1 /* SPDX-License-Identifier: BSD-3-Clause 2 * Copyright(c) 2010-2014 Intel Corporation. 3 * Copyright(c) 2016 6WIND S.A. 4 */ 5 6 #ifndef _RTE_MEMPOOL_H_ 7 #define _RTE_MEMPOOL_H_ 8 9 /** 10 * @file 11 * RTE Mempool. 12 * 13 * A memory pool is an allocator of fixed-size object. It is 14 * identified by its name, and uses a ring to store free objects. It 15 * provides some other optional services, like a per-core object 16 * cache, and an alignment helper to ensure that objects are padded 17 * to spread them equally on all RAM channels, ranks, and so on. 18 * 19 * Objects owned by a mempool should never be added in another 20 * mempool. When an object is freed using rte_mempool_put() or 21 * equivalent, the object data is not modified; the user can save some 22 * meta-data in the object data and retrieve them when allocating a 23 * new object. 24 * 25 * Note: the mempool implementation is not preemptible. An lcore must not be 26 * interrupted by another task that uses the same mempool (because it uses a 27 * ring which is not preemptible). Also, usual mempool functions like 28 * rte_mempool_get() or rte_mempool_put() are designed to be called from an EAL 29 * thread due to the internal per-lcore cache. Due to the lack of caching, 30 * rte_mempool_get() or rte_mempool_put() performance will suffer when called 31 * by non-EAL threads. Instead, non-EAL threads should call 32 * rte_mempool_generic_get() or rte_mempool_generic_put() with a user cache 33 * created with rte_mempool_cache_create(). 34 */ 35 36 #include <stdio.h> 37 #include <stdlib.h> 38 #include <stdint.h> 39 #include <errno.h> 40 #include <inttypes.h> 41 #include <sys/queue.h> 42 43 #include <rte_config.h> 44 #include <rte_spinlock.h> 45 #include <rte_log.h> 46 #include <rte_debug.h> 47 #include <rte_lcore.h> 48 #include <rte_memory.h> 49 #include <rte_branch_prediction.h> 50 #include <rte_ring.h> 51 #include <rte_memcpy.h> 52 #include <rte_common.h> 53 54 #ifdef __cplusplus 55 extern "C" { 56 #endif 57 58 #define RTE_MEMPOOL_HEADER_COOKIE1 0xbadbadbadadd2e55ULL /**< Header cookie. */ 59 #define RTE_MEMPOOL_HEADER_COOKIE2 0xf2eef2eedadd2e55ULL /**< Header cookie. */ 60 #define RTE_MEMPOOL_TRAILER_COOKIE 0xadd2e55badbadbadULL /**< Trailer cookie.*/ 61 62 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 63 /** 64 * A structure that stores the mempool statistics (per-lcore). 65 */ 66 struct rte_mempool_debug_stats { 67 uint64_t put_bulk; /**< Number of puts. */ 68 uint64_t put_objs; /**< Number of objects successfully put. */ 69 uint64_t get_success_bulk; /**< Successful allocation number. */ 70 uint64_t get_success_objs; /**< Objects successfully allocated. */ 71 uint64_t get_fail_bulk; /**< Failed allocation number. */ 72 uint64_t get_fail_objs; /**< Objects that failed to be allocated. */ 73 /** Successful allocation number of contiguous blocks. */ 74 uint64_t get_success_blks; 75 /** Failed allocation number of contiguous blocks. */ 76 uint64_t get_fail_blks; 77 } __rte_cache_aligned; 78 #endif 79 80 /** 81 * A structure that stores a per-core object cache. 82 */ 83 struct rte_mempool_cache { 84 uint32_t size; /**< Size of the cache */ 85 uint32_t flushthresh; /**< Threshold before we flush excess elements */ 86 uint32_t len; /**< Current cache count */ 87 /* 88 * Cache is allocated to this size to allow it to overflow in certain 89 * cases to avoid needless emptying of cache. 90 */ 91 void *objs[RTE_MEMPOOL_CACHE_MAX_SIZE * 3]; /**< Cache objects */ 92 } __rte_cache_aligned; 93 94 /** 95 * A structure that stores the size of mempool elements. 96 */ 97 struct rte_mempool_objsz { 98 uint32_t elt_size; /**< Size of an element. */ 99 uint32_t header_size; /**< Size of header (before elt). */ 100 uint32_t trailer_size; /**< Size of trailer (after elt). */ 101 uint32_t total_size; 102 /**< Total size of an object (header + elt + trailer). */ 103 }; 104 105 /**< Maximum length of a memory pool's name. */ 106 #define RTE_MEMPOOL_NAMESIZE (RTE_RING_NAMESIZE - \ 107 sizeof(RTE_MEMPOOL_MZ_PREFIX) + 1) 108 #define RTE_MEMPOOL_MZ_PREFIX "MP_" 109 110 /* "MP_<name>" */ 111 #define RTE_MEMPOOL_MZ_FORMAT RTE_MEMPOOL_MZ_PREFIX "%s" 112 113 #define MEMPOOL_PG_SHIFT_MAX (sizeof(uintptr_t) * CHAR_BIT - 1) 114 115 /** Mempool over one chunk of physically continuous memory */ 116 #define MEMPOOL_PG_NUM_DEFAULT 1 117 118 #ifndef RTE_MEMPOOL_ALIGN 119 #define RTE_MEMPOOL_ALIGN RTE_CACHE_LINE_SIZE 120 #endif 121 122 #define RTE_MEMPOOL_ALIGN_MASK (RTE_MEMPOOL_ALIGN - 1) 123 124 /** 125 * Mempool object header structure 126 * 127 * Each object stored in mempools are prefixed by this header structure, 128 * it allows to retrieve the mempool pointer from the object and to 129 * iterate on all objects attached to a mempool. When debug is enabled, 130 * a cookie is also added in this structure preventing corruptions and 131 * double-frees. 132 */ 133 struct rte_mempool_objhdr { 134 STAILQ_ENTRY(rte_mempool_objhdr) next; /**< Next in list. */ 135 struct rte_mempool *mp; /**< The mempool owning the object. */ 136 RTE_STD_C11 137 union { 138 rte_iova_t iova; /**< IO address of the object. */ 139 phys_addr_t physaddr; /**< deprecated - Physical address of the object. */ 140 }; 141 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 142 uint64_t cookie; /**< Debug cookie. */ 143 #endif 144 }; 145 146 /** 147 * A list of object headers type 148 */ 149 STAILQ_HEAD(rte_mempool_objhdr_list, rte_mempool_objhdr); 150 151 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 152 153 /** 154 * Mempool object trailer structure 155 * 156 * In debug mode, each object stored in mempools are suffixed by this 157 * trailer structure containing a cookie preventing memory corruptions. 158 */ 159 struct rte_mempool_objtlr { 160 uint64_t cookie; /**< Debug cookie. */ 161 }; 162 163 #endif 164 165 /** 166 * A list of memory where objects are stored 167 */ 168 STAILQ_HEAD(rte_mempool_memhdr_list, rte_mempool_memhdr); 169 170 /** 171 * Callback used to free a memory chunk 172 */ 173 typedef void (rte_mempool_memchunk_free_cb_t)(struct rte_mempool_memhdr *memhdr, 174 void *opaque); 175 176 /** 177 * Mempool objects memory header structure 178 * 179 * The memory chunks where objects are stored. Each chunk is virtually 180 * and physically contiguous. 181 */ 182 struct rte_mempool_memhdr { 183 STAILQ_ENTRY(rte_mempool_memhdr) next; /**< Next in list. */ 184 struct rte_mempool *mp; /**< The mempool owning the chunk */ 185 void *addr; /**< Virtual address of the chunk */ 186 RTE_STD_C11 187 union { 188 rte_iova_t iova; /**< IO address of the chunk */ 189 phys_addr_t phys_addr; /**< Physical address of the chunk */ 190 }; 191 size_t len; /**< length of the chunk */ 192 rte_mempool_memchunk_free_cb_t *free_cb; /**< Free callback */ 193 void *opaque; /**< Argument passed to the free callback */ 194 }; 195 196 /** 197 * @warning 198 * @b EXPERIMENTAL: this API may change without prior notice. 199 * 200 * Additional information about the mempool 201 * 202 * The structure is cache-line aligned to avoid ABI breakages in 203 * a number of cases when something small is added. 204 */ 205 struct rte_mempool_info { 206 /** Number of objects in the contiguous block */ 207 unsigned int contig_block_size; 208 } __rte_cache_aligned; 209 210 /** 211 * The RTE mempool structure. 212 */ 213 struct rte_mempool { 214 /* 215 * Note: this field kept the RTE_MEMZONE_NAMESIZE size due to ABI 216 * compatibility requirements, it could be changed to 217 * RTE_MEMPOOL_NAMESIZE next time the ABI changes 218 */ 219 char name[RTE_MEMZONE_NAMESIZE]; /**< Name of mempool. */ 220 RTE_STD_C11 221 union { 222 void *pool_data; /**< Ring or pool to store objects. */ 223 uint64_t pool_id; /**< External mempool identifier. */ 224 }; 225 void *pool_config; /**< optional args for ops alloc. */ 226 const struct rte_memzone *mz; /**< Memzone where pool is alloc'd. */ 227 unsigned int flags; /**< Flags of the mempool. */ 228 int socket_id; /**< Socket id passed at create. */ 229 uint32_t size; /**< Max size of the mempool. */ 230 uint32_t cache_size; 231 /**< Size of per-lcore default local cache. */ 232 233 uint32_t elt_size; /**< Size of an element. */ 234 uint32_t header_size; /**< Size of header (before elt). */ 235 uint32_t trailer_size; /**< Size of trailer (after elt). */ 236 237 unsigned private_data_size; /**< Size of private data. */ 238 /** 239 * Index into rte_mempool_ops_table array of mempool ops 240 * structs, which contain callback function pointers. 241 * We're using an index here rather than pointers to the callbacks 242 * to facilitate any secondary processes that may want to use 243 * this mempool. 244 */ 245 int32_t ops_index; 246 247 struct rte_mempool_cache *local_cache; /**< Per-lcore local cache */ 248 249 uint32_t populated_size; /**< Number of populated objects. */ 250 struct rte_mempool_objhdr_list elt_list; /**< List of objects in pool */ 251 uint32_t nb_mem_chunks; /**< Number of memory chunks */ 252 struct rte_mempool_memhdr_list mem_list; /**< List of memory chunks */ 253 254 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 255 /** Per-lcore statistics. */ 256 struct rte_mempool_debug_stats stats[RTE_MAX_LCORE]; 257 #endif 258 } __rte_cache_aligned; 259 260 #define MEMPOOL_F_NO_SPREAD 0x0001 /**< Do not spread among memory channels. */ 261 #define MEMPOOL_F_NO_CACHE_ALIGN 0x0002 /**< Do not align objs on cache lines.*/ 262 #define MEMPOOL_F_SP_PUT 0x0004 /**< Default put is "single-producer".*/ 263 #define MEMPOOL_F_SC_GET 0x0008 /**< Default get is "single-consumer".*/ 264 #define MEMPOOL_F_POOL_CREATED 0x0010 /**< Internal: pool is created. */ 265 #define MEMPOOL_F_NO_IOVA_CONTIG 0x0020 /**< Don't need IOVA contiguous objs. */ 266 #define MEMPOOL_F_NO_PHYS_CONTIG MEMPOOL_F_NO_IOVA_CONTIG /* deprecated */ 267 268 /** 269 * @internal When debug is enabled, store some statistics. 270 * 271 * @param mp 272 * Pointer to the memory pool. 273 * @param name 274 * Name of the statistics field to increment in the memory pool. 275 * @param n 276 * Number to add to the object-oriented statistics. 277 */ 278 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 279 #define __MEMPOOL_STAT_ADD(mp, name, n) do { \ 280 unsigned __lcore_id = rte_lcore_id(); \ 281 if (__lcore_id < RTE_MAX_LCORE) { \ 282 mp->stats[__lcore_id].name##_objs += n; \ 283 mp->stats[__lcore_id].name##_bulk += 1; \ 284 } \ 285 } while(0) 286 #define __MEMPOOL_CONTIG_BLOCKS_STAT_ADD(mp, name, n) do { \ 287 unsigned int __lcore_id = rte_lcore_id(); \ 288 if (__lcore_id < RTE_MAX_LCORE) { \ 289 mp->stats[__lcore_id].name##_blks += n; \ 290 mp->stats[__lcore_id].name##_bulk += 1; \ 291 } \ 292 } while (0) 293 #else 294 #define __MEMPOOL_STAT_ADD(mp, name, n) do {} while(0) 295 #define __MEMPOOL_CONTIG_BLOCKS_STAT_ADD(mp, name, n) do {} while (0) 296 #endif 297 298 /** 299 * Calculate the size of the mempool header. 300 * 301 * @param mp 302 * Pointer to the memory pool. 303 * @param cs 304 * Size of the per-lcore cache. 305 */ 306 #define MEMPOOL_HEADER_SIZE(mp, cs) \ 307 (sizeof(*(mp)) + (((cs) == 0) ? 0 : \ 308 (sizeof(struct rte_mempool_cache) * RTE_MAX_LCORE))) 309 310 /* return the header of a mempool object (internal) */ 311 static inline struct rte_mempool_objhdr *__mempool_get_header(void *obj) 312 { 313 return (struct rte_mempool_objhdr *)RTE_PTR_SUB(obj, 314 sizeof(struct rte_mempool_objhdr)); 315 } 316 317 /** 318 * Return a pointer to the mempool owning this object. 319 * 320 * @param obj 321 * An object that is owned by a pool. If this is not the case, 322 * the behavior is undefined. 323 * @return 324 * A pointer to the mempool structure. 325 */ 326 static inline struct rte_mempool *rte_mempool_from_obj(void *obj) 327 { 328 struct rte_mempool_objhdr *hdr = __mempool_get_header(obj); 329 return hdr->mp; 330 } 331 332 /* return the trailer of a mempool object (internal) */ 333 static inline struct rte_mempool_objtlr *__mempool_get_trailer(void *obj) 334 { 335 struct rte_mempool *mp = rte_mempool_from_obj(obj); 336 return (struct rte_mempool_objtlr *)RTE_PTR_ADD(obj, mp->elt_size); 337 } 338 339 /** 340 * @internal Check and update cookies or panic. 341 * 342 * @param mp 343 * Pointer to the memory pool. 344 * @param obj_table_const 345 * Pointer to a table of void * pointers (objects). 346 * @param n 347 * Index of object in object table. 348 * @param free 349 * - 0: object is supposed to be allocated, mark it as free 350 * - 1: object is supposed to be free, mark it as allocated 351 * - 2: just check that cookie is valid (free or allocated) 352 */ 353 void rte_mempool_check_cookies(const struct rte_mempool *mp, 354 void * const *obj_table_const, unsigned n, int free); 355 356 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 357 #define __mempool_check_cookies(mp, obj_table_const, n, free) \ 358 rte_mempool_check_cookies(mp, obj_table_const, n, free) 359 #else 360 #define __mempool_check_cookies(mp, obj_table_const, n, free) do {} while(0) 361 #endif /* RTE_LIBRTE_MEMPOOL_DEBUG */ 362 363 /** 364 * @warning 365 * @b EXPERIMENTAL: this API may change without prior notice. 366 * 367 * @internal Check contiguous object blocks and update cookies or panic. 368 * 369 * @param mp 370 * Pointer to the memory pool. 371 * @param first_obj_table_const 372 * Pointer to a table of void * pointers (first object of the contiguous 373 * object blocks). 374 * @param n 375 * Number of contiguous object blocks. 376 * @param free 377 * - 0: object is supposed to be allocated, mark it as free 378 * - 1: object is supposed to be free, mark it as allocated 379 * - 2: just check that cookie is valid (free or allocated) 380 */ 381 void rte_mempool_contig_blocks_check_cookies(const struct rte_mempool *mp, 382 void * const *first_obj_table_const, unsigned int n, int free); 383 384 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 385 #define __mempool_contig_blocks_check_cookies(mp, first_obj_table_const, n, \ 386 free) \ 387 rte_mempool_contig_blocks_check_cookies(mp, first_obj_table_const, n, \ 388 free) 389 #else 390 #define __mempool_contig_blocks_check_cookies(mp, first_obj_table_const, n, \ 391 free) \ 392 do {} while (0) 393 #endif /* RTE_LIBRTE_MEMPOOL_DEBUG */ 394 395 #define RTE_MEMPOOL_OPS_NAMESIZE 32 /**< Max length of ops struct name. */ 396 397 /** 398 * Prototype for implementation specific data provisioning function. 399 * 400 * The function should provide the implementation specific memory for 401 * use by the other mempool ops functions in a given mempool ops struct. 402 * E.g. the default ops provides an instance of the rte_ring for this purpose. 403 * it will most likely point to a different type of data structure, and 404 * will be transparent to the application programmer. 405 * This function should set mp->pool_data. 406 */ 407 typedef int (*rte_mempool_alloc_t)(struct rte_mempool *mp); 408 409 /** 410 * Free the opaque private data pointed to by mp->pool_data pointer. 411 */ 412 typedef void (*rte_mempool_free_t)(struct rte_mempool *mp); 413 414 /** 415 * Enqueue an object into the external pool. 416 */ 417 typedef int (*rte_mempool_enqueue_t)(struct rte_mempool *mp, 418 void * const *obj_table, unsigned int n); 419 420 /** 421 * Dequeue an object from the external pool. 422 */ 423 typedef int (*rte_mempool_dequeue_t)(struct rte_mempool *mp, 424 void **obj_table, unsigned int n); 425 426 /** 427 * @warning 428 * @b EXPERIMENTAL: this API may change without prior notice. 429 * 430 * Dequeue a number of contiguous object blocks from the external pool. 431 */ 432 typedef int (*rte_mempool_dequeue_contig_blocks_t)(struct rte_mempool *mp, 433 void **first_obj_table, unsigned int n); 434 435 /** 436 * Return the number of available objects in the external pool. 437 */ 438 typedef unsigned (*rte_mempool_get_count)(const struct rte_mempool *mp); 439 440 /** 441 * Calculate memory size required to store given number of objects. 442 * 443 * If mempool objects are not required to be IOVA-contiguous 444 * (the flag MEMPOOL_F_NO_IOVA_CONTIG is set), min_chunk_size defines 445 * virtually contiguous chunk size. Otherwise, if mempool objects must 446 * be IOVA-contiguous (the flag MEMPOOL_F_NO_IOVA_CONTIG is clear), 447 * min_chunk_size defines IOVA-contiguous chunk size. 448 * 449 * @param[in] mp 450 * Pointer to the memory pool. 451 * @param[in] obj_num 452 * Number of objects. 453 * @param[in] pg_shift 454 * LOG2 of the physical pages size. If set to 0, ignore page boundaries. 455 * @param[out] min_chunk_size 456 * Location for minimum size of the memory chunk which may be used to 457 * store memory pool objects. 458 * @param[out] align 459 * Location for required memory chunk alignment. 460 * @return 461 * Required memory size aligned at page boundary. 462 */ 463 typedef ssize_t (*rte_mempool_calc_mem_size_t)(const struct rte_mempool *mp, 464 uint32_t obj_num, uint32_t pg_shift, 465 size_t *min_chunk_size, size_t *align); 466 467 /** 468 * Default way to calculate memory size required to store given number of 469 * objects. 470 * 471 * If page boundaries may be ignored, it is just a product of total 472 * object size including header and trailer and number of objects. 473 * Otherwise, it is a number of pages required to store given number of 474 * objects without crossing page boundary. 475 * 476 * Note that if object size is bigger than page size, then it assumes 477 * that pages are grouped in subsets of physically continuous pages big 478 * enough to store at least one object. 479 * 480 * Minimum size of memory chunk is a maximum of the page size and total 481 * element size. 482 * 483 * Required memory chunk alignment is a maximum of page size and cache 484 * line size. 485 */ 486 ssize_t rte_mempool_op_calc_mem_size_default(const struct rte_mempool *mp, 487 uint32_t obj_num, uint32_t pg_shift, 488 size_t *min_chunk_size, size_t *align); 489 490 /** 491 * Function to be called for each populated object. 492 * 493 * @param[in] mp 494 * A pointer to the mempool structure. 495 * @param[in] opaque 496 * An opaque pointer passed to iterator. 497 * @param[in] vaddr 498 * Object virtual address. 499 * @param[in] iova 500 * Input/output virtual address of the object or RTE_BAD_IOVA. 501 */ 502 typedef void (rte_mempool_populate_obj_cb_t)(struct rte_mempool *mp, 503 void *opaque, void *vaddr, rte_iova_t iova); 504 505 /** 506 * Populate memory pool objects using provided memory chunk. 507 * 508 * Populated objects should be enqueued to the pool, e.g. using 509 * rte_mempool_ops_enqueue_bulk(). 510 * 511 * If the given IO address is unknown (iova = RTE_BAD_IOVA), 512 * the chunk doesn't need to be physically contiguous (only virtually), 513 * and allocated objects may span two pages. 514 * 515 * @param[in] mp 516 * A pointer to the mempool structure. 517 * @param[in] max_objs 518 * Maximum number of objects to be populated. 519 * @param[in] vaddr 520 * The virtual address of memory that should be used to store objects. 521 * @param[in] iova 522 * The IO address 523 * @param[in] len 524 * The length of memory in bytes. 525 * @param[in] obj_cb 526 * Callback function to be executed for each populated object. 527 * @param[in] obj_cb_arg 528 * An opaque pointer passed to the callback function. 529 * @return 530 * The number of objects added on success. 531 * On error, no objects are populated and a negative errno is returned. 532 */ 533 typedef int (*rte_mempool_populate_t)(struct rte_mempool *mp, 534 unsigned int max_objs, 535 void *vaddr, rte_iova_t iova, size_t len, 536 rte_mempool_populate_obj_cb_t *obj_cb, void *obj_cb_arg); 537 538 /** 539 * Default way to populate memory pool object using provided memory 540 * chunk: just slice objects one by one. 541 */ 542 int rte_mempool_op_populate_default(struct rte_mempool *mp, 543 unsigned int max_objs, 544 void *vaddr, rte_iova_t iova, size_t len, 545 rte_mempool_populate_obj_cb_t *obj_cb, void *obj_cb_arg); 546 547 /** 548 * @warning 549 * @b EXPERIMENTAL: this API may change without prior notice. 550 * 551 * Get some additional information about a mempool. 552 */ 553 typedef int (*rte_mempool_get_info_t)(const struct rte_mempool *mp, 554 struct rte_mempool_info *info); 555 556 557 /** Structure defining mempool operations structure */ 558 struct rte_mempool_ops { 559 char name[RTE_MEMPOOL_OPS_NAMESIZE]; /**< Name of mempool ops struct. */ 560 rte_mempool_alloc_t alloc; /**< Allocate private data. */ 561 rte_mempool_free_t free; /**< Free the external pool. */ 562 rte_mempool_enqueue_t enqueue; /**< Enqueue an object. */ 563 rte_mempool_dequeue_t dequeue; /**< Dequeue an object. */ 564 rte_mempool_get_count get_count; /**< Get qty of available objs. */ 565 /** 566 * Optional callback to calculate memory size required to 567 * store specified number of objects. 568 */ 569 rte_mempool_calc_mem_size_t calc_mem_size; 570 /** 571 * Optional callback to populate mempool objects using 572 * provided memory chunk. 573 */ 574 rte_mempool_populate_t populate; 575 /** 576 * Get mempool info 577 */ 578 rte_mempool_get_info_t get_info; 579 /** 580 * Dequeue a number of contiguous object blocks. 581 */ 582 rte_mempool_dequeue_contig_blocks_t dequeue_contig_blocks; 583 } __rte_cache_aligned; 584 585 #define RTE_MEMPOOL_MAX_OPS_IDX 16 /**< Max registered ops structs */ 586 587 /** 588 * Structure storing the table of registered ops structs, each of which contain 589 * the function pointers for the mempool ops functions. 590 * Each process has its own storage for this ops struct array so that 591 * the mempools can be shared across primary and secondary processes. 592 * The indices used to access the array are valid across processes, whereas 593 * any function pointers stored directly in the mempool struct would not be. 594 * This results in us simply having "ops_index" in the mempool struct. 595 */ 596 struct rte_mempool_ops_table { 597 rte_spinlock_t sl; /**< Spinlock for add/delete. */ 598 uint32_t num_ops; /**< Number of used ops structs in the table. */ 599 /** 600 * Storage for all possible ops structs. 601 */ 602 struct rte_mempool_ops ops[RTE_MEMPOOL_MAX_OPS_IDX]; 603 } __rte_cache_aligned; 604 605 /** Array of registered ops structs. */ 606 extern struct rte_mempool_ops_table rte_mempool_ops_table; 607 608 /** 609 * @internal Get the mempool ops struct from its index. 610 * 611 * @param ops_index 612 * The index of the ops struct in the ops struct table. It must be a valid 613 * index: (0 <= idx < num_ops). 614 * @return 615 * The pointer to the ops struct in the table. 616 */ 617 static inline struct rte_mempool_ops * 618 rte_mempool_get_ops(int ops_index) 619 { 620 RTE_VERIFY((ops_index >= 0) && (ops_index < RTE_MEMPOOL_MAX_OPS_IDX)); 621 622 return &rte_mempool_ops_table.ops[ops_index]; 623 } 624 625 /** 626 * @internal Wrapper for mempool_ops alloc callback. 627 * 628 * @param mp 629 * Pointer to the memory pool. 630 * @return 631 * - 0: Success; successfully allocated mempool pool_data. 632 * - <0: Error; code of alloc function. 633 */ 634 int 635 rte_mempool_ops_alloc(struct rte_mempool *mp); 636 637 /** 638 * @internal Wrapper for mempool_ops dequeue callback. 639 * 640 * @param mp 641 * Pointer to the memory pool. 642 * @param obj_table 643 * Pointer to a table of void * pointers (objects). 644 * @param n 645 * Number of objects to get. 646 * @return 647 * - 0: Success; got n objects. 648 * - <0: Error; code of dequeue function. 649 */ 650 static inline int 651 rte_mempool_ops_dequeue_bulk(struct rte_mempool *mp, 652 void **obj_table, unsigned n) 653 { 654 struct rte_mempool_ops *ops; 655 656 ops = rte_mempool_get_ops(mp->ops_index); 657 return ops->dequeue(mp, obj_table, n); 658 } 659 660 /** 661 * @internal Wrapper for mempool_ops dequeue_contig_blocks callback. 662 * 663 * @param[in] mp 664 * Pointer to the memory pool. 665 * @param[out] first_obj_table 666 * Pointer to a table of void * pointers (first objects). 667 * @param[in] n 668 * Number of blocks to get. 669 * @return 670 * - 0: Success; got n objects. 671 * - <0: Error; code of dequeue function. 672 */ 673 static inline int 674 rte_mempool_ops_dequeue_contig_blocks(struct rte_mempool *mp, 675 void **first_obj_table, unsigned int n) 676 { 677 struct rte_mempool_ops *ops; 678 679 ops = rte_mempool_get_ops(mp->ops_index); 680 RTE_ASSERT(ops->dequeue_contig_blocks != NULL); 681 return ops->dequeue_contig_blocks(mp, first_obj_table, n); 682 } 683 684 /** 685 * @internal wrapper for mempool_ops enqueue callback. 686 * 687 * @param mp 688 * Pointer to the memory pool. 689 * @param obj_table 690 * Pointer to a table of void * pointers (objects). 691 * @param n 692 * Number of objects to put. 693 * @return 694 * - 0: Success; n objects supplied. 695 * - <0: Error; code of enqueue function. 696 */ 697 static inline int 698 rte_mempool_ops_enqueue_bulk(struct rte_mempool *mp, void * const *obj_table, 699 unsigned n) 700 { 701 struct rte_mempool_ops *ops; 702 703 ops = rte_mempool_get_ops(mp->ops_index); 704 return ops->enqueue(mp, obj_table, n); 705 } 706 707 /** 708 * @internal wrapper for mempool_ops get_count callback. 709 * 710 * @param mp 711 * Pointer to the memory pool. 712 * @return 713 * The number of available objects in the external pool. 714 */ 715 unsigned 716 rte_mempool_ops_get_count(const struct rte_mempool *mp); 717 718 /** 719 * @internal wrapper for mempool_ops calc_mem_size callback. 720 * API to calculate size of memory required to store specified number of 721 * object. 722 * 723 * @param[in] mp 724 * Pointer to the memory pool. 725 * @param[in] obj_num 726 * Number of objects. 727 * @param[in] pg_shift 728 * LOG2 of the physical pages size. If set to 0, ignore page boundaries. 729 * @param[out] min_chunk_size 730 * Location for minimum size of the memory chunk which may be used to 731 * store memory pool objects. 732 * @param[out] align 733 * Location for required memory chunk alignment. 734 * @return 735 * Required memory size aligned at page boundary. 736 */ 737 ssize_t rte_mempool_ops_calc_mem_size(const struct rte_mempool *mp, 738 uint32_t obj_num, uint32_t pg_shift, 739 size_t *min_chunk_size, size_t *align); 740 741 /** 742 * @internal wrapper for mempool_ops populate callback. 743 * 744 * Populate memory pool objects using provided memory chunk. 745 * 746 * @param[in] mp 747 * A pointer to the mempool structure. 748 * @param[in] max_objs 749 * Maximum number of objects to be populated. 750 * @param[in] vaddr 751 * The virtual address of memory that should be used to store objects. 752 * @param[in] iova 753 * The IO address 754 * @param[in] len 755 * The length of memory in bytes. 756 * @param[in] obj_cb 757 * Callback function to be executed for each populated object. 758 * @param[in] obj_cb_arg 759 * An opaque pointer passed to the callback function. 760 * @return 761 * The number of objects added on success. 762 * On error, no objects are populated and a negative errno is returned. 763 */ 764 int rte_mempool_ops_populate(struct rte_mempool *mp, unsigned int max_objs, 765 void *vaddr, rte_iova_t iova, size_t len, 766 rte_mempool_populate_obj_cb_t *obj_cb, 767 void *obj_cb_arg); 768 769 /** 770 * @warning 771 * @b EXPERIMENTAL: this API may change without prior notice. 772 * 773 * Wrapper for mempool_ops get_info callback. 774 * 775 * @param[in] mp 776 * Pointer to the memory pool. 777 * @param[out] info 778 * Pointer to the rte_mempool_info structure 779 * @return 780 * - 0: Success; The mempool driver supports retrieving supplementary 781 * mempool information 782 * - -ENOTSUP - doesn't support get_info ops (valid case). 783 */ 784 __rte_experimental 785 int rte_mempool_ops_get_info(const struct rte_mempool *mp, 786 struct rte_mempool_info *info); 787 788 /** 789 * @internal wrapper for mempool_ops free callback. 790 * 791 * @param mp 792 * Pointer to the memory pool. 793 */ 794 void 795 rte_mempool_ops_free(struct rte_mempool *mp); 796 797 /** 798 * Set the ops of a mempool. 799 * 800 * This can only be done on a mempool that is not populated, i.e. just after 801 * a call to rte_mempool_create_empty(). 802 * 803 * @param mp 804 * Pointer to the memory pool. 805 * @param name 806 * Name of the ops structure to use for this mempool. 807 * @param pool_config 808 * Opaque data that can be passed by the application to the ops functions. 809 * @return 810 * - 0: Success; the mempool is now using the requested ops functions. 811 * - -EINVAL - Invalid ops struct name provided. 812 * - -EEXIST - mempool already has an ops struct assigned. 813 */ 814 int 815 rte_mempool_set_ops_byname(struct rte_mempool *mp, const char *name, 816 void *pool_config); 817 818 /** 819 * Register mempool operations. 820 * 821 * @param ops 822 * Pointer to an ops structure to register. 823 * @return 824 * - >=0: Success; return the index of the ops struct in the table. 825 * - -EINVAL - some missing callbacks while registering ops struct. 826 * - -ENOSPC - the maximum number of ops structs has been reached. 827 */ 828 int rte_mempool_register_ops(const struct rte_mempool_ops *ops); 829 830 /** 831 * Macro to statically register the ops of a mempool handler. 832 * Note that the rte_mempool_register_ops fails silently here when 833 * more than RTE_MEMPOOL_MAX_OPS_IDX is registered. 834 */ 835 #define MEMPOOL_REGISTER_OPS(ops) \ 836 void mp_hdlr_init_##ops(void); \ 837 void __attribute__((constructor, used)) mp_hdlr_init_##ops(void)\ 838 { \ 839 rte_mempool_register_ops(&ops); \ 840 } 841 842 /** 843 * An object callback function for mempool. 844 * 845 * Used by rte_mempool_create() and rte_mempool_obj_iter(). 846 */ 847 typedef void (rte_mempool_obj_cb_t)(struct rte_mempool *mp, 848 void *opaque, void *obj, unsigned obj_idx); 849 typedef rte_mempool_obj_cb_t rte_mempool_obj_ctor_t; /* compat */ 850 851 /** 852 * A memory callback function for mempool. 853 * 854 * Used by rte_mempool_mem_iter(). 855 */ 856 typedef void (rte_mempool_mem_cb_t)(struct rte_mempool *mp, 857 void *opaque, struct rte_mempool_memhdr *memhdr, 858 unsigned mem_idx); 859 860 /** 861 * A mempool constructor callback function. 862 * 863 * Arguments are the mempool and the opaque pointer given by the user in 864 * rte_mempool_create(). 865 */ 866 typedef void (rte_mempool_ctor_t)(struct rte_mempool *, void *); 867 868 /** 869 * Create a new mempool named *name* in memory. 870 * 871 * This function uses ``rte_memzone_reserve()`` to allocate memory. The 872 * pool contains n elements of elt_size. Its size is set to n. 873 * 874 * @param name 875 * The name of the mempool. 876 * @param n 877 * The number of elements in the mempool. The optimum size (in terms of 878 * memory usage) for a mempool is when n is a power of two minus one: 879 * n = (2^q - 1). 880 * @param elt_size 881 * The size of each element. 882 * @param cache_size 883 * If cache_size is non-zero, the rte_mempool library will try to 884 * limit the accesses to the common lockless pool, by maintaining a 885 * per-lcore object cache. This argument must be lower or equal to 886 * CONFIG_RTE_MEMPOOL_CACHE_MAX_SIZE and n / 1.5. It is advised to choose 887 * cache_size to have "n modulo cache_size == 0": if this is 888 * not the case, some elements will always stay in the pool and will 889 * never be used. The access to the per-lcore table is of course 890 * faster than the multi-producer/consumer pool. The cache can be 891 * disabled if the cache_size argument is set to 0; it can be useful to 892 * avoid losing objects in cache. 893 * @param private_data_size 894 * The size of the private data appended after the mempool 895 * structure. This is useful for storing some private data after the 896 * mempool structure, as is done for rte_mbuf_pool for example. 897 * @param mp_init 898 * A function pointer that is called for initialization of the pool, 899 * before object initialization. The user can initialize the private 900 * data in this function if needed. This parameter can be NULL if 901 * not needed. 902 * @param mp_init_arg 903 * An opaque pointer to data that can be used in the mempool 904 * constructor function. 905 * @param obj_init 906 * A function pointer that is called for each object at 907 * initialization of the pool. The user can set some meta data in 908 * objects if needed. This parameter can be NULL if not needed. 909 * The obj_init() function takes the mempool pointer, the init_arg, 910 * the object pointer and the object number as parameters. 911 * @param obj_init_arg 912 * An opaque pointer to data that can be used as an argument for 913 * each call to the object constructor function. 914 * @param socket_id 915 * The *socket_id* argument is the socket identifier in the case of 916 * NUMA. The value can be *SOCKET_ID_ANY* if there is no NUMA 917 * constraint for the reserved zone. 918 * @param flags 919 * The *flags* arguments is an OR of following flags: 920 * - MEMPOOL_F_NO_SPREAD: By default, objects addresses are spread 921 * between channels in RAM: the pool allocator will add padding 922 * between objects depending on the hardware configuration. See 923 * Memory alignment constraints for details. If this flag is set, 924 * the allocator will just align them to a cache line. 925 * - MEMPOOL_F_NO_CACHE_ALIGN: By default, the returned objects are 926 * cache-aligned. This flag removes this constraint, and no 927 * padding will be present between objects. This flag implies 928 * MEMPOOL_F_NO_SPREAD. 929 * - MEMPOOL_F_SP_PUT: If this flag is set, the default behavior 930 * when using rte_mempool_put() or rte_mempool_put_bulk() is 931 * "single-producer". Otherwise, it is "multi-producers". 932 * - MEMPOOL_F_SC_GET: If this flag is set, the default behavior 933 * when using rte_mempool_get() or rte_mempool_get_bulk() is 934 * "single-consumer". Otherwise, it is "multi-consumers". 935 * - MEMPOOL_F_NO_IOVA_CONTIG: If set, allocated objects won't 936 * necessarily be contiguous in IO memory. 937 * @return 938 * The pointer to the new allocated mempool, on success. NULL on error 939 * with rte_errno set appropriately. Possible rte_errno values include: 940 * - E_RTE_NO_CONFIG - function could not get pointer to rte_config structure 941 * - E_RTE_SECONDARY - function was called from a secondary process instance 942 * - EINVAL - cache size provided is too large 943 * - ENOSPC - the maximum number of memzones has already been allocated 944 * - EEXIST - a memzone with the same name already exists 945 * - ENOMEM - no appropriate memory area found in which to create memzone 946 */ 947 struct rte_mempool * 948 rte_mempool_create(const char *name, unsigned n, unsigned elt_size, 949 unsigned cache_size, unsigned private_data_size, 950 rte_mempool_ctor_t *mp_init, void *mp_init_arg, 951 rte_mempool_obj_cb_t *obj_init, void *obj_init_arg, 952 int socket_id, unsigned flags); 953 954 /** 955 * Create an empty mempool 956 * 957 * The mempool is allocated and initialized, but it is not populated: no 958 * memory is allocated for the mempool elements. The user has to call 959 * rte_mempool_populate_*() to add memory chunks to the pool. Once 960 * populated, the user may also want to initialize each object with 961 * rte_mempool_obj_iter(). 962 * 963 * @param name 964 * The name of the mempool. 965 * @param n 966 * The maximum number of elements that can be added in the mempool. 967 * The optimum size (in terms of memory usage) for a mempool is when n 968 * is a power of two minus one: n = (2^q - 1). 969 * @param elt_size 970 * The size of each element. 971 * @param cache_size 972 * Size of the cache. See rte_mempool_create() for details. 973 * @param private_data_size 974 * The size of the private data appended after the mempool 975 * structure. This is useful for storing some private data after the 976 * mempool structure, as is done for rte_mbuf_pool for example. 977 * @param socket_id 978 * The *socket_id* argument is the socket identifier in the case of 979 * NUMA. The value can be *SOCKET_ID_ANY* if there is no NUMA 980 * constraint for the reserved zone. 981 * @param flags 982 * Flags controlling the behavior of the mempool. See 983 * rte_mempool_create() for details. 984 * @return 985 * The pointer to the new allocated mempool, on success. NULL on error 986 * with rte_errno set appropriately. See rte_mempool_create() for details. 987 */ 988 struct rte_mempool * 989 rte_mempool_create_empty(const char *name, unsigned n, unsigned elt_size, 990 unsigned cache_size, unsigned private_data_size, 991 int socket_id, unsigned flags); 992 /** 993 * Free a mempool 994 * 995 * Unlink the mempool from global list, free the memory chunks, and all 996 * memory referenced by the mempool. The objects must not be used by 997 * other cores as they will be freed. 998 * 999 * @param mp 1000 * A pointer to the mempool structure. 1001 */ 1002 void 1003 rte_mempool_free(struct rte_mempool *mp); 1004 1005 /** 1006 * Add physically contiguous memory for objects in the pool at init 1007 * 1008 * Add a virtually and physically contiguous memory chunk in the pool 1009 * where objects can be instantiated. 1010 * 1011 * If the given IO address is unknown (iova = RTE_BAD_IOVA), 1012 * the chunk doesn't need to be physically contiguous (only virtually), 1013 * and allocated objects may span two pages. 1014 * 1015 * @param mp 1016 * A pointer to the mempool structure. 1017 * @param vaddr 1018 * The virtual address of memory that should be used to store objects. 1019 * @param iova 1020 * The IO address 1021 * @param len 1022 * The length of memory in bytes. 1023 * @param free_cb 1024 * The callback used to free this chunk when destroying the mempool. 1025 * @param opaque 1026 * An opaque argument passed to free_cb. 1027 * @return 1028 * The number of objects added on success. 1029 * On error, the chunk is not added in the memory list of the 1030 * mempool and a negative errno is returned. 1031 */ 1032 int rte_mempool_populate_iova(struct rte_mempool *mp, char *vaddr, 1033 rte_iova_t iova, size_t len, rte_mempool_memchunk_free_cb_t *free_cb, 1034 void *opaque); 1035 1036 /** 1037 * Add virtually contiguous memory for objects in the pool at init 1038 * 1039 * Add a virtually contiguous memory chunk in the pool where objects can 1040 * be instantiated. 1041 * 1042 * @param mp 1043 * A pointer to the mempool structure. 1044 * @param addr 1045 * The virtual address of memory that should be used to store objects. 1046 * Must be page-aligned. 1047 * @param len 1048 * The length of memory in bytes. Must be page-aligned. 1049 * @param pg_sz 1050 * The size of memory pages in this virtual area. 1051 * @param free_cb 1052 * The callback used to free this chunk when destroying the mempool. 1053 * @param opaque 1054 * An opaque argument passed to free_cb. 1055 * @return 1056 * The number of objects added on success. 1057 * On error, the chunk is not added in the memory list of the 1058 * mempool and a negative errno is returned. 1059 */ 1060 int 1061 rte_mempool_populate_virt(struct rte_mempool *mp, char *addr, 1062 size_t len, size_t pg_sz, rte_mempool_memchunk_free_cb_t *free_cb, 1063 void *opaque); 1064 1065 /** 1066 * Add memory for objects in the pool at init 1067 * 1068 * This is the default function used by rte_mempool_create() to populate 1069 * the mempool. It adds memory allocated using rte_memzone_reserve(). 1070 * 1071 * @param mp 1072 * A pointer to the mempool structure. 1073 * @return 1074 * The number of objects added on success. 1075 * On error, the chunk is not added in the memory list of the 1076 * mempool and a negative errno is returned. 1077 */ 1078 int rte_mempool_populate_default(struct rte_mempool *mp); 1079 1080 /** 1081 * Add memory from anonymous mapping for objects in the pool at init 1082 * 1083 * This function mmap an anonymous memory zone that is locked in 1084 * memory to store the objects of the mempool. 1085 * 1086 * @param mp 1087 * A pointer to the mempool structure. 1088 * @return 1089 * The number of objects added on success. 1090 * On error, the chunk is not added in the memory list of the 1091 * mempool and a negative errno is returned. 1092 */ 1093 int rte_mempool_populate_anon(struct rte_mempool *mp); 1094 1095 /** 1096 * Call a function for each mempool element 1097 * 1098 * Iterate across all objects attached to a rte_mempool and call the 1099 * callback function on it. 1100 * 1101 * @param mp 1102 * A pointer to an initialized mempool. 1103 * @param obj_cb 1104 * A function pointer that is called for each object. 1105 * @param obj_cb_arg 1106 * An opaque pointer passed to the callback function. 1107 * @return 1108 * Number of objects iterated. 1109 */ 1110 uint32_t rte_mempool_obj_iter(struct rte_mempool *mp, 1111 rte_mempool_obj_cb_t *obj_cb, void *obj_cb_arg); 1112 1113 /** 1114 * Call a function for each mempool memory chunk 1115 * 1116 * Iterate across all memory chunks attached to a rte_mempool and call 1117 * the callback function on it. 1118 * 1119 * @param mp 1120 * A pointer to an initialized mempool. 1121 * @param mem_cb 1122 * A function pointer that is called for each memory chunk. 1123 * @param mem_cb_arg 1124 * An opaque pointer passed to the callback function. 1125 * @return 1126 * Number of memory chunks iterated. 1127 */ 1128 uint32_t rte_mempool_mem_iter(struct rte_mempool *mp, 1129 rte_mempool_mem_cb_t *mem_cb, void *mem_cb_arg); 1130 1131 /** 1132 * Dump the status of the mempool to a file. 1133 * 1134 * @param f 1135 * A pointer to a file for output 1136 * @param mp 1137 * A pointer to the mempool structure. 1138 */ 1139 void rte_mempool_dump(FILE *f, struct rte_mempool *mp); 1140 1141 /** 1142 * Create a user-owned mempool cache. 1143 * 1144 * This can be used by non-EAL threads to enable caching when they 1145 * interact with a mempool. 1146 * 1147 * @param size 1148 * The size of the mempool cache. See rte_mempool_create()'s cache_size 1149 * parameter description for more information. The same limits and 1150 * considerations apply here too. 1151 * @param socket_id 1152 * The socket identifier in the case of NUMA. The value can be 1153 * SOCKET_ID_ANY if there is no NUMA constraint for the reserved zone. 1154 */ 1155 struct rte_mempool_cache * 1156 rte_mempool_cache_create(uint32_t size, int socket_id); 1157 1158 /** 1159 * Free a user-owned mempool cache. 1160 * 1161 * @param cache 1162 * A pointer to the mempool cache. 1163 */ 1164 void 1165 rte_mempool_cache_free(struct rte_mempool_cache *cache); 1166 1167 /** 1168 * Get a pointer to the per-lcore default mempool cache. 1169 * 1170 * @param mp 1171 * A pointer to the mempool structure. 1172 * @param lcore_id 1173 * The logical core id. 1174 * @return 1175 * A pointer to the mempool cache or NULL if disabled or non-EAL thread. 1176 */ 1177 static __rte_always_inline struct rte_mempool_cache * 1178 rte_mempool_default_cache(struct rte_mempool *mp, unsigned lcore_id) 1179 { 1180 if (mp->cache_size == 0) 1181 return NULL; 1182 1183 if (lcore_id >= RTE_MAX_LCORE) 1184 return NULL; 1185 1186 return &mp->local_cache[lcore_id]; 1187 } 1188 1189 /** 1190 * Flush a user-owned mempool cache to the specified mempool. 1191 * 1192 * @param cache 1193 * A pointer to the mempool cache. 1194 * @param mp 1195 * A pointer to the mempool. 1196 */ 1197 static __rte_always_inline void 1198 rte_mempool_cache_flush(struct rte_mempool_cache *cache, 1199 struct rte_mempool *mp) 1200 { 1201 if (cache == NULL) 1202 cache = rte_mempool_default_cache(mp, rte_lcore_id()); 1203 if (cache == NULL || cache->len == 0) 1204 return; 1205 rte_mempool_ops_enqueue_bulk(mp, cache->objs, cache->len); 1206 cache->len = 0; 1207 } 1208 1209 /** 1210 * @internal Put several objects back in the mempool; used internally. 1211 * @param mp 1212 * A pointer to the mempool structure. 1213 * @param obj_table 1214 * A pointer to a table of void * pointers (objects). 1215 * @param n 1216 * The number of objects to store back in the mempool, must be strictly 1217 * positive. 1218 * @param cache 1219 * A pointer to a mempool cache structure. May be NULL if not needed. 1220 */ 1221 static __rte_always_inline void 1222 __mempool_generic_put(struct rte_mempool *mp, void * const *obj_table, 1223 unsigned int n, struct rte_mempool_cache *cache) 1224 { 1225 void **cache_objs; 1226 1227 /* increment stat now, adding in mempool always success */ 1228 __MEMPOOL_STAT_ADD(mp, put, n); 1229 1230 /* No cache provided or if put would overflow mem allocated for cache */ 1231 if (unlikely(cache == NULL || n > RTE_MEMPOOL_CACHE_MAX_SIZE)) 1232 goto ring_enqueue; 1233 1234 cache_objs = &cache->objs[cache->len]; 1235 1236 /* 1237 * The cache follows the following algorithm 1238 * 1. Add the objects to the cache 1239 * 2. Anything greater than the cache min value (if it crosses the 1240 * cache flush threshold) is flushed to the ring. 1241 */ 1242 1243 /* Add elements back into the cache */ 1244 rte_memcpy(&cache_objs[0], obj_table, sizeof(void *) * n); 1245 1246 cache->len += n; 1247 1248 if (cache->len >= cache->flushthresh) { 1249 rte_mempool_ops_enqueue_bulk(mp, &cache->objs[cache->size], 1250 cache->len - cache->size); 1251 cache->len = cache->size; 1252 } 1253 1254 return; 1255 1256 ring_enqueue: 1257 1258 /* push remaining objects in ring */ 1259 #ifdef RTE_LIBRTE_MEMPOOL_DEBUG 1260 if (rte_mempool_ops_enqueue_bulk(mp, obj_table, n) < 0) 1261 rte_panic("cannot put objects in mempool\n"); 1262 #else 1263 rte_mempool_ops_enqueue_bulk(mp, obj_table, n); 1264 #endif 1265 } 1266 1267 1268 /** 1269 * Put several objects back in the mempool. 1270 * 1271 * @param mp 1272 * A pointer to the mempool structure. 1273 * @param obj_table 1274 * A pointer to a table of void * pointers (objects). 1275 * @param n 1276 * The number of objects to add in the mempool from the obj_table. 1277 * @param cache 1278 * A pointer to a mempool cache structure. May be NULL if not needed. 1279 */ 1280 static __rte_always_inline void 1281 rte_mempool_generic_put(struct rte_mempool *mp, void * const *obj_table, 1282 unsigned int n, struct rte_mempool_cache *cache) 1283 { 1284 __mempool_check_cookies(mp, obj_table, n, 0); 1285 __mempool_generic_put(mp, obj_table, n, cache); 1286 } 1287 1288 /** 1289 * Put several objects back in the mempool. 1290 * 1291 * This function calls the multi-producer or the single-producer 1292 * version depending on the default behavior that was specified at 1293 * mempool creation time (see flags). 1294 * 1295 * @param mp 1296 * A pointer to the mempool structure. 1297 * @param obj_table 1298 * A pointer to a table of void * pointers (objects). 1299 * @param n 1300 * The number of objects to add in the mempool from obj_table. 1301 */ 1302 static __rte_always_inline void 1303 rte_mempool_put_bulk(struct rte_mempool *mp, void * const *obj_table, 1304 unsigned int n) 1305 { 1306 struct rte_mempool_cache *cache; 1307 cache = rte_mempool_default_cache(mp, rte_lcore_id()); 1308 rte_mempool_generic_put(mp, obj_table, n, cache); 1309 } 1310 1311 /** 1312 * Put one object back in the mempool. 1313 * 1314 * This function calls the multi-producer or the single-producer 1315 * version depending on the default behavior that was specified at 1316 * mempool creation time (see flags). 1317 * 1318 * @param mp 1319 * A pointer to the mempool structure. 1320 * @param obj 1321 * A pointer to the object to be added. 1322 */ 1323 static __rte_always_inline void 1324 rte_mempool_put(struct rte_mempool *mp, void *obj) 1325 { 1326 rte_mempool_put_bulk(mp, &obj, 1); 1327 } 1328 1329 /** 1330 * @internal Get several objects from the mempool; used internally. 1331 * @param mp 1332 * A pointer to the mempool structure. 1333 * @param obj_table 1334 * A pointer to a table of void * pointers (objects). 1335 * @param n 1336 * The number of objects to get, must be strictly positive. 1337 * @param cache 1338 * A pointer to a mempool cache structure. May be NULL if not needed. 1339 * @return 1340 * - >=0: Success; number of objects supplied. 1341 * - <0: Error; code of ring dequeue function. 1342 */ 1343 static __rte_always_inline int 1344 __mempool_generic_get(struct rte_mempool *mp, void **obj_table, 1345 unsigned int n, struct rte_mempool_cache *cache) 1346 { 1347 int ret; 1348 uint32_t index, len; 1349 void **cache_objs; 1350 1351 /* No cache provided or cannot be satisfied from cache */ 1352 if (unlikely(cache == NULL || n >= cache->size)) 1353 goto ring_dequeue; 1354 1355 cache_objs = cache->objs; 1356 1357 /* Can this be satisfied from the cache? */ 1358 if (cache->len < n) { 1359 /* No. Backfill the cache first, and then fill from it */ 1360 uint32_t req = n + (cache->size - cache->len); 1361 1362 /* How many do we require i.e. number to fill the cache + the request */ 1363 ret = rte_mempool_ops_dequeue_bulk(mp, 1364 &cache->objs[cache->len], req); 1365 if (unlikely(ret < 0)) { 1366 /* 1367 * In the off chance that we are buffer constrained, 1368 * where we are not able to allocate cache + n, go to 1369 * the ring directly. If that fails, we are truly out of 1370 * buffers. 1371 */ 1372 goto ring_dequeue; 1373 } 1374 1375 cache->len += req; 1376 } 1377 1378 /* Now fill in the response ... */ 1379 for (index = 0, len = cache->len - 1; index < n; ++index, len--, obj_table++) 1380 *obj_table = cache_objs[len]; 1381 1382 cache->len -= n; 1383 1384 __MEMPOOL_STAT_ADD(mp, get_success, n); 1385 1386 return 0; 1387 1388 ring_dequeue: 1389 1390 /* get remaining objects from ring */ 1391 ret = rte_mempool_ops_dequeue_bulk(mp, obj_table, n); 1392 1393 if (ret < 0) 1394 __MEMPOOL_STAT_ADD(mp, get_fail, n); 1395 else 1396 __MEMPOOL_STAT_ADD(mp, get_success, n); 1397 1398 return ret; 1399 } 1400 1401 /** 1402 * Get several objects from the mempool. 1403 * 1404 * If cache is enabled, objects will be retrieved first from cache, 1405 * subsequently from the common pool. Note that it can return -ENOENT when 1406 * the local cache and common pool are empty, even if cache from other 1407 * lcores are full. 1408 * 1409 * @param mp 1410 * A pointer to the mempool structure. 1411 * @param obj_table 1412 * A pointer to a table of void * pointers (objects) that will be filled. 1413 * @param n 1414 * The number of objects to get from mempool to obj_table. 1415 * @param cache 1416 * A pointer to a mempool cache structure. May be NULL if not needed. 1417 * @return 1418 * - 0: Success; objects taken. 1419 * - -ENOENT: Not enough entries in the mempool; no object is retrieved. 1420 */ 1421 static __rte_always_inline int 1422 rte_mempool_generic_get(struct rte_mempool *mp, void **obj_table, 1423 unsigned int n, struct rte_mempool_cache *cache) 1424 { 1425 int ret; 1426 ret = __mempool_generic_get(mp, obj_table, n, cache); 1427 if (ret == 0) 1428 __mempool_check_cookies(mp, obj_table, n, 1); 1429 return ret; 1430 } 1431 1432 /** 1433 * Get several objects from the mempool. 1434 * 1435 * This function calls the multi-consumers or the single-consumer 1436 * version, depending on the default behaviour that was specified at 1437 * mempool creation time (see flags). 1438 * 1439 * If cache is enabled, objects will be retrieved first from cache, 1440 * subsequently from the common pool. Note that it can return -ENOENT when 1441 * the local cache and common pool are empty, even if cache from other 1442 * lcores are full. 1443 * 1444 * @param mp 1445 * A pointer to the mempool structure. 1446 * @param obj_table 1447 * A pointer to a table of void * pointers (objects) that will be filled. 1448 * @param n 1449 * The number of objects to get from the mempool to obj_table. 1450 * @return 1451 * - 0: Success; objects taken 1452 * - -ENOENT: Not enough entries in the mempool; no object is retrieved. 1453 */ 1454 static __rte_always_inline int 1455 rte_mempool_get_bulk(struct rte_mempool *mp, void **obj_table, unsigned int n) 1456 { 1457 struct rte_mempool_cache *cache; 1458 cache = rte_mempool_default_cache(mp, rte_lcore_id()); 1459 return rte_mempool_generic_get(mp, obj_table, n, cache); 1460 } 1461 1462 /** 1463 * Get one object from the mempool. 1464 * 1465 * This function calls the multi-consumers or the single-consumer 1466 * version, depending on the default behavior that was specified at 1467 * mempool creation (see flags). 1468 * 1469 * If cache is enabled, objects will be retrieved first from cache, 1470 * subsequently from the common pool. Note that it can return -ENOENT when 1471 * the local cache and common pool are empty, even if cache from other 1472 * lcores are full. 1473 * 1474 * @param mp 1475 * A pointer to the mempool structure. 1476 * @param obj_p 1477 * A pointer to a void * pointer (object) that will be filled. 1478 * @return 1479 * - 0: Success; objects taken. 1480 * - -ENOENT: Not enough entries in the mempool; no object is retrieved. 1481 */ 1482 static __rte_always_inline int 1483 rte_mempool_get(struct rte_mempool *mp, void **obj_p) 1484 { 1485 return rte_mempool_get_bulk(mp, obj_p, 1); 1486 } 1487 1488 /** 1489 * @warning 1490 * @b EXPERIMENTAL: this API may change without prior notice. 1491 * 1492 * Get a contiguous blocks of objects from the mempool. 1493 * 1494 * If cache is enabled, consider to flush it first, to reuse objects 1495 * as soon as possible. 1496 * 1497 * The application should check that the driver supports the operation 1498 * by calling rte_mempool_ops_get_info() and checking that `contig_block_size` 1499 * is not zero. 1500 * 1501 * @param mp 1502 * A pointer to the mempool structure. 1503 * @param first_obj_table 1504 * A pointer to a pointer to the first object in each block. 1505 * @param n 1506 * The number of blocks to get from mempool. 1507 * @return 1508 * - 0: Success; blocks taken. 1509 * - -ENOBUFS: Not enough entries in the mempool; no object is retrieved. 1510 * - -EOPNOTSUPP: The mempool driver does not support block dequeue 1511 */ 1512 static __rte_always_inline int 1513 __rte_experimental 1514 rte_mempool_get_contig_blocks(struct rte_mempool *mp, 1515 void **first_obj_table, unsigned int n) 1516 { 1517 int ret; 1518 1519 ret = rte_mempool_ops_dequeue_contig_blocks(mp, first_obj_table, n); 1520 if (ret == 0) { 1521 __MEMPOOL_CONTIG_BLOCKS_STAT_ADD(mp, get_success, n); 1522 __mempool_contig_blocks_check_cookies(mp, first_obj_table, n, 1523 1); 1524 } else { 1525 __MEMPOOL_CONTIG_BLOCKS_STAT_ADD(mp, get_fail, n); 1526 } 1527 1528 return ret; 1529 } 1530 1531 /** 1532 * Return the number of entries in the mempool. 1533 * 1534 * When cache is enabled, this function has to browse the length of 1535 * all lcores, so it should not be used in a data path, but only for 1536 * debug purposes. User-owned mempool caches are not accounted for. 1537 * 1538 * @param mp 1539 * A pointer to the mempool structure. 1540 * @return 1541 * The number of entries in the mempool. 1542 */ 1543 unsigned int rte_mempool_avail_count(const struct rte_mempool *mp); 1544 1545 /** 1546 * Return the number of elements which have been allocated from the mempool 1547 * 1548 * When cache is enabled, this function has to browse the length of 1549 * all lcores, so it should not be used in a data path, but only for 1550 * debug purposes. 1551 * 1552 * @param mp 1553 * A pointer to the mempool structure. 1554 * @return 1555 * The number of free entries in the mempool. 1556 */ 1557 unsigned int 1558 rte_mempool_in_use_count(const struct rte_mempool *mp); 1559 1560 /** 1561 * Test if the mempool is full. 1562 * 1563 * When cache is enabled, this function has to browse the length of all 1564 * lcores, so it should not be used in a data path, but only for debug 1565 * purposes. User-owned mempool caches are not accounted for. 1566 * 1567 * @param mp 1568 * A pointer to the mempool structure. 1569 * @return 1570 * - 1: The mempool is full. 1571 * - 0: The mempool is not full. 1572 */ 1573 static inline int 1574 rte_mempool_full(const struct rte_mempool *mp) 1575 { 1576 return !!(rte_mempool_avail_count(mp) == mp->size); 1577 } 1578 1579 /** 1580 * Test if the mempool is empty. 1581 * 1582 * When cache is enabled, this function has to browse the length of all 1583 * lcores, so it should not be used in a data path, but only for debug 1584 * purposes. User-owned mempool caches are not accounted for. 1585 * 1586 * @param mp 1587 * A pointer to the mempool structure. 1588 * @return 1589 * - 1: The mempool is empty. 1590 * - 0: The mempool is not empty. 1591 */ 1592 static inline int 1593 rte_mempool_empty(const struct rte_mempool *mp) 1594 { 1595 return !!(rte_mempool_avail_count(mp) == 0); 1596 } 1597 1598 /** 1599 * Return the IO address of elt, which is an element of the pool mp. 1600 * 1601 * @param elt 1602 * A pointer (virtual address) to the element of the pool. 1603 * @return 1604 * The IO address of the elt element. 1605 * If the mempool was created with MEMPOOL_F_NO_IOVA_CONTIG, the 1606 * returned value is RTE_BAD_IOVA. 1607 */ 1608 static inline rte_iova_t 1609 rte_mempool_virt2iova(const void *elt) 1610 { 1611 const struct rte_mempool_objhdr *hdr; 1612 hdr = (const struct rte_mempool_objhdr *)RTE_PTR_SUB(elt, 1613 sizeof(*hdr)); 1614 return hdr->iova; 1615 } 1616 1617 /** 1618 * Check the consistency of mempool objects. 1619 * 1620 * Verify the coherency of fields in the mempool structure. Also check 1621 * that the cookies of mempool objects (even the ones that are not 1622 * present in pool) have a correct value. If not, a panic will occur. 1623 * 1624 * @param mp 1625 * A pointer to the mempool structure. 1626 */ 1627 void rte_mempool_audit(struct rte_mempool *mp); 1628 1629 /** 1630 * Return a pointer to the private data in an mempool structure. 1631 * 1632 * @param mp 1633 * A pointer to the mempool structure. 1634 * @return 1635 * A pointer to the private data. 1636 */ 1637 static inline void *rte_mempool_get_priv(struct rte_mempool *mp) 1638 { 1639 return (char *)mp + 1640 MEMPOOL_HEADER_SIZE(mp, mp->cache_size); 1641 } 1642 1643 /** 1644 * Dump the status of all mempools on the console 1645 * 1646 * @param f 1647 * A pointer to a file for output 1648 */ 1649 void rte_mempool_list_dump(FILE *f); 1650 1651 /** 1652 * Search a mempool from its name 1653 * 1654 * @param name 1655 * The name of the mempool. 1656 * @return 1657 * The pointer to the mempool matching the name, or NULL if not found. 1658 * NULL on error 1659 * with rte_errno set appropriately. Possible rte_errno values include: 1660 * - ENOENT - required entry not available to return. 1661 * 1662 */ 1663 struct rte_mempool *rte_mempool_lookup(const char *name); 1664 1665 /** 1666 * Get the header, trailer and total size of a mempool element. 1667 * 1668 * Given a desired size of the mempool element and mempool flags, 1669 * calculates header, trailer, body and total sizes of the mempool object. 1670 * 1671 * @param elt_size 1672 * The size of each element, without header and trailer. 1673 * @param flags 1674 * The flags used for the mempool creation. 1675 * Consult rte_mempool_create() for more information about possible values. 1676 * The size of each element. 1677 * @param sz 1678 * The calculated detailed size the mempool object. May be NULL. 1679 * @return 1680 * Total size of the mempool object. 1681 */ 1682 uint32_t rte_mempool_calc_obj_size(uint32_t elt_size, uint32_t flags, 1683 struct rte_mempool_objsz *sz); 1684 1685 /** 1686 * Walk list of all memory pools 1687 * 1688 * @param func 1689 * Iterator function 1690 * @param arg 1691 * Argument passed to iterator 1692 */ 1693 void rte_mempool_walk(void (*func)(struct rte_mempool *, void *arg), 1694 void *arg); 1695 1696 #ifdef __cplusplus 1697 } 1698 #endif 1699 1700 #endif /* _RTE_MEMPOOL_H_ */ 1701