1 /* SPDX-License-Identifier: GPL-2.0 2 * 3 * page_pool.c 4 * Author: Jesper Dangaard Brouer <netoptimizer@brouer.com> 5 * Copyright (C) 2016 Red Hat, Inc. 6 */ 7 8 #include <linux/error-injection.h> 9 #include <linux/types.h> 10 #include <linux/kernel.h> 11 #include <linux/slab.h> 12 #include <linux/device.h> 13 14 #include <net/netdev_lock.h> 15 #include <net/netdev_rx_queue.h> 16 #include <net/page_pool/helpers.h> 17 #include <net/page_pool/memory_provider.h> 18 #include <net/xdp.h> 19 20 #include <linux/dma-direction.h> 21 #include <linux/dma-mapping.h> 22 #include <linux/page-flags.h> 23 #include <linux/mm.h> /* for put_page() */ 24 #include <linux/poison.h> 25 #include <linux/ethtool.h> 26 #include <linux/netdevice.h> 27 28 #include <trace/events/page_pool.h> 29 30 #include "dev.h" 31 #include "mp_dmabuf_devmem.h" 32 #include "netmem_priv.h" 33 #include "page_pool_priv.h" 34 35 DEFINE_STATIC_KEY_FALSE(page_pool_mem_providers); 36 37 #define DEFER_TIME (msecs_to_jiffies(1000)) 38 #define DEFER_WARN_INTERVAL (60 * HZ) 39 40 #define BIAS_MAX (LONG_MAX >> 1) 41 42 #ifdef CONFIG_PAGE_POOL_STATS 43 static DEFINE_PER_CPU(struct page_pool_recycle_stats, pp_system_recycle_stats); 44 45 /* alloc_stat_inc is intended to be used in softirq context */ 46 #define alloc_stat_inc(pool, __stat) (pool->alloc_stats.__stat++) 47 /* recycle_stat_inc is safe to use when preemption is possible. */ 48 #define recycle_stat_inc(pool, __stat) \ 49 do { \ 50 struct page_pool_recycle_stats __percpu *s = pool->recycle_stats; \ 51 this_cpu_inc(s->__stat); \ 52 } while (0) 53 54 #define recycle_stat_add(pool, __stat, val) \ 55 do { \ 56 struct page_pool_recycle_stats __percpu *s = pool->recycle_stats; \ 57 this_cpu_add(s->__stat, val); \ 58 } while (0) 59 60 static const char pp_stats[][ETH_GSTRING_LEN] = { 61 "rx_pp_alloc_fast", 62 "rx_pp_alloc_slow", 63 "rx_pp_alloc_slow_ho", 64 "rx_pp_alloc_empty", 65 "rx_pp_alloc_refill", 66 "rx_pp_alloc_waive", 67 "rx_pp_recycle_cached", 68 "rx_pp_recycle_cache_full", 69 "rx_pp_recycle_ring", 70 "rx_pp_recycle_ring_full", 71 "rx_pp_recycle_released_ref", 72 }; 73 74 /** 75 * page_pool_get_stats() - fetch page pool stats 76 * @pool: pool from which page was allocated 77 * @stats: struct page_pool_stats to fill in 78 * 79 * Retrieve statistics about the page_pool. This API is only available 80 * if the kernel has been configured with ``CONFIG_PAGE_POOL_STATS=y``. 81 * A pointer to a caller allocated struct page_pool_stats structure 82 * is passed to this API which is filled in. The caller can then report 83 * those stats to the user (perhaps via ethtool, debugfs, etc.). 84 */ 85 bool page_pool_get_stats(const struct page_pool *pool, 86 struct page_pool_stats *stats) 87 { 88 int cpu = 0; 89 90 if (!stats) 91 return false; 92 93 /* The caller is responsible to initialize stats. */ 94 stats->alloc_stats.fast += pool->alloc_stats.fast; 95 stats->alloc_stats.slow += pool->alloc_stats.slow; 96 stats->alloc_stats.slow_high_order += pool->alloc_stats.slow_high_order; 97 stats->alloc_stats.empty += pool->alloc_stats.empty; 98 stats->alloc_stats.refill += pool->alloc_stats.refill; 99 stats->alloc_stats.waive += pool->alloc_stats.waive; 100 101 for_each_possible_cpu(cpu) { 102 const struct page_pool_recycle_stats *pcpu = 103 per_cpu_ptr(pool->recycle_stats, cpu); 104 105 stats->recycle_stats.cached += pcpu->cached; 106 stats->recycle_stats.cache_full += pcpu->cache_full; 107 stats->recycle_stats.ring += pcpu->ring; 108 stats->recycle_stats.ring_full += pcpu->ring_full; 109 stats->recycle_stats.released_refcnt += pcpu->released_refcnt; 110 } 111 112 return true; 113 } 114 EXPORT_SYMBOL(page_pool_get_stats); 115 116 u8 *page_pool_ethtool_stats_get_strings(u8 *data) 117 { 118 int i; 119 120 for (i = 0; i < ARRAY_SIZE(pp_stats); i++) { 121 memcpy(data, pp_stats[i], ETH_GSTRING_LEN); 122 data += ETH_GSTRING_LEN; 123 } 124 125 return data; 126 } 127 EXPORT_SYMBOL(page_pool_ethtool_stats_get_strings); 128 129 int page_pool_ethtool_stats_get_count(void) 130 { 131 return ARRAY_SIZE(pp_stats); 132 } 133 EXPORT_SYMBOL(page_pool_ethtool_stats_get_count); 134 135 u64 *page_pool_ethtool_stats_get(u64 *data, const void *stats) 136 { 137 const struct page_pool_stats *pool_stats = stats; 138 139 *data++ = pool_stats->alloc_stats.fast; 140 *data++ = pool_stats->alloc_stats.slow; 141 *data++ = pool_stats->alloc_stats.slow_high_order; 142 *data++ = pool_stats->alloc_stats.empty; 143 *data++ = pool_stats->alloc_stats.refill; 144 *data++ = pool_stats->alloc_stats.waive; 145 *data++ = pool_stats->recycle_stats.cached; 146 *data++ = pool_stats->recycle_stats.cache_full; 147 *data++ = pool_stats->recycle_stats.ring; 148 *data++ = pool_stats->recycle_stats.ring_full; 149 *data++ = pool_stats->recycle_stats.released_refcnt; 150 151 return data; 152 } 153 EXPORT_SYMBOL(page_pool_ethtool_stats_get); 154 155 #else 156 #define alloc_stat_inc(...) do { } while (0) 157 #define recycle_stat_inc(...) do { } while (0) 158 #define recycle_stat_add(...) do { } while (0) 159 #endif 160 161 static bool page_pool_producer_lock(struct page_pool *pool) 162 __acquires(&pool->ring.producer_lock) 163 { 164 bool in_softirq = in_softirq(); 165 166 if (in_softirq) 167 spin_lock(&pool->ring.producer_lock); 168 else 169 spin_lock_bh(&pool->ring.producer_lock); 170 171 return in_softirq; 172 } 173 174 static void page_pool_producer_unlock(struct page_pool *pool, 175 bool in_softirq) 176 __releases(&pool->ring.producer_lock) 177 { 178 if (in_softirq) 179 spin_unlock(&pool->ring.producer_lock); 180 else 181 spin_unlock_bh(&pool->ring.producer_lock); 182 } 183 184 static void page_pool_struct_check(void) 185 { 186 CACHELINE_ASSERT_GROUP_MEMBER(struct page_pool, frag, frag_users); 187 CACHELINE_ASSERT_GROUP_MEMBER(struct page_pool, frag, frag_page); 188 CACHELINE_ASSERT_GROUP_MEMBER(struct page_pool, frag, frag_offset); 189 CACHELINE_ASSERT_GROUP_SIZE(struct page_pool, frag, 190 PAGE_POOL_FRAG_GROUP_ALIGN); 191 } 192 193 static int page_pool_init(struct page_pool *pool, 194 const struct page_pool_params *params, 195 int cpuid) 196 { 197 unsigned int ring_qsize = 1024; /* Default */ 198 struct netdev_rx_queue *rxq; 199 int err; 200 201 page_pool_struct_check(); 202 203 memcpy(&pool->p, ¶ms->fast, sizeof(pool->p)); 204 memcpy(&pool->slow, ¶ms->slow, sizeof(pool->slow)); 205 206 pool->cpuid = cpuid; 207 pool->dma_sync_for_cpu = true; 208 209 /* Validate only known flags were used */ 210 if (pool->slow.flags & ~PP_FLAG_ALL) 211 return -EINVAL; 212 213 if (pool->p.pool_size) 214 ring_qsize = min(pool->p.pool_size, 16384); 215 216 /* DMA direction is either DMA_FROM_DEVICE or DMA_BIDIRECTIONAL. 217 * DMA_BIDIRECTIONAL is for allowing page used for DMA sending, 218 * which is the XDP_TX use-case. 219 */ 220 if (pool->slow.flags & PP_FLAG_DMA_MAP) { 221 if ((pool->p.dma_dir != DMA_FROM_DEVICE) && 222 (pool->p.dma_dir != DMA_BIDIRECTIONAL)) 223 return -EINVAL; 224 225 pool->dma_map = true; 226 } 227 228 if (pool->slow.flags & PP_FLAG_DMA_SYNC_DEV) { 229 /* In order to request DMA-sync-for-device the page 230 * needs to be mapped 231 */ 232 if (!(pool->slow.flags & PP_FLAG_DMA_MAP)) 233 return -EINVAL; 234 235 if (!pool->p.max_len) 236 return -EINVAL; 237 238 pool->dma_sync = true; 239 240 /* pool->p.offset has to be set according to the address 241 * offset used by the DMA engine to start copying rx data 242 */ 243 } 244 245 pool->has_init_callback = !!pool->slow.init_callback; 246 247 #ifdef CONFIG_PAGE_POOL_STATS 248 if (!(pool->slow.flags & PP_FLAG_SYSTEM_POOL)) { 249 pool->recycle_stats = alloc_percpu(struct page_pool_recycle_stats); 250 if (!pool->recycle_stats) 251 return -ENOMEM; 252 } else { 253 /* For system page pool instance we use a singular stats object 254 * instead of allocating a separate percpu variable for each 255 * (also percpu) page pool instance. 256 */ 257 pool->recycle_stats = &pp_system_recycle_stats; 258 pool->system = true; 259 } 260 #endif 261 262 if (ptr_ring_init(&pool->ring, ring_qsize, GFP_KERNEL) < 0) { 263 #ifdef CONFIG_PAGE_POOL_STATS 264 if (!pool->system) 265 free_percpu(pool->recycle_stats); 266 #endif 267 return -ENOMEM; 268 } 269 270 atomic_set(&pool->pages_state_release_cnt, 0); 271 272 /* Driver calling page_pool_create() also call page_pool_destroy() */ 273 refcount_set(&pool->user_cnt, 1); 274 275 xa_init_flags(&pool->dma_mapped, XA_FLAGS_ALLOC1); 276 277 if (pool->slow.flags & PP_FLAG_ALLOW_UNREADABLE_NETMEM) { 278 netdev_assert_locked(pool->slow.netdev); 279 rxq = __netif_get_rx_queue(pool->slow.netdev, 280 pool->slow.queue_idx); 281 pool->mp_priv = rxq->mp_params.mp_priv; 282 pool->mp_ops = rxq->mp_params.mp_ops; 283 } 284 285 if (pool->mp_ops) { 286 if (!pool->dma_map || !pool->dma_sync) { 287 err = -EOPNOTSUPP; 288 goto free_ptr_ring; 289 } 290 291 if (WARN_ON(!is_kernel_rodata((unsigned long)pool->mp_ops))) { 292 err = -EFAULT; 293 goto free_ptr_ring; 294 } 295 296 err = pool->mp_ops->init(pool); 297 if (err) { 298 pr_warn("%s() mem-provider init failed %d\n", __func__, 299 err); 300 goto free_ptr_ring; 301 } 302 303 static_branch_inc(&page_pool_mem_providers); 304 } else if (pool->p.order > MAX_PAGE_ORDER) { 305 err = -EINVAL; 306 goto free_ptr_ring; 307 } 308 309 return 0; 310 311 free_ptr_ring: 312 ptr_ring_cleanup(&pool->ring, NULL); 313 xa_destroy(&pool->dma_mapped); 314 #ifdef CONFIG_PAGE_POOL_STATS 315 if (!pool->system) 316 free_percpu(pool->recycle_stats); 317 #endif 318 return err; 319 } 320 321 static void page_pool_uninit(struct page_pool *pool) 322 { 323 ptr_ring_cleanup(&pool->ring, NULL); 324 xa_destroy(&pool->dma_mapped); 325 326 #ifdef CONFIG_PAGE_POOL_STATS 327 if (!pool->system) 328 free_percpu(pool->recycle_stats); 329 #endif 330 } 331 332 /** 333 * page_pool_create_percpu() - create a page pool for a given cpu. 334 * @params: parameters, see struct page_pool_params 335 * @cpuid: cpu identifier 336 */ 337 struct page_pool * 338 page_pool_create_percpu(const struct page_pool_params *params, int cpuid) 339 { 340 struct page_pool *pool; 341 int err; 342 343 pool = kzalloc_node(sizeof(*pool), GFP_KERNEL, params->nid); 344 if (!pool) 345 return ERR_PTR(-ENOMEM); 346 347 err = page_pool_init(pool, params, cpuid); 348 if (err < 0) 349 goto err_free; 350 351 err = page_pool_list(pool); 352 if (err) 353 goto err_uninit; 354 355 return pool; 356 357 err_uninit: 358 page_pool_uninit(pool); 359 err_free: 360 pr_warn("%s() gave up with errno %d\n", __func__, err); 361 kfree(pool); 362 return ERR_PTR(err); 363 } 364 EXPORT_SYMBOL(page_pool_create_percpu); 365 366 /** 367 * page_pool_create() - create a page pool 368 * @params: parameters, see struct page_pool_params 369 */ 370 struct page_pool *page_pool_create(const struct page_pool_params *params) 371 { 372 return page_pool_create_percpu(params, -1); 373 } 374 EXPORT_SYMBOL(page_pool_create); 375 376 static void page_pool_return_netmem(struct page_pool *pool, netmem_ref netmem); 377 378 static noinline netmem_ref page_pool_refill_alloc_cache(struct page_pool *pool) 379 { 380 struct ptr_ring *r = &pool->ring; 381 netmem_ref netmem; 382 int pref_nid; /* preferred NUMA node */ 383 384 /* Quicker fallback, avoid locks when ring is empty */ 385 if (__ptr_ring_empty(r)) { 386 alloc_stat_inc(pool, empty); 387 return 0; 388 } 389 390 /* Softirq guarantee CPU and thus NUMA node is stable. This, 391 * assumes CPU refilling driver RX-ring will also run RX-NAPI. 392 */ 393 #ifdef CONFIG_NUMA 394 pref_nid = (pool->p.nid == NUMA_NO_NODE) ? numa_mem_id() : pool->p.nid; 395 #else 396 /* Ignore pool->p.nid setting if !CONFIG_NUMA, helps compiler */ 397 pref_nid = numa_mem_id(); /* will be zero like page_to_nid() */ 398 #endif 399 400 /* Refill alloc array, but only if NUMA match */ 401 do { 402 netmem = (__force netmem_ref)__ptr_ring_consume(r); 403 if (unlikely(!netmem)) 404 break; 405 406 if (likely(netmem_is_pref_nid(netmem, pref_nid))) { 407 pool->alloc.cache[pool->alloc.count++] = netmem; 408 } else { 409 /* NUMA mismatch; 410 * (1) release 1 page to page-allocator and 411 * (2) break out to fallthrough to alloc_pages_node. 412 * This limit stress on page buddy alloactor. 413 */ 414 page_pool_return_netmem(pool, netmem); 415 alloc_stat_inc(pool, waive); 416 netmem = 0; 417 break; 418 } 419 } while (pool->alloc.count < PP_ALLOC_CACHE_REFILL); 420 421 /* Return last page */ 422 if (likely(pool->alloc.count > 0)) { 423 netmem = pool->alloc.cache[--pool->alloc.count]; 424 alloc_stat_inc(pool, refill); 425 } 426 427 return netmem; 428 } 429 430 /* fast path */ 431 static netmem_ref __page_pool_get_cached(struct page_pool *pool) 432 { 433 netmem_ref netmem; 434 435 /* Caller MUST guarantee safe non-concurrent access, e.g. softirq */ 436 if (likely(pool->alloc.count)) { 437 /* Fast-path */ 438 netmem = pool->alloc.cache[--pool->alloc.count]; 439 alloc_stat_inc(pool, fast); 440 } else { 441 netmem = page_pool_refill_alloc_cache(pool); 442 } 443 444 return netmem; 445 } 446 447 static void __page_pool_dma_sync_for_device(const struct page_pool *pool, 448 netmem_ref netmem, 449 u32 dma_sync_size) 450 { 451 #if defined(CONFIG_HAS_DMA) && defined(CONFIG_DMA_NEED_SYNC) 452 dma_addr_t dma_addr = page_pool_get_dma_addr_netmem(netmem); 453 454 dma_sync_size = min(dma_sync_size, pool->p.max_len); 455 __dma_sync_single_for_device(pool->p.dev, dma_addr + pool->p.offset, 456 dma_sync_size, pool->p.dma_dir); 457 #endif 458 } 459 460 static __always_inline void 461 page_pool_dma_sync_for_device(const struct page_pool *pool, 462 netmem_ref netmem, 463 u32 dma_sync_size) 464 { 465 if (pool->dma_sync && dma_dev_need_sync(pool->p.dev)) { 466 rcu_read_lock(); 467 /* re-check under rcu_read_lock() to sync with page_pool_scrub() */ 468 if (pool->dma_sync) 469 __page_pool_dma_sync_for_device(pool, netmem, 470 dma_sync_size); 471 rcu_read_unlock(); 472 } 473 } 474 475 static int page_pool_register_dma_index(struct page_pool *pool, 476 netmem_ref netmem, gfp_t gfp) 477 { 478 int err = 0; 479 u32 id; 480 481 if (unlikely(!PP_DMA_INDEX_BITS)) 482 goto out; 483 484 if (in_softirq()) 485 err = xa_alloc(&pool->dma_mapped, &id, netmem_to_page(netmem), 486 PP_DMA_INDEX_LIMIT, gfp); 487 else 488 err = xa_alloc_bh(&pool->dma_mapped, &id, netmem_to_page(netmem), 489 PP_DMA_INDEX_LIMIT, gfp); 490 if (err) { 491 WARN_ONCE(err != -ENOMEM, "couldn't track DMA mapping, please report to netdev@"); 492 goto out; 493 } 494 495 netmem_set_dma_index(netmem, id); 496 out: 497 return err; 498 } 499 500 static int page_pool_release_dma_index(struct page_pool *pool, 501 netmem_ref netmem) 502 { 503 struct page *old, *page = netmem_to_page(netmem); 504 unsigned long id; 505 506 if (unlikely(!PP_DMA_INDEX_BITS)) 507 return 0; 508 509 id = netmem_get_dma_index(netmem); 510 if (!id) 511 return -1; 512 513 if (in_softirq()) 514 old = xa_cmpxchg(&pool->dma_mapped, id, page, NULL, 0); 515 else 516 old = xa_cmpxchg_bh(&pool->dma_mapped, id, page, NULL, 0); 517 if (old != page) 518 return -1; 519 520 netmem_set_dma_index(netmem, 0); 521 522 return 0; 523 } 524 525 static bool page_pool_dma_map(struct page_pool *pool, netmem_ref netmem, gfp_t gfp) 526 { 527 dma_addr_t dma; 528 int err; 529 530 /* Setup DMA mapping: use 'struct page' area for storing DMA-addr 531 * since dma_addr_t can be either 32 or 64 bits and does not always fit 532 * into page private data (i.e 32bit cpu with 64bit DMA caps) 533 * This mapping is kept for lifetime of page, until leaving pool. 534 */ 535 dma = dma_map_page_attrs(pool->p.dev, netmem_to_page(netmem), 0, 536 (PAGE_SIZE << pool->p.order), pool->p.dma_dir, 537 DMA_ATTR_SKIP_CPU_SYNC | 538 DMA_ATTR_WEAK_ORDERING); 539 if (dma_mapping_error(pool->p.dev, dma)) 540 return false; 541 542 if (page_pool_set_dma_addr_netmem(netmem, dma)) { 543 WARN_ONCE(1, "unexpected DMA address, please report to netdev@"); 544 goto unmap_failed; 545 } 546 547 err = page_pool_register_dma_index(pool, netmem, gfp); 548 if (err) 549 goto unset_failed; 550 551 page_pool_dma_sync_for_device(pool, netmem, pool->p.max_len); 552 553 return true; 554 555 unset_failed: 556 page_pool_set_dma_addr_netmem(netmem, 0); 557 unmap_failed: 558 dma_unmap_page_attrs(pool->p.dev, dma, 559 PAGE_SIZE << pool->p.order, pool->p.dma_dir, 560 DMA_ATTR_SKIP_CPU_SYNC | DMA_ATTR_WEAK_ORDERING); 561 return false; 562 } 563 564 static struct page *__page_pool_alloc_page_order(struct page_pool *pool, 565 gfp_t gfp) 566 { 567 struct page *page; 568 569 gfp |= __GFP_COMP; 570 page = alloc_pages_node(pool->p.nid, gfp, pool->p.order); 571 if (unlikely(!page)) 572 return NULL; 573 574 if (pool->dma_map && unlikely(!page_pool_dma_map(pool, page_to_netmem(page), gfp))) { 575 put_page(page); 576 return NULL; 577 } 578 579 alloc_stat_inc(pool, slow_high_order); 580 page_pool_set_pp_info(pool, page_to_netmem(page)); 581 582 /* Track how many pages are held 'in-flight' */ 583 pool->pages_state_hold_cnt++; 584 trace_page_pool_state_hold(pool, page_to_netmem(page), 585 pool->pages_state_hold_cnt); 586 return page; 587 } 588 589 /* slow path */ 590 static noinline netmem_ref __page_pool_alloc_netmems_slow(struct page_pool *pool, 591 gfp_t gfp) 592 { 593 const int bulk = PP_ALLOC_CACHE_REFILL; 594 unsigned int pp_order = pool->p.order; 595 bool dma_map = pool->dma_map; 596 netmem_ref netmem; 597 int i, nr_pages; 598 599 /* Unconditionally set NOWARN if allocating from NAPI. 600 * Drivers forget to set it, and OOM reports on packet Rx are useless. 601 */ 602 if ((gfp & GFP_ATOMIC) == GFP_ATOMIC) 603 gfp |= __GFP_NOWARN; 604 605 /* Don't support bulk alloc for high-order pages */ 606 if (unlikely(pp_order)) 607 return page_to_netmem(__page_pool_alloc_page_order(pool, gfp)); 608 609 /* Unnecessary as alloc cache is empty, but guarantees zero count */ 610 if (unlikely(pool->alloc.count > 0)) 611 return pool->alloc.cache[--pool->alloc.count]; 612 613 /* Mark empty alloc.cache slots "empty" for alloc_pages_bulk */ 614 memset(&pool->alloc.cache, 0, sizeof(void *) * bulk); 615 616 nr_pages = alloc_pages_bulk_node(gfp, pool->p.nid, bulk, 617 (struct page **)pool->alloc.cache); 618 if (unlikely(!nr_pages)) 619 return 0; 620 621 /* Pages have been filled into alloc.cache array, but count is zero and 622 * page element have not been (possibly) DMA mapped. 623 */ 624 for (i = 0; i < nr_pages; i++) { 625 netmem = pool->alloc.cache[i]; 626 if (dma_map && unlikely(!page_pool_dma_map(pool, netmem, gfp))) { 627 put_page(netmem_to_page(netmem)); 628 continue; 629 } 630 631 page_pool_set_pp_info(pool, netmem); 632 pool->alloc.cache[pool->alloc.count++] = netmem; 633 /* Track how many pages are held 'in-flight' */ 634 pool->pages_state_hold_cnt++; 635 trace_page_pool_state_hold(pool, netmem, 636 pool->pages_state_hold_cnt); 637 } 638 639 /* Return last page */ 640 if (likely(pool->alloc.count > 0)) { 641 netmem = pool->alloc.cache[--pool->alloc.count]; 642 alloc_stat_inc(pool, slow); 643 } else { 644 netmem = 0; 645 } 646 647 /* When page just alloc'ed is should/must have refcnt 1. */ 648 return netmem; 649 } 650 651 /* For using page_pool replace: alloc_pages() API calls, but provide 652 * synchronization guarantee for allocation side. 653 */ 654 netmem_ref page_pool_alloc_netmems(struct page_pool *pool, gfp_t gfp) 655 { 656 netmem_ref netmem; 657 658 /* Fast-path: Get a page from cache */ 659 netmem = __page_pool_get_cached(pool); 660 if (netmem) 661 return netmem; 662 663 /* Slow-path: cache empty, do real allocation */ 664 if (static_branch_unlikely(&page_pool_mem_providers) && pool->mp_ops) 665 netmem = pool->mp_ops->alloc_netmems(pool, gfp); 666 else 667 netmem = __page_pool_alloc_netmems_slow(pool, gfp); 668 return netmem; 669 } 670 EXPORT_SYMBOL(page_pool_alloc_netmems); 671 ALLOW_ERROR_INJECTION(page_pool_alloc_netmems, NULL); 672 673 struct page *page_pool_alloc_pages(struct page_pool *pool, gfp_t gfp) 674 { 675 return netmem_to_page(page_pool_alloc_netmems(pool, gfp)); 676 } 677 EXPORT_SYMBOL(page_pool_alloc_pages); 678 679 /* Calculate distance between two u32 values, valid if distance is below 2^(31) 680 * https://en.wikipedia.org/wiki/Serial_number_arithmetic#General_Solution 681 */ 682 #define _distance(a, b) (s32)((a) - (b)) 683 684 s32 page_pool_inflight(const struct page_pool *pool, bool strict) 685 { 686 u32 release_cnt = atomic_read(&pool->pages_state_release_cnt); 687 u32 hold_cnt = READ_ONCE(pool->pages_state_hold_cnt); 688 s32 inflight; 689 690 inflight = _distance(hold_cnt, release_cnt); 691 692 if (strict) { 693 trace_page_pool_release(pool, inflight, hold_cnt, release_cnt); 694 WARN(inflight < 0, "Negative(%d) inflight packet-pages", 695 inflight); 696 } else { 697 inflight = max(0, inflight); 698 } 699 700 return inflight; 701 } 702 703 void page_pool_set_pp_info(struct page_pool *pool, netmem_ref netmem) 704 { 705 struct page *page; 706 707 netmem_set_pp(netmem, pool); 708 709 /* XXX: Now that the offset of page_type is shared between 710 * struct page and net_iov, just cast the netmem to struct page 711 * unconditionally by clearing NET_IOV if any, no matter whether 712 * it comes from struct net_iov or struct page. This should be 713 * adjusted once the offset is no longer shared. 714 */ 715 page = (struct page *)((__force unsigned long)netmem & ~NET_IOV); 716 __SetPageNetpp(page); 717 718 /* Ensuring all pages have been split into one fragment initially: 719 * page_pool_set_pp_info() is only called once for every page when it 720 * is allocated from the page allocator and page_pool_fragment_page() 721 * is dirtying the same cache line as the page->pp_magic above, so 722 * the overhead is negligible. 723 */ 724 page_pool_fragment_netmem(netmem, 1); 725 if (pool->has_init_callback) 726 pool->slow.init_callback(netmem, pool->slow.init_arg); 727 } 728 729 void page_pool_clear_pp_info(netmem_ref netmem) 730 { 731 struct page *page; 732 733 /* XXX: Now that the offset of page_type is shared between 734 * struct page and net_iov, just cast the netmem to struct page 735 * unconditionally by clearing NET_IOV if any, no matter whether 736 * it comes from struct net_iov or struct page. This should be 737 * adjusted once the offset is no longer shared. 738 */ 739 page = (struct page *)((__force unsigned long)netmem & ~NET_IOV); 740 __ClearPageNetpp(page); 741 742 netmem_set_pp(netmem, NULL); 743 } 744 745 static __always_inline void __page_pool_release_netmem_dma(struct page_pool *pool, 746 netmem_ref netmem) 747 { 748 dma_addr_t dma; 749 750 if (!pool->dma_map) 751 /* Always account for inflight pages, even if we didn't 752 * map them 753 */ 754 return; 755 756 if (page_pool_release_dma_index(pool, netmem)) 757 return; 758 759 dma = page_pool_get_dma_addr_netmem(netmem); 760 761 /* When page is unmapped, it cannot be returned to our pool */ 762 dma_unmap_page_attrs(pool->p.dev, dma, 763 PAGE_SIZE << pool->p.order, pool->p.dma_dir, 764 DMA_ATTR_SKIP_CPU_SYNC | DMA_ATTR_WEAK_ORDERING); 765 page_pool_set_dma_addr_netmem(netmem, 0); 766 } 767 768 /* Disconnects a page (from a page_pool). API users can have a need 769 * to disconnect a page (from a page_pool), to allow it to be used as 770 * a regular page (that will eventually be returned to the normal 771 * page-allocator via put_page). 772 */ 773 static void page_pool_return_netmem(struct page_pool *pool, netmem_ref netmem) 774 { 775 int count; 776 bool put; 777 778 put = true; 779 if (static_branch_unlikely(&page_pool_mem_providers) && pool->mp_ops) 780 put = pool->mp_ops->release_netmem(pool, netmem); 781 else 782 __page_pool_release_netmem_dma(pool, netmem); 783 784 /* This may be the last page returned, releasing the pool, so 785 * it is not safe to reference pool afterwards. 786 */ 787 count = atomic_inc_return_relaxed(&pool->pages_state_release_cnt); 788 trace_page_pool_state_release(pool, netmem, count); 789 790 if (put) { 791 page_pool_clear_pp_info(netmem); 792 put_page(netmem_to_page(netmem)); 793 } 794 /* An optimization would be to call __free_pages(page, pool->p.order) 795 * knowing page is not part of page-cache (thus avoiding a 796 * __page_cache_release() call). 797 */ 798 } 799 800 static bool page_pool_recycle_in_ring(struct page_pool *pool, netmem_ref netmem) 801 { 802 bool in_softirq, ret; 803 804 /* BH protection not needed if current is softirq */ 805 in_softirq = page_pool_producer_lock(pool); 806 ret = !__ptr_ring_produce(&pool->ring, (__force void *)netmem); 807 if (ret) 808 recycle_stat_inc(pool, ring); 809 page_pool_producer_unlock(pool, in_softirq); 810 811 return ret; 812 } 813 814 /* Only allow direct recycling in special circumstances, into the 815 * alloc side cache. E.g. during RX-NAPI processing for XDP_DROP use-case. 816 * 817 * Caller must provide appropriate safe context. 818 */ 819 static bool page_pool_recycle_in_cache(netmem_ref netmem, 820 struct page_pool *pool) 821 { 822 if (unlikely(pool->alloc.count == PP_ALLOC_CACHE_SIZE)) { 823 recycle_stat_inc(pool, cache_full); 824 return false; 825 } 826 827 /* Caller MUST have verified/know (page_ref_count(page) == 1) */ 828 pool->alloc.cache[pool->alloc.count++] = netmem; 829 recycle_stat_inc(pool, cached); 830 return true; 831 } 832 833 static bool __page_pool_page_can_be_recycled(netmem_ref netmem) 834 { 835 return netmem_is_net_iov(netmem) || 836 (page_ref_count(netmem_to_page(netmem)) == 1 && 837 !page_is_pfmemalloc(netmem_to_page(netmem))); 838 } 839 840 /* If the page refcnt == 1, this will try to recycle the page. 841 * If pool->dma_sync is set, we'll try to sync the DMA area for 842 * the configured size min(dma_sync_size, pool->max_len). 843 * If the page refcnt != 1, then the page will be returned to memory 844 * subsystem. 845 */ 846 static __always_inline netmem_ref 847 __page_pool_put_page(struct page_pool *pool, netmem_ref netmem, 848 unsigned int dma_sync_size, bool allow_direct) 849 { 850 lockdep_assert_no_hardirq(); 851 852 /* This allocator is optimized for the XDP mode that uses 853 * one-frame-per-page, but have fallbacks that act like the 854 * regular page allocator APIs. 855 * 856 * refcnt == 1 means page_pool owns page, and can recycle it. 857 * 858 * page is NOT reusable when allocated when system is under 859 * some pressure. (page_is_pfmemalloc) 860 */ 861 if (likely(__page_pool_page_can_be_recycled(netmem))) { 862 /* Read barrier done in page_ref_count / READ_ONCE */ 863 864 page_pool_dma_sync_for_device(pool, netmem, dma_sync_size); 865 866 if (allow_direct && page_pool_recycle_in_cache(netmem, pool)) 867 return 0; 868 869 /* Page found as candidate for recycling */ 870 return netmem; 871 } 872 873 /* Fallback/non-XDP mode: API user have elevated refcnt. 874 * 875 * Many drivers split up the page into fragments, and some 876 * want to keep doing this to save memory and do refcnt based 877 * recycling. Support this use case too, to ease drivers 878 * switching between XDP/non-XDP. 879 * 880 * In-case page_pool maintains the DMA mapping, API user must 881 * call page_pool_put_page once. In this elevated refcnt 882 * case, the DMA is unmapped/released, as driver is likely 883 * doing refcnt based recycle tricks, meaning another process 884 * will be invoking put_page. 885 */ 886 recycle_stat_inc(pool, released_refcnt); 887 page_pool_return_netmem(pool, netmem); 888 889 return 0; 890 } 891 892 static bool page_pool_napi_local(const struct page_pool *pool) 893 { 894 const struct napi_struct *napi; 895 u32 cpuid; 896 897 /* On PREEMPT_RT the softirq can be preempted by the consumer */ 898 if (IS_ENABLED(CONFIG_PREEMPT_RT)) 899 return false; 900 901 if (unlikely(!in_softirq())) 902 return false; 903 904 /* Allow direct recycle if we have reasons to believe that we are 905 * in the same context as the consumer would run, so there's 906 * no possible race. 907 * __page_pool_put_page() makes sure we're not in hardirq context 908 * and interrupts are enabled prior to accessing the cache. 909 */ 910 cpuid = smp_processor_id(); 911 if (READ_ONCE(pool->cpuid) == cpuid) 912 return true; 913 914 napi = READ_ONCE(pool->p.napi); 915 916 return napi && READ_ONCE(napi->list_owner) == cpuid; 917 } 918 919 void page_pool_put_unrefed_netmem(struct page_pool *pool, netmem_ref netmem, 920 unsigned int dma_sync_size, bool allow_direct) 921 { 922 if (!allow_direct) 923 allow_direct = page_pool_napi_local(pool); 924 925 netmem = __page_pool_put_page(pool, netmem, dma_sync_size, 926 allow_direct); 927 if (netmem && !page_pool_recycle_in_ring(pool, netmem)) { 928 /* Cache full, fallback to free pages */ 929 recycle_stat_inc(pool, ring_full); 930 page_pool_return_netmem(pool, netmem); 931 } 932 } 933 EXPORT_SYMBOL(page_pool_put_unrefed_netmem); 934 935 void page_pool_put_unrefed_page(struct page_pool *pool, struct page *page, 936 unsigned int dma_sync_size, bool allow_direct) 937 { 938 page_pool_put_unrefed_netmem(pool, page_to_netmem(page), dma_sync_size, 939 allow_direct); 940 } 941 EXPORT_SYMBOL(page_pool_put_unrefed_page); 942 943 static void page_pool_recycle_ring_bulk(struct page_pool *pool, 944 netmem_ref *bulk, 945 u32 bulk_len) 946 { 947 bool in_softirq; 948 u32 i; 949 950 /* Bulk produce into ptr_ring page_pool cache */ 951 in_softirq = page_pool_producer_lock(pool); 952 953 for (i = 0; i < bulk_len; i++) { 954 if (__ptr_ring_produce(&pool->ring, (__force void *)bulk[i])) { 955 /* ring full */ 956 recycle_stat_inc(pool, ring_full); 957 break; 958 } 959 } 960 961 page_pool_producer_unlock(pool, in_softirq); 962 recycle_stat_add(pool, ring, i); 963 964 /* Hopefully all pages were returned into ptr_ring */ 965 if (likely(i == bulk_len)) 966 return; 967 968 /* 969 * ptr_ring cache is full, free remaining pages outside producer lock 970 * since put_page() with refcnt == 1 can be an expensive operation. 971 */ 972 for (; i < bulk_len; i++) 973 page_pool_return_netmem(pool, bulk[i]); 974 } 975 976 /** 977 * page_pool_put_netmem_bulk() - release references on multiple netmems 978 * @data: array holding netmem references 979 * @count: number of entries in @data 980 * 981 * Tries to refill a number of netmems into the ptr_ring cache holding ptr_ring 982 * producer lock. If the ptr_ring is full, page_pool_put_netmem_bulk() 983 * will release leftover netmems to the memory provider. 984 * page_pool_put_netmem_bulk() is suitable to be run inside the driver NAPI tx 985 * completion loop for the XDP_REDIRECT use case. 986 * 987 * Please note the caller must not use data area after running 988 * page_pool_put_netmem_bulk(), as this function overwrites it. 989 */ 990 void page_pool_put_netmem_bulk(netmem_ref *data, u32 count) 991 { 992 u32 bulk_len = 0; 993 994 for (u32 i = 0; i < count; i++) { 995 netmem_ref netmem = netmem_compound_head(data[i]); 996 997 if (page_pool_unref_and_test(netmem)) 998 data[bulk_len++] = netmem; 999 } 1000 1001 count = bulk_len; 1002 while (count) { 1003 netmem_ref bulk[XDP_BULK_QUEUE_SIZE]; 1004 struct page_pool *pool = NULL; 1005 bool allow_direct; 1006 u32 foreign = 0; 1007 1008 bulk_len = 0; 1009 1010 for (u32 i = 0; i < count; i++) { 1011 struct page_pool *netmem_pp; 1012 netmem_ref netmem = data[i]; 1013 1014 netmem_pp = netmem_get_pp(netmem); 1015 if (unlikely(!pool)) { 1016 pool = netmem_pp; 1017 allow_direct = page_pool_napi_local(pool); 1018 } else if (netmem_pp != pool) { 1019 /* 1020 * If the netmem belongs to a different 1021 * page_pool, save it for another round. 1022 */ 1023 data[foreign++] = netmem; 1024 continue; 1025 } 1026 1027 netmem = __page_pool_put_page(pool, netmem, -1, 1028 allow_direct); 1029 /* Approved for bulk recycling in ptr_ring cache */ 1030 if (netmem) 1031 bulk[bulk_len++] = netmem; 1032 } 1033 1034 if (bulk_len) 1035 page_pool_recycle_ring_bulk(pool, bulk, bulk_len); 1036 1037 count = foreign; 1038 } 1039 } 1040 EXPORT_SYMBOL(page_pool_put_netmem_bulk); 1041 1042 static netmem_ref page_pool_drain_frag(struct page_pool *pool, 1043 netmem_ref netmem) 1044 { 1045 long drain_count = BIAS_MAX - pool->frag_users; 1046 1047 /* Some user is still using the page frag */ 1048 if (likely(page_pool_unref_netmem(netmem, drain_count))) 1049 return 0; 1050 1051 if (__page_pool_page_can_be_recycled(netmem)) { 1052 page_pool_dma_sync_for_device(pool, netmem, -1); 1053 return netmem; 1054 } 1055 1056 page_pool_return_netmem(pool, netmem); 1057 return 0; 1058 } 1059 1060 static void page_pool_free_frag(struct page_pool *pool) 1061 { 1062 long drain_count = BIAS_MAX - pool->frag_users; 1063 netmem_ref netmem = pool->frag_page; 1064 1065 pool->frag_page = 0; 1066 1067 if (!netmem || page_pool_unref_netmem(netmem, drain_count)) 1068 return; 1069 1070 page_pool_return_netmem(pool, netmem); 1071 } 1072 1073 netmem_ref page_pool_alloc_frag_netmem(struct page_pool *pool, 1074 unsigned int *offset, unsigned int size, 1075 gfp_t gfp) 1076 { 1077 unsigned int max_size = PAGE_SIZE << pool->p.order; 1078 netmem_ref netmem = pool->frag_page; 1079 1080 if (WARN_ON(size > max_size)) 1081 return 0; 1082 1083 size = ALIGN(size, dma_get_cache_alignment()); 1084 *offset = pool->frag_offset; 1085 1086 if (netmem && *offset + size > max_size) { 1087 netmem = page_pool_drain_frag(pool, netmem); 1088 if (netmem) { 1089 recycle_stat_inc(pool, cached); 1090 alloc_stat_inc(pool, fast); 1091 goto frag_reset; 1092 } 1093 } 1094 1095 if (!netmem) { 1096 netmem = page_pool_alloc_netmems(pool, gfp); 1097 if (unlikely(!netmem)) { 1098 pool->frag_page = 0; 1099 return 0; 1100 } 1101 1102 pool->frag_page = netmem; 1103 1104 frag_reset: 1105 pool->frag_users = 1; 1106 *offset = 0; 1107 pool->frag_offset = size; 1108 page_pool_fragment_netmem(netmem, BIAS_MAX); 1109 return netmem; 1110 } 1111 1112 pool->frag_users++; 1113 pool->frag_offset = *offset + size; 1114 return netmem; 1115 } 1116 EXPORT_SYMBOL(page_pool_alloc_frag_netmem); 1117 1118 struct page *page_pool_alloc_frag(struct page_pool *pool, unsigned int *offset, 1119 unsigned int size, gfp_t gfp) 1120 { 1121 return netmem_to_page(page_pool_alloc_frag_netmem(pool, offset, size, 1122 gfp)); 1123 } 1124 EXPORT_SYMBOL(page_pool_alloc_frag); 1125 1126 static void page_pool_empty_ring(struct page_pool *pool) 1127 { 1128 netmem_ref netmem; 1129 1130 /* Empty recycle ring */ 1131 while ((netmem = (__force netmem_ref)ptr_ring_consume_bh(&pool->ring))) { 1132 /* Verify the refcnt invariant of cached pages */ 1133 if (!(netmem_ref_count(netmem) == 1)) 1134 pr_crit("%s() page_pool refcnt %d violation\n", 1135 __func__, netmem_ref_count(netmem)); 1136 1137 page_pool_return_netmem(pool, netmem); 1138 } 1139 } 1140 1141 static void __page_pool_destroy(struct page_pool *pool) 1142 { 1143 if (pool->disconnect) 1144 pool->disconnect(pool); 1145 1146 page_pool_unlist(pool); 1147 page_pool_uninit(pool); 1148 1149 if (pool->mp_ops) { 1150 pool->mp_ops->destroy(pool); 1151 static_branch_dec(&page_pool_mem_providers); 1152 } 1153 1154 kfree(pool); 1155 } 1156 1157 static void page_pool_empty_alloc_cache_once(struct page_pool *pool) 1158 { 1159 netmem_ref netmem; 1160 1161 if (pool->destroy_cnt) 1162 return; 1163 1164 /* Empty alloc cache, assume caller made sure this is 1165 * no-longer in use, and page_pool_alloc_pages() cannot be 1166 * call concurrently. 1167 */ 1168 while (pool->alloc.count) { 1169 netmem = pool->alloc.cache[--pool->alloc.count]; 1170 page_pool_return_netmem(pool, netmem); 1171 } 1172 } 1173 1174 static void page_pool_scrub(struct page_pool *pool) 1175 { 1176 unsigned long id; 1177 void *ptr; 1178 1179 page_pool_empty_alloc_cache_once(pool); 1180 if (!pool->destroy_cnt++ && pool->dma_map) { 1181 if (pool->dma_sync) { 1182 /* Disable page_pool_dma_sync_for_device() */ 1183 pool->dma_sync = false; 1184 1185 /* Make sure all concurrent returns that may see the old 1186 * value of dma_sync (and thus perform a sync) have 1187 * finished before doing the unmapping below. Skip the 1188 * wait if the device doesn't actually need syncing, or 1189 * if there are no outstanding mapped pages. 1190 */ 1191 if (dma_dev_need_sync(pool->p.dev) && 1192 !xa_empty(&pool->dma_mapped)) 1193 synchronize_net(); 1194 } 1195 1196 xa_for_each(&pool->dma_mapped, id, ptr) 1197 __page_pool_release_netmem_dma(pool, page_to_netmem((struct page *)ptr)); 1198 } 1199 1200 /* No more consumers should exist, but producers could still 1201 * be in-flight. 1202 */ 1203 page_pool_empty_ring(pool); 1204 } 1205 1206 static int page_pool_release(struct page_pool *pool) 1207 { 1208 bool in_softirq; 1209 int inflight; 1210 1211 page_pool_scrub(pool); 1212 inflight = page_pool_inflight(pool, true); 1213 /* Acquire producer lock to make sure producers have exited. */ 1214 in_softirq = page_pool_producer_lock(pool); 1215 page_pool_producer_unlock(pool, in_softirq); 1216 if (!inflight) 1217 __page_pool_destroy(pool); 1218 1219 return inflight; 1220 } 1221 1222 static void page_pool_release_retry(struct work_struct *wq) 1223 { 1224 struct delayed_work *dwq = to_delayed_work(wq); 1225 struct page_pool *pool = container_of(dwq, typeof(*pool), release_dw); 1226 void *netdev; 1227 int inflight; 1228 1229 inflight = page_pool_release(pool); 1230 /* In rare cases, a driver bug may cause inflight to go negative. 1231 * Don't reschedule release if inflight is 0 or negative. 1232 * - If 0, the page_pool has been destroyed 1233 * - if negative, we will never recover 1234 * in both cases no reschedule is necessary. 1235 */ 1236 if (inflight <= 0) 1237 return; 1238 1239 /* Periodic warning for page pools the user can't see */ 1240 netdev = READ_ONCE(pool->slow.netdev); 1241 if (time_after_eq(jiffies, pool->defer_warn) && 1242 (!netdev || netdev == NET_PTR_POISON)) { 1243 int sec = (s32)((u32)jiffies - (u32)pool->defer_start) / HZ; 1244 1245 pr_warn("%s() stalled pool shutdown: id %u, %d inflight %d sec\n", 1246 __func__, pool->user.id, inflight, sec); 1247 pool->defer_warn = jiffies + DEFER_WARN_INTERVAL; 1248 } 1249 1250 /* Still not ready to be disconnected, retry later */ 1251 schedule_delayed_work(&pool->release_dw, DEFER_TIME); 1252 } 1253 1254 void page_pool_use_xdp_mem(struct page_pool *pool, void (*disconnect)(void *), 1255 const struct xdp_mem_info *mem) 1256 { 1257 refcount_inc(&pool->user_cnt); 1258 pool->disconnect = disconnect; 1259 pool->xdp_mem_id = mem->id; 1260 } 1261 1262 /** 1263 * page_pool_enable_direct_recycling() - mark page pool as owned by NAPI 1264 * @pool: page pool to modify 1265 * @napi: NAPI instance to associate the page pool with 1266 * 1267 * Associate a page pool with a NAPI instance for lockless page recycling. 1268 * This is useful when a new page pool has to be added to a NAPI instance 1269 * without disabling that NAPI instance, to mark the point at which control 1270 * path "hands over" the page pool to the NAPI instance. In most cases driver 1271 * can simply set the @napi field in struct page_pool_params, and does not 1272 * have to call this helper. 1273 * 1274 * The function is idempotent, but does not implement any refcounting. 1275 * Single page_pool_disable_direct_recycling() will disable recycling, 1276 * no matter how many times enable was called. 1277 */ 1278 void page_pool_enable_direct_recycling(struct page_pool *pool, 1279 struct napi_struct *napi) 1280 { 1281 if (READ_ONCE(pool->p.napi) == napi) 1282 return; 1283 WARN_ON(!napi || pool->p.napi); 1284 1285 mutex_lock(&page_pools_lock); 1286 WRITE_ONCE(pool->p.napi, napi); 1287 mutex_unlock(&page_pools_lock); 1288 } 1289 EXPORT_SYMBOL(page_pool_enable_direct_recycling); 1290 1291 void page_pool_disable_direct_recycling(struct page_pool *pool) 1292 { 1293 /* Disable direct recycling based on pool->cpuid. 1294 * Paired with READ_ONCE() in page_pool_napi_local(). 1295 */ 1296 WRITE_ONCE(pool->cpuid, -1); 1297 1298 if (!pool->p.napi) 1299 return; 1300 1301 napi_assert_will_not_race(pool->p.napi); 1302 1303 mutex_lock(&page_pools_lock); 1304 WRITE_ONCE(pool->p.napi, NULL); 1305 mutex_unlock(&page_pools_lock); 1306 } 1307 EXPORT_SYMBOL(page_pool_disable_direct_recycling); 1308 1309 void page_pool_destroy(struct page_pool *pool) 1310 { 1311 if (!pool) 1312 return; 1313 1314 if (!page_pool_put(pool)) 1315 return; 1316 1317 page_pool_disable_direct_recycling(pool); 1318 page_pool_free_frag(pool); 1319 1320 if (!page_pool_release(pool)) 1321 return; 1322 1323 page_pool_detached(pool); 1324 pool->defer_start = jiffies; 1325 pool->defer_warn = jiffies + DEFER_WARN_INTERVAL; 1326 1327 INIT_DELAYED_WORK(&pool->release_dw, page_pool_release_retry); 1328 schedule_delayed_work(&pool->release_dw, DEFER_TIME); 1329 } 1330 EXPORT_SYMBOL(page_pool_destroy); 1331 1332 /* Caller must provide appropriate safe context, e.g. NAPI. */ 1333 void page_pool_update_nid(struct page_pool *pool, int new_nid) 1334 { 1335 netmem_ref netmem; 1336 1337 trace_page_pool_update_nid(pool, new_nid); 1338 pool->p.nid = new_nid; 1339 1340 /* Flush pool alloc cache, as refill will check NUMA node */ 1341 while (pool->alloc.count) { 1342 netmem = pool->alloc.cache[--pool->alloc.count]; 1343 page_pool_return_netmem(pool, netmem); 1344 } 1345 } 1346 EXPORT_SYMBOL(page_pool_update_nid); 1347 1348 bool net_mp_niov_set_dma_addr(struct net_iov *niov, dma_addr_t addr) 1349 { 1350 return page_pool_set_dma_addr_netmem(net_iov_to_netmem(niov), addr); 1351 } 1352 1353 /* Associate a niov with a page pool. Should follow with a matching 1354 * net_mp_niov_clear_page_pool() 1355 */ 1356 void net_mp_niov_set_page_pool(struct page_pool *pool, struct net_iov *niov) 1357 { 1358 netmem_ref netmem = net_iov_to_netmem(niov); 1359 1360 page_pool_set_pp_info(pool, netmem); 1361 1362 pool->pages_state_hold_cnt++; 1363 trace_page_pool_state_hold(pool, netmem, pool->pages_state_hold_cnt); 1364 } 1365 1366 /* Disassociate a niov from a page pool. Should only be used in the 1367 * ->release_netmem() path. 1368 */ 1369 void net_mp_niov_clear_page_pool(struct net_iov *niov) 1370 { 1371 netmem_ref netmem = net_iov_to_netmem(niov); 1372 1373 page_pool_clear_pp_info(netmem); 1374 } 1375