1Memory Resource Controller 2 3NOTE: This document is hopelessly outdated and it asks for a complete 4 rewrite. It still contains a useful information so we are keeping it 5 here but make sure to check the current code if you need a deeper 6 understanding. 7 8NOTE: The Memory Resource Controller has generically been referred to as the 9 memory controller in this document. Do not confuse memory controller 10 used here with the memory controller that is used in hardware. 11 12(For editors) 13In this document: 14 When we mention a cgroup (cgroupfs's directory) with memory controller, 15 we call it "memory cgroup". When you see git-log and source code, you'll 16 see patch's title and function names tend to use "memcg". 17 In this document, we avoid using it. 18 19Benefits and Purpose of the memory controller 20 21The memory controller isolates the memory behaviour of a group of tasks 22from the rest of the system. The article on LWN [12] mentions some probable 23uses of the memory controller. The memory controller can be used to 24 25a. Isolate an application or a group of applications 26 Memory-hungry applications can be isolated and limited to a smaller 27 amount of memory. 28b. Create a cgroup with a limited amount of memory; this can be used 29 as a good alternative to booting with mem=XXXX. 30c. Virtualization solutions can control the amount of memory they want 31 to assign to a virtual machine instance. 32d. A CD/DVD burner could control the amount of memory used by the 33 rest of the system to ensure that burning does not fail due to lack 34 of available memory. 35e. There are several other use cases; find one or use the controller just 36 for fun (to learn and hack on the VM subsystem). 37 38Current Status: linux-2.6.34-mmotm(development version of 2010/April) 39 40Features: 41 - accounting anonymous pages, file caches, swap caches usage and limiting them. 42 - pages are linked to per-memcg LRU exclusively, and there is no global LRU. 43 - optionally, memory+swap usage can be accounted and limited. 44 - hierarchical accounting 45 - soft limit 46 - moving (recharging) account at moving a task is selectable. 47 - usage threshold notifier 48 - memory pressure notifier 49 - oom-killer disable knob and oom-notifier 50 - Root cgroup has no limit controls. 51 52 Kernel memory support is a work in progress, and the current version provides 53 basically functionality. (See Section 2.7) 54 55Brief summary of control files. 56 57 tasks # attach a task(thread) and show list of threads 58 cgroup.procs # show list of processes 59 cgroup.event_control # an interface for event_fd() 60 memory.usage_in_bytes # show current usage for memory 61 (See 5.5 for details) 62 memory.memsw.usage_in_bytes # show current usage for memory+Swap 63 (See 5.5 for details) 64 memory.limit_in_bytes # set/show limit of memory usage 65 memory.memsw.limit_in_bytes # set/show limit of memory+Swap usage 66 memory.failcnt # show the number of memory usage hits limits 67 memory.memsw.failcnt # show the number of memory+Swap hits limits 68 memory.max_usage_in_bytes # show max memory usage recorded 69 memory.memsw.max_usage_in_bytes # show max memory+Swap usage recorded 70 memory.soft_limit_in_bytes # set/show soft limit of memory usage 71 memory.stat # show various statistics 72 memory.use_hierarchy # set/show hierarchical account enabled 73 memory.force_empty # trigger forced move charge to parent 74 memory.pressure_level # set memory pressure notifications 75 memory.swappiness # set/show swappiness parameter of vmscan 76 (See sysctl's vm.swappiness) 77 memory.move_charge_at_immigrate # set/show controls of moving charges 78 memory.oom_control # set/show oom controls. 79 memory.numa_stat # show the number of memory usage per numa node 80 81 memory.kmem.limit_in_bytes # set/show hard limit for kernel memory 82 memory.kmem.usage_in_bytes # show current kernel memory allocation 83 memory.kmem.failcnt # show the number of kernel memory usage hits limits 84 memory.kmem.max_usage_in_bytes # show max kernel memory usage recorded 85 86 memory.kmem.tcp.limit_in_bytes # set/show hard limit for tcp buf memory 87 memory.kmem.tcp.usage_in_bytes # show current tcp buf memory allocation 88 memory.kmem.tcp.failcnt # show the number of tcp buf memory usage hits limits 89 memory.kmem.tcp.max_usage_in_bytes # show max tcp buf memory usage recorded 90 911. History 92 93The memory controller has a long history. A request for comments for the memory 94controller was posted by Balbir Singh [1]. At the time the RFC was posted 95there were several implementations for memory control. The goal of the 96RFC was to build consensus and agreement for the minimal features required 97for memory control. The first RSS controller was posted by Balbir Singh[2] 98in Feb 2007. Pavel Emelianov [3][4][5] has since posted three versions of the 99RSS controller. At OLS, at the resource management BoF, everyone suggested 100that we handle both page cache and RSS together. Another request was raised 101to allow user space handling of OOM. The current memory controller is 102at version 6; it combines both mapped (RSS) and unmapped Page 103Cache Control [11]. 104 1052. Memory Control 106 107Memory is a unique resource in the sense that it is present in a limited 108amount. If a task requires a lot of CPU processing, the task can spread 109its processing over a period of hours, days, months or years, but with 110memory, the same physical memory needs to be reused to accomplish the task. 111 112The memory controller implementation has been divided into phases. These 113are: 114 1151. Memory controller 1162. mlock(2) controller 1173. Kernel user memory accounting and slab control 1184. user mappings length controller 119 120The memory controller is the first controller developed. 121 1222.1. Design 123 124The core of the design is a counter called the page_counter. The 125page_counter tracks the current memory usage and limit of the group of 126processes associated with the controller. Each cgroup has a memory controller 127specific data structure (mem_cgroup) associated with it. 128 1292.2. Accounting 130 131 +--------------------+ 132 | mem_cgroup | 133 | (page_counter) | 134 +--------------------+ 135 / ^ \ 136 / | \ 137 +---------------+ | +---------------+ 138 | mm_struct | |.... | mm_struct | 139 | | | | | 140 +---------------+ | +---------------+ 141 | 142 + --------------+ 143 | 144 +---------------+ +------+--------+ 145 | page +----------> page_cgroup| 146 | | | | 147 +---------------+ +---------------+ 148 149 (Figure 1: Hierarchy of Accounting) 150 151 152Figure 1 shows the important aspects of the controller 153 1541. Accounting happens per cgroup 1552. Each mm_struct knows about which cgroup it belongs to 1563. Each page has a pointer to the page_cgroup, which in turn knows the 157 cgroup it belongs to 158 159The accounting is done as follows: mem_cgroup_charge_common() is invoked to 160set up the necessary data structures and check if the cgroup that is being 161charged is over its limit. If it is, then reclaim is invoked on the cgroup. 162More details can be found in the reclaim section of this document. 163If everything goes well, a page meta-data-structure called page_cgroup is 164updated. page_cgroup has its own LRU on cgroup. 165(*) page_cgroup structure is allocated at boot/memory-hotplug time. 166 1672.2.1 Accounting details 168 169All mapped anon pages (RSS) and cache pages (Page Cache) are accounted. 170Some pages which are never reclaimable and will not be on the LRU 171are not accounted. We just account pages under usual VM management. 172 173RSS pages are accounted at page_fault unless they've already been accounted 174for earlier. A file page will be accounted for as Page Cache when it's 175inserted into inode (radix-tree). While it's mapped into the page tables of 176processes, duplicate accounting is carefully avoided. 177 178An RSS page is unaccounted when it's fully unmapped. A PageCache page is 179unaccounted when it's removed from radix-tree. Even if RSS pages are fully 180unmapped (by kswapd), they may exist as SwapCache in the system until they 181are really freed. Such SwapCaches are also accounted. 182A swapped-in page is not accounted until it's mapped. 183 184Note: The kernel does swapin-readahead and reads multiple swaps at once. 185This means swapped-in pages may contain pages for other tasks than a task 186causing page fault. So, we avoid accounting at swap-in I/O. 187 188At page migration, accounting information is kept. 189 190Note: we just account pages-on-LRU because our purpose is to control amount 191of used pages; not-on-LRU pages tend to be out-of-control from VM view. 192 1932.3 Shared Page Accounting 194 195Shared pages are accounted on the basis of the first touch approach. The 196cgroup that first touches a page is accounted for the page. The principle 197behind this approach is that a cgroup that aggressively uses a shared 198page will eventually get charged for it (once it is uncharged from 199the cgroup that brought it in -- this will happen on memory pressure). 200 201But see section 8.2: when moving a task to another cgroup, its pages may 202be recharged to the new cgroup, if move_charge_at_immigrate has been chosen. 203 204Exception: If CONFIG_MEMCG_SWAP is not used. 205When you do swapoff and make swapped-out pages of shmem(tmpfs) to 206be backed into memory in force, charges for pages are accounted against the 207caller of swapoff rather than the users of shmem. 208 2092.4 Swap Extension (CONFIG_MEMCG_SWAP) 210 211Swap Extension allows you to record charge for swap. A swapped-in page is 212charged back to original page allocator if possible. 213 214When swap is accounted, following files are added. 215 - memory.memsw.usage_in_bytes. 216 - memory.memsw.limit_in_bytes. 217 218memsw means memory+swap. Usage of memory+swap is limited by 219memsw.limit_in_bytes. 220 221Example: Assume a system with 4G of swap. A task which allocates 6G of memory 222(by mistake) under 2G memory limitation will use all swap. 223In this case, setting memsw.limit_in_bytes=3G will prevent bad use of swap. 224By using the memsw limit, you can avoid system OOM which can be caused by swap 225shortage. 226 227* why 'memory+swap' rather than swap. 228The global LRU(kswapd) can swap out arbitrary pages. Swap-out means 229to move account from memory to swap...there is no change in usage of 230memory+swap. In other words, when we want to limit the usage of swap without 231affecting global LRU, memory+swap limit is better than just limiting swap from 232an OS point of view. 233 234* What happens when a cgroup hits memory.memsw.limit_in_bytes 235When a cgroup hits memory.memsw.limit_in_bytes, it's useless to do swap-out 236in this cgroup. Then, swap-out will not be done by cgroup routine and file 237caches are dropped. But as mentioned above, global LRU can do swapout memory 238from it for sanity of the system's memory management state. You can't forbid 239it by cgroup. 240 2412.5 Reclaim 242 243Each cgroup maintains a per cgroup LRU which has the same structure as 244global VM. When a cgroup goes over its limit, we first try 245to reclaim memory from the cgroup so as to make space for the new 246pages that the cgroup has touched. If the reclaim is unsuccessful, 247an OOM routine is invoked to select and kill the bulkiest task in the 248cgroup. (See 10. OOM Control below.) 249 250The reclaim algorithm has not been modified for cgroups, except that 251pages that are selected for reclaiming come from the per-cgroup LRU 252list. 253 254NOTE: Reclaim does not work for the root cgroup, since we cannot set any 255limits on the root cgroup. 256 257Note2: When panic_on_oom is set to "2", the whole system will panic. 258 259When oom event notifier is registered, event will be delivered. 260(See oom_control section) 261 2622.6 Locking 263 264 lock_page_cgroup()/unlock_page_cgroup() should not be called under 265 mapping->tree_lock. 266 267 Other lock order is following: 268 PG_locked. 269 mm->page_table_lock 270 zone->lru_lock 271 lock_page_cgroup. 272 In many cases, just lock_page_cgroup() is called. 273 per-zone-per-cgroup LRU (cgroup's private LRU) is just guarded by 274 zone->lru_lock, it has no lock of its own. 275 2762.7 Kernel Memory Extension (CONFIG_MEMCG_KMEM) 277 278With the Kernel memory extension, the Memory Controller is able to limit 279the amount of kernel memory used by the system. Kernel memory is fundamentally 280different than user memory, since it can't be swapped out, which makes it 281possible to DoS the system by consuming too much of this precious resource. 282 283Kernel memory won't be accounted at all until limit on a group is set. This 284allows for existing setups to continue working without disruption. The limit 285cannot be set if the cgroup have children, or if there are already tasks in the 286cgroup. Attempting to set the limit under those conditions will return -EBUSY. 287When use_hierarchy == 1 and a group is accounted, its children will 288automatically be accounted regardless of their limit value. 289 290After a group is first limited, it will be kept being accounted until it 291is removed. The memory limitation itself, can of course be removed by writing 292-1 to memory.kmem.limit_in_bytes. In this case, kmem will be accounted, but not 293limited. 294 295Kernel memory limits are not imposed for the root cgroup. Usage for the root 296cgroup may or may not be accounted. The memory used is accumulated into 297memory.kmem.usage_in_bytes, or in a separate counter when it makes sense. 298(currently only for tcp). 299The main "kmem" counter is fed into the main counter, so kmem charges will 300also be visible from the user counter. 301 302Currently no soft limit is implemented for kernel memory. It is future work 303to trigger slab reclaim when those limits are reached. 304 3052.7.1 Current Kernel Memory resources accounted 306 307* stack pages: every process consumes some stack pages. By accounting into 308kernel memory, we prevent new processes from being created when the kernel 309memory usage is too high. 310 311* slab pages: pages allocated by the SLAB or SLUB allocator are tracked. A copy 312of each kmem_cache is created every time the cache is touched by the first time 313from inside the memcg. The creation is done lazily, so some objects can still be 314skipped while the cache is being created. All objects in a slab page should 315belong to the same memcg. This only fails to hold when a task is migrated to a 316different memcg during the page allocation by the cache. 317 318* sockets memory pressure: some sockets protocols have memory pressure 319thresholds. The Memory Controller allows them to be controlled individually 320per cgroup, instead of globally. 321 322* tcp memory pressure: sockets memory pressure for the tcp protocol. 323 3242.7.2 Common use cases 325 326Because the "kmem" counter is fed to the main user counter, kernel memory can 327never be limited completely independently of user memory. Say "U" is the user 328limit, and "K" the kernel limit. There are three possible ways limits can be 329set: 330 331 U != 0, K = unlimited: 332 This is the standard memcg limitation mechanism already present before kmem 333 accounting. Kernel memory is completely ignored. 334 335 U != 0, K < U: 336 Kernel memory is a subset of the user memory. This setup is useful in 337 deployments where the total amount of memory per-cgroup is overcommited. 338 Overcommiting kernel memory limits is definitely not recommended, since the 339 box can still run out of non-reclaimable memory. 340 In this case, the admin could set up K so that the sum of all groups is 341 never greater than the total memory, and freely set U at the cost of his 342 QoS. 343 WARNING: In the current implementation, memory reclaim will NOT be 344 triggered for a cgroup when it hits K while staying below U, which makes 345 this setup impractical. 346 347 U != 0, K >= U: 348 Since kmem charges will also be fed to the user counter and reclaim will be 349 triggered for the cgroup for both kinds of memory. This setup gives the 350 admin a unified view of memory, and it is also useful for people who just 351 want to track kernel memory usage. 352 3533. User Interface 354 3553.0. Configuration 356 357a. Enable CONFIG_CGROUPS 358b. Enable CONFIG_MEMCG 359c. Enable CONFIG_MEMCG_SWAP (to use swap extension) 360d. Enable CONFIG_MEMCG_KMEM (to use kmem extension) 361 3623.1. Prepare the cgroups (see cgroups.txt, Why are cgroups needed?) 363# mount -t tmpfs none /sys/fs/cgroup 364# mkdir /sys/fs/cgroup/memory 365# mount -t cgroup none /sys/fs/cgroup/memory -o memory 366 3673.2. Make the new group and move bash into it 368# mkdir /sys/fs/cgroup/memory/0 369# echo $$ > /sys/fs/cgroup/memory/0/tasks 370 371Since now we're in the 0 cgroup, we can alter the memory limit: 372# echo 4M > /sys/fs/cgroup/memory/0/memory.limit_in_bytes 373 374NOTE: We can use a suffix (k, K, m, M, g or G) to indicate values in kilo, 375mega or gigabytes. (Here, Kilo, Mega, Giga are Kibibytes, Mebibytes, Gibibytes.) 376 377NOTE: We can write "-1" to reset the *.limit_in_bytes(unlimited). 378NOTE: We cannot set limits on the root cgroup any more. 379 380# cat /sys/fs/cgroup/memory/0/memory.limit_in_bytes 3814194304 382 383We can check the usage: 384# cat /sys/fs/cgroup/memory/0/memory.usage_in_bytes 3851216512 386 387A successful write to this file does not guarantee a successful setting of 388this limit to the value written into the file. This can be due to a 389number of factors, such as rounding up to page boundaries or the total 390availability of memory on the system. The user is required to re-read 391this file after a write to guarantee the value committed by the kernel. 392 393# echo 1 > memory.limit_in_bytes 394# cat memory.limit_in_bytes 3954096 396 397The memory.failcnt field gives the number of times that the cgroup limit was 398exceeded. 399 400The memory.stat file gives accounting information. Now, the number of 401caches, RSS and Active pages/Inactive pages are shown. 402 4034. Testing 404 405For testing features and implementation, see memcg_test.txt. 406 407Performance test is also important. To see pure memory controller's overhead, 408testing on tmpfs will give you good numbers of small overheads. 409Example: do kernel make on tmpfs. 410 411Page-fault scalability is also important. At measuring parallel 412page fault test, multi-process test may be better than multi-thread 413test because it has noise of shared objects/status. 414 415But the above two are testing extreme situations. 416Trying usual test under memory controller is always helpful. 417 4184.1 Troubleshooting 419 420Sometimes a user might find that the application under a cgroup is 421terminated by the OOM killer. There are several causes for this: 422 4231. The cgroup limit is too low (just too low to do anything useful) 4242. The user is using anonymous memory and swap is turned off or too low 425 426A sync followed by echo 1 > /proc/sys/vm/drop_caches will help get rid of 427some of the pages cached in the cgroup (page cache pages). 428 429To know what happens, disabling OOM_Kill as per "10. OOM Control" (below) and 430seeing what happens will be helpful. 431 4324.2 Task migration 433 434When a task migrates from one cgroup to another, its charge is not 435carried forward by default. The pages allocated from the original cgroup still 436remain charged to it, the charge is dropped when the page is freed or 437reclaimed. 438 439You can move charges of a task along with task migration. 440See 8. "Move charges at task migration" 441 4424.3 Removing a cgroup 443 444A cgroup can be removed by rmdir, but as discussed in sections 4.1 and 4.2, a 445cgroup might have some charge associated with it, even though all 446tasks have migrated away from it. (because we charge against pages, not 447against tasks.) 448 449We move the stats to root (if use_hierarchy==0) or parent (if 450use_hierarchy==1), and no change on the charge except uncharging 451from the child. 452 453Charges recorded in swap information is not updated at removal of cgroup. 454Recorded information is discarded and a cgroup which uses swap (swapcache) 455will be charged as a new owner of it. 456 457About use_hierarchy, see Section 6. 458 4595. Misc. interfaces. 460 4615.1 force_empty 462 memory.force_empty interface is provided to make cgroup's memory usage empty. 463 When writing anything to this 464 465 # echo 0 > memory.force_empty 466 467 the cgroup will be reclaimed and as many pages reclaimed as possible. 468 469 The typical use case for this interface is before calling rmdir(). 470 Because rmdir() moves all pages to parent, some out-of-use page caches can be 471 moved to the parent. If you want to avoid that, force_empty will be useful. 472 473 Also, note that when memory.kmem.limit_in_bytes is set the charges due to 474 kernel pages will still be seen. This is not considered a failure and the 475 write will still return success. In this case, it is expected that 476 memory.kmem.usage_in_bytes == memory.usage_in_bytes. 477 478 About use_hierarchy, see Section 6. 479 4805.2 stat file 481 482memory.stat file includes following statistics 483 484# per-memory cgroup local status 485cache - # of bytes of page cache memory. 486rss - # of bytes of anonymous and swap cache memory (includes 487 transparent hugepages). 488rss_huge - # of bytes of anonymous transparent hugepages. 489mapped_file - # of bytes of mapped file (includes tmpfs/shmem) 490pgpgin - # of charging events to the memory cgroup. The charging 491 event happens each time a page is accounted as either mapped 492 anon page(RSS) or cache page(Page Cache) to the cgroup. 493pgpgout - # of uncharging events to the memory cgroup. The uncharging 494 event happens each time a page is unaccounted from the cgroup. 495swap - # of bytes of swap usage 496writeback - # of bytes of file/anon cache that are queued for syncing to 497 disk. 498inactive_anon - # of bytes of anonymous and swap cache memory on inactive 499 LRU list. 500active_anon - # of bytes of anonymous and swap cache memory on active 501 LRU list. 502inactive_file - # of bytes of file-backed memory on inactive LRU list. 503active_file - # of bytes of file-backed memory on active LRU list. 504unevictable - # of bytes of memory that cannot be reclaimed (mlocked etc). 505 506# status considering hierarchy (see memory.use_hierarchy settings) 507 508hierarchical_memory_limit - # of bytes of memory limit with regard to hierarchy 509 under which the memory cgroup is 510hierarchical_memsw_limit - # of bytes of memory+swap limit with regard to 511 hierarchy under which memory cgroup is. 512 513total_<counter> - # hierarchical version of <counter>, which in 514 addition to the cgroup's own value includes the 515 sum of all hierarchical children's values of 516 <counter>, i.e. total_cache 517 518# The following additional stats are dependent on CONFIG_DEBUG_VM. 519 520recent_rotated_anon - VM internal parameter. (see mm/vmscan.c) 521recent_rotated_file - VM internal parameter. (see mm/vmscan.c) 522recent_scanned_anon - VM internal parameter. (see mm/vmscan.c) 523recent_scanned_file - VM internal parameter. (see mm/vmscan.c) 524 525Memo: 526 recent_rotated means recent frequency of LRU rotation. 527 recent_scanned means recent # of scans to LRU. 528 showing for better debug please see the code for meanings. 529 530Note: 531 Only anonymous and swap cache memory is listed as part of 'rss' stat. 532 This should not be confused with the true 'resident set size' or the 533 amount of physical memory used by the cgroup. 534 'rss + file_mapped" will give you resident set size of cgroup. 535 (Note: file and shmem may be shared among other cgroups. In that case, 536 file_mapped is accounted only when the memory cgroup is owner of page 537 cache.) 538 5395.3 swappiness 540 541Overrides /proc/sys/vm/swappiness for the particular group. The tunable 542in the root cgroup corresponds to the global swappiness setting. 543 544Please note that unlike during the global reclaim, limit reclaim 545enforces that 0 swappiness really prevents from any swapping even if 546there is a swap storage available. This might lead to memcg OOM killer 547if there are no file pages to reclaim. 548 5495.4 failcnt 550 551A memory cgroup provides memory.failcnt and memory.memsw.failcnt files. 552This failcnt(== failure count) shows the number of times that a usage counter 553hit its limit. When a memory cgroup hits a limit, failcnt increases and 554memory under it will be reclaimed. 555 556You can reset failcnt by writing 0 to failcnt file. 557# echo 0 > .../memory.failcnt 558 5595.5 usage_in_bytes 560 561For efficiency, as other kernel components, memory cgroup uses some optimization 562to avoid unnecessary cacheline false sharing. usage_in_bytes is affected by the 563method and doesn't show 'exact' value of memory (and swap) usage, it's a fuzz 564value for efficient access. (Of course, when necessary, it's synchronized.) 565If you want to know more exact memory usage, you should use RSS+CACHE(+SWAP) 566value in memory.stat(see 5.2). 567 5685.6 numa_stat 569 570This is similar to numa_maps but operates on a per-memcg basis. This is 571useful for providing visibility into the numa locality information within 572an memcg since the pages are allowed to be allocated from any physical 573node. One of the use cases is evaluating application performance by 574combining this information with the application's CPU allocation. 575 576Each memcg's numa_stat file includes "total", "file", "anon" and "unevictable" 577per-node page counts including "hierarchical_<counter>" which sums up all 578hierarchical children's values in addition to the memcg's own value. 579 580The output format of memory.numa_stat is: 581 582total=<total pages> N0=<node 0 pages> N1=<node 1 pages> ... 583file=<total file pages> N0=<node 0 pages> N1=<node 1 pages> ... 584anon=<total anon pages> N0=<node 0 pages> N1=<node 1 pages> ... 585unevictable=<total anon pages> N0=<node 0 pages> N1=<node 1 pages> ... 586hierarchical_<counter>=<counter pages> N0=<node 0 pages> N1=<node 1 pages> ... 587 588The "total" count is sum of file + anon + unevictable. 589 5906. Hierarchy support 591 592The memory controller supports a deep hierarchy and hierarchical accounting. 593The hierarchy is created by creating the appropriate cgroups in the 594cgroup filesystem. Consider for example, the following cgroup filesystem 595hierarchy 596 597 root 598 / | \ 599 / | \ 600 a b c 601 | \ 602 | \ 603 d e 604 605In the diagram above, with hierarchical accounting enabled, all memory 606usage of e, is accounted to its ancestors up until the root (i.e, c and root), 607that has memory.use_hierarchy enabled. If one of the ancestors goes over its 608limit, the reclaim algorithm reclaims from the tasks in the ancestor and the 609children of the ancestor. 610 6116.1 Enabling hierarchical accounting and reclaim 612 613A memory cgroup by default disables the hierarchy feature. Support 614can be enabled by writing 1 to memory.use_hierarchy file of the root cgroup 615 616# echo 1 > memory.use_hierarchy 617 618The feature can be disabled by 619 620# echo 0 > memory.use_hierarchy 621 622NOTE1: Enabling/disabling will fail if either the cgroup already has other 623 cgroups created below it, or if the parent cgroup has use_hierarchy 624 enabled. 625 626NOTE2: When panic_on_oom is set to "2", the whole system will panic in 627 case of an OOM event in any cgroup. 628 6297. Soft limits 630 631Soft limits allow for greater sharing of memory. The idea behind soft limits 632is to allow control groups to use as much of the memory as needed, provided 633 634a. There is no memory contention 635b. They do not exceed their hard limit 636 637When the system detects memory contention or low memory, control groups 638are pushed back to their soft limits. If the soft limit of each control 639group is very high, they are pushed back as much as possible to make 640sure that one control group does not starve the others of memory. 641 642Please note that soft limits is a best-effort feature; it comes with 643no guarantees, but it does its best to make sure that when memory is 644heavily contended for, memory is allocated based on the soft limit 645hints/setup. Currently soft limit based reclaim is set up such that 646it gets invoked from balance_pgdat (kswapd). 647 6487.1 Interface 649 650Soft limits can be setup by using the following commands (in this example we 651assume a soft limit of 256 MiB) 652 653# echo 256M > memory.soft_limit_in_bytes 654 655If we want to change this to 1G, we can at any time use 656 657# echo 1G > memory.soft_limit_in_bytes 658 659NOTE1: Soft limits take effect over a long period of time, since they involve 660 reclaiming memory for balancing between memory cgroups 661NOTE2: It is recommended to set the soft limit always below the hard limit, 662 otherwise the hard limit will take precedence. 663 6648. Move charges at task migration 665 666Users can move charges associated with a task along with task migration, that 667is, uncharge task's pages from the old cgroup and charge them to the new cgroup. 668This feature is not supported in !CONFIG_MMU environments because of lack of 669page tables. 670 6718.1 Interface 672 673This feature is disabled by default. It can be enabled (and disabled again) by 674writing to memory.move_charge_at_immigrate of the destination cgroup. 675 676If you want to enable it: 677 678# echo (some positive value) > memory.move_charge_at_immigrate 679 680Note: Each bits of move_charge_at_immigrate has its own meaning about what type 681 of charges should be moved. See 8.2 for details. 682Note: Charges are moved only when you move mm->owner, in other words, 683 a leader of a thread group. 684Note: If we cannot find enough space for the task in the destination cgroup, we 685 try to make space by reclaiming memory. Task migration may fail if we 686 cannot make enough space. 687Note: It can take several seconds if you move charges much. 688 689And if you want disable it again: 690 691# echo 0 > memory.move_charge_at_immigrate 692 6938.2 Type of charges which can be moved 694 695Each bit in move_charge_at_immigrate has its own meaning about what type of 696charges should be moved. But in any case, it must be noted that an account of 697a page or a swap can be moved only when it is charged to the task's current 698(old) memory cgroup. 699 700 bit | what type of charges would be moved ? 701 -----+------------------------------------------------------------------------ 702 0 | A charge of an anonymous page (or swap of it) used by the target task. 703 | You must enable Swap Extension (see 2.4) to enable move of swap charges. 704 -----+------------------------------------------------------------------------ 705 1 | A charge of file pages (normal file, tmpfs file (e.g. ipc shared memory) 706 | and swaps of tmpfs file) mmapped by the target task. Unlike the case of 707 | anonymous pages, file pages (and swaps) in the range mmapped by the task 708 | will be moved even if the task hasn't done page fault, i.e. they might 709 | not be the task's "RSS", but other task's "RSS" that maps the same file. 710 | And mapcount of the page is ignored (the page can be moved even if 711 | page_mapcount(page) > 1). You must enable Swap Extension (see 2.4) to 712 | enable move of swap charges. 713 7148.3 TODO 715 716- All of moving charge operations are done under cgroup_mutex. It's not good 717 behavior to hold the mutex too long, so we may need some trick. 718 7199. Memory thresholds 720 721Memory cgroup implements memory thresholds using the cgroups notification 722API (see cgroups.txt). It allows to register multiple memory and memsw 723thresholds and gets notifications when it crosses. 724 725To register a threshold, an application must: 726- create an eventfd using eventfd(2); 727- open memory.usage_in_bytes or memory.memsw.usage_in_bytes; 728- write string like "<event_fd> <fd of memory.usage_in_bytes> <threshold>" to 729 cgroup.event_control. 730 731Application will be notified through eventfd when memory usage crosses 732threshold in any direction. 733 734It's applicable for root and non-root cgroup. 735 73610. OOM Control 737 738memory.oom_control file is for OOM notification and other controls. 739 740Memory cgroup implements OOM notifier using the cgroup notification 741API (See cgroups.txt). It allows to register multiple OOM notification 742delivery and gets notification when OOM happens. 743 744To register a notifier, an application must: 745 - create an eventfd using eventfd(2) 746 - open memory.oom_control file 747 - write string like "<event_fd> <fd of memory.oom_control>" to 748 cgroup.event_control 749 750The application will be notified through eventfd when OOM happens. 751OOM notification doesn't work for the root cgroup. 752 753You can disable the OOM-killer by writing "1" to memory.oom_control file, as: 754 755 #echo 1 > memory.oom_control 756 757If OOM-killer is disabled, tasks under cgroup will hang/sleep 758in memory cgroup's OOM-waitqueue when they request accountable memory. 759 760For running them, you have to relax the memory cgroup's OOM status by 761 * enlarge limit or reduce usage. 762To reduce usage, 763 * kill some tasks. 764 * move some tasks to other group with account migration. 765 * remove some files (on tmpfs?) 766 767Then, stopped tasks will work again. 768 769At reading, current status of OOM is shown. 770 oom_kill_disable 0 or 1 (if 1, oom-killer is disabled) 771 under_oom 0 or 1 (if 1, the memory cgroup is under OOM, tasks may 772 be stopped.) 773 77411. Memory Pressure 775 776The pressure level notifications can be used to monitor the memory 777allocation cost; based on the pressure, applications can implement 778different strategies of managing their memory resources. The pressure 779levels are defined as following: 780 781The "low" level means that the system is reclaiming memory for new 782allocations. Monitoring this reclaiming activity might be useful for 783maintaining cache level. Upon notification, the program (typically 784"Activity Manager") might analyze vmstat and act in advance (i.e. 785prematurely shutdown unimportant services). 786 787The "medium" level means that the system is experiencing medium memory 788pressure, the system might be making swap, paging out active file caches, 789etc. Upon this event applications may decide to further analyze 790vmstat/zoneinfo/memcg or internal memory usage statistics and free any 791resources that can be easily reconstructed or re-read from a disk. 792 793The "critical" level means that the system is actively thrashing, it is 794about to out of memory (OOM) or even the in-kernel OOM killer is on its 795way to trigger. Applications should do whatever they can to help the 796system. It might be too late to consult with vmstat or any other 797statistics, so it's advisable to take an immediate action. 798 799The events are propagated upward until the event is handled, i.e. the 800events are not pass-through. Here is what this means: for example you have 801three cgroups: A->B->C. Now you set up an event listener on cgroups A, B 802and C, and suppose group C experiences some pressure. In this situation, 803only group C will receive the notification, i.e. groups A and B will not 804receive it. This is done to avoid excessive "broadcasting" of messages, 805which disturbs the system and which is especially bad if we are low on 806memory or thrashing. So, organize the cgroups wisely, or propagate the 807events manually (or, ask us to implement the pass-through events, 808explaining why would you need them.) 809 810The file memory.pressure_level is only used to setup an eventfd. To 811register a notification, an application must: 812 813- create an eventfd using eventfd(2); 814- open memory.pressure_level; 815- write string like "<event_fd> <fd of memory.pressure_level> <level>" 816 to cgroup.event_control. 817 818Application will be notified through eventfd when memory pressure is at 819the specific level (or higher). Read/write operations to 820memory.pressure_level are no implemented. 821 822Test: 823 824 Here is a small script example that makes a new cgroup, sets up a 825 memory limit, sets up a notification in the cgroup and then makes child 826 cgroup experience a critical pressure: 827 828 # cd /sys/fs/cgroup/memory/ 829 # mkdir foo 830 # cd foo 831 # cgroup_event_listener memory.pressure_level low & 832 # echo 8000000 > memory.limit_in_bytes 833 # echo 8000000 > memory.memsw.limit_in_bytes 834 # echo $$ > tasks 835 # dd if=/dev/zero | read x 836 837 (Expect a bunch of notifications, and eventually, the oom-killer will 838 trigger.) 839 84012. TODO 841 8421. Make per-cgroup scanner reclaim not-shared pages first 8432. Teach controller to account for shared-pages 8443. Start reclamation in the background when the limit is 845 not yet hit but the usage is getting closer 846 847Summary 848 849Overall, the memory controller has been a stable controller and has been 850commented and discussed quite extensively in the community. 851 852References 853 8541. Singh, Balbir. RFC: Memory Controller, http://lwn.net/Articles/206697/ 8552. Singh, Balbir. Memory Controller (RSS Control), 856 http://lwn.net/Articles/222762/ 8573. Emelianov, Pavel. Resource controllers based on process cgroups 858 http://lkml.org/lkml/2007/3/6/198 8594. Emelianov, Pavel. RSS controller based on process cgroups (v2) 860 http://lkml.org/lkml/2007/4/9/78 8615. Emelianov, Pavel. RSS controller based on process cgroups (v3) 862 http://lkml.org/lkml/2007/5/30/244 8636. Menage, Paul. Control Groups v10, http://lwn.net/Articles/236032/ 8647. Vaidyanathan, Srinivasan, Control Groups: Pagecache accounting and control 865 subsystem (v3), http://lwn.net/Articles/235534/ 8668. Singh, Balbir. RSS controller v2 test results (lmbench), 867 http://lkml.org/lkml/2007/5/17/232 8689. Singh, Balbir. RSS controller v2 AIM9 results 869 http://lkml.org/lkml/2007/5/18/1 87010. Singh, Balbir. Memory controller v6 test results, 871 http://lkml.org/lkml/2007/8/19/36 87211. Singh, Balbir. Memory controller introduction (v6), 873 http://lkml.org/lkml/2007/8/17/69 87412. Corbet, Jonathan, Controlling memory use in cgroups, 875 http://lwn.net/Articles/243795/ 876