1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright 2023-2024 Intel Corporation (Maarten Lankhorst <dev@lankhorst.se>) 4 * Copyright 2024 Red Hat (Maxime Ripard <mripard@kernel.org>) 5 * Partially based on the rdma and misc controllers, which bear the following copyrights: 6 * 7 * Copyright 2020 Google LLC 8 * Copyright (C) 2016 Parav Pandit <pandit.parav@gmail.com> 9 */ 10 11 #include <linux/cgroup.h> 12 #include <linux/cgroup_dmem.h> 13 #include <linux/list.h> 14 #include <linux/mutex.h> 15 #include <linux/page_counter.h> 16 #include <linux/parser.h> 17 #include <linux/refcount.h> 18 #include <linux/rculist.h> 19 #include <linux/slab.h> 20 21 struct dmem_cgroup_region { 22 /** 23 * @ref: References keeping the region alive. 24 * Keeps the region reference alive after a succesful RCU lookup. 25 */ 26 struct kref ref; 27 28 /** @rcu: RCU head for freeing */ 29 struct rcu_head rcu; 30 31 /** 32 * @region_node: Linked into &dmem_cgroup_regions list. 33 * Protected by RCU and global spinlock. 34 */ 35 struct list_head region_node; 36 37 /** 38 * @pools: List of pools linked to this region. 39 * Protected by global spinlock only 40 */ 41 struct list_head pools; 42 43 /** @size: Size of region, in bytes */ 44 u64 size; 45 46 /** @name: Name describing the node, set by dmem_cgroup_register_region */ 47 char *name; 48 49 /** 50 * @unregistered: Whether the region is unregistered by its caller. 51 * No new pools should be added to the region afterwards. 52 */ 53 bool unregistered; 54 }; 55 56 struct dmemcg_state { 57 struct cgroup_subsys_state css; 58 59 struct list_head pools; 60 }; 61 62 struct dmem_cgroup_pool_state { 63 struct dmem_cgroup_region *region; 64 struct dmemcg_state *cs; 65 66 /* css node, RCU protected against region teardown */ 67 struct list_head css_node; 68 69 /* dev node, no RCU protection required */ 70 struct list_head region_node; 71 72 struct rcu_head rcu; 73 74 struct page_counter cnt; 75 struct dmem_cgroup_pool_state *parent; 76 77 refcount_t ref; 78 bool inited; 79 }; 80 81 /* 82 * 3 operations require locking protection: 83 * - Registering and unregistering region to/from list, requires global lock. 84 * - Adding a dmem_cgroup_pool_state to a CSS, removing when CSS is freed. 85 * - Adding a dmem_cgroup_pool_state to a region list. 86 * 87 * Since for the most common operations RCU provides enough protection, I 88 * do not think more granular locking makes sense. Most protection is offered 89 * by RCU and the lockless operating page_counter. 90 */ 91 static DEFINE_SPINLOCK(dmemcg_lock); 92 static LIST_HEAD(dmem_cgroup_regions); 93 94 static void dmemcg_free_region(struct kref *ref); 95 static void dmemcg_pool_free_rcu(struct rcu_head *rcu); 96 97 static inline struct dmemcg_state * 98 css_to_dmemcs(struct cgroup_subsys_state *css) 99 { 100 return container_of(css, struct dmemcg_state, css); 101 } 102 103 static inline struct dmemcg_state *get_current_dmemcs(void) 104 { 105 return css_to_dmemcs(task_get_css(current, dmem_cgrp_id)); 106 } 107 108 static struct dmemcg_state *parent_dmemcs(struct dmemcg_state *cg) 109 { 110 return cg->css.parent ? css_to_dmemcs(cg->css.parent) : NULL; 111 } 112 113 static void dmemcg_pool_get(struct dmem_cgroup_pool_state *pool) 114 { 115 refcount_inc(&pool->ref); 116 } 117 118 static bool dmemcg_pool_tryget(struct dmem_cgroup_pool_state *pool) 119 { 120 return refcount_inc_not_zero(&pool->ref); 121 } 122 123 static void dmemcg_pool_put(struct dmem_cgroup_pool_state *pool) 124 { 125 if (!refcount_dec_and_test(&pool->ref)) 126 return; 127 128 call_rcu(&pool->rcu, dmemcg_pool_free_rcu); 129 } 130 131 static void dmemcg_pool_free_rcu(struct rcu_head *rcu) 132 { 133 struct dmem_cgroup_pool_state *pool = container_of(rcu, typeof(*pool), rcu); 134 135 if (pool->parent) 136 dmemcg_pool_put(pool->parent); 137 kref_put(&pool->region->ref, dmemcg_free_region); 138 kfree(pool); 139 } 140 141 static void free_cg_pool(struct dmem_cgroup_pool_state *pool) 142 { 143 list_del(&pool->region_node); 144 dmemcg_pool_put(pool); 145 } 146 147 static void 148 set_resource_min(struct dmem_cgroup_pool_state *pool, u64 val) 149 { 150 page_counter_set_min(&pool->cnt, val); 151 } 152 153 static void 154 set_resource_low(struct dmem_cgroup_pool_state *pool, u64 val) 155 { 156 page_counter_set_low(&pool->cnt, val); 157 } 158 159 static void 160 set_resource_max(struct dmem_cgroup_pool_state *pool, u64 val) 161 { 162 page_counter_set_max(&pool->cnt, val); 163 } 164 165 static u64 get_resource_low(struct dmem_cgroup_pool_state *pool) 166 { 167 return pool ? READ_ONCE(pool->cnt.low) : 0; 168 } 169 170 static u64 get_resource_min(struct dmem_cgroup_pool_state *pool) 171 { 172 return pool ? READ_ONCE(pool->cnt.min) : 0; 173 } 174 175 static u64 get_resource_max(struct dmem_cgroup_pool_state *pool) 176 { 177 return pool ? READ_ONCE(pool->cnt.max) : PAGE_COUNTER_MAX; 178 } 179 180 static u64 get_resource_current(struct dmem_cgroup_pool_state *pool) 181 { 182 return pool ? page_counter_read(&pool->cnt) : 0; 183 } 184 185 static u64 get_resource_peak(struct dmem_cgroup_pool_state *pool) 186 { 187 return pool ? READ_ONCE(pool->cnt.watermark) : 0; 188 } 189 190 static void reset_all_resource_limits(struct dmem_cgroup_pool_state *rpool) 191 { 192 set_resource_min(rpool, 0); 193 set_resource_low(rpool, 0); 194 set_resource_max(rpool, PAGE_COUNTER_MAX); 195 } 196 197 static void dmemcs_offline(struct cgroup_subsys_state *css) 198 { 199 struct dmemcg_state *dmemcs = css_to_dmemcs(css); 200 struct dmem_cgroup_pool_state *pool; 201 202 rcu_read_lock(); 203 list_for_each_entry_rcu(pool, &dmemcs->pools, css_node) 204 reset_all_resource_limits(pool); 205 rcu_read_unlock(); 206 } 207 208 static void dmemcs_free(struct cgroup_subsys_state *css) 209 { 210 struct dmemcg_state *dmemcs = css_to_dmemcs(css); 211 struct dmem_cgroup_pool_state *pool, *next; 212 213 spin_lock(&dmemcg_lock); 214 list_for_each_entry_safe(pool, next, &dmemcs->pools, css_node) { 215 /* 216 *The pool is dead and all references are 0, 217 * no need for RCU protection with list_del_rcu or freeing. 218 */ 219 list_del(&pool->css_node); 220 free_cg_pool(pool); 221 } 222 spin_unlock(&dmemcg_lock); 223 224 kfree(dmemcs); 225 } 226 227 static struct cgroup_subsys_state * 228 dmemcs_alloc(struct cgroup_subsys_state *parent_css) 229 { 230 struct dmemcg_state *dmemcs = kzalloc_obj(*dmemcs); 231 if (!dmemcs) 232 return ERR_PTR(-ENOMEM); 233 234 INIT_LIST_HEAD(&dmemcs->pools); 235 return &dmemcs->css; 236 } 237 238 static struct dmem_cgroup_pool_state * 239 find_cg_pool_locked(struct dmemcg_state *dmemcs, struct dmem_cgroup_region *region) 240 { 241 struct dmem_cgroup_pool_state *pool; 242 243 list_for_each_entry_rcu(pool, &dmemcs->pools, css_node, spin_is_locked(&dmemcg_lock)) 244 if (pool->region == region) 245 return pool; 246 247 return NULL; 248 } 249 250 static struct dmem_cgroup_pool_state *pool_parent(struct dmem_cgroup_pool_state *pool) 251 { 252 if (!pool->cnt.parent) 253 return NULL; 254 255 return container_of(pool->cnt.parent, typeof(*pool), cnt); 256 } 257 258 static void 259 dmem_cgroup_calculate_protection(struct dmem_cgroup_pool_state *limit_pool, 260 struct dmem_cgroup_pool_state *test_pool) 261 { 262 struct page_counter *climit; 263 struct cgroup_subsys_state *css; 264 struct dmemcg_state *dmemcg_iter; 265 struct dmem_cgroup_pool_state *pool, *found_pool; 266 267 climit = &limit_pool->cnt; 268 269 rcu_read_lock(); 270 271 css_for_each_descendant_pre(css, &limit_pool->cs->css) { 272 dmemcg_iter = container_of(css, struct dmemcg_state, css); 273 found_pool = NULL; 274 275 list_for_each_entry_rcu(pool, &dmemcg_iter->pools, css_node) { 276 if (pool->region == limit_pool->region) { 277 found_pool = pool; 278 break; 279 } 280 } 281 if (!found_pool) 282 continue; 283 284 page_counter_calculate_protection( 285 climit, &found_pool->cnt, true); 286 287 if (found_pool == test_pool) 288 break; 289 } 290 rcu_read_unlock(); 291 } 292 293 /** 294 * dmem_cgroup_state_evict_valuable() - Check if we should evict from test_pool 295 * @limit_pool: The pool for which we hit limits 296 * @test_pool: The pool for which to test 297 * @ignore_low: Whether we have to respect low watermarks. 298 * @ret_hit_low: Pointer to whether it makes sense to consider low watermark. 299 * 300 * This function returns true if we can evict from @test_pool, false if not. 301 * When returning false and @ignore_low is false, @ret_hit_low may 302 * be set to true to indicate this function can be retried with @ignore_low 303 * set to true. 304 * 305 * Return: bool 306 */ 307 bool dmem_cgroup_state_evict_valuable(struct dmem_cgroup_pool_state *limit_pool, 308 struct dmem_cgroup_pool_state *test_pool, 309 bool ignore_low, bool *ret_hit_low) 310 { 311 struct dmem_cgroup_pool_state *pool = test_pool; 312 struct page_counter *ctest; 313 u64 used, min, low; 314 315 /* Can always evict from current pool, despite limits */ 316 if (limit_pool == test_pool) 317 return true; 318 319 if (limit_pool) { 320 if (!parent_dmemcs(limit_pool->cs)) 321 return true; 322 323 for (pool = test_pool; pool && limit_pool != pool; pool = pool_parent(pool)) 324 {} 325 326 if (!pool) 327 return false; 328 } else { 329 /* 330 * If there is no cgroup limiting memory usage, use the root 331 * cgroup instead for limit calculations. 332 */ 333 for (limit_pool = test_pool; pool_parent(limit_pool); limit_pool = pool_parent(limit_pool)) 334 {} 335 } 336 337 ctest = &test_pool->cnt; 338 339 dmem_cgroup_calculate_protection(limit_pool, test_pool); 340 341 used = page_counter_read(ctest); 342 min = READ_ONCE(ctest->emin); 343 344 if (used <= min) 345 return false; 346 347 if (!ignore_low) { 348 low = READ_ONCE(ctest->elow); 349 if (used > low) 350 return true; 351 352 *ret_hit_low = true; 353 return false; 354 } 355 return true; 356 } 357 EXPORT_SYMBOL_GPL(dmem_cgroup_state_evict_valuable); 358 359 static struct dmem_cgroup_pool_state * 360 alloc_pool_single(struct dmemcg_state *dmemcs, struct dmem_cgroup_region *region, 361 struct dmem_cgroup_pool_state **allocpool) 362 { 363 struct dmemcg_state *parent = parent_dmemcs(dmemcs); 364 struct dmem_cgroup_pool_state *pool, *ppool = NULL; 365 366 if (!*allocpool) { 367 pool = kzalloc_obj(*pool, GFP_NOWAIT); 368 if (!pool) 369 return ERR_PTR(-ENOMEM); 370 } else { 371 pool = *allocpool; 372 *allocpool = NULL; 373 } 374 375 pool->region = region; 376 pool->cs = dmemcs; 377 378 if (parent) 379 ppool = find_cg_pool_locked(parent, region); 380 381 page_counter_init(&pool->cnt, 382 ppool ? &ppool->cnt : NULL, true); 383 reset_all_resource_limits(pool); 384 refcount_set(&pool->ref, 1); 385 kref_get(®ion->ref); 386 if (ppool && !pool->parent) { 387 pool->parent = ppool; 388 dmemcg_pool_get(ppool); 389 } 390 391 list_add_tail_rcu(&pool->css_node, &dmemcs->pools); 392 list_add_tail(&pool->region_node, ®ion->pools); 393 394 if (!parent) 395 pool->inited = true; 396 else 397 pool->inited = ppool ? ppool->inited : false; 398 return pool; 399 } 400 401 static struct dmem_cgroup_pool_state * 402 get_cg_pool_locked(struct dmemcg_state *dmemcs, struct dmem_cgroup_region *region, 403 struct dmem_cgroup_pool_state **allocpool) 404 { 405 struct dmem_cgroup_pool_state *pool, *ppool, *retpool; 406 struct dmemcg_state *p, *pp; 407 408 /* 409 * Recursively create pool, we may not initialize yet on 410 * recursion, this is done as a separate step. 411 */ 412 for (p = dmemcs; p; p = parent_dmemcs(p)) { 413 pool = find_cg_pool_locked(p, region); 414 if (!pool) 415 pool = alloc_pool_single(p, region, allocpool); 416 417 if (IS_ERR(pool)) 418 return pool; 419 420 if (p == dmemcs && pool->inited) 421 return pool; 422 423 if (pool->inited) 424 break; 425 } 426 427 retpool = pool = find_cg_pool_locked(dmemcs, region); 428 for (p = dmemcs, pp = parent_dmemcs(dmemcs); pp; p = pp, pp = parent_dmemcs(p)) { 429 if (pool->inited) 430 break; 431 432 /* ppool was created if it didn't exist by above loop. */ 433 ppool = find_cg_pool_locked(pp, region); 434 435 /* Fix up parent links, mark as inited. */ 436 pool->cnt.parent = &ppool->cnt; 437 if (ppool && !pool->parent) { 438 pool->parent = ppool; 439 dmemcg_pool_get(ppool); 440 } 441 pool->inited = true; 442 443 pool = ppool; 444 } 445 446 return retpool; 447 } 448 449 static void dmemcg_free_rcu(struct rcu_head *rcu) 450 { 451 struct dmem_cgroup_region *region = container_of(rcu, typeof(*region), rcu); 452 struct dmem_cgroup_pool_state *pool, *next; 453 454 list_for_each_entry_safe(pool, next, ®ion->pools, region_node) 455 free_cg_pool(pool); 456 kfree(region->name); 457 kfree(region); 458 } 459 460 static void dmemcg_free_region(struct kref *ref) 461 { 462 struct dmem_cgroup_region *cgregion = container_of(ref, typeof(*cgregion), ref); 463 464 call_rcu(&cgregion->rcu, dmemcg_free_rcu); 465 } 466 467 /** 468 * dmem_cgroup_unregister_region() - Unregister a previously registered region. 469 * @region: The region to unregister. 470 * 471 * This function undoes dmem_cgroup_register_region. 472 */ 473 void dmem_cgroup_unregister_region(struct dmem_cgroup_region *region) 474 { 475 struct dmem_cgroup_pool_state *pool, *next; 476 477 if (!region) 478 return; 479 480 spin_lock(&dmemcg_lock); 481 482 /* Remove from global region list */ 483 list_del_rcu(®ion->region_node); 484 485 list_for_each_entry_safe(pool, next, ®ion->pools, region_node) { 486 list_del_rcu(&pool->css_node); 487 list_del(&pool->region_node); 488 dmemcg_pool_put(pool); 489 } 490 491 /* 492 * Ensure any RCU based lookups fail. Additionally, 493 * no new pools should be added to the dead region 494 * by get_cg_pool_unlocked. 495 */ 496 region->unregistered = true; 497 spin_unlock(&dmemcg_lock); 498 499 kref_put(®ion->ref, dmemcg_free_region); 500 } 501 EXPORT_SYMBOL_GPL(dmem_cgroup_unregister_region); 502 503 /** 504 * dmem_cgroup_register_region() - Register a regions for dev cgroup. 505 * @size: Size of region to register, in bytes. 506 * @fmt: Region parameters to register 507 * 508 * This function registers a node in the dmem cgroup with the 509 * name given. After calling this function, the region can be 510 * used for allocations. 511 * 512 * Return: NULL or a struct on success, PTR_ERR on failure. 513 */ 514 struct dmem_cgroup_region *dmem_cgroup_register_region(u64 size, const char *fmt, ...) 515 { 516 struct dmem_cgroup_region *ret; 517 char *region_name; 518 va_list ap; 519 520 if (!size) 521 return NULL; 522 523 va_start(ap, fmt); 524 region_name = kvasprintf(GFP_KERNEL, fmt, ap); 525 va_end(ap); 526 if (!region_name) 527 return ERR_PTR(-ENOMEM); 528 529 ret = kzalloc_obj(*ret); 530 if (!ret) { 531 kfree(region_name); 532 return ERR_PTR(-ENOMEM); 533 } 534 535 INIT_LIST_HEAD(&ret->pools); 536 ret->name = region_name; 537 ret->size = size; 538 kref_init(&ret->ref); 539 540 spin_lock(&dmemcg_lock); 541 list_add_tail_rcu(&ret->region_node, &dmem_cgroup_regions); 542 spin_unlock(&dmemcg_lock); 543 544 return ret; 545 } 546 EXPORT_SYMBOL_GPL(dmem_cgroup_register_region); 547 548 static struct dmem_cgroup_region *dmemcg_get_region_by_name(const char *name) 549 { 550 struct dmem_cgroup_region *region; 551 552 list_for_each_entry_rcu(region, &dmem_cgroup_regions, region_node, spin_is_locked(&dmemcg_lock)) 553 if (!strcmp(name, region->name) && 554 kref_get_unless_zero(®ion->ref)) 555 return region; 556 557 return NULL; 558 } 559 560 /** 561 * dmem_cgroup_pool_state_put() - Drop a reference to a dmem_cgroup_pool_state 562 * @pool: &dmem_cgroup_pool_state 563 * 564 * Called to drop a reference to the limiting pool returned by 565 * dmem_cgroup_try_charge(). 566 */ 567 void dmem_cgroup_pool_state_put(struct dmem_cgroup_pool_state *pool) 568 { 569 if (pool) { 570 css_put(&pool->cs->css); 571 dmemcg_pool_put(pool); 572 } 573 } 574 EXPORT_SYMBOL_GPL(dmem_cgroup_pool_state_put); 575 576 static struct dmem_cgroup_pool_state * 577 get_cg_pool_unlocked(struct dmemcg_state *cg, struct dmem_cgroup_region *region) 578 { 579 struct dmem_cgroup_pool_state *pool, *allocpool = NULL; 580 581 /* fastpath lookup? */ 582 rcu_read_lock(); 583 pool = find_cg_pool_locked(cg, region); 584 if (pool && !READ_ONCE(pool->inited)) 585 pool = NULL; 586 if (pool && !dmemcg_pool_tryget(pool)) 587 pool = NULL; 588 rcu_read_unlock(); 589 590 while (!pool) { 591 spin_lock(&dmemcg_lock); 592 if (!region->unregistered) 593 pool = get_cg_pool_locked(cg, region, &allocpool); 594 else 595 pool = ERR_PTR(-ENODEV); 596 if (!IS_ERR(pool)) 597 dmemcg_pool_get(pool); 598 spin_unlock(&dmemcg_lock); 599 600 if (pool == ERR_PTR(-ENOMEM)) { 601 pool = NULL; 602 if (WARN_ON(allocpool)) 603 continue; 604 605 allocpool = kzalloc_obj(*allocpool); 606 if (allocpool) { 607 pool = NULL; 608 continue; 609 } 610 pool = ERR_PTR(-ENOMEM); 611 } 612 } 613 614 kfree(allocpool); 615 return pool; 616 } 617 618 /** 619 * dmem_cgroup_uncharge() - Uncharge a pool. 620 * @pool: Pool to uncharge. 621 * @size: Size to uncharge. 622 * 623 * Undoes the effects of dmem_cgroup_try_charge. 624 * Must be called with the returned pool as argument, 625 * and same @index and @size. 626 */ 627 void dmem_cgroup_uncharge(struct dmem_cgroup_pool_state *pool, u64 size) 628 { 629 if (!pool) 630 return; 631 632 page_counter_uncharge(&pool->cnt, size); 633 css_put(&pool->cs->css); 634 dmemcg_pool_put(pool); 635 } 636 EXPORT_SYMBOL_GPL(dmem_cgroup_uncharge); 637 638 /** 639 * dmem_cgroup_try_charge() - Try charging a new allocation to a region. 640 * @region: dmem region to charge 641 * @size: Size (in bytes) to charge. 642 * @ret_pool: On succesfull allocation, the pool that is charged. 643 * @ret_limit_pool: On a failed allocation, the limiting pool. 644 * 645 * This function charges the @region region for a size of @size bytes. 646 * 647 * If the function succeeds, @ret_pool is set, which must be passed to 648 * dmem_cgroup_uncharge() when undoing the allocation. 649 * 650 * When this function fails with -EAGAIN and @ret_limit_pool is non-null, it 651 * will be set to the pool for which the limit is hit. This can be used for 652 * eviction as argument to dmem_cgroup_evict_valuable(). This reference must be freed 653 * with @dmem_cgroup_pool_state_put(). 654 * 655 * Return: 0 on success, -EAGAIN on hitting a limit, or a negative errno on failure. 656 */ 657 int dmem_cgroup_try_charge(struct dmem_cgroup_region *region, u64 size, 658 struct dmem_cgroup_pool_state **ret_pool, 659 struct dmem_cgroup_pool_state **ret_limit_pool) 660 { 661 struct dmemcg_state *cg; 662 struct dmem_cgroup_pool_state *pool; 663 struct page_counter *fail; 664 int ret; 665 666 *ret_pool = NULL; 667 if (ret_limit_pool) 668 *ret_limit_pool = NULL; 669 670 /* 671 * hold on to css, as cgroup can be removed but resource 672 * accounting happens on css. 673 */ 674 cg = get_current_dmemcs(); 675 676 pool = get_cg_pool_unlocked(cg, region); 677 if (IS_ERR(pool)) { 678 ret = PTR_ERR(pool); 679 goto err; 680 } 681 682 if (!page_counter_try_charge(&pool->cnt, size, &fail)) { 683 if (ret_limit_pool) { 684 *ret_limit_pool = container_of(fail, struct dmem_cgroup_pool_state, cnt); 685 css_get(&(*ret_limit_pool)->cs->css); 686 dmemcg_pool_get(*ret_limit_pool); 687 } 688 dmemcg_pool_put(pool); 689 ret = -EAGAIN; 690 goto err; 691 } 692 693 /* On success, reference from get_current_dmemcs is transferred to *ret_pool */ 694 *ret_pool = pool; 695 return 0; 696 697 err: 698 css_put(&cg->css); 699 return ret; 700 } 701 EXPORT_SYMBOL_GPL(dmem_cgroup_try_charge); 702 703 static int dmem_cgroup_region_capacity_show(struct seq_file *sf, void *v) 704 { 705 struct dmem_cgroup_region *region; 706 707 rcu_read_lock(); 708 list_for_each_entry_rcu(region, &dmem_cgroup_regions, region_node) { 709 seq_puts(sf, region->name); 710 seq_printf(sf, " %llu\n", region->size); 711 } 712 rcu_read_unlock(); 713 return 0; 714 } 715 716 static int dmemcg_parse_limit(char *options, u64 *new_limit) 717 { 718 char *end; 719 720 if (!strcmp(options, "max")) { 721 *new_limit = PAGE_COUNTER_MAX; 722 return 0; 723 } 724 725 *new_limit = memparse(options, &end); 726 if (*end != '\0') 727 return -EINVAL; 728 729 return 0; 730 } 731 732 static ssize_t dmemcg_limit_write(struct kernfs_open_file *of, 733 char *buf, size_t nbytes, loff_t off, 734 void (*apply)(struct dmem_cgroup_pool_state *, u64)) 735 { 736 struct dmemcg_state *dmemcs = css_to_dmemcs(of_css(of)); 737 int err = 0; 738 739 while (buf && !err) { 740 struct dmem_cgroup_pool_state *pool = NULL; 741 char *options, *region_name; 742 struct dmem_cgroup_region *region; 743 u64 new_limit; 744 745 options = buf; 746 buf = strchr(buf, '\n'); 747 if (buf) 748 *buf++ = '\0'; 749 750 options = strstrip(options); 751 752 /* eat empty lines */ 753 if (!options[0]) 754 continue; 755 756 region_name = strsep(&options, " \t"); 757 if (!region_name[0]) 758 continue; 759 760 if (!options || !*options) 761 return -EINVAL; 762 763 rcu_read_lock(); 764 region = dmemcg_get_region_by_name(region_name); 765 rcu_read_unlock(); 766 767 if (!region) 768 return -EINVAL; 769 770 err = dmemcg_parse_limit(options, &new_limit); 771 if (err < 0) 772 goto out_put; 773 774 pool = get_cg_pool_unlocked(dmemcs, region); 775 if (IS_ERR(pool)) { 776 err = PTR_ERR(pool); 777 goto out_put; 778 } 779 780 /* And commit */ 781 apply(pool, new_limit); 782 dmemcg_pool_put(pool); 783 784 out_put: 785 kref_put(®ion->ref, dmemcg_free_region); 786 } 787 788 789 return err ?: nbytes; 790 } 791 792 static int dmemcg_limit_show(struct seq_file *sf, void *v, 793 u64 (*fn)(struct dmem_cgroup_pool_state *)) 794 { 795 struct dmemcg_state *dmemcs = css_to_dmemcs(seq_css(sf)); 796 struct dmem_cgroup_region *region; 797 798 rcu_read_lock(); 799 list_for_each_entry_rcu(region, &dmem_cgroup_regions, region_node) { 800 struct dmem_cgroup_pool_state *pool = find_cg_pool_locked(dmemcs, region); 801 u64 val; 802 803 seq_puts(sf, region->name); 804 805 val = fn(pool); 806 if (val < PAGE_COUNTER_MAX) 807 seq_printf(sf, " %lld\n", val); 808 else 809 seq_puts(sf, " max\n"); 810 } 811 rcu_read_unlock(); 812 813 return 0; 814 } 815 816 static int dmem_cgroup_region_peak_show(struct seq_file *sf, void *v) 817 { 818 return dmemcg_limit_show(sf, v, get_resource_peak); 819 } 820 821 static int dmem_cgroup_region_current_show(struct seq_file *sf, void *v) 822 { 823 return dmemcg_limit_show(sf, v, get_resource_current); 824 } 825 826 static int dmem_cgroup_region_min_show(struct seq_file *sf, void *v) 827 { 828 return dmemcg_limit_show(sf, v, get_resource_min); 829 } 830 831 static ssize_t dmem_cgroup_region_min_write(struct kernfs_open_file *of, 832 char *buf, size_t nbytes, loff_t off) 833 { 834 return dmemcg_limit_write(of, buf, nbytes, off, set_resource_min); 835 } 836 837 static int dmem_cgroup_region_low_show(struct seq_file *sf, void *v) 838 { 839 return dmemcg_limit_show(sf, v, get_resource_low); 840 } 841 842 static ssize_t dmem_cgroup_region_low_write(struct kernfs_open_file *of, 843 char *buf, size_t nbytes, loff_t off) 844 { 845 return dmemcg_limit_write(of, buf, nbytes, off, set_resource_low); 846 } 847 848 static int dmem_cgroup_region_max_show(struct seq_file *sf, void *v) 849 { 850 return dmemcg_limit_show(sf, v, get_resource_max); 851 } 852 853 static ssize_t dmem_cgroup_region_max_write(struct kernfs_open_file *of, 854 char *buf, size_t nbytes, loff_t off) 855 { 856 return dmemcg_limit_write(of, buf, nbytes, off, set_resource_max); 857 } 858 859 static struct cftype files[] = { 860 { 861 .name = "capacity", 862 .seq_show = dmem_cgroup_region_capacity_show, 863 .flags = CFTYPE_ONLY_ON_ROOT, 864 }, 865 { 866 .name = "current", 867 .seq_show = dmem_cgroup_region_current_show, 868 }, 869 { 870 .name = "peak", 871 .seq_show = dmem_cgroup_region_peak_show, 872 .flags = CFTYPE_NOT_ON_ROOT, 873 }, 874 { 875 .name = "min", 876 .write = dmem_cgroup_region_min_write, 877 .seq_show = dmem_cgroup_region_min_show, 878 .flags = CFTYPE_NOT_ON_ROOT, 879 }, 880 { 881 .name = "low", 882 .write = dmem_cgroup_region_low_write, 883 .seq_show = dmem_cgroup_region_low_show, 884 .flags = CFTYPE_NOT_ON_ROOT, 885 }, 886 { 887 .name = "max", 888 .write = dmem_cgroup_region_max_write, 889 .seq_show = dmem_cgroup_region_max_show, 890 .flags = CFTYPE_NOT_ON_ROOT, 891 }, 892 { } /* Zero entry terminates. */ 893 }; 894 895 struct cgroup_subsys dmem_cgrp_subsys = { 896 .css_alloc = dmemcs_alloc, 897 .css_free = dmemcs_free, 898 .css_offline = dmemcs_offline, 899 .legacy_cftypes = files, 900 .dfl_cftypes = files, 901 }; 902