (u64)htab->elem_size); 209 } 210 211 /* Both percpu and fd htab support in-place update, so no need for 212 * extra elem. LRU itself can remove the least used element, so 213 * there is no need for an extra elem during map_update. 214 */ 215 static bool htab_has_extra_elems(struct bpf_htab *htab) 216 { 217 return !htab_is_percpu(htab) && !htab_is_lru(htab) && !is_fd_htab(htab); 218 } 219 220 static void htab_free_prealloced_internal_structs(struct bpf_htab *htab) 221 { 222 u32 num_entries = htab->map.max_entries; 223 int i; 224 225 if (htab_has_extra_elems(htab)) 226 num_entries += num_possible_cpus(); 227 228 for (i = 0; i < num_entries; i++) { 229 struct htab_elem *elem; 230 231 elem = get_htab_elem(htab, i); 232 bpf_map_free_internal_structs(&htab->map, 233 htab_elem_value(elem, htab->map.key_size)); 234 cond_resched(); 235 } 236 } 237 238 static void htab_free_prealloced_fields(struct bpf_htab *htab) 239 { 240 u32 num_entries = htab->map.max_entries; 241 int i; 242 243 if (IS_ERR_OR_NULL(htab->map.record)) 244 return; 245 if (htab_has_extra_elems(htab)) 246 num_entries += num_possible_cpus(); 247 for (i = 0; i < num_entries; i++) { 248 struct htab_elem *elem; 249 250 elem = get_htab_elem(htab, i); 251 if (htab_is_percpu(htab)) { 252 void __percpu *pptr = htab_elem_get_ptr(elem, htab->map.key_size); 253 int cpu; 254 255 for_each_possible_cpu(cpu) { 256 bpf_obj_free_fields(htab->map.record, per_cpu_ptr(pptr, cpu)); 257 cond_resched(); 258 } 259 } else { 260 bpf_obj_free_fields(htab->map.record, 261 htab_elem_value(elem, htab->map.key_size)); 262 cond_resched(); 263 } 264 cond_resched(); 265 } 266 } 267 268 static void htab_free_elems(struct bpf_htab *htab) 269 { 270 int i; 271 272 if (!htab_is_percpu(htab)) 273 goto free_elems; 274 275 for (i = 0; i < htab->map.max_entries; i++) { 276 void __percpu *pptr; 277 278 pptr = htab_elem_get_ptr(get_htab_elem(htab, i), 279 htab->map.key_size); 280 free_percpu(pptr); 281 cond_resched(); 282 } 283 free_elems: 284 bpf_map_area_free(htab->elems); 285 } 286 287 /* The LRU list has a lock (lru_lock). Each htab bucket has a lock 288 * (bucket_lock). If both locks need to be acquired together, the lock 289 * order is always lru_lock -> bucket_lock and this only happens in 290 * bpf_lru_list.c logic. For example, certain code path of 291 * bpf_lru_pop_free(), which is called by function prealloc_lru_pop(), 292 * will acquire lru_lock first followed by acquiring bucket_lock. 293 * 294 * In hashtab.c, to avoid deadlock, lock acquisition of 295 * bucket_lock followed by lru_lock is not allowed. In such cases, 296 * bucket_lock needs to be released first before acquiring lru_lock. 297 */ 298 static struct htab_elem *prealloc_lru_pop(struct bpf_htab *htab, void *key, 299 u32 hash) 300 { 301 struct bpf_lru_node *node = bpf_lru_pop_free(&htab->lru, hash); 302 struct htab_elem *l; 303 304 if (node) { 305 bpf_map_inc_elem_count(&htab->map); 306 l = container_of(node, struct htab_elem, lru_node); 307 memcpy(l->key, key, htab->map.key_size); 308 return l; 309 } 310 311 return NULL; 312 } 313 314 static int prealloc_init(struct bpf_htab *htab) 315 { 316 u32 num_entries = htab->map.max_entries; 317 int err = -ENOMEM, i; 318 319 if (htab_has_extra_elems(htab)) 320 num_entries += num_possible_cpus(); 321 322 htab->elems = bpf_map_area_alloc((u64)htab->elem_size * num_entries, 323 htab->map.numa_node); 324 if (!htab->elems) 325 return -ENOMEM; 326 327 if (!htab_is_percpu(htab)) 328 goto skip_percpu_elems; 329 330 for (i = 0; i < num_entries; i++) { 331 u32 size = round_up(htab->map.value_size, 8); 332 void __percpu *pptr; 333 334 pptr = bpf_map_alloc_percpu(&htab->map, size, 8, 335 GFP_USER | __GFP_NOWARN); 336 if (!pptr) 337 goto free_elems; 338 htab_elem_set_ptr(get_htab_elem(htab, i), htab->map.key_size, 339 pptr); 340 cond_resched(); 341 } 342 343 skip_percpu_elems: 344 if (htab_is_lru(htab)) 345 err = bpf_lru_init(&htab->lru, 346 htab->map.map_flags & BPF_F_NO_COMMON_LRU, 347 offsetof(struct htab_elem, hash) - 348 offsetof(struct htab_elem, lru_node), 349 htab_lru_map_delete_node, 350 htab); 351 else 352 err = pcpu_freelist_init(&htab->freelist); 353 354 if (err) 355 goto free_elems; 356 357 if (htab_is_lru(htab)) 358 bpf_lru_populate(&htab->lru, htab->elems, 359 offsetof(struct htab_elem, lru_node), 360 htab->elem_size, num_entries); 361 else 362 pcpu_freelist_populate(&htab->freelist, 363 htab->elems + offsetof(struct htab_elem, fnode), 364 htab->elem_size, num_entries); 365 366 return 0; 367 368 free_elems: 369 htab_free_elems(htab); 370 return err; 371 } 372 373 static void prealloc_destroy(struct bpf_htab *htab) 374 { 375 htab_free_elems(htab); 376 377 if (htab_is_lru(htab)) 378 bpf_lru_destroy(&htab->lru); 379 else 380 pcpu_freelist_destroy(&htab->freelist); 381 } 382 383 static int alloc_extra_elems(struct bpf_htab *htab) 384 { 385 struct htab_elem *__percpu *pptr, *l_new; 386 struct pcpu_freelist_node *l; 387 int cpu; 388 389 pptr = bpf_map_alloc_percpu(&htab->map, sizeof(struct htab_elem *), 8, 390 GFP_USER | __GFP_NOWARN); 391 if (!pptr) 392 return -ENOMEM; 393 394 for_each_possible_cpu(cpu) { 395 l = pcpu_freelist_pop(&htab->freelist); 396 /* pop will succeed, since prealloc_init() 397 * preallocated extra num_possible_cpus elements 398 */ 399 l_new = container_of(l, struct htab_elem, fnode); 400 *per_cpu_ptr(pptr, cpu) = l_new; 401 } 402 htab->extra_elems = pptr; 403 return 0; 404 } 405 406 /* Called from syscall */ 407 static int htab_map_alloc_check(union bpf_attr *attr) 408 { 409 bool percpu = (attr->map_type == BPF_MAP_TYPE_PERCPU_HASH || 410 attr->map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH); 411 bool lru = (attr->map_type == BPF_MAP_TYPE_LRU_HASH || 412 attr->map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH); 413 /* percpu_lru means each cpu has its own LRU list. 414 * it is different from BPF_MAP_TYPE_PERCPU_HASH where 415 * the map's value itself is percpu. percpu_lru has 416 * nothing to do with the map's value. 417 */ 418 bool percpu_lru = (attr->map_flags & BPF_F_NO_COMMON_LRU); 419 bool prealloc = !(attr->map_flags & BPF_F_NO_PREALLOC); 420 bool zero_seed = (attr->map_flags & BPF_F_ZERO_SEED); 421 int numa_node = bpf_map_attr_numa_node(attr); 422 423 BUILD_BUG_ON(offsetof(struct htab_elem, fnode.next) != 424 offsetof(struct htab_elem, hash_node.pprev)); 425 426 if (zero_seed && !capable(CAP_SYS_ADMIN)) 427 /* Guard against local DoS, and discourage production use. */ 428 return -EPERM; 429 430 if (attr->map_flags & ~HTAB_CREATE_FLAG_MASK || 431 !bpf_map_flags_access_ok(attr->map_flags)) 432 return -EINVAL; 433 434 if (!lru && percpu_lru) 435 return -EINVAL; 436 437 if (lru && !prealloc) 438 return -ENOTSUPP; 439 440 if (numa_node != NUMA_NO_NODE && (percpu || percpu_lru)) 441 return -EINVAL; 442 443 /* check sanity of attributes. 444 * value_size == 0 may be allowed in the future to use map as a set 445 */ 446 if (attr->max_entries == 0 || attr->key_size == 0 || 447 attr->value_size == 0) 448 return -EINVAL; 449 450 if ((u64)attr->key_size + attr->value_size >= KMALLOC_MAX_SIZE - 451 sizeof(struct htab_elem)) 452 /* if key_size + value_size is bigger, the user space won't be 453 * able to access the elements via bpf syscall. This check 454 * also makes sure that the elem_size doesn't overflow and it's 455 * kmalloc-able later in htab_map_update_elem() 456 */ 457 return -E2BIG; 458 /* percpu map value size is bound by PCPU_MIN_UNIT_SIZE */ 459 if (percpu && round_up(attr->value_size, 8) > PCPU_MIN_UNIT_SIZE) 460 return -E2BIG; 461 462 return 0; 463 } 464 465 static void htab_mem_dtor(void *obj, void *ctx) 466 { 467 struct htab_btf_record *hrec = ctx; 468 struct htab_elem *elem = obj; 469 void *map_value; 470 471 if (IS_ERR_OR_NULL(hrec->record)) 472 return; 473 474 map_value = htab_elem_value(elem, hrec->key_size); 475 bpf_obj_free_fields(hrec->record, map_value); 476 } 477 478 static void htab_pcpu_mem_dtor(void *obj, void *ctx) 479 { 480 void __percpu *pptr = *(void __percpu **)obj; 481 struct htab_btf_record *hrec = ctx; 482 int cpu; 483 484 if (IS_ERR_OR_NULL(hrec->record)) 485 return; 486 487 for_each_possible_cpu(cpu) 488 bpf_obj_free_fields(hrec->record, per_cpu_ptr(pptr, cpu)); 489 } 490 491 static void htab_dtor_ctx_free(void *ctx) 492 { 493 struct htab_btf_record *hrec = ctx; 494 495 btf_record_free(hrec->record); 496 kfree(ctx); 497 } 498 499 static int htab_set_dtor(struct bpf_htab *htab, void (*dtor)(void *, void *)) 500 { 501 u32 key_size = htab->map.key_size; 502 struct bpf_mem_alloc *ma; 503 struct htab_btf_record *hrec; 504 int err; 505 506 /* No need for dtors. */ 507 if (IS_ERR_OR_NULL(htab->map.record)) 508 return 0; 509 510 hrec = kzalloc(sizeof(*hrec), GFP_KERNEL); 511 if (!hrec) 512 return -ENOMEM; 513 hrec->key_size = key_size; 514 hrec->record = btf_record_dup(htab->map.record); 515 if (IS_ERR(hrec->record)) { 516 err = PTR_ERR(hrec->record); 517 kfree(hrec); 518 return err; 519 } 520 ma = htab_is_percpu(htab) ? &htab->pcpu_ma : &htab->ma; 521 bpf_mem_alloc_set_dtor(ma, dtor, htab_dtor_ctx_free, hrec); 522 return 0; 523 } 524 525 static int htab_map_check_btf(struct bpf_map *map, const struct btf *btf, 526 const struct btf_type *key_type, const struct btf_type *value_type) 527 { 528 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 529 530 if (htab_is_prealloc(htab)) 531 return 0; 532 /* 533 * We must set the dtor using this callback, as map's BTF record is not 534 * populated in htab_map_alloc(), so it will always appear as NULL. 535 */ 536 if (htab_is_percpu(htab)) 537 return htab_set_dtor(htab, htab_pcpu_mem_dtor); 538 else 539 return htab_set_dtor(htab, htab_mem_dtor); 540 } 541 542 static struct bpf_map *htab_map_alloc(union bpf_attr *attr) 543 { 544 bool percpu = (attr->map_type == BPF_MAP_TYPE_PERCPU_HASH || 545 attr->map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH); 546 /* percpu_lru means each cpu has its own LRU list. 547 * it is different from BPF_MAP_TYPE_PERCPU_HASH where 548 * the map's value itself is percpu. percpu_lru has 549 * nothing to do with the map's value. 550 */ 551 bool percpu_lru = (attr->map_flags & BPF_F_NO_COMMON_LRU); 552 bool prealloc = !(attr->map_flags & BPF_F_NO_PREALLOC); 553 struct bpf_htab *htab; 554 int err; 555 556 htab = bpf_map_area_alloc(sizeof(*htab), NUMA_NO_NODE); 557 if (!htab) 558 return ERR_PTR(-ENOMEM); 559 560 bpf_map_init_from_attr(&htab->map, attr); 561 562 if (percpu_lru) { 563 /* ensure each CPU's lru list has >=1 elements. 564 * since we are at it, make each lru list has the same 565 * number of elements. 566 */ 567 htab->map.max_entries = roundup(attr->max_entries, 568 num_possible_cpus()); 569 if (htab->map.max_entries < attr->max_entries) 570 htab->map.max_entries = rounddown(attr->max_entries, 571 num_possible_cpus()); 572 } 573 574 /* hash table size must be power of 2; roundup_pow_of_two() can overflow 575 * into UB on 32-bit arches, so check that first 576 */ 577 err = -E2BIG; 578 if (htab->map.max_entries > 1UL << 31) 579 goto free_htab; 580 581 htab->n_buckets = roundup_pow_of_two(htab->map.max_entries); 582 583 htab->elem_size = sizeof(struct htab_elem) + 584 round_up(htab->map.key_size, 8); 585 if (percpu) 586 htab->elem_size += sizeof(void *); 587 else 588 htab->elem_size += round_up(htab->map.value_size, 8); 589 590 /* check for u32 overflow */ 591 if (htab->n_buckets > U32_MAX / sizeof(struct bucket)) 592 goto free_htab; 593 594 err = bpf_map_init_elem_count(&htab->map); 595 if (err) 596 goto free_htab; 597 598 err = -ENOMEM; 599 htab->buckets = bpf_map_area_alloc(htab->n_buckets * 600 sizeof(struct bucket), 601 htab->map.numa_node); 602 if (!htab->buckets) 603 goto free_elem_count; 604 605 if (htab->map.map_flags & BPF_F_ZERO_SEED) 606 htab->hashrnd = 0; 607 else 608 htab->hashrnd = get_random_u32(); 609 610 htab_init_buckets(htab); 611 612 /* compute_batch_value() computes batch value as num_online_cpus() * 2 613 * and __percpu_counter_compare() needs 614 * htab->max_entries - cur_number_of_elems to be more than batch * num_online_cpus() 615 * for percpu_counter to be faster than atomic_t. In practice the average bpf 616 * hash map size is 10k, which means that a system with 64 cpus will fill 617 * hashmap to 20% of 10k before percpu_counter becomes ineffective. Therefore 618 * define our own batch count as 32 then 10k hash map can be filled up to 80%: 619 * 10k - 8k > 32 _batch_ * 64 _cpus_ 620 * and __percpu_counter_compare() will still be fast. At that point hash map 621 * collisions will dominate its performance anyway. Assume that hash map filled 622 * to 50+% isn't going to be O(1) and use the following formula to choose 623 * between percpu_counter and atomic_t. 624 */ 625 #define PERCPU_COUNTER_BATCH 32 626 if (attr->max_entries / 2 > num_online_cpus() * PERCPU_COUNTER_BATCH) 627 htab->use_percpu_counter = true; 628 629 if (htab->use_percpu_counter) { 630 err = percpu_counter_init(&htab->pcount, 0, GFP_KERNEL); 631 if (err) 632 goto free_map_locked; 633 } 634 635 if (prealloc) { 636 err = prealloc_init(htab); 637 if (err) 638 goto free_map_locked; 639 640 if (htab_has_extra_elems(htab)) { 641 err = alloc_extra_elems(htab); 642 if (err) 643 goto free_prealloc; 644 } 645 } else { 646 err = bpf_mem_alloc_init(&htab->ma, htab->elem_size, false); 647 if (err) 648 goto free_map_locked; 649 if (percpu) { 650 err = bpf_mem_alloc_init(&htab->pcpu_ma, 651 round_up(htab->map.value_size, 8), true); 652 if (err) 653 goto free_map_locked; 654 } 655 } 656 657 return &htab->map; 658 659 free_prealloc: 660 prealloc_destroy(htab); 661 free_map_locked: 662 if (htab->use_percpu_counter) 663 percpu_counter_destroy(&htab->pcount); 664 bpf_map_area_free(htab->buckets); 665 bpf_mem_alloc_destroy(&htab->pcpu_ma); 666 bpf_mem_alloc_destroy(&htab->ma); 667 free_elem_count: 668 bpf_map_free_elem_count(&htab->map); 669 free_htab: 670 bpf_map_area_free(htab); 671 return ERR_PTR(err); 672 } 673 674 static inline u32 htab_map_hash(const void *key, u32 key_len, u32 hashrnd) 675 { 676 if (likely(key_len % 4 == 0)) 677 return jhash2(key, key_len / 4, hashrnd); 678 return jhash(key, key_len, hashrnd); 679 } 680 681 static inline struct bucket *__select_bucket(struct bpf_htab *htab, u32 hash) 682 { 683 return &htab->buckets[hash & (htab->n_buckets - 1)]; 684 } 685 686 static inline struct hlist_nulls_head *select_bucket(struct bpf_htab *htab, u32 hash) 687 { 688 return &__select_bucket(htab, hash)->head; 689 } 690 691 /* this lookup function can only be called with bucket lock taken */ 692 static struct htab_elem *lookup_elem_raw(struct hlist_nulls_head *head, u32 hash, 693 void *key, u32 key_size) 694 { 695 struct hlist_nulls_node *n; 696 struct htab_elem *l; 697 698 hlist_nulls_for_each_entry_rcu(l, n, head, hash_node) 699 if (l->hash == hash && !memcmp(&l->key, key, key_size)) 700 return l; 701 702 return NULL; 703 } 704 705 /* can be called without bucket lock. it will repeat the loop in 706 * the unlikely event when elements moved from one bucket into another 707 * while link list is being walked 708 */ 709 static struct htab_elem *lookup_nulls_elem_raw(struct hlist_nulls_head *head, 710 u32 hash, void *key, 711 u32 key_size, u32 n_buckets) 712 { 713 struct hlist_nulls_node *n; 714 struct htab_elem *l; 715 716 again: 717 hlist_nulls_for_each_entry_rcu(l, n, head, hash_node) 718 if (l->hash == hash && !memcmp(&l->key, key, key_size)) 719 return l; 720 721 if (unlikely(get_nulls_value(n) != (hash & (n_buckets - 1)))) 722 goto again; 723 724 return NULL; 725 } 726 727 /* Called from syscall or from eBPF program directly, so 728 * arguments have to match bpf_map_lookup_elem() exactly. 729 * The return value is adjusted by BPF instructions 730 * in htab_map_gen_lookup(). 731 */ 732 static void *__htab_map_lookup_elem(struct bpf_map *map, void *key) 733 { 734 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 735 struct hlist_nulls_head *head; 736 struct htab_elem *l; 737 u32 hash, key_size; 738 739 WARN_ON_ONCE(!bpf_rcu_lock_held()); 740 741 key_size = map->key_size; 742 743 hash = htab_map_hash(key, key_size, htab->hashrnd); 744 745 head = select_bucket(htab, hash); 746 747 l = lookup_nulls_elem_raw(head, hash, key, key_size, htab->n_buckets); 748 749 return l; 750 } 751 752 static void *htab_map_lookup_elem(struct bpf_map *map, void *key) 753 { 754 struct htab_elem *l = __htab_map_lookup_elem(map, key); 755 756 if (l) 757 return htab_elem_value(l, map->key_size); 758 759 return NULL; 760 } 761 762 /* inline bpf_map_lookup_elem() call. 763 * Instead of: 764 * bpf_prog 765 * bpf_map_lookup_elem 766 * map->ops->map_lookup_elem 767 * htab_map_lookup_elem 768 * __htab_map_lookup_elem 769 * do: 770 * bpf_prog 771 * __htab_map_lookup_elem 772 */ 773 static int htab_map_gen_lookup(struct bpf_map *map, struct bpf_insn *insn_buf) 774 { 775 struct bpf_insn *insn = insn_buf; 776 const int ret = BPF_REG_0; 777 778 BUILD_BUG_ON(!__same_type(&__htab_map_lookup_elem, 779 (void *(*)(struct bpf_map *map, void *key))NULL)); 780 *insn++ = BPF_EMIT_CALL(__htab_map_lookup_elem); 781 *insn++ = BPF_JMP_IMM(BPF_JEQ, ret, 0, 1); 782 *insn++ = BPF_ALU64_IMM(BPF_ADD, ret, 783 offsetof(struct htab_elem, key) + 784 round_up(map->key_size, 8)); 785 return insn - insn_buf; 786 } 787 788 static __always_inline void *__htab_lru_map_lookup_elem(struct bpf_map *map, 789 void *key, const bool mark) 790 { 791 struct htab_elem *l = __htab_map_lookup_elem(map, key); 792 793 if (l) { 794 if (mark) 795 bpf_lru_node_set_ref(&l->lru_node); 796 return htab_elem_value(l, map->key_size); 797 } 798 799 return NULL; 800 } 801 802 static void *htab_lru_map_lookup_elem(struct bpf_map *map, void *key) 803 { 804 return __htab_lru_map_lookup_elem(map, key, true); 805 } 806 807 static void *htab_lru_map_lookup_elem_sys(struct bpf_map *map, void *key) 808 { 809 return __htab_lru_map_lookup_elem(map, key, false); 810 } 811 812 static int htab_lru_map_gen_lookup(struct bpf_map *map, 813 struct bpf_insn *insn_buf) 814 { 815 struct bpf_insn *insn = insn_buf; 816 const int ret = BPF_REG_0; 817 const int ref_reg = BPF_REG_1; 818 819 BUILD_BUG_ON(!__same_type(&__htab_map_lookup_elem, 820 (void *(*)(struct bpf_map *map, void *key))NULL)); 821 *insn++ = BPF_EMIT_CALL(__htab_map_lookup_elem); 822 *insn++ = BPF_JMP_IMM(BPF_JEQ, ret, 0, 4); 823 *insn++ = BPF_LDX_MEM(BPF_B, ref_reg, ret, 824 offsetof(struct htab_elem, lru_node) + 825 offsetof(struct bpf_lru_node, ref)); 826 *insn++ = BPF_JMP_IMM(BPF_JNE, ref_reg, 0, 1); 827 *insn++ = BPF_ST_MEM(BPF_B, ret, 828 offsetof(struct htab_elem, lru_node) + 829 offsetof(struct bpf_lru_node, ref), 830 1); 831 *insn++ = BPF_ALU64_IMM(BPF_ADD, ret, 832 offsetof(struct htab_elem, key) + 833 round_up(map->key_size, 8)); 834 return insn - insn_buf; 835 } 836 837 static void check_and_free_fields(struct bpf_htab *htab, 838 struct htab_elem *elem) 839 { 840 if (IS_ERR_OR_NULL(htab->map.record)) 841 return; 842 843 if (htab_is_percpu(htab)) { 844 void __percpu *pptr = htab_elem_get_ptr(elem, htab->map.key_size); 845 int cpu; 846 847 for_each_possible_cpu(cpu) 848 bpf_obj_free_fields(htab->map.record, per_cpu_ptr(pptr, cpu)); 849 } else { 850 void *map_value = htab_elem_value(elem, htab->map.key_size); 851 852 bpf_obj_free_fields(htab->map.record, map_value); 853 } 854 } 855 856 /* It is called from the bpf_lru_list when the LRU needs to delete 857 * older elements from the htab. 858 */ 859 static bool htab_lru_map_delete_node(void *arg, struct bpf_lru_node *node) 860 { 861 struct bpf_htab *htab = arg; 862 struct htab_elem *l = NULL, *tgt_l; 863 struct hlist_nulls_head *head; 864 struct hlist_nulls_node *n; 865 unsigned long flags; 866 struct bucket *b; 867 int ret; 868 869 tgt_l = container_of(node, struct htab_elem, lru_node); 870 b = __select_bucket(htab, tgt_l->hash); 871 head = &b->head; 872 873 ret = htab_lock_bucket(b, &flags); 874 if (ret) 875 return false; 876 877 hlist_nulls_for_each_entry_rcu(l, n, head, hash_node) 878 if (l == tgt_l) { 879 hlist_nulls_del_rcu(&l->hash_node); 880 bpf_map_dec_elem_count(&htab->map); 881 break; 882 } 883 884 htab_unlock_bucket(b, flags); 885 886 if (l == tgt_l) 887 check_and_free_fields(htab, l); 888 return l == tgt_l; 889 } 890 891 /* Called from syscall */ 892 static int htab_map_get_next_key(struct bpf_map *map, void *key, void *next_key) 893 { 894 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 895 struct hlist_nulls_head *head; 896 struct htab_elem *l, *next_l; 897 u32 hash, key_size; 898 int i = 0; 899 900 WARN_ON_ONCE(!rcu_read_lock_held()); 901 902 key_size = map->key_size; 903 904 if (!key) 905 goto find_first_elem; 906 907 hash = htab_map_hash(key, key_size, htab->hashrnd); 908 909 head = select_bucket(htab, hash); 910 911 /* lookup the key */ 912 l = lookup_nulls_elem_raw(head, hash, key, key_size, htab->n_buckets); 913 914 if (!l) 915 goto find_first_elem; 916 917 /* key was found, get next key in the same bucket */ 918 next_l = hlist_nulls_entry_safe(rcu_dereference_raw(hlist_nulls_next_rcu(&l->hash_node)), 919 struct htab_elem, hash_node); 920 921 if (next_l) { 922 /* if next elem in this hash list is non-zero, just return it */ 923 memcpy(next_key, next_l->key, key_size); 924 return 0; 925 } 926 927 /* no more elements in this hash list, go to the next bucket */ 928 i = hash & (htab->n_buckets - 1); 929 i++; 930 931 find_first_elem: 932 /* iterate over buckets */ 933 for (; i < htab->n_buckets; i++) { 934 head = select_bucket(htab, i); 935 936 /* pick first element in the bucket */ 937 next_l = hlist_nulls_entry_safe(rcu_dereference_raw(hlist_nulls_first_rcu(head)), 938 struct htab_elem, hash_node); 939 if (next_l) { 940 /* if it's not empty, just return it */ 941 memcpy(next_key, next_l->key, key_size); 942 return 0; 943 } 944 } 945 946 /* iterated over all buckets and all elements */ 947 return -ENOENT; 948 } 949 950 static void htab_elem_free(struct bpf_htab *htab, struct htab_elem *l) 951 { 952 check_and_free_fields(htab, l); 953 954 if (htab->map.map_type == BPF_MAP_TYPE_PERCPU_HASH) 955 bpf_mem_cache_free(&htab->pcpu_ma, l->ptr_to_pptr); 956 bpf_mem_cache_free(&htab->ma, l); 957 } 958 959 static void htab_put_fd_value(struct bpf_htab *htab, struct htab_elem *l) 960 { 961 struct bpf_map *map = &htab->map; 962 void *ptr; 963 964 if (map->ops->map_fd_put_ptr) { 965 ptr = fd_htab_map_get_ptr(map, l); 966 map->ops->map_fd_put_ptr(map, ptr, true); 967 } 968 } 969 970 static bool is_map_full(struct bpf_htab *htab) 971 { 972 if (htab->use_percpu_counter) 973 return __percpu_counter_compare(&htab->pcount, htab->map.max_entries, 974 PERCPU_COUNTER_BATCH) >= 0; 975 return atomic_read(&htab->count) >= htab->map.max_entries; 976 } 977 978 static void inc_elem_count(struct bpf_htab *htab) 979 { 980 bpf_map_inc_elem_count(&htab->map); 981 982 if (htab->use_percpu_counter) 983 percpu_counter_add_batch(&htab->pcount, 1, PERCPU_COUNTER_BATCH); 984 else 985 atomic_inc(&htab->count); 986 } 987 988 static void dec_elem_count(struct bpf_htab *htab) 989 { 990 bpf_map_dec_elem_count(&htab->map); 991 992 if (htab->use_percpu_counter) 993 percpu_counter_add_batch(&htab->pcount, -1, PERCPU_COUNTER_BATCH); 994 else 995 atomic_dec(&htab->count); 996 } 997 998 999 static void free_htab_elem(struct bpf_htab *htab, struct htab_elem *l) 1000 { 1001 htab_put_fd_value(htab, l); 1002 1003 if (htab_is_prealloc(htab)) { 1004 bpf_map_dec_elem_count(&htab->map); 1005 check_and_free_fields(htab, l); 1006 pcpu_freelist_push(&htab->freelist, &l->fnode); 1007 } else { 1008 dec_elem_count(htab); 1009 htab_elem_free(htab, l); 1010 } 1011 } 1012 1013 static void pcpu_copy_value(struct bpf_htab *htab, void __percpu *pptr, 1014 void *value, bool onallcpus, u64 map_flags) 1015 { 1016 void *ptr; 1017 1018 if (!onallcpus) { 1019 /* copy true value_size bytes */ 1020 ptr = this_cpu_ptr(pptr); 1021 copy_map_value(&htab->map, ptr, value); 1022 bpf_obj_free_fields(htab->map.record, ptr); 1023 } else { 1024 u32 size = round_up(htab->map.value_size, 8); 1025 void *val; 1026 int cpu; 1027 1028 if (map_flags & BPF_F_CPU) { 1029 cpu = map_flags >> 32; 1030 ptr = per_cpu_ptr(pptr, cpu); 1031 copy_map_value(&htab->map, ptr, value); 1032 bpf_obj_free_fields(htab->map.record, ptr); 1033 return; 1034 } 1035 1036 for_each_possible_cpu(cpu) { 1037 ptr = per_cpu_ptr(pptr, cpu); 1038 val = (map_flags & BPF_F_ALL_CPUS) ? value : value + size * cpu; 1039 copy_map_value(&htab->map, ptr, val); 1040 bpf_obj_free_fields(htab->map.record, ptr); 1041 } 1042 } 1043 } 1044 1045 static void pcpu_init_value(struct bpf_htab *htab, void __percpu *pptr, 1046 void *value, bool onallcpus, u64 map_flags) 1047 { 1048 /* When not setting the initial value on all cpus, zero-fill element 1049 * values for other cpus. Otherwise, bpf program has no way to ensure 1050 * known initial values for cpus other than current one 1051 * (onallcpus=false always when coming from bpf prog). 1052 */ 1053 if (!onallcpus) { 1054 int current_cpu = raw_smp_processor_id(); 1055 int cpu; 1056 1057 for_each_possible_cpu(cpu) { 1058 if (cpu == current_cpu) 1059 copy_map_value_long(&htab->map, per_cpu_ptr(pptr, cpu), value); 1060 else /* Since elem is preallocated, we cannot touch special fields */ 1061 zero_map_value(&htab->map, per_cpu_ptr(pptr, cpu)); 1062 } 1063 } else { 1064 pcpu_copy_value(htab, pptr, value, onallcpus, map_flags); 1065 } 1066 } 1067 1068 static bool fd_htab_map_needs_adjust(const struct bpf_htab *htab) 1069 { 1070 return is_fd_htab(htab) && BITS_PER_LONG == 64; 1071 } 1072 1073 static struct htab_elem *alloc_htab_elem(struct bpf_htab *htab, void *key, 1074 void *value, u32 key_size, u32 hash, 1075 bool percpu, bool onallcpus, 1076 struct htab_elem *old_elem, u64 map_flags) 1077 { 1078 u32 size = htab->map.value_size; 1079 bool prealloc = htab_is_prealloc(htab); 1080 struct htab_elem *l_new, **pl_new; 1081 void __percpu *pptr; 1082 1083 if (prealloc) { 1084 if (old_elem) { 1085 /* if we're updating the existing element, 1086 * use per-cpu extra elems to avoid freelist_pop/push 1087 */ 1088 pl_new = this_cpu_ptr(htab->extra_elems); 1089 l_new = *pl_new; 1090 *pl_new = old_elem; 1091 } else { 1092 struct pcpu_freelist_node *l; 1093 1094 l = __pcpu_freelist_pop(&htab->freelist); 1095 if (!l) 1096 return ERR_PTR(-E2BIG); 1097 l_new = container_of(l, struct htab_elem, fnode); 1098 bpf_map_inc_elem_count(&htab->map); 1099 } 1100 } else { 1101 if (is_map_full(htab)) 1102 if (!old_elem) 1103 /* when map is full and update() is replacing 1104 * old element, it's ok to allocate, since 1105 * old element will be freed immediately. 1106 * Otherwise return an error 1107 */ 1108 return ERR_PTR(-E2BIG); 1109 inc_elem_count(htab); 1110 l_new = bpf_mem_cache_alloc(&htab->ma); 1111 if (!l_new) { 1112 l_new = ERR_PTR(-ENOMEM); 1113 goto dec_count; 1114 } 1115 } 1116 1117 memcpy(l_new->key, key, key_size); 1118 if (percpu) { 1119 if (prealloc) { 1120 pptr = htab_elem_get_ptr(l_new, key_size); 1121 } else { 1122 /* alloc_percpu zero-fills */ 1123 void *ptr = bpf_mem_cache_alloc(&htab->pcpu_ma); 1124 1125 if (!ptr) { 1126 bpf_mem_cache_free(&htab->ma, l_new); 1127 l_new = ERR_PTR(-ENOMEM); 1128 goto dec_count; 1129 } 1130 l_new->ptr_to_pptr = ptr; 1131 pptr = *(void __percpu **)ptr; 1132 } 1133 1134 pcpu_init_value(htab, pptr, value, onallcpus, map_flags); 1135 1136 if (!prealloc) 1137 htab_elem_set_ptr(l_new, key_size, pptr); 1138 } else if (fd_htab_map_needs_adjust(htab)) { 1139 size = round_up(size, 8); 1140 memcpy(htab_elem_value(l_new, key_size), value, size); 1141 } else { 1142 copy_map_value(&htab->map, htab_elem_value(l_new, key_size), value); 1143 } 1144 1145 l_new->hash = hash; 1146 return l_new; 1147 dec_count: 1148 dec_elem_count(htab); 1149 return l_new; 1150 } 1151 1152 static int check_flags(struct bpf_htab *htab, struct htab_elem *l_old, 1153 u64 map_flags) 1154 { 1155 if (l_old && (map_flags & ~BPF_F_LOCK) == BPF_NOEXIST) 1156 /* elem already exists */ 1157 return -EEXIST; 1158 1159 if (!l_old && (map_flags & ~BPF_F_LOCK) == BPF_EXIST) 1160 /* elem doesn't exist, cannot update it */ 1161 return -ENOENT; 1162 1163 return 0; 1164 } 1165 1166 /* Called from syscall or from eBPF program */ 1167 static long htab_map_update_elem(struct bpf_map *map, void *key, void *value, 1168 u64 map_flags) 1169 { 1170 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1171 struct htab_elem *l_new, *l_old; 1172 struct hlist_nulls_head *head; 1173 unsigned long flags; 1174 struct bucket *b; 1175 u32 key_size, hash; 1176 int ret; 1177 1178 if (unlikely((map_flags & ~BPF_F_LOCK) > BPF_EXIST)) 1179 /* unknown flags */ 1180 return -EINVAL; 1181 1182 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1183 1184 key_size = map->key_size; 1185 1186 hash = htab_map_hash(key, key_size, htab->hashrnd); 1187 1188 b = __select_bucket(htab, hash); 1189 head = &b->head; 1190 1191 if (unlikely(map_flags & BPF_F_LOCK)) { 1192 if (unlikely(!btf_record_has_field(map->record, BPF_SPIN_LOCK))) 1193 return -EINVAL; 1194 /* find an element without taking the bucket lock */ 1195 l_old = lookup_nulls_elem_raw(head, hash, key, key_size, 1196 htab->n_buckets); 1197 ret = check_flags(htab, l_old, map_flags); 1198 if (ret) 1199 return ret; 1200 if (l_old) { 1201 /* grab the element lock and update value in place */ 1202 copy_map_value_locked(map, 1203 htab_elem_value(l_old, key_size), 1204 value, false); 1205 return 0; 1206 } 1207 /* fall through, grab the bucket lock and lookup again. 1208 * 99.9% chance that the element won't be found, 1209 * but second lookup under lock has to be done. 1210 */ 1211 } 1212 1213 ret = htab_lock_bucket(b, &flags); 1214 if (ret) 1215 return ret; 1216 1217 l_old = lookup_elem_raw(head, hash, key, key_size); 1218 1219 ret = check_flags(htab, l_old, map_flags); 1220 if (ret) 1221 goto err; 1222 1223 if (unlikely(l_old && (map_flags & BPF_F_LOCK))) { 1224 /* first lookup without the bucket lock didn't find the element, 1225 * but second lookup with the bucket lock found it. 1226 * This case is highly unlikely, but has to be dealt with: 1227 * grab the element lock in addition to the bucket lock 1228 * and update element in place 1229 */ 1230 copy_map_value_locked(map, 1231 htab_elem_value(l_old, key_size), 1232 value, false); 1233 ret = 0; 1234 goto err; 1235 } 1236 1237 l_new = alloc_htab_elem(htab, key, value, key_size, hash, false, false, 1238 l_old, map_flags); 1239 if (IS_ERR(l_new)) { 1240 /* all pre-allocated elements are in use or memory exhausted */ 1241 ret = PTR_ERR(l_new); 1242 goto err; 1243 } 1244 1245 /* add new element to the head of the list, so that 1246 * concurrent search will find it before old elem 1247 */ 1248 hlist_nulls_add_head_rcu(&l_new->hash_node, head); 1249 if (l_old) { 1250 hlist_nulls_del_rcu(&l_old->hash_node); 1251 1252 /* l_old has already been stashed in htab->extra_elems, free 1253 * its special fields before it is available for reuse. 1254 */ 1255 if (htab_is_prealloc(htab)) 1256 check_and_free_fields(htab, l_old); 1257 } 1258 htab_unlock_bucket(b, flags); 1259 if (l_old && !htab_is_prealloc(htab)) 1260 free_htab_elem(htab, l_old); 1261 return 0; 1262 err: 1263 htab_unlock_bucket(b, flags); 1264 return ret; 1265 } 1266 1267 static void htab_lru_push_free(struct bpf_htab *htab, struct htab_elem *elem) 1268 { 1269 check_and_free_fields(htab, elem); 1270 bpf_map_dec_elem_count(&htab->map); 1271 bpf_lru_push_free(&htab->lru, &elem->lru_node); 1272 } 1273 1274 static long htab_lru_map_update_elem(struct bpf_map *map, void *key, void *value, 1275 u64 map_flags) 1276 { 1277 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1278 struct htab_elem *l_new, *l_old = NULL; 1279 struct hlist_nulls_head *head; 1280 unsigned long flags; 1281 struct bucket *b; 1282 u32 key_size, hash; 1283 int ret; 1284 1285 if (unlikely(map_flags > BPF_EXIST)) 1286 /* unknown flags */ 1287 return -EINVAL; 1288 1289 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1290 1291 key_size = map->key_size; 1292 1293 hash = htab_map_hash(key, key_size, htab->hashrnd); 1294 1295 b = __select_bucket(htab, hash); 1296 head = &b->head; 1297 1298 /* For LRU, we need to alloc before taking bucket's 1299 * spinlock because getting free nodes from LRU may need 1300 * to remove older elements from htab and this removal 1301 * operation will need a bucket lock. 1302 */ 1303 l_new = prealloc_lru_pop(htab, key, hash); 1304 if (!l_new) 1305 return -ENOMEM; 1306 copy_map_value(&htab->map, htab_elem_value(l_new, map->key_size), value); 1307 1308 ret = htab_lock_bucket(b, &flags); 1309 if (ret) 1310 goto err_lock_bucket; 1311 1312 l_old = lookup_elem_raw(head, hash, key, key_size); 1313 1314 ret = check_flags(htab, l_old, map_flags); 1315 if (ret) 1316 goto err; 1317 1318 /* add new element to the head of the list, so that 1319 * concurrent search will find it before old elem 1320 */ 1321 hlist_nulls_add_head_rcu(&l_new->hash_node, head); 1322 if (l_old) { 1323 bpf_lru_node_set_ref(&l_new->lru_node); 1324 hlist_nulls_del_rcu(&l_old->hash_node); 1325 } 1326 ret = 0; 1327 1328 err: 1329 htab_unlock_bucket(b, flags); 1330 1331 err_lock_bucket: 1332 if (ret) 1333 htab_lru_push_free(htab, l_new); 1334 else if (l_old) 1335 htab_lru_push_free(htab, l_old); 1336 1337 return ret; 1338 } 1339 1340 static int htab_map_check_update_flags(bool onallcpus, u64 map_flags) 1341 { 1342 if (unlikely(!onallcpus && map_flags > BPF_EXIST)) 1343 return -EINVAL; 1344 if (unlikely(onallcpus && ((map_flags & BPF_F_LOCK) || (u32)map_flags > BPF_F_ALL_CPUS))) 1345 return -EINVAL; 1346 return 0; 1347 } 1348 1349 static long htab_map_update_elem_in_place(struct bpf_map *map, void *key, 1350 void *value, u64 map_flags, 1351 bool percpu, bool onallcpus) 1352 { 1353 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1354 struct htab_elem *l_new, *l_old; 1355 struct hlist_nulls_head *head; 1356 void *old_map_ptr = NULL; 1357 unsigned long flags; 1358 struct bucket *b; 1359 u32 key_size, hash; 1360 int ret; 1361 1362 ret = htab_map_check_update_flags(onallcpus, map_flags); 1363 if (unlikely(ret)) 1364 return ret; 1365 1366 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1367 1368 key_size = map->key_size; 1369 1370 hash = htab_map_hash(key, key_size, htab->hashrnd); 1371 1372 b = __select_bucket(htab, hash); 1373 head = &b->head; 1374 1375 ret = htab_lock_bucket(b, &flags); 1376 if (ret) 1377 return ret; 1378 1379 l_old = lookup_elem_raw(head, hash, key, key_size); 1380 1381 ret = check_flags(htab, l_old, map_flags); 1382 if (ret) 1383 goto err; 1384 1385 if (l_old) { 1386 /* Update value in-place */ 1387 if (percpu) { 1388 pcpu_copy_value(htab, htab_elem_get_ptr(l_old, key_size), 1389 value, onallcpus, map_flags); 1390 } else { 1391 void **inner_map_pptr = htab_elem_value(l_old, key_size); 1392 1393 old_map_ptr = *inner_map_pptr; 1394 WRITE_ONCE(*inner_map_pptr, *(void **)value); 1395 } 1396 } else { 1397 l_new = alloc_htab_elem(htab, key, value, key_size, 1398 hash, percpu, onallcpus, NULL, map_flags); 1399 if (IS_ERR(l_new)) { 1400 ret = PTR_ERR(l_new); 1401 goto err; 1402 } 1403 hlist_nulls_add_head_rcu(&l_new->hash_node, head); 1404 } 1405 err: 1406 htab_unlock_bucket(b, flags); 1407 if (old_map_ptr) 1408 map->ops->map_fd_put_ptr(map, old_map_ptr, true); 1409 return ret; 1410 } 1411 1412 static long __htab_lru_percpu_map_update_elem(struct bpf_map *map, void *key, 1413 void *value, u64 map_flags, 1414 bool onallcpus) 1415 { 1416 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1417 struct htab_elem *l_new = NULL, *l_old; 1418 struct hlist_nulls_head *head; 1419 unsigned long flags; 1420 struct bucket *b; 1421 u32 key_size, hash; 1422 int ret; 1423 1424 ret = htab_map_check_update_flags(onallcpus, map_flags); 1425 if (unlikely(ret)) 1426 return ret; 1427 1428 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1429 1430 key_size = map->key_size; 1431 1432 hash = htab_map_hash(key, key_size, htab->hashrnd); 1433 1434 b = __select_bucket(htab, hash); 1435 head = &b->head; 1436 1437 /* For LRU, we need to alloc before taking bucket's 1438 * spinlock because LRU's elem alloc may need 1439 * to remove older elem from htab and this removal 1440 * operation will need a bucket lock. 1441 */ 1442 if (map_flags != BPF_EXIST) { 1443 l_new = prealloc_lru_pop(htab, key, hash); 1444 if (!l_new) 1445 return -ENOMEM; 1446 } 1447 1448 ret = htab_lock_bucket(b, &flags); 1449 if (ret) 1450 goto err_lock_bucket; 1451 1452 l_old = lookup_elem_raw(head, hash, key, key_size); 1453 1454 ret = check_flags(htab, l_old, map_flags); 1455 if (ret) 1456 goto err; 1457 1458 if (l_old) { 1459 bpf_lru_node_set_ref(&l_old->lru_node); 1460 1461 /* per-cpu hash map can update value in-place */ 1462 pcpu_copy_value(htab, htab_elem_get_ptr(l_old, key_size), 1463 value, onallcpus, map_flags); 1464 } else { 1465 pcpu_init_value(htab, htab_elem_get_ptr(l_new, key_size), 1466 value, onallcpus, map_flags); 1467 hlist_nulls_add_head_rcu(&l_new->hash_node, head); 1468 l_new = NULL; 1469 } 1470 ret = 0; 1471 err: 1472 htab_unlock_bucket(b, flags); 1473 err_lock_bucket: 1474 if (l_new) { 1475 bpf_map_dec_elem_count(&htab->map); 1476 bpf_lru_push_free(&htab->lru, &l_new->lru_node); 1477 } 1478 return ret; 1479 } 1480 1481 static long htab_percpu_map_update_elem(struct bpf_map *map, void *key, 1482 void *value, u64 map_flags) 1483 { 1484 return htab_map_update_elem_in_place(map, key, value, map_flags, true, false); 1485 } 1486 1487 static long htab_lru_percpu_map_update_elem(struct bpf_map *map, void *key, 1488 void *value, u64 map_flags) 1489 { 1490 return __htab_lru_percpu_map_update_elem(map, key, value, map_flags, 1491 false); 1492 } 1493 1494 /* Called from syscall or from eBPF program */ 1495 static long htab_map_delete_elem(struct bpf_map *map, void *key) 1496 { 1497 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1498 struct hlist_nulls_head *head; 1499 struct bucket *b; 1500 struct htab_elem *l; 1501 unsigned long flags; 1502 u32 hash, key_size; 1503 int ret; 1504 1505 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1506 1507 key_size = map->key_size; 1508 1509 hash = htab_map_hash(key, key_size, htab->hashrnd); 1510 b = __select_bucket(htab, hash); 1511 head = &b->head; 1512 1513 ret = htab_lock_bucket(b, &flags); 1514 if (ret) 1515 return ret; 1516 1517 l = lookup_elem_raw(head, hash, key, key_size); 1518 if (l) 1519 hlist_nulls_del_rcu(&l->hash_node); 1520 else 1521 ret = -ENOENT; 1522 1523 htab_unlock_bucket(b, flags); 1524 1525 if (l) 1526 free_htab_elem(htab, l); 1527 return ret; 1528 } 1529 1530 static long htab_lru_map_delete_elem(struct bpf_map *map, void *key) 1531 { 1532 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1533 struct hlist_nulls_head *head; 1534 struct bucket *b; 1535 struct htab_elem *l; 1536 unsigned long flags; 1537 u32 hash, key_size; 1538 int ret; 1539 1540 WARN_ON_ONCE(!bpf_rcu_lock_held()); 1541 1542 key_size = map->key_size; 1543 1544 hash = htab_map_hash(key, key_size, htab->hashrnd); 1545 b = __select_bucket(htab, hash); 1546 head = &b->head; 1547 1548 ret = htab_lock_bucket(b, &flags); 1549 if (ret) 1550 return ret; 1551 1552 l = lookup_elem_raw(head, hash, key, key_size); 1553 1554 if (l) 1555 hlist_nulls_del_rcu(&l->hash_node); 1556 else 1557 ret = -ENOENT; 1558 1559 htab_unlock_bucket(b, flags); 1560 if (l) 1561 htab_lru_push_free(htab, l); 1562 return ret; 1563 } 1564 1565 static void delete_all_elements(struct bpf_htab *htab) 1566 { 1567 int i; 1568 1569 /* It's called from a worker thread and migration has been disabled, 1570 * therefore, it is OK to invoke bpf_mem_cache_free() directly. 1571 */ 1572 for (i = 0; i < htab->n_buckets; i++) { 1573 struct hlist_nulls_head *head = select_bucket(htab, i); 1574 struct hlist_nulls_node *n; 1575 struct htab_elem *l; 1576 1577 hlist_nulls_for_each_entry_safe(l, n, head, hash_node) { 1578 hlist_nulls_del_rcu(&l->hash_node); 1579 htab_elem_free(htab, l); 1580 } 1581 cond_resched(); 1582 } 1583 } 1584 1585 static void htab_free_malloced_internal_structs(struct bpf_htab *htab) 1586 { 1587 int i; 1588 1589 rcu_read_lock(); 1590 for (i = 0; i < htab->n_buckets; i++) { 1591 struct hlist_nulls_head *head = select_bucket(htab, i); 1592 struct hlist_nulls_node *n; 1593 struct htab_elem *l; 1594 1595 hlist_nulls_for_each_entry(l, n, head, hash_node) { 1596 /* We only free internal structs on uref dropping to zero */ 1597 bpf_map_free_internal_structs(&htab->map, 1598 htab_elem_value(l, htab->map.key_size)); 1599 } 1600 cond_resched_rcu(); 1601 } 1602 rcu_read_unlock(); 1603 } 1604 1605 static void htab_map_free_internal_structs(struct bpf_map *map) 1606 { 1607 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1608 1609 /* We only free internal structs on uref dropping to zero */ 1610 if (!bpf_map_has_internal_structs(map)) 1611 return; 1612 1613 if (htab_is_prealloc(htab)) 1614 htab_free_prealloced_internal_structs(htab); 1615 else 1616 htab_free_malloced_internal_structs(htab); 1617 } 1618 1619 /* Called when map->refcnt goes to zero, either from workqueue or from syscall */ 1620 static void htab_map_free(struct bpf_map *map) 1621 { 1622 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1623 1624 /* bpf_free_used_maps() or close(map_fd) will trigger this map_free callback. 1625 * bpf_free_used_maps() is called after bpf prog is no longer executing. 1626 * There is no need to synchronize_rcu() here to protect map elements. 1627 */ 1628 1629 /* htab no longer uses call_rcu() directly. bpf_mem_alloc does it 1630 * underneath and is responsible for waiting for callbacks to finish 1631 * during bpf_mem_alloc_destroy(). 1632 */ 1633 if (!htab_is_prealloc(htab)) { 1634 delete_all_elements(htab); 1635 } else { 1636 htab_free_prealloced_fields(htab); 1637 prealloc_destroy(htab); 1638 } 1639 1640 bpf_map_free_elem_count(map); 1641 free_percpu(htab->extra_elems); 1642 bpf_map_area_free(htab->buckets); 1643 bpf_mem_alloc_destroy(&htab->pcpu_ma); 1644 bpf_mem_alloc_destroy(&htab->ma); 1645 if (htab->use_percpu_counter) 1646 percpu_counter_destroy(&htab->pcount); 1647 bpf_map_area_free(htab); 1648 } 1649 1650 static void htab_map_seq_show_elem(struct bpf_map *map, void *key, 1651 struct seq_file *m) 1652 { 1653 void *value; 1654 1655 rcu_read_lock(); 1656 1657 value = htab_map_lookup_elem(map, key); 1658 if (!value) { 1659 rcu_read_unlock(); 1660 return; 1661 } 1662 1663 btf_type_seq_show(map->btf, map->btf_key_type_id, key, m); 1664 seq_puts(m, ": "); 1665 btf_type_seq_show(map->btf, map->btf_value_type_id, value, m); 1666 seq_putc(m, '\n'); 1667 1668 rcu_read_unlock(); 1669 } 1670 1671 static int __htab_map_lookup_and_delete_elem(struct bpf_map *map, void *key, 1672 void *value, bool is_lru_map, 1673 bool is_percpu, u64 flags) 1674 { 1675 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1676 struct hlist_nulls_head *head; 1677 unsigned long bflags; 1678 struct htab_elem *l; 1679 u32 hash, key_size; 1680 struct bucket *b; 1681 int ret; 1682 1683 key_size = map->key_size; 1684 1685 hash = htab_map_hash(key, key_size, htab->hashrnd); 1686 b = __select_bucket(htab, hash); 1687 head = &b->head; 1688 1689 ret = htab_lock_bucket(b, &bflags); 1690 if (ret) 1691 return ret; 1692 1693 l = lookup_elem_raw(head, hash, key, key_size); 1694 if (!l) { 1695 ret = -ENOENT; 1696 goto out_unlock; 1697 } 1698 1699 if (is_percpu) { 1700 u32 roundup_value_size = round_up(map->value_size, 8); 1701 void __percpu *pptr; 1702 int off = 0, cpu; 1703 1704 pptr = htab_elem_get_ptr(l, key_size); 1705 for_each_possible_cpu(cpu) { 1706 copy_map_value_long(&htab->map, value + off, per_cpu_ptr(pptr, cpu)); 1707 check_and_init_map_value(&htab->map, value + off); 1708 off += roundup_value_size; 1709 } 1710 } else { 1711 void *src = htab_elem_value(l, map->key_size); 1712 1713 if (flags & BPF_F_LOCK) 1714 copy_map_value_locked(map, value, src, true); 1715 else 1716 copy_map_value(map, value, src); 1717 /* Zeroing special fields in the temp buffer */ 1718 check_and_init_map_value(map, value); 1719 } 1720 hlist_nulls_del_rcu(&l->hash_node); 1721 1722 out_unlock: 1723 htab_unlock_bucket(b, bflags); 1724 1725 if (l) { 1726 if (is_lru_map) 1727 htab_lru_push_free(htab, l); 1728 else 1729 free_htab_elem(htab, l); 1730 } 1731 1732 return ret; 1733 } 1734 1735 static int htab_map_lookup_and_delete_elem(struct bpf_map *map, void *key, 1736 void *value, u64 flags) 1737 { 1738 return __htab_map_lookup_and_delete_elem(map, key, value, false, false, 1739 flags); 1740 } 1741 1742 static int htab_percpu_map_lookup_and_delete_elem(struct bpf_map *map, 1743 void *key, void *value, 1744 u64 flags) 1745 { 1746 return __htab_map_lookup_and_delete_elem(map, key, value, false, true, 1747 flags); 1748 } 1749 1750 static int htab_lru_map_lookup_and_delete_elem(struct bpf_map *map, void *key, 1751 void *value, u64 flags) 1752 { 1753 return __htab_map_lookup_and_delete_elem(map, key, value, true, false, 1754 flags); 1755 } 1756 1757 static int htab_lru_percpu_map_lookup_and_delete_elem(struct bpf_map *map, 1758 void *key, void *value, 1759 u64 flags) 1760 { 1761 return __htab_map_lookup_and_delete_elem(map, key, value, true, true, 1762 flags); 1763 } 1764 1765 static int 1766 __htab_map_lookup_and_delete_batch(struct bpf_map *map, 1767 const union bpf_attr *attr, 1768 union bpf_attr __user *uattr, 1769 bool do_delete, bool is_lru_map, 1770 bool is_percpu) 1771 { 1772 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 1773 void *keys = NULL, *values = NULL, *value, *dst_key, *dst_val; 1774 void __user *uvalues = u64_to_user_ptr(attr->batch.values); 1775 void __user *ukeys = u64_to_user_ptr(attr->batch.keys); 1776 void __user *ubatch = u64_to_user_ptr(attr->batch.in_batch); 1777 u32 batch, max_count, size, bucket_size, map_id; 1778 u64 elem_map_flags, map_flags, allowed_flags; 1779 u32 bucket_cnt, total, key_size, value_size; 1780 struct htab_elem *node_to_free = NULL; 1781 struct hlist_nulls_head *head; 1782 struct hlist_nulls_node *n; 1783 unsigned long flags = 0; 1784 bool locked = false; 1785 struct htab_elem *l; 1786 struct bucket *b; 1787 int ret = 0; 1788 1789 elem_map_flags = attr->batch.elem_flags; 1790 allowed_flags = BPF_F_LOCK; 1791 if (!do_delete && is_percpu) 1792 allowed_flags |= BPF_F_CPU; 1793 ret = bpf_map_check_op_flags(map, elem_map_flags, allowed_flags); 1794 if (ret) 1795 return ret; 1796 1797 map_flags = attr->batch.flags; 1798 if (map_flags) 1799 return -EINVAL; 1800 1801 max_count = attr->batch.count; 1802 if (!max_count) 1803 return 0; 1804 1805 if (put_user(0, &uattr->batch.count)) 1806 return -EFAULT; 1807 1808 batch = 0; 1809 if (ubatch && copy_from_user(&batch, ubatch, sizeof(batch))) 1810 return -EFAULT; 1811 1812 if (batch >= htab->n_buckets) 1813 return -ENOENT; 1814 1815 key_size = htab->map.key_size; 1816 value_size = htab->map.value_size; 1817 size = round_up(value_size, 8); 1818 if (is_percpu && !(elem_map_flags & BPF_F_CPU)) 1819 value_size = size * num_possible_cpus(); 1820 total = 0; 1821 /* while experimenting with hash tables with sizes ranging from 10 to 1822 * 1000, it was observed that a bucket can have up to 5 entries. 1823 */ 1824 bucket_size = 5; 1825 1826 alloc: 1827 /* We cannot do copy_from_user or copy_to_user inside 1828 * the rcu_read_lock. Allocate enough space here. 1829 */ 1830 keys = kvmalloc_array(key_size, bucket_size, GFP_USER | __GFP_NOWARN); 1831 values = kvmalloc_array(value_size, bucket_size, GFP_USER | __GFP_NOWARN); 1832 if (!keys || !values) { 1833 ret = -ENOMEM; 1834 goto after_loop; 1835 } 1836 1837 again: 1838 bpf_disable_instrumentation(); 1839 rcu_read_lock(); 1840 again_nocopy: 1841 dst_key = keys; 1842 dst_val = values; 1843 b = &htab->buckets[batch]; 1844 head = &b->head; 1845 /* do not grab the lock unless need it (bucket_cnt > 0). */ 1846 if (locked) { 1847 ret = htab_lock_bucket(b, &flags); 1848 if (ret) { 1849 rcu_read_unlock(); 1850 bpf_enable_instrumentation(); 1851 goto after_loop; 1852 } 1853 } 1854 1855 bucket_cnt = 0; 1856 hlist_nulls_for_each_entry_rcu(l, n, head, hash_node) 1857 bucket_cnt++; 1858 1859 if (bucket_cnt && !locked) { 1860 locked = true; 1861 goto again_nocopy; 1862 } 1863 1864 if (bucket_cnt > (max_count - total)) { 1865 if (total == 0) 1866 ret = -ENOSPC; 1867 /* Note that since bucket_cnt > 0 here, it is implicit 1868 * that the locked was grabbed, so release it. 1869 */ 1870 htab_unlock_bucket(b, flags); 1871 rcu_read_unlock(); 1872 bpf_enable_instrumentation(); 1873 goto after_loop; 1874 } 1875 1876 if (bucket_cnt > bucket_size) { 1877 bucket_size = bucket_cnt; 1878 /* Note that since bucket_cnt > 0 here, it is implicit 1879 * that the locked was grabbed, so release it. 1880 */ 1881 htab_unlock_bucket(b, flags); 1882 rcu_read_unlock(); 1883 bpf_enable_instrumentation(); 1884 kvfree(keys); 1885 kvfree(values); 1886 goto alloc; 1887 } 1888 1889 /* Next block is only safe to run if you have grabbed the lock */ 1890 if (!locked) 1891 goto next_batch; 1892 1893 hlist_nulls_for_each_entry_safe(l, n, head, hash_node) { 1894 memcpy(dst_key, l->key, key_size); 1895 1896 if (is_percpu) { 1897 int off = 0, cpu; 1898 void __percpu *pptr; 1899 1900 pptr = htab_elem_get_ptr(l, map->key_size); 1901 if (elem_map_flags & BPF_F_CPU) { 1902 cpu = elem_map_flags >> 32; 1903 copy_map_value(&htab->map, dst_val, per_cpu_ptr(pptr, cpu)); 1904 check_and_init_map_value(&htab->map, dst_val); 1905 } else { 1906 for_each_possible_cpu(cpu) { 1907 copy_map_value_long(&htab->map, dst_val + off, 1908 per_cpu_ptr(pptr, cpu)); 1909 check_and_init_map_value(&htab->map, dst_val + off); 1910 off += size; 1911 } 1912 } 1913 } else { 1914 value = htab_elem_value(l, key_size); 1915 if (is_fd_htab(htab)) { 1916 struct bpf_map **inner_map = value; 1917 1918 /* Actual value is the id of the inner map */ 1919 map_id = map->ops->map_fd_sys_lookup_elem(*inner_map); 1920 value = &map_id; 1921 } 1922 1923 if (elem_map_flags & BPF_F_LOCK) 1924 copy_map_value_locked(map, dst_val, value, 1925 true); 1926 else 1927 copy_map_value(map, dst_val, value); 1928 /* Zeroing special fields in the temp buffer */ 1929 check_and_init_map_value(map, dst_val); 1930 } 1931 if (do_delete) { 1932 hlist_nulls_del_rcu(&l->hash_node); 1933 1934 /* bpf_lru_push_free() will acquire lru_lock, which 1935 * may cause deadlock. See comments in function 1936 * prealloc_lru_pop(). Let us do bpf_lru_push_free() 1937 * after releasing the bucket lock. 1938 * 1939 * For htab of maps, htab_put_fd_value() in 1940 * free_htab_elem() may acquire a spinlock with bucket 1941 * lock being held and it violates the lock rule, so 1942 * invoke free_htab_elem() after unlock as well. 1943 */ 1944 l->batch_flink = node_to_free; 1945 node_to_free = l; 1946 } 1947 dst_key += key_size; 1948 dst_val += value_size; 1949 } 1950 1951 htab_unlock_bucket(b, flags); 1952 locked = false; 1953 1954 while (node_to_free) { 1955 l = node_to_free; 1956 node_to_free = node_to_free->batch_flink; 1957 if (is_lru_map) 1958 htab_lru_push_free(htab, l); 1959 else 1960 free_htab_elem(htab, l); 1961 } 1962 1963 next_batch: 1964 /* If we are not copying data, we can go to next bucket and avoid 1965 * unlocking the rcu. 1966 */ 1967 if (!bucket_cnt && (batch + 1 < htab->n_buckets)) { 1968 batch++; 1969 goto again_nocopy; 1970 } 1971 1972 rcu_read_unlock(); 1973 bpf_enable_instrumentation(); 1974 if (bucket_cnt && (copy_to_user(ukeys + total * key_size, keys, 1975 key_size * bucket_cnt) || 1976 copy_to_user(uvalues + total * value_size, values, 1977 value_size * bucket_cnt))) { 1978 ret = -EFAULT; 1979 goto after_loop; 1980 } 1981 1982 total += bucket_cnt; 1983 batch++; 1984 if (batch >= htab->n_buckets) { 1985 ret = -ENOENT; 1986 goto after_loop; 1987 } 1988 goto again; 1989 1990 after_loop: 1991 if (ret == -EFAULT) 1992 goto out; 1993 1994 /* copy # of entries and next batch */ 1995 ubatch = u64_to_user_ptr(attr->batch.out_batch); 1996 if (copy_to_user(ubatch, &batch, sizeof(batch)) || 1997 put_user(total, &uattr->batch.count)) 1998 ret = -EFAULT; 1999 2000 out: 2001 kvfree(keys); 2002 kvfree(values); 2003 return ret; 2004 } 2005 2006 static int 2007 htab_percpu_map_lookup_batch(struct bpf_map *map, const union bpf_attr *attr, 2008 union bpf_attr __user *uattr) 2009 { 2010 return __htab_map_lookup_and_delete_batch(map, attr, uattr, false, 2011 false, true); 2012 } 2013 2014 static int 2015 htab_percpu_map_lookup_and_delete_batch(struct bpf_map *map, 2016 const union bpf_attr *attr, 2017 union bpf_attr __user *uattr) 2018 { 2019 return __htab_map_lookup_and_delete_batch(map, attr, uattr, true, 2020 false, true); 2021 } 2022 2023 static int 2024 htab_map_lookup_batch(struct bpf_map *map, const union bpf_attr *attr, 2025 union bpf_attr __user *uattr) 2026 { 2027 return __htab_map_lookup_and_delete_batch(map, attr, uattr, false, 2028 false, false); 2029 } 2030 2031 static int 2032 htab_map_lookup_and_delete_batch(struct bpf_map *map, 2033 const union bpf_attr *attr, 2034 union bpf_attr __user *uattr) 2035 { 2036 return __htab_map_lookup_and_delete_batch(map, attr, uattr, true, 2037 false, false); 2038 } 2039 2040 static int 2041 htab_lru_percpu_map_lookup_batch(struct bpf_map *map, 2042 const union bpf_attr *attr, 2043 union bpf_attr __user *uattr) 2044 { 2045 return __htab_map_lookup_and_delete_batch(map, attr, uattr, false, 2046 true, true); 2047 } 2048 2049 static int 2050 htab_lru_percpu_map_lookup_and_delete_batch(struct bpf_map *map, 2051 const union bpf_attr *attr, 2052 union bpf_attr __user *uattr) 2053 { 2054 return __htab_map_lookup_and_delete_batch(map, attr, uattr, true, 2055 true, true); 2056 } 2057 2058 static int 2059 htab_lru_map_lookup_batch(struct bpf_map *map, const union bpf_attr *attr, 2060 union bpf_attr __user *uattr) 2061 { 2062 return __htab_map_lookup_and_delete_batch(map, attr, uattr, false, 2063 true, false); 2064 } 2065 2066 static int 2067 htab_lru_map_lookup_and_delete_batch(struct bpf_map *map, 2068 const union bpf_attr *attr, 2069 union bpf_attr __user *uattr) 2070 { 2071 return __htab_map_lookup_and_delete_batch(map, attr, uattr, true, 2072 true, false); 2073 } 2074 2075 struct bpf_iter_seq_hash_map_info { 2076 struct bpf_map *map; 2077 struct bpf_htab *htab; 2078 void *percpu_value_buf; // non-zero means percpu hash 2079 u32 bucket_id; 2080 u32 skip_elems; 2081 }; 2082 2083 static struct htab_elem * 2084 bpf_hash_map_seq_find_next(struct bpf_iter_seq_hash_map_info *info, 2085 struct htab_elem *prev_elem) 2086 { 2087 const struct bpf_htab *htab = info->htab; 2088 u32 skip_elems = info->skip_elems; 2089 u32 bucket_id = info->bucket_id; 2090 struct hlist_nulls_head *head; 2091 struct hlist_nulls_node *n; 2092 struct htab_elem *elem; 2093 struct bucket *b; 2094 u32 i, count; 2095 2096 if (bucket_id >= htab->n_buckets) 2097 return NULL; 2098 2099 /* try to find next elem in the same bucket */ 2100 if (prev_elem) { 2101 /* no update/deletion on this bucket, prev_elem should be still valid 2102 * and we won't skip elements. 2103 */ 2104 n = rcu_dereference_raw(hlist_nulls_next_rcu(&prev_elem->hash_node)); 2105 elem = hlist_nulls_entry_safe(n, struct htab_elem, hash_node); 2106 if (elem) 2107 return elem; 2108 2109 /* not found, unlock and go to the next bucket */ 2110 b = &htab->buckets[bucket_id++]; 2111 rcu_read_unlock(); 2112 skip_elems = 0; 2113 } 2114 2115 for (i = bucket_id; i < htab->n_buckets; i++) { 2116 b = &htab->buckets[i]; 2117 rcu_read_lock(); 2118 2119 count = 0; 2120 head = &b->head; 2121 hlist_nulls_for_each_entry_rcu(elem, n, head, hash_node) { 2122 if (count >= skip_elems) { 2123 info->bucket_id = i; 2124 info->skip_elems = count; 2125 return elem; 2126 } 2127 count++; 2128 } 2129 2130 rcu_read_unlock(); 2131 skip_elems = 0; 2132 } 2133 2134 info->bucket_id = i; 2135 info->skip_elems = 0; 2136 return NULL; 2137 } 2138 2139 static void *bpf_hash_map_seq_start(struct seq_file *seq, loff_t *pos) 2140 { 2141 struct bpf_iter_seq_hash_map_info *info = seq->private; 2142 struct htab_elem *elem; 2143 2144 elem = bpf_hash_map_seq_find_next(info, NULL); 2145 if (!elem) 2146 return NULL; 2147 2148 if (*pos == 0) 2149 ++*pos; 2150 return elem; 2151 } 2152 2153 static void *bpf_hash_map_seq_next(struct seq_file *seq, void *v, loff_t *pos) 2154 { 2155 struct bpf_iter_seq_hash_map_info *info = seq->private; 2156 2157 ++*pos; 2158 ++info->skip_elems; 2159 return bpf_hash_map_seq_find_next(info, v); 2160 } 2161 2162 static int __bpf_hash_map_seq_show(struct seq_file *seq, struct htab_elem *elem) 2163 { 2164 struct bpf_iter_seq_hash_map_info *info = seq->private; 2165 struct bpf_iter__bpf_map_elem ctx = {}; 2166 struct bpf_map *map = info->map; 2167 struct bpf_iter_meta meta; 2168 int ret = 0, off = 0, cpu; 2169 u32 roundup_value_size; 2170 struct bpf_prog *prog; 2171 void __percpu *pptr; 2172 2173 meta.seq = seq; 2174 prog = bpf_iter_get_info(&meta, elem == NULL); 2175 if (prog) { 2176 ctx.meta = &meta; 2177 ctx.map = info->map; 2178 if (elem) { 2179 ctx.key = elem->key; 2180 if (!info->percpu_value_buf) { 2181 ctx.value = htab_elem_value(elem, map->key_size); 2182 } else { 2183 roundup_value_size = round_up(map->value_size, 8); 2184 pptr = htab_elem_get_ptr(elem, map->key_size); 2185 for_each_possible_cpu(cpu) { 2186 copy_map_value_long(map, info->percpu_value_buf + off, 2187 per_cpu_ptr(pptr, cpu)); 2188 check_and_init_map_value(map, info->percpu_value_buf + off); 2189 off += roundup_value_size; 2190 } 2191 ctx.value = info->percpu_value_buf; 2192 } 2193 } 2194 ret = bpf_iter_run_prog(prog, &ctx); 2195 } 2196 2197 return ret; 2198 } 2199 2200 static int bpf_hash_map_seq_show(struct seq_file *seq, void *v) 2201 { 2202 return __bpf_hash_map_seq_show(seq, v); 2203 } 2204 2205 static void bpf_hash_map_seq_stop(struct seq_file *seq, void *v) 2206 { 2207 if (!v) 2208 (void)__bpf_hash_map_seq_show(seq, NULL); 2209 else 2210 rcu_read_unlock(); 2211 } 2212 2213 static int bpf_iter_init_hash_map(void *priv_data, 2214 struct bpf_iter_aux_info *aux) 2215 { 2216 struct bpf_iter_seq_hash_map_info *seq_info = priv_data; 2217 struct bpf_map *map = aux->map; 2218 void *value_buf; 2219 u32 buf_size; 2220 2221 if (map->map_type == BPF_MAP_TYPE_PERCPU_HASH || 2222 map->map_type == BPF_MAP_TYPE_LRU_PERCPU_HASH) { 2223 buf_size = round_up(map->value_size, 8) * num_possible_cpus(); 2224 value_buf = kmalloc(buf_size, GFP_USER | __GFP_NOWARN); 2225 if (!value_buf) 2226 return -ENOMEM; 2227 2228 seq_info->percpu_value_buf = value_buf; 2229 } 2230 2231 bpf_map_inc_with_uref(map); 2232 seq_info->map = map; 2233 seq_info->htab = container_of(map, struct bpf_htab, map); 2234 return 0; 2235 } 2236 2237 static void bpf_iter_fini_hash_map(void *priv_data) 2238 { 2239 struct bpf_iter_seq_hash_map_info *seq_info = priv_data; 2240 2241 bpf_map_put_with_uref(seq_info->map); 2242 kfree(seq_info->percpu_value_buf); 2243 } 2244 2245 static const struct seq_operations bpf_hash_map_seq_ops = { 2246 .start = bpf_hash_map_seq_start, 2247 .next = bpf_hash_map_seq_next, 2248 .stop = bpf_hash_map_seq_stop, 2249 .show = bpf_hash_map_seq_show, 2250 }; 2251 2252 static const struct bpf_iter_seq_info iter_seq_info = { 2253 .seq_ops = &bpf_hash_map_seq_ops, 2254 .init_seq_private = bpf_iter_init_hash_map, 2255 .fini_seq_private = bpf_iter_fini_hash_map, 2256 .seq_priv_size = sizeof(struct bpf_iter_seq_hash_map_info), 2257 }; 2258 2259 static long bpf_for_each_hash_elem(struct bpf_map *map, bpf_callback_t callback_fn, 2260 void *callback_ctx, u64 flags) 2261 { 2262 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 2263 struct hlist_nulls_head *head; 2264 struct hlist_nulls_node *n; 2265 struct htab_elem *elem; 2266 int i, num_elems = 0; 2267 void __percpu *pptr; 2268 struct bucket *b; 2269 void *key, *val; 2270 bool is_percpu; 2271 u64 ret = 0; 2272 2273 cant_migrate(); 2274 2275 if (flags != 0) 2276 return -EINVAL; 2277 2278 is_percpu = htab_is_percpu(htab); 2279 2280 /* migration has been disabled, so percpu value prepared here will be 2281 * the same as the one seen by the bpf program with 2282 * bpf_map_lookup_elem(). 2283 */ 2284 for (i = 0; i < htab->n_buckets; i++) { 2285 b = &htab->buckets[i]; 2286 rcu_read_lock(); 2287 head = &b->head; 2288 hlist_nulls_for_each_entry_safe(elem, n, head, hash_node) { 2289 key = elem->key; 2290 if (is_percpu) { 2291 /* current cpu value for percpu map */ 2292 pptr = htab_elem_get_ptr(elem, map->key_size); 2293 val = this_cpu_ptr(pptr); 2294 } else { 2295 val = htab_elem_value(elem, map->key_size); 2296 } 2297 num_elems++; 2298 ret = callback_fn((u64)(long)map, (u64)(long)key, 2299 (u64)(long)val, (u64)(long)callback_ctx, 0); 2300 /* return value: 0 - continue, 1 - stop and return */ 2301 if (ret) { 2302 rcu_read_unlock(); 2303 goto out; 2304 } 2305 } 2306 rcu_read_unlock(); 2307 } 2308 out: 2309 return num_elems; 2310 } 2311 2312 static u64 htab_map_mem_usage(const struct bpf_map *map) 2313 { 2314 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 2315 u32 value_size = round_up(htab->map.value_size, 8); 2316 bool prealloc = htab_is_prealloc(htab); 2317 bool percpu = htab_is_percpu(htab); 2318 bool lru = htab_is_lru(htab); 2319 u64 num_entries, usage; 2320 2321 usage = sizeof(struct bpf_htab) + 2322 sizeof(struct bucket) * htab->n_buckets; 2323 2324 if (prealloc) { 2325 num_entries = map->max_entries; 2326 if (htab_has_extra_elems(htab)) 2327 num_entries += num_possible_cpus(); 2328 2329 usage += htab->elem_size * num_entries; 2330 2331 if (percpu) 2332 usage += value_size * num_possible_cpus() * num_entries; 2333 else if (!lru) 2334 usage += sizeof(struct htab_elem *) * num_possible_cpus(); 2335 } else { 2336 #define LLIST_NODE_SZ sizeof(struct llist_node) 2337 2338 num_entries = htab->use_percpu_counter ? 2339 percpu_counter_sum(&htab->pcount) : 2340 atomic_read(&htab->count); 2341 usage += (htab->elem_size + LLIST_NODE_SZ) * num_entries; 2342 if (percpu) { 2343 usage += (LLIST_NODE_SZ + sizeof(void *)) * num_entries; 2344 usage += value_size * num_possible_cpus() * num_entries; 2345 } 2346 } 2347 return usage; 2348 } 2349 2350 BTF_ID_LIST_SINGLE(htab_map_btf_ids, struct, bpf_htab) 2351 const struct bpf_map_ops htab_map_ops = { 2352 .map_meta_equal = bpf_map_meta_equal, 2353 .map_alloc_check = htab_map_alloc_check, 2354 .map_alloc = htab_map_alloc, 2355 .map_free = htab_map_free, 2356 .map_get_next_key = htab_map_get_next_key, 2357 .map_release_uref = htab_map_free_internal_structs, 2358 .map_lookup_elem = htab_map_lookup_elem, 2359 .map_lookup_and_delete_elem = htab_map_lookup_and_delete_elem, 2360 .map_update_elem = htab_map_update_elem, 2361 .map_delete_elem = htab_map_delete_elem, 2362 .map_gen_lookup = htab_map_gen_lookup, 2363 .map_seq_show_elem = htab_map_seq_show_elem, 2364 .map_set_for_each_callback_args = map_set_for_each_callback_args, 2365 .map_for_each_callback = bpf_for_each_hash_elem, 2366 .map_check_btf = htab_map_check_btf, 2367 .map_mem_usage = htab_map_mem_usage, 2368 BATCH_OPS(htab), 2369 .map_btf_id = &htab_map_btf_ids[0], 2370 .iter_seq_info = &iter_seq_info, 2371 }; 2372 2373 const struct bpf_map_ops htab_lru_map_ops = { 2374 .map_meta_equal = bpf_map_meta_equal, 2375 .map_alloc_check = htab_map_alloc_check, 2376 .map_alloc = htab_map_alloc, 2377 .map_free = htab_map_free, 2378 .map_get_next_key = htab_map_get_next_key, 2379 .map_release_uref = htab_map_free_internal_structs, 2380 .map_lookup_elem = htab_lru_map_lookup_elem, 2381 .map_lookup_and_delete_elem = htab_lru_map_lookup_and_delete_elem, 2382 .map_lookup_elem_sys_only = htab_lru_map_lookup_elem_sys, 2383 .map_update_elem = htab_lru_map_update_elem, 2384 .map_delete_elem = htab_lru_map_delete_elem, 2385 .map_gen_lookup = htab_lru_map_gen_lookup, 2386 .map_seq_show_elem = htab_map_seq_show_elem, 2387 .map_set_for_each_callback_args = map_set_for_each_callback_args, 2388 .map_for_each_callback = bpf_for_each_hash_elem, 2389 .map_check_btf = htab_map_check_btf, 2390 .map_mem_usage = htab_map_mem_usage, 2391 BATCH_OPS(htab_lru), 2392 .map_btf_id = &htab_map_btf_ids[0], 2393 .iter_seq_info = &iter_seq_info, 2394 }; 2395 2396 /* Called from eBPF program */ 2397 static void *htab_percpu_map_lookup_elem(struct bpf_map *map, void *key) 2398 { 2399 struct htab_elem *l = __htab_map_lookup_elem(map, key); 2400 2401 if (l) 2402 return this_cpu_ptr(htab_elem_get_ptr(l, map->key_size)); 2403 else 2404 return NULL; 2405 } 2406 2407 /* inline bpf_map_lookup_elem() call for per-CPU hashmap */ 2408 static int htab_percpu_map_gen_lookup(struct bpf_map *map, struct bpf_insn *insn_buf) 2409 { 2410 struct bpf_insn *insn = insn_buf; 2411 2412 if (!bpf_jit_supports_percpu_insn()) 2413 return -EOPNOTSUPP; 2414 2415 BUILD_BUG_ON(!__same_type(&__htab_map_lookup_elem, 2416 (void *(*)(struct bpf_map *map, void *key))NULL)); 2417 *insn++ = BPF_EMIT_CALL(__htab_map_lookup_elem); 2418 *insn++ = BPF_JMP_IMM(BPF_JEQ, BPF_REG_0, 0, 3); 2419 *insn++ = BPF_ALU64_IMM(BPF_ADD, BPF_REG_0, 2420 offsetof(struct htab_elem, key) + roundup(map->key_size, 8)); 2421 *insn++ = BPF_LDX_MEM(BPF_DW, BPF_REG_0, BPF_REG_0, 0); 2422 *insn++ = BPF_MOV64_PERCPU_REG(BPF_REG_0, BPF_REG_0); 2423 2424 return insn - insn_buf; 2425 } 2426 2427 static void *htab_percpu_map_lookup_percpu_elem(struct bpf_map *map, void *key, u32 cpu) 2428 { 2429 struct htab_elem *l; 2430 2431 if (cpu >= nr_cpu_ids) 2432 return NULL; 2433 2434 l = __htab_map_lookup_elem(map, key); 2435 if (l) 2436 return per_cpu_ptr(htab_elem_get_ptr(l, map->key_size), cpu); 2437 else 2438 return NULL; 2439 } 2440 2441 static void *htab_lru_percpu_map_lookup_elem(struct bpf_map *map, void *key) 2442 { 2443 struct htab_elem *l = __htab_map_lookup_elem(map, key); 2444 2445 if (l) { 2446 bpf_lru_node_set_ref(&l->lru_node); 2447 return this_cpu_ptr(htab_elem_get_ptr(l, map->key_size)); 2448 } 2449 2450 return NULL; 2451 } 2452 2453 static void *htab_lru_percpu_map_lookup_percpu_elem(struct bpf_map *map, void *key, u32 cpu) 2454 { 2455 struct htab_elem *l; 2456 2457 if (cpu >= nr_cpu_ids) 2458 return NULL; 2459 2460 l = __htab_map_lookup_elem(map, key); 2461 if (l) { 2462 bpf_lru_node_set_ref(&l->lru_node); 2463 return per_cpu_ptr(htab_elem_get_ptr(l, map->key_size), cpu); 2464 } 2465 2466 return NULL; 2467 } 2468 2469 int bpf_percpu_hash_copy(struct bpf_map *map, void *key, void *value, u64 map_flags) 2470 { 2471 struct htab_elem *l; 2472 void __percpu *pptr; 2473 int ret = -ENOENT; 2474 int cpu, off = 0; 2475 u32 size; 2476 2477 /* per_cpu areas are zero-filled and bpf programs can only 2478 * access 'value_size' of them, so copying rounded areas 2479 * will not leak any kernel data 2480 */ 2481 size = round_up(map->value_size, 8); 2482 rcu_read_lock(); 2483 l = __htab_map_lookup_elem(map, key); 2484 if (!l) 2485 goto out; 2486 ret = 0; 2487 /* We do not mark LRU map element here in order to not mess up 2488 * eviction heuristics when user space does a map walk. 2489 */ 2490 pptr = htab_elem_get_ptr(l, map->key_size); 2491 if (map_flags & BPF_F_CPU) { 2492 cpu = map_flags >> 32; 2493 copy_map_value(map, value, per_cpu_ptr(pptr, cpu)); 2494 check_and_init_map_value(map, value); 2495 goto out; 2496 } 2497 for_each_possible_cpu(cpu) { 2498 copy_map_value_long(map, value + off, per_cpu_ptr(pptr, cpu)); 2499 check_and_init_map_value(map, value + off); 2500 off += size; 2501 } 2502 out: 2503 rcu_read_unlock(); 2504 return ret; 2505 } 2506 2507 int bpf_percpu_hash_update(struct bpf_map *map, void *key, void *value, 2508 u64 map_flags) 2509 { 2510 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 2511 int ret; 2512 2513 rcu_read_lock(); 2514 if (htab_is_lru(htab)) 2515 ret = __htab_lru_percpu_map_update_elem(map, key, value, 2516 map_flags, true); 2517 else 2518 ret = htab_map_update_elem_in_place(map, key, value, map_flags, 2519 true, true); 2520 rcu_read_unlock(); 2521 2522 return ret; 2523 } 2524 2525 static void htab_percpu_map_seq_show_elem(struct bpf_map *map, void *key, 2526 struct seq_file *m) 2527 { 2528 struct htab_elem *l; 2529 void __percpu *pptr; 2530 int cpu; 2531 2532 rcu_read_lock(); 2533 2534 l = __htab_map_lookup_elem(map, key); 2535 if (!l) { 2536 rcu_read_unlock(); 2537 return; 2538 } 2539 2540 btf_type_seq_show(map->btf, map->btf_key_type_id, key, m); 2541 seq_puts(m, ": {\n"); 2542 pptr = htab_elem_get_ptr(l, map->key_size); 2543 for_each_possible_cpu(cpu) { 2544 seq_printf(m, "\tcpu%d: ", cpu); 2545 btf_type_seq_show(map->btf, map->btf_value_type_id, 2546 per_cpu_ptr(pptr, cpu), m); 2547 seq_putc(m, '\n'); 2548 } 2549 seq_puts(m, "}\n"); 2550 2551 rcu_read_unlock(); 2552 } 2553 2554 const struct bpf_map_ops htab_percpu_map_ops = { 2555 .map_meta_equal = bpf_map_meta_equal, 2556 .map_alloc_check = htab_map_alloc_check, 2557 .map_alloc = htab_map_alloc, 2558 .map_free = htab_map_free, 2559 .map_get_next_key = htab_map_get_next_key, 2560 .map_lookup_elem = htab_percpu_map_lookup_elem, 2561 .map_gen_lookup = htab_percpu_map_gen_lookup, 2562 .map_lookup_and_delete_elem = htab_percpu_map_lookup_and_delete_elem, 2563 .map_update_elem = htab_percpu_map_update_elem, 2564 .map_delete_elem = htab_map_delete_elem, 2565 .map_lookup_percpu_elem = htab_percpu_map_lookup_percpu_elem, 2566 .map_seq_show_elem = htab_percpu_map_seq_show_elem, 2567 .map_set_for_each_callback_args = map_set_for_each_callback_args, 2568 .map_for_each_callback = bpf_for_each_hash_elem, 2569 .map_check_btf = htab_map_check_btf, 2570 .map_mem_usage = htab_map_mem_usage, 2571 BATCH_OPS(htab_percpu), 2572 .map_btf_id = &htab_map_btf_ids[0], 2573 .iter_seq_info = &iter_seq_info, 2574 }; 2575 2576 const struct bpf_map_ops htab_lru_percpu_map_ops = { 2577 .map_meta_equal = bpf_map_meta_equal, 2578 .map_alloc_check = htab_map_alloc_check, 2579 .map_alloc = htab_map_alloc, 2580 .map_free = htab_map_free, 2581 .map_get_next_key = htab_map_get_next_key, 2582 .map_lookup_elem = htab_lru_percpu_map_lookup_elem, 2583 .map_lookup_and_delete_elem = htab_lru_percpu_map_lookup_and_delete_elem, 2584 .map_update_elem = htab_lru_percpu_map_update_elem, 2585 .map_delete_elem = htab_lru_map_delete_elem, 2586 .map_lookup_percpu_elem = htab_lru_percpu_map_lookup_percpu_elem, 2587 .map_seq_show_elem = htab_percpu_map_seq_show_elem, 2588 .map_set_for_each_callback_args = map_set_for_each_callback_args, 2589 .map_for_each_callback = bpf_for_each_hash_elem, 2590 .map_check_btf = htab_map_check_btf, 2591 .map_mem_usage = htab_map_mem_usage, 2592 BATCH_OPS(htab_lru_percpu), 2593 .map_btf_id = &htab_map_btf_ids[0], 2594 .iter_seq_info = &iter_seq_info, 2595 }; 2596 2597 static int fd_htab_map_alloc_check(union bpf_attr *attr) 2598 { 2599 if (attr->value_size != sizeof(u32)) 2600 return -EINVAL; 2601 return htab_map_alloc_check(attr); 2602 } 2603 2604 static void fd_htab_map_free(struct bpf_map *map) 2605 { 2606 struct bpf_htab *htab = container_of(map, struct bpf_htab, map); 2607 struct hlist_nulls_node *n; 2608 struct hlist_nulls_head *head; 2609 struct htab_elem *l; 2610 int i; 2611 2612 for (i = 0; i < htab->n_buckets; i++) { 2613 head = select_bucket(htab, i); 2614 2615 hlist_nulls_for_each_entry_safe(l, n, head, hash_node) { 2616 void *ptr = fd_htab_map_get_ptr(map, l); 2617 2618 map->ops->map_fd_put_ptr(map, ptr, false); 2619 } 2620 } 2621 2622 htab_map_free(map); 2623 } 2624 2625 /* only called from syscall */ 2626 int bpf_fd_htab_map_lookup_elem(struct bpf_map *map, void *key, u32 *value) 2627 { 2628 void **ptr; 2629 int ret = 0; 2630 2631 if (!map->ops->map_fd_sys_lookup_elem) 2632 return -ENOTSUPP; 2633 2634 rcu_read_lock(); 2635 ptr = htab_map_lookup_elem(map, key); 2636 if (ptr) 2637 *value = map->ops->map_fd_sys_lookup_elem(READ_ONCE(*ptr)); 2638 else 2639 ret = -ENOENT; 2640 rcu_read_unlock(); 2641 2642 return ret; 2643 } 2644 2645 /* Only called from syscall */ 2646 int bpf_fd_htab_map_update_elem(struct bpf_map *map, struct file *map_file, 2647 void *key, void *value, u64 map_flags) 2648 { 2649 void *ptr; 2650 int ret; 2651 2652 ptr = map->ops->map_fd_get_ptr(map, map_file, *(int *)value); 2653 if (IS_ERR(ptr)) 2654 return PTR_ERR(ptr); 2655 2656 /* The htab bucket lock is always held during update operations in fd 2657 * htab map, and the following rcu_read_lock() is only used to avoid 2658 * the WARN_ON_ONCE in htab_map_update_elem_in_place(). 2659 */ 2660 rcu_read_lock(); 2661 ret = htab_map_update_elem_in_place(map, key, &ptr, map_flags, false, false); 2662 rcu_read_unlock(); 2663 if (ret) 2664 map->ops->map_fd_put_ptr(map, ptr, false); 2665 2666 return ret; 2667 } 2668 2669 static struct bpf_map *htab_of_map_alloc(union bpf_attr *attr) 2670 { 2671 struct bpf_map *map, *inner_map_meta; 2672 2673 inner_map_meta = bpf_map_meta_alloc(attr->inner_map_fd); 2674 if (IS_ERR(inner_map_meta)) 2675 return inner_map_meta; 2676 2677 map = htab_map_alloc(attr); 2678 if (IS_ERR(map)) { 2679 bpf_map_meta_free(inner_map_meta); 2680 return map; 2681 } 2682 2683 map->inner_map_meta = inner_map_meta; 2684 2685 return map; 2686 } 2687 2688 static void *htab_of_map_lookup_elem(struct bpf_map *map, void *key) 2689 { 2690 struct bpf_map **inner_map = htab_map_lookup_elem(map, key); 2691 2692 if (!inner_map) 2693 return NULL; 2694 2695 return READ_ONCE(*inner_map); 2696 } 2697 2698 static int htab_of_map_gen_lookup(struct bpf_map *map, 2699 struct bpf_insn *insn_buf) 2700 { 2701 struct bpf_insn *insn = insn_buf; 2702 const int ret = BPF_REG_0; 2703 2704 BUILD_BUG_ON(!__same_type(&__htab_map_lookup_elem, 2705 (void *(*)(struct bpf_map *map, void *key))NULL)); 2706 *insn++ = BPF_EMIT_CALL(__htab_map_lookup_elem); 2707 *insn++ = BPF_JMP_IMM(BPF_JEQ, ret, 0, 2); 2708 *insn++ = BPF_ALU64_IMM(BPF_ADD, ret, 2709 offsetof(struct htab_elem, key) + 2710 round_up(map->key_size, 8)); 2711 *insn++ = BPF_LDX_MEM(BPF_DW, ret, ret, 0); 2712 2713 return insn - insn_buf; 2714 } 2715 2716 static void htab_of_map_free(struct bpf_map *map) 2717 { 2718 bpf_map_meta_free(map->inner_map_meta); 2719 fd_htab_map_free(map); 2720 } 2721 2722 const struct bpf_map_ops htab_of_maps_map_ops = { 2723 .map_alloc_check = fd_htab_map_alloc_check, 2724 .map_alloc = htab_of_map_alloc, 2725 .map_free = htab_of_map_free, 2726 .map_get_next_key = htab_map_get_next_key, 2727 .map_lookup_elem = htab_of_map_lookup_elem, 2728 .map_delete_elem = htab_map_delete_elem, 2729 .map_fd_get_ptr = bpf_map_fd_get_ptr, 2730 .map_fd_put_ptr = bpf_map_fd_put_ptr, 2731 .map_fd_sys_lookup_elem = bpf_map_fd_sys_lookup_elem, 2732 .map_gen_lookup = htab_of_map_gen_lookup, 2733 .map_check_btf = map_check_no_btf, 2734 .map_mem_usage = htab_map_mem_usage, 2735 BATCH_OPS(htab), 2736 .map_btf_id = &htab_map_btf_ids[0], 2737 }; 2738