1# SPDX-License-Identifier: GPL-2.0-only 2 3menu "Memory Management options" 4 5# 6# For some reason microblaze and nios2 hard code SWAP=n. Hopefully we can 7# add proper SWAP support to them, in which case this can be remove. 8# 9config ARCH_NO_SWAP 10 bool 11 12menuconfig SWAP 13 bool "Support for paging of anonymous memory (swap)" 14 depends on MMU && BLOCK && !ARCH_NO_SWAP 15 default y 16 help 17 This option allows you to choose whether you want to have support 18 for so called swap devices or swap files in your kernel that are 19 used to provide more virtual memory than the actual RAM present 20 in your computer. If unsure say Y. 21 22config ZSWAP 23 bool "Compressed cache for swap pages" 24 depends on SWAP 25 select CRYPTO 26 select ZSMALLOC 27 help 28 A lightweight compressed cache for swap pages. It takes 29 pages that are in the process of being swapped out and attempts to 30 compress them into a dynamically allocated RAM-based memory pool. 31 This can result in a significant I/O reduction on swap device and, 32 in the case where decompressing from RAM is faster than swap device 33 reads, can also improve workload performance. 34 35config ZSWAP_DEFAULT_ON 36 bool "Enable the compressed cache for swap pages by default" 37 depends on ZSWAP 38 help 39 If selected, the compressed cache for swap pages will be enabled 40 at boot, otherwise it will be disabled. 41 42 The selection made here can be overridden by using the kernel 43 command line 'zswap.enabled=' option. 44 45config ZSWAP_SHRINKER_DEFAULT_ON 46 bool "Shrink the zswap pool on memory pressure" 47 depends on ZSWAP 48 default n 49 help 50 If selected, the zswap shrinker will be enabled, and the pages 51 stored in the zswap pool will become available for reclaim (i.e 52 written back to the backing swap device) on memory pressure. 53 54 This means that zswap writeback could happen even if the pool is 55 not yet full, or the cgroup zswap limit has not been reached, 56 reducing the chance that cold pages will reside in the zswap pool 57 and consume memory indefinitely. 58 59choice 60 prompt "Default compressor" 61 depends on ZSWAP 62 default ZSWAP_COMPRESSOR_DEFAULT_LZO 63 help 64 Selects the default compression algorithm for the compressed cache 65 for swap pages. 66 67 For an overview what kind of performance can be expected from 68 a particular compression algorithm please refer to the benchmarks 69 available at the following LWN page: 70 https://lwn.net/Articles/751795/ 71 72 If in doubt, select 'LZO'. 73 74 The selection made here can be overridden by using the kernel 75 command line 'zswap.compressor=' option. 76 77config ZSWAP_COMPRESSOR_DEFAULT_DEFLATE 78 bool "Deflate" 79 select CRYPTO_DEFLATE 80 help 81 Use the Deflate algorithm as the default compression algorithm. 82 83config ZSWAP_COMPRESSOR_DEFAULT_LZO 84 bool "LZO" 85 select CRYPTO_LZO 86 help 87 Use the LZO algorithm as the default compression algorithm. 88 89config ZSWAP_COMPRESSOR_DEFAULT_842 90 bool "842" 91 select CRYPTO_842 92 help 93 Use the 842 algorithm as the default compression algorithm. 94 95config ZSWAP_COMPRESSOR_DEFAULT_LZ4 96 bool "LZ4" 97 select CRYPTO_LZ4 98 help 99 Use the LZ4 algorithm as the default compression algorithm. 100 101config ZSWAP_COMPRESSOR_DEFAULT_LZ4HC 102 bool "LZ4HC" 103 select CRYPTO_LZ4HC 104 help 105 Use the LZ4HC algorithm as the default compression algorithm. 106 107config ZSWAP_COMPRESSOR_DEFAULT_ZSTD 108 bool "zstd" 109 select CRYPTO_ZSTD 110 help 111 Use the zstd algorithm as the default compression algorithm. 112endchoice 113 114config ZSWAP_COMPRESSOR_DEFAULT 115 string 116 depends on ZSWAP 117 default "deflate" if ZSWAP_COMPRESSOR_DEFAULT_DEFLATE 118 default "lzo" if ZSWAP_COMPRESSOR_DEFAULT_LZO 119 default "842" if ZSWAP_COMPRESSOR_DEFAULT_842 120 default "lz4" if ZSWAP_COMPRESSOR_DEFAULT_LZ4 121 default "lz4hc" if ZSWAP_COMPRESSOR_DEFAULT_LZ4HC 122 default "zstd" if ZSWAP_COMPRESSOR_DEFAULT_ZSTD 123 default "" 124 125config ZSMALLOC 126 tristate 127 128if ZSMALLOC 129 130menu "Zsmalloc allocator options" 131 depends on ZSMALLOC 132 133comment "Zsmalloc is a common backend allocator for zswap & zram" 134 135config ZSMALLOC_STAT 136 bool "Export zsmalloc statistics" 137 select DEBUG_FS 138 help 139 This option enables code in the zsmalloc to collect various 140 statistics about what's happening in zsmalloc and exports that 141 information to userspace via debugfs. 142 If unsure, say N. 143 144config ZSMALLOC_CHAIN_SIZE 145 int "Maximum number of physical pages per-zspage" 146 default 8 147 range 4 16 148 help 149 This option sets the upper limit on the number of physical pages 150 that a zmalloc page (zspage) can consist of. The optimal zspage 151 chain size is calculated for each size class during the 152 initialization of the pool. 153 154 Changing this option can alter the characteristics of size classes, 155 such as the number of pages per zspage and the number of objects 156 per zspage. This can also result in different configurations of 157 the pool, as zsmalloc merges size classes with similar 158 characteristics. 159 160 For more information, see zsmalloc documentation. 161 162endmenu 163 164endif 165 166menu "Slab allocator options" 167 168config SLUB 169 def_bool y 170 select IRQ_WORK 171 172config KVFREE_RCU_BATCHED 173 def_bool y 174 depends on !SLUB_TINY && !TINY_RCU 175 depends on !RCU_STRICT_GRACE_PERIOD 176 177config SLUB_TINY 178 bool "Configure for minimal memory footprint" 179 depends on EXPERT && !COMPILE_TEST 180 select SLAB_MERGE_DEFAULT 181 help 182 Configures the slab allocator in a way to achieve minimal memory 183 footprint, sacrificing scalability, debugging and other features. 184 This is intended only for the smallest system that had used the 185 SLOB allocator and is not recommended for systems with more than 186 16MB RAM. 187 188 If unsure, say N. 189 190config SLAB_MERGE_DEFAULT 191 bool "Allow slab caches to be merged" 192 default y 193 help 194 For reduced kernel memory fragmentation, slab caches can be 195 merged when they share the same size and other characteristics. 196 This carries a risk of kernel heap overflows being able to 197 overwrite objects from merged caches (and more easily control 198 cache layout), which makes such heap attacks easier to exploit 199 by attackers. By keeping caches unmerged, these kinds of exploits 200 can usually only damage objects in the same cache. To disable 201 merging at runtime, "slab_nomerge" can be passed on the kernel 202 command line. 203 204config SLAB_FREELIST_RANDOM 205 bool "Randomize slab freelist" 206 depends on !SLUB_TINY 207 help 208 Randomizes the freelist order used on creating new pages. This 209 security feature reduces the predictability of the kernel slab 210 allocator against heap overflows. 211 212config SLAB_FREELIST_HARDENED 213 bool "Harden slab freelist metadata" 214 depends on !SLUB_TINY 215 help 216 Many kernel heap attacks try to target slab cache metadata and 217 other infrastructure. This options makes minor performance 218 sacrifices to harden the kernel slab allocator against common 219 freelist exploit methods. 220 221config SLAB_BUCKETS 222 bool "Support allocation from separate kmalloc buckets" 223 depends on !SLUB_TINY 224 default SLAB_FREELIST_HARDENED 225 help 226 Kernel heap attacks frequently depend on being able to create 227 specifically-sized allocations with user-controlled contents 228 that will be allocated into the same kmalloc bucket as a 229 target object. To avoid sharing these allocation buckets, 230 provide an explicitly separated set of buckets to be used for 231 user-controlled allocations. This may very slightly increase 232 memory fragmentation, though in practice it's only a handful 233 of extra pages since the bulk of user-controlled allocations 234 are relatively long-lived. 235 236 If unsure, say Y. 237 238config SLUB_STATS 239 default n 240 bool "Enable performance statistics" 241 depends on SYSFS && !SLUB_TINY 242 help 243 The statistics are useful to debug slab allocation behavior in 244 order find ways to optimize the allocator. This should never be 245 enabled for production use since keeping statistics slows down 246 the allocator by a few percentage points. The slabinfo command 247 supports the determination of the most active slabs to figure 248 out which slabs are relevant to a particular load. 249 Try running: slabinfo -DA 250 251config KMALLOC_PARTITION_CACHES 252 depends on !SLUB_TINY 253 bool "Partitioned slab caches for normal kmalloc" 254 default RANDOM_KMALLOC_CACHES 255 help 256 A hardening feature that creates multiple isolated copies of slab 257 caches for normal kmalloc allocations. This makes it more difficult 258 to exploit memory-safety vulnerabilities by attacking vulnerable 259 co-located memory objects. Several modes are provided. 260 261 Currently the number of copies is set to 16, a reasonably large value 262 that effectively diverges the memory objects allocated for different 263 subsystems or modules into different caches, at the expense of a 264 limited degree of memory and CPU overhead that relates to hardware 265 and system workload. 266 267choice 268 prompt "Partitioned slab cache mode" 269 depends on KMALLOC_PARTITION_CACHES 270 default KMALLOC_PARTITION_TYPED if CC_HAS_ALLOC_TOKEN 271 default KMALLOC_PARTITION_RANDOM 272 help 273 Selects the slab cache partitioning mode. 274 275config KMALLOC_PARTITION_RANDOM 276 bool "Randomize slab caches for normal kmalloc" 277 help 278 Randomly pick a slab cache based on code address and a per-boot 279 random seed. 280 281 This makes it harder for attackers to predict object co-location. 282 The placement is random: while attackers don't know which kmalloc 283 cache an object will be allocated from, they might circumvent 284 the randomization by retrying attacks across multiple machines until 285 the target objects are co-located. 286 287config KMALLOC_PARTITION_TYPED 288 bool "Type based slab cache selection for normal kmalloc" 289 depends on CC_HAS_ALLOC_TOKEN 290 help 291 Rely on Clang's allocation tokens to choose a slab cache, where token 292 IDs are derived from the allocated type. 293 294 Unlike KMALLOC_PARTITION_RANDOM, cache assignment is deterministic based 295 on type, which guarantees that objects of certain types are not 296 placed in the same cache. This effectively mitigates certain classes 297 of exploits that probabilistic defenses like KMALLOC_PARTITION_RANDOM 298 only make harder but not impossible. However, this also means the 299 cache assignment is predictable. 300 301 Clang's default token ID calculation returns a bounded hash with 302 disjoint ranges for pointer-containing and pointerless objects: when 303 used as the slab cache index, this prevents buffer overflows on 304 primitive buffers from directly corrupting pointer-containing 305 objects. 306 307 The current effectiveness of Clang's type inference can be judged by 308 -Rpass=alloc-token, which provides diagnostics where (after dead-code 309 elimination) type inference failed. 310 311 Requires Clang 22 or later. 312 313endchoice 314 315config RANDOM_KMALLOC_CACHES 316 bool 317 transitional 318 help 319 Transitional config for migration to KMALLOC_PARTITION_CACHES. 320 321endmenu # Slab allocator options 322 323config SHUFFLE_PAGE_ALLOCATOR 324 bool "Page allocator randomization" 325 default SLAB_FREELIST_RANDOM && ACPI_NUMA 326 help 327 Randomization of the page allocator improves the average 328 utilization of a direct-mapped memory-side-cache. See section 329 5.2.27 Heterogeneous Memory Attribute Table (HMAT) in the ACPI 330 6.2a specification for an example of how a platform advertises 331 the presence of a memory-side-cache. There are also incidental 332 security benefits as it reduces the predictability of page 333 allocations to compliment SLAB_FREELIST_RANDOM, but the 334 default granularity of shuffling on the MAX_PAGE_ORDER i.e, 10th 335 order of pages is selected based on cache utilization benefits 336 on x86. 337 338 While the randomization improves cache utilization it may 339 negatively impact workloads on platforms without a cache. For 340 this reason, by default, the randomization is not enabled even 341 if SHUFFLE_PAGE_ALLOCATOR=y. The randomization may be force enabled 342 with the 'page_alloc.shuffle' kernel command line parameter. 343 344 Say Y if unsure. 345 346config COMPAT_BRK 347 bool "Disable heap randomization" 348 default y 349 help 350 Randomizing heap placement makes heap exploits harder, but it 351 also breaks ancient binaries (including anything libc5 based). 352 This option changes the bootup default to heap randomization 353 disabled, and can be overridden at runtime by setting 354 /proc/sys/kernel/randomize_va_space to 2. 355 356 On non-ancient distros (post-2000 ones) N is usually a safe choice. 357 358config MMAP_ALLOW_UNINITIALIZED 359 bool "Allow mmapped anonymous memory to be uninitialized" 360 depends on EXPERT && !MMU 361 default n 362 help 363 Normally, and according to the Linux spec, anonymous memory obtained 364 from mmap() has its contents cleared before it is passed to 365 userspace. Enabling this config option allows you to request that 366 mmap() skip that if it is given an MAP_UNINITIALIZED flag, thus 367 providing a huge performance boost. If this option is not enabled, 368 then the flag will be ignored. 369 370 This is taken advantage of by uClibc's malloc(), and also by 371 ELF-FDPIC binfmt's brk and stack allocator. 372 373 Because of the obvious security issues, this option should only be 374 enabled on embedded devices where you control what is run in 375 userspace. Since that isn't generally a problem on no-MMU systems, 376 it is normally safe to say Y here. 377 378 See Documentation/admin-guide/mm/nommu-mmap.rst for more information. 379 380config SELECT_MEMORY_MODEL 381 def_bool y 382 depends on ARCH_SELECT_MEMORY_MODEL 383 384choice 385 prompt "Memory model" 386 depends on SELECT_MEMORY_MODEL 387 default SPARSEMEM_MANUAL if ARCH_SPARSEMEM_DEFAULT 388 default FLATMEM_MANUAL 389 help 390 This option allows you to change some of the ways that 391 Linux manages its memory internally. Most users will 392 only have one option here selected by the architecture 393 configuration. This is normal. 394 395config FLATMEM_MANUAL 396 bool "Flat Memory" 397 depends on !ARCH_SPARSEMEM_ENABLE || ARCH_FLATMEM_ENABLE 398 help 399 This option is best suited for non-NUMA systems with 400 flat address space. The FLATMEM is the most efficient 401 system in terms of performance and resource consumption 402 and it is the best option for smaller systems. 403 404 For systems that have holes in their physical address 405 spaces and for features like NUMA and memory hotplug, 406 choose "Sparse Memory". 407 408 If unsure, choose this option (Flat Memory) over any other. 409 410config SPARSEMEM_MANUAL 411 bool "Sparse Memory" 412 depends on ARCH_SPARSEMEM_ENABLE 413 help 414 This will be the only option for some systems, including 415 memory hot-plug systems. This is normal. 416 417 This option provides efficient support for systems with 418 holes is their physical address space and allows memory 419 hot-plug and hot-remove. 420 421 If unsure, choose "Flat Memory" over this option. 422 423endchoice 424 425config SPARSEMEM 426 def_bool y 427 depends on (!SELECT_MEMORY_MODEL && ARCH_SPARSEMEM_ENABLE) || SPARSEMEM_MANUAL 428 429config FLATMEM 430 def_bool y 431 depends on !SPARSEMEM || FLATMEM_MANUAL 432 433# 434# SPARSEMEM_EXTREME (which is the default) does some bootmem 435# allocations when sparse_init() is called. If this cannot 436# be done on your architecture, select this option. However, 437# statically allocating the mem_section[] array can potentially 438# consume vast quantities of .bss, so be careful. 439# 440# This option will also potentially produce smaller runtime code 441# with gcc 3.4 and later. 442# 443config SPARSEMEM_STATIC 444 bool 445 446# 447# Architecture platforms which require a two level mem_section in SPARSEMEM 448# must select this option. This is usually for architecture platforms with 449# an extremely sparse physical address space. 450# 451config SPARSEMEM_EXTREME 452 def_bool y 453 depends on SPARSEMEM && !SPARSEMEM_STATIC 454 455config SPARSEMEM_VMEMMAP_ENABLE 456 bool 457 458config SPARSEMEM_VMEMMAP 459 def_bool y 460 depends on SPARSEMEM && SPARSEMEM_VMEMMAP_ENABLE 461 help 462 SPARSEMEM_VMEMMAP uses a virtually mapped memmap to optimise 463 pfn_to_page and page_to_pfn operations. This is the most 464 efficient option when sufficient kernel resources are available. 465 466config SPARSEMEM_VMEMMAP_PREINIT 467 bool 468# 469# Select this config option from the architecture Kconfig, if it is preferred 470# to enable the feature of HugeTLB/dev_dax vmemmap optimization. 471# 472config ARCH_WANT_OPTIMIZE_DAX_VMEMMAP 473 bool 474 475config ARCH_WANT_OPTIMIZE_HUGETLB_VMEMMAP 476 bool 477 478config ARCH_WANT_HUGETLB_VMEMMAP_PREINIT 479 bool 480 481config HAVE_MEMBLOCK_PHYS_MAP 482 bool 483 484config HAVE_GUP_FAST 485 depends on MMU 486 bool 487 488# Enable memblock support for scratch memory which is needed for kexec handover 489config MEMBLOCK_KHO_SCRATCH 490 bool 491 492# Don't discard allocated memory used to track "memory" and "reserved" memblocks 493# after early boot, so it can still be used to test for validity of memory. 494# Also, memblocks are updated with memory hot(un)plug. 495config ARCH_KEEP_MEMBLOCK 496 bool 497 498# Keep arch NUMA mapping infrastructure post-init. 499config NUMA_KEEP_MEMINFO 500 bool 501 502config MEMORY_ISOLATION 503 bool 504 505# IORESOURCE_SYSTEM_RAM regions in the kernel resource tree that are marked 506# IORESOURCE_EXCLUSIVE cannot be mapped to user space, for example, via 507# /dev/mem. 508config EXCLUSIVE_SYSTEM_RAM 509 def_bool y 510 depends on !DEVMEM || STRICT_DEVMEM 511 512# 513# Only be set on architectures that have completely implemented memory hotplug 514# feature. If you are not sure, don't touch it. 515# 516config HAVE_BOOTMEM_INFO_NODE 517 def_bool n 518 519config ARCH_ENABLE_MEMORY_HOTPLUG 520 bool 521 522# eventually, we can have this option just 'select SPARSEMEM' 523menuconfig MEMORY_HOTPLUG 524 bool "Memory hotplug" 525 select MEMORY_ISOLATION 526 depends on SPARSEMEM_VMEMMAP 527 depends on ARCH_ENABLE_MEMORY_HOTPLUG 528 depends on 64BIT 529 select NUMA_KEEP_MEMINFO if NUMA 530 531if MEMORY_HOTPLUG 532 533choice 534 prompt "Memory Hotplug Default Online Type" 535 default MHP_DEFAULT_ONLINE_TYPE_OFFLINE 536 help 537 Default memory type for hotplugged memory. 538 539 This option sets the default policy setting for memory hotplug 540 onlining policy (/sys/devices/system/memory/auto_online_blocks) which 541 determines what happens to newly added memory regions. Policy setting 542 can always be changed at runtime. 543 544 The default is 'offline'. 545 546 Select offline to defer onlining to drivers and user policy. 547 Select auto to let the kernel choose what zones to utilize. 548 Select online_kernel to generally allow kernel usage of this memory. 549 Select online_movable to generally disallow kernel usage of this memory. 550 551 Example kernel usage would be page structs and page tables. 552 553 See Documentation/admin-guide/mm/memory-hotplug.rst for more information. 554 555config MHP_DEFAULT_ONLINE_TYPE_OFFLINE 556 bool "offline" 557 help 558 Hotplugged memory will not be onlined by default. 559 Choose this for systems with drivers and user policy that 560 handle onlining of hotplug memory policy. 561 562config MHP_DEFAULT_ONLINE_TYPE_ONLINE_AUTO 563 bool "auto" 564 help 565 Select this if you want the kernel to automatically online 566 hotplugged memory into the zone it thinks is reasonable. 567 This memory may be utilized for kernel data. 568 569config MHP_DEFAULT_ONLINE_TYPE_ONLINE_KERNEL 570 bool "kernel" 571 help 572 Select this if you want the kernel to automatically online 573 hotplugged memory into a zone capable of being used for kernel 574 data. This typically means ZONE_NORMAL. 575 576config MHP_DEFAULT_ONLINE_TYPE_ONLINE_MOVABLE 577 bool "movable" 578 help 579 Select this if you want the kernel to automatically online 580 hotplug memory into ZONE_MOVABLE. This memory will generally 581 not be utilized for kernel data. 582 583 This should only be used when the admin knows sufficient 584 ZONE_NORMAL memory is available to describe hotplug memory, 585 otherwise hotplug memory may fail to online. For example, 586 sufficient kernel-capable memory (ZONE_NORMAL) must be 587 available to allocate page structs to describe ZONE_MOVABLE. 588 589endchoice 590 591config MEMORY_HOTREMOVE 592 bool "Allow for memory hot remove" 593 depends on MEMORY_HOTPLUG 594 select MIGRATION 595 596config MHP_MEMMAP_ON_MEMORY 597 def_bool y 598 depends on MEMORY_HOTPLUG && SPARSEMEM_VMEMMAP 599 depends on ARCH_MHP_MEMMAP_ON_MEMORY_ENABLE 600 601endif # MEMORY_HOTPLUG 602 603config ARCH_MHP_MEMMAP_ON_MEMORY_ENABLE 604 bool 605 606# Heavily threaded applications may benefit from splitting the mm-wide 607# page_table_lock, so that faults on different parts of the user address 608# space can be handled with less contention: split it at this NR_CPUS. 609# Default to 4 for wider testing, though 8 might be more appropriate. 610# ARM's adjust_pte (unused if VIPT) depends on mm-wide page_table_lock. 611# PA-RISC 7xxx's spinlock_t would enlarge struct page from 32 to 44 bytes. 612# SPARC32 allocates multiple pte tables within a single page, and therefore 613# a per-page lock leads to problems when multiple tables need to be locked 614# at the same time (e.g. copy_page_range()). 615# DEBUG_SPINLOCK and DEBUG_LOCK_ALLOC spinlock_t also enlarge struct page. 616# 617config SPLIT_PTE_PTLOCKS 618 def_bool y 619 depends on MMU 620 depends on SMP 621 depends on NR_CPUS >= 4 622 depends on !ARM || CPU_CACHE_VIPT 623 depends on !PARISC || PA20 624 depends on !SPARC32 625 depends on !UML 626 627config ARCH_ENABLE_SPLIT_PMD_PTLOCK 628 bool 629 630config SPLIT_PMD_PTLOCKS 631 def_bool y 632 depends on SPLIT_PTE_PTLOCKS && ARCH_ENABLE_SPLIT_PMD_PTLOCK 633 634# 635# support for memory balloon 636config BALLOON 637 bool 638 639# 640# support for memory balloon page migration 641config BALLOON_MIGRATION 642 bool "Allow for balloon memory migration" 643 default y 644 depends on MIGRATION && BALLOON 645 help 646 Allow for migration of pages inflated in a memory balloon such that 647 they can be allocated from memory areas only available for movable 648 allocations (e.g., ZONE_MOVABLE, CMA) and such that they can be 649 migrated for memory defragmentation purposes by memory compaction. 650 651# 652# support for memory compaction 653config COMPACTION 654 bool "Allow for memory compaction" 655 default y 656 select MIGRATION 657 depends on MMU 658 help 659 Compaction is the only memory management component to form 660 high order (larger physically contiguous) memory blocks 661 reliably. The page allocator relies on compaction heavily and 662 the lack of the feature can lead to unexpected OOM killer 663 invocations for high order memory requests. You shouldn't 664 disable this option unless there really is a strong reason for 665 it and then we would be really interested to hear about that at 666 linux-mm@kvack.org. 667 668config COMPACT_UNEVICTABLE_DEFAULT 669 int 670 depends on COMPACTION 671 default 0 if PREEMPT_RT 672 default 1 673 674# 675# support for free page reporting 676config PAGE_REPORTING 677 bool "Free page reporting" 678 help 679 Free page reporting allows for the incremental acquisition of 680 free pages from the buddy allocator for the purpose of reporting 681 those pages to another entity, such as a hypervisor, so that the 682 memory can be freed within the host for other uses. 683 684config NUMA_MIGRATION 685 bool "NUMA page migration" 686 default y 687 depends on NUMA && MMU 688 select MIGRATION 689 help 690 Support the migration of pages to other NUMA nodes, available to 691 user space through interfaces like migrate_pages(), move_pages(), 692 and mbind(). Selecting this option also enables support for page 693 demotion for memory tiering. 694 695config MIGRATION 696 bool 697 depends on MMU 698 699config DEVICE_MIGRATION 700 def_bool MIGRATION && ZONE_DEVICE 701 702config ARCH_ENABLE_HUGEPAGE_MIGRATION 703 bool 704 705config ARCH_HAS_PMD_SOFTLEAVES 706 bool 707 708config HUGETLB_PAGE_SIZE_VARIABLE 709 def_bool n 710 help 711 Allows the pageblock_order value to be dynamic instead of just standard 712 HUGETLB_PAGE_ORDER when there are multiple HugeTLB page sizes available 713 on a platform. 714 715 Note that the pageblock_order cannot exceed MAX_PAGE_ORDER and will be 716 clamped down to MAX_PAGE_ORDER. 717 718config CONTIG_ALLOC 719 def_bool (MEMORY_ISOLATION && COMPACTION) || CMA 720 721config PCP_BATCH_SCALE_MAX 722 int "Maximum scale factor of PCP (Per-CPU pageset) batch allocate/free" 723 default 5 724 range 0 6 725 help 726 In page allocator, PCP (Per-CPU pageset) is refilled and drained in 727 batches. The batch number is scaled automatically to improve page 728 allocation/free throughput. But too large scale factor may hurt 729 latency. This option sets the upper limit of scale factor to limit 730 the maximum latency. 731 732config PHYS_ADDR_T_64BIT 733 def_bool 64BIT 734 735config MMU_NOTIFIER 736 bool 737 select INTERVAL_TREE 738 739config KSM 740 bool "Enable KSM for page merging" 741 depends on MMU 742 select XXHASH 743 help 744 Enable Kernel Samepage Merging: KSM periodically scans those areas 745 of an application's address space that an app has advised may be 746 mergeable. When it finds pages of identical content, it replaces 747 the many instances by a single page with that content, so 748 saving memory until one or another app needs to modify the content. 749 Recommended for use with KVM, or with other duplicative applications. 750 See Documentation/mm/ksm.rst for more information: KSM is inactive 751 until a program has madvised that an area is MADV_MERGEABLE, and 752 root has set /sys/kernel/mm/ksm/run to 1 (if CONFIG_SYSFS is set). 753 754config DEFAULT_MMAP_MIN_ADDR 755 int "Low address space to protect from user allocation" 756 depends on MMU 757 default 4096 758 help 759 This is the portion of low virtual memory which should be protected 760 from userspace allocation. Keeping a user from writing to low pages 761 can help reduce the impact of kernel NULL pointer bugs. 762 763 For most arm64, ppc64 and x86 users with lots of address space 764 a value of 65536 is reasonable and should cause no problems. 765 On arm and other archs it should not be higher than 32768. 766 Programs which use vm86 functionality or have some need to map 767 this low address space will need CAP_SYS_RAWIO or disable this 768 protection by setting the value to 0. 769 770 This value can be changed after boot using the 771 /proc/sys/vm/mmap_min_addr tunable. 772 773config ARCH_SUPPORTS_MEMORY_FAILURE 774 bool 775 776config MEMORY_FAILURE 777 depends on MMU 778 depends on ARCH_SUPPORTS_MEMORY_FAILURE 779 bool "Enable recovery from hardware memory errors" 780 select INTERVAL_TREE 781 help 782 Enables code to recover from some memory failures on systems 783 with MCA recovery. This allows a system to continue running 784 even when some of its memory has uncorrected errors. This requires 785 special hardware support and typically ECC memory. 786 787config HWPOISON_INJECT 788 tristate "HWPoison pages injector" 789 depends on MEMORY_FAILURE && DEBUG_KERNEL && PROC_FS 790 select PROC_PAGE_MONITOR 791 792config NOMMU_INITIAL_TRIM_EXCESS 793 int "Turn on mmap() excess space trimming before booting" 794 depends on !MMU 795 default 1 796 help 797 The NOMMU mmap() frequently needs to allocate large contiguous chunks 798 of memory on which to store mappings, but it can only ask the system 799 allocator for chunks in 2^N*PAGE_SIZE amounts - which is frequently 800 more than it requires. To deal with this, mmap() is able to trim off 801 the excess and return it to the allocator. 802 803 If trimming is enabled, the excess is trimmed off and returned to the 804 system allocator, which can cause extra fragmentation, particularly 805 if there are a lot of transient processes. 806 807 If trimming is disabled, the excess is kept, but not used, which for 808 long-term mappings means that the space is wasted. 809 810 Trimming can be dynamically controlled through a sysctl option 811 (/proc/sys/vm/nr_trim_pages) which specifies the minimum number of 812 excess pages there must be before trimming should occur, or zero if 813 no trimming is to occur. 814 815 This option specifies the initial value of this option. The default 816 of 1 says that all excess pages should be trimmed. 817 818 See Documentation/admin-guide/mm/nommu-mmap.rst for more information. 819 820config ARCH_WANT_GENERAL_HUGETLB 821 bool 822 823config ARCH_WANTS_THP_SWAP 824 def_bool n 825 826config PERSISTENT_HUGE_ZERO_FOLIO 827 bool "Allocate a PMD sized folio for zeroing" 828 depends on TRANSPARENT_HUGEPAGE 829 help 830 Enable this option to reduce the runtime refcounting overhead 831 of the huge zero folio and expand the places in the kernel 832 that can use huge zero folios. For instance, block I/O benefits 833 from access to large folios for zeroing memory. 834 835 With this option enabled, the huge zero folio is allocated 836 once and never freed. One full huge page's worth of memory shall 837 be used. 838 839 Say Y if your system has lots of memory. Say N if you are 840 memory constrained. 841 842config MM_ID 843 def_bool n 844 845menuconfig TRANSPARENT_HUGEPAGE 846 bool "Transparent Hugepage Support" 847 depends on HAVE_ARCH_TRANSPARENT_HUGEPAGE && !PREEMPT_RT 848 select COMPACTION 849 select XARRAY_MULTI 850 select MM_ID 851 help 852 Transparent Hugepages allows the kernel to use huge pages and 853 huge tlb transparently to the applications whenever possible. 854 This feature can improve computing performance to certain 855 applications by speeding up page faults during memory 856 allocation, by reducing the number of tlb misses and by speeding 857 up the pagetable walking. 858 859 If memory constrained on embedded, you may want to say N. 860 861if TRANSPARENT_HUGEPAGE 862 863choice 864 prompt "Transparent Hugepage Support sysfs defaults" 865 default TRANSPARENT_HUGEPAGE_ALWAYS 866 help 867 Selects the sysfs defaults for Transparent Hugepage Support. 868 869 config TRANSPARENT_HUGEPAGE_ALWAYS 870 bool "always" 871 help 872 Enabling Transparent Hugepage always, can increase the 873 memory footprint of applications without a guaranteed 874 benefit but it will work automatically for all applications. 875 876 config TRANSPARENT_HUGEPAGE_MADVISE 877 bool "madvise" 878 help 879 Enabling Transparent Hugepage madvise, will only provide a 880 performance improvement benefit to the applications using 881 madvise(MADV_HUGEPAGE) but it won't risk to increase the 882 memory footprint of applications without a guaranteed 883 benefit. 884 885 config TRANSPARENT_HUGEPAGE_NEVER 886 bool "never" 887 help 888 Disable Transparent Hugepage by default. It can still be 889 enabled at runtime via sysfs. 890endchoice 891 892choice 893 prompt "Shmem hugepage allocation defaults" 894 default TRANSPARENT_HUGEPAGE_SHMEM_HUGE_NEVER 895 help 896 Selects the hugepage allocation policy defaults for 897 the internal shmem mount. 898 899 The selection made here can be overridden by using the kernel 900 command line 'transparent_hugepage_shmem=' option. 901 902 config TRANSPARENT_HUGEPAGE_SHMEM_HUGE_NEVER 903 bool "never" 904 help 905 Disable hugepage allocation for shmem mount by default. It can 906 still be enabled with the kernel command line 907 'transparent_hugepage_shmem=' option or at runtime via sysfs 908 knob. Note that madvise(MADV_COLLAPSE) can still cause 909 transparent huge pages to be obtained even if this mode is 910 specified. 911 912 config TRANSPARENT_HUGEPAGE_SHMEM_HUGE_ALWAYS 913 bool "always" 914 help 915 Always attempt to allocate hugepage for shmem mount, can 916 increase the memory footprint of applications without a 917 guaranteed benefit but it will work automatically for all 918 applications. 919 920 config TRANSPARENT_HUGEPAGE_SHMEM_HUGE_WITHIN_SIZE 921 bool "within_size" 922 help 923 Enable hugepage allocation for shmem mount if the allocation 924 will be fully within the i_size. This configuration also takes 925 into account any madvise(MADV_HUGEPAGE) hints that may be 926 provided by the applications. 927 928 config TRANSPARENT_HUGEPAGE_SHMEM_HUGE_ADVISE 929 bool "advise" 930 help 931 Enable hugepage allocation for the shmem mount exclusively when 932 applications supply the madvise(MADV_HUGEPAGE) hint. 933 This ensures that hugepages are used only in response to explicit 934 requests from applications. 935endchoice 936 937choice 938 prompt "Tmpfs hugepage allocation defaults" 939 default TRANSPARENT_HUGEPAGE_TMPFS_HUGE_NEVER 940 help 941 Selects the hugepage allocation policy defaults for 942 the tmpfs mount. 943 944 The selection made here can be overridden by using the kernel 945 command line 'transparent_hugepage_tmpfs=' option. 946 947 config TRANSPARENT_HUGEPAGE_TMPFS_HUGE_NEVER 948 bool "never" 949 help 950 Disable hugepage allocation for tmpfs mount by default. It can 951 still be enabled with the kernel command line 952 'transparent_hugepage_tmpfs=' option. Note that 953 madvise(MADV_COLLAPSE) can still cause transparent huge pages 954 to be obtained even if this mode is specified. 955 956 config TRANSPARENT_HUGEPAGE_TMPFS_HUGE_ALWAYS 957 bool "always" 958 help 959 Always attempt to allocate hugepage for tmpfs mount, can 960 increase the memory footprint of applications without a 961 guaranteed benefit but it will work automatically for all 962 applications. 963 964 config TRANSPARENT_HUGEPAGE_TMPFS_HUGE_WITHIN_SIZE 965 bool "within_size" 966 help 967 Enable hugepage allocation for tmpfs mount if the allocation 968 will be fully within the i_size. This configuration also takes 969 into account any madvise(MADV_HUGEPAGE) hints that may be 970 provided by the applications. 971 972 config TRANSPARENT_HUGEPAGE_TMPFS_HUGE_ADVISE 973 bool "advise" 974 help 975 Enable hugepage allocation for the tmpfs mount exclusively when 976 applications supply the madvise(MADV_HUGEPAGE) hint. 977 This ensures that hugepages are used only in response to explicit 978 requests from applications. 979endchoice 980 981config THP_SWAP 982 def_bool y 983 depends on ARCH_WANTS_THP_SWAP && SWAP && 64BIT 984 help 985 Swap transparent huge pages in one piece, without splitting. 986 XXX: For now, swap cluster backing transparent huge page 987 will be split after swapout. 988 989 For selection by architectures with reasonable THP sizes. 990 991config NO_PAGE_MAPCOUNT 992 bool "No per-page mapcount (EXPERIMENTAL)" 993 help 994 Do not maintain per-page mapcounts for pages part of larger 995 allocations, such as transparent huge pages. 996 997 When this config option is enabled, some interfaces that relied on 998 this information will rely on less-precise per-allocation information 999 instead: for example, using the average per-page mapcount in such 1000 a large allocation instead of the per-page mapcount. 1001 1002 EXPERIMENTAL because the impact of some changes is still unclear. 1003 1004endif # TRANSPARENT_HUGEPAGE 1005 1006# simple helper to make the code a bit easier to read 1007config PAGE_MAPCOUNT 1008 def_bool !NO_PAGE_MAPCOUNT 1009 1010# 1011# The architecture supports pgtable leaves that is larger than PAGE_SIZE 1012# 1013config PGTABLE_HAS_HUGE_LEAVES 1014 def_bool TRANSPARENT_HUGEPAGE || HUGETLB_PAGE 1015 1016# 1017# We can end up creating gigantic folio. 1018# 1019config HAVE_GIGANTIC_FOLIOS 1020 def_bool (HUGETLB_PAGE && ARCH_HAS_GIGANTIC_PAGE) || \ 1021 (ZONE_DEVICE && HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD) 1022 1023config ASYNC_KERNEL_PGTABLE_FREE 1024 def_bool n 1025 1026# TODO: Allow to be enabled without THP 1027config ARCH_SUPPORTS_HUGE_PFNMAP 1028 def_bool n 1029 depends on TRANSPARENT_HUGEPAGE 1030 1031config ARCH_SUPPORTS_PMD_PFNMAP 1032 def_bool y 1033 depends on ARCH_SUPPORTS_HUGE_PFNMAP && HAVE_ARCH_TRANSPARENT_HUGEPAGE 1034 1035config ARCH_SUPPORTS_PUD_PFNMAP 1036 def_bool y 1037 depends on ARCH_SUPPORTS_HUGE_PFNMAP && HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD 1038 1039# 1040# Architectures that always use weak definitions for percpu 1041# variables in modules should set this. 1042# 1043config ARCH_MODULE_NEEDS_WEAK_PER_CPU 1044 bool 1045 1046# 1047# UP and nommu archs use km based percpu allocator 1048# 1049config NEED_PER_CPU_KM 1050 depends on !SMP || !MMU 1051 bool 1052 default y 1053 1054config NEED_PER_CPU_EMBED_FIRST_CHUNK 1055 bool 1056 1057config NEED_PER_CPU_PAGE_FIRST_CHUNK 1058 bool 1059 1060config USE_PERCPU_NUMA_NODE_ID 1061 bool 1062 1063config HAVE_SETUP_PER_CPU_AREA 1064 bool 1065 1066config CMA 1067 bool "Contiguous Memory Allocator" 1068 depends on MMU 1069 select MIGRATION 1070 select MEMORY_ISOLATION 1071 help 1072 This enables the Contiguous Memory Allocator which allows other 1073 subsystems to allocate big physically-contiguous blocks of memory. 1074 CMA reserves a region of memory and allows only movable pages to 1075 be allocated from it. This way, the kernel can use the memory for 1076 pagecache and when a subsystem requests for contiguous area, the 1077 allocated pages are migrated away to serve the contiguous request. 1078 1079 If unsure, say "n". 1080 1081config CMA_DEBUGFS 1082 bool "CMA debugfs interface" 1083 depends on CMA && DEBUG_FS 1084 help 1085 Turns on the DebugFS interface for CMA. 1086 1087config CMA_SYSFS 1088 bool "CMA information through sysfs interface" 1089 depends on CMA && SYSFS 1090 help 1091 This option exposes some sysfs attributes to get information 1092 from CMA. 1093 1094config CMA_AREAS 1095 int "Maximum count of the CMA areas" 1096 depends on CMA 1097 default 20 if NUMA 1098 default 8 1099 help 1100 CMA allows to create CMA areas for particular purpose, mainly, 1101 used as device private area. This parameter sets the maximum 1102 number of CMA area in the system. 1103 1104 If unsure, leave the default value "8" in UMA and "20" in NUMA. 1105 1106# 1107# Select this config option from the architecture Kconfig, if available, to set 1108# the max page order for physically contiguous allocations. 1109# 1110config ARCH_FORCE_MAX_ORDER 1111 int 1112 1113# 1114# When ARCH_FORCE_MAX_ORDER is not defined, 1115# the default page block order is MAX_PAGE_ORDER (10) as per 1116# include/linux/mmzone.h. 1117# 1118config PAGE_BLOCK_MAX_ORDER 1119 int "Page Block Order Upper Limit" 1120 range 1 10 if ARCH_FORCE_MAX_ORDER = 0 1121 default 10 if ARCH_FORCE_MAX_ORDER = 0 1122 range 1 ARCH_FORCE_MAX_ORDER if ARCH_FORCE_MAX_ORDER != 0 1123 default ARCH_FORCE_MAX_ORDER if ARCH_FORCE_MAX_ORDER != 0 1124 help 1125 The page block order refers to the power of two number of pages that 1126 are physically contiguous and can have a migrate type associated to 1127 them. The maximum size of the page block order is at least limited by 1128 ARCH_FORCE_MAX_ORDER/MAX_PAGE_ORDER. 1129 1130 This config adds a new upper limit of default page block 1131 order when the page block order is required to be smaller than 1132 ARCH_FORCE_MAX_ORDER/MAX_PAGE_ORDER or other limits 1133 (see include/linux/pageblock-flags.h for details). 1134 1135 Reducing pageblock order can negatively impact THP generation 1136 success rate. If your workloads use THP heavily, please use this 1137 option with caution. 1138 1139 Don't change if unsure. 1140 1141config MEM_SOFT_DIRTY 1142 bool "Track memory changes" 1143 depends on CHECKPOINT_RESTORE && HAVE_ARCH_SOFT_DIRTY && PROC_FS 1144 select PROC_PAGE_MONITOR 1145 help 1146 This option enables memory changes tracking by introducing a 1147 soft-dirty bit on pte-s. This bit it set when someone writes 1148 into a page just as regular dirty bit, but unlike the latter 1149 it can be cleared by hands. 1150 1151 See Documentation/admin-guide/mm/soft-dirty.rst for more details. 1152 1153config GENERIC_EARLY_IOREMAP 1154 bool 1155 1156config STACK_MAX_DEFAULT_SIZE_MB 1157 int "Default maximum user stack size for 32-bit processes (MB)" 1158 default 100 1159 range 8 2048 1160 depends on STACK_GROWSUP && (!64BIT || COMPAT) 1161 help 1162 This is the maximum stack size in Megabytes in the VM layout of 32-bit 1163 user processes when the stack grows upwards (currently only on parisc 1164 arch) when the RLIMIT_STACK hard limit is unlimited. 1165 1166 A sane initial value is 100 MB. 1167 1168config DEFERRED_STRUCT_PAGE_INIT 1169 bool "Defer initialisation of struct pages to kthreads" 1170 depends on SPARSEMEM 1171 depends on !NEED_PER_CPU_KM 1172 depends on 64BIT 1173 depends on !KMSAN 1174 select PADATA 1175 help 1176 Ordinarily all struct pages are initialised during early boot in a 1177 single thread. On very large machines this can take a considerable 1178 amount of time. If this option is set, large machines will bring up 1179 a subset of memmap at boot and then initialise the rest in parallel. 1180 This has a potential performance impact on tasks running early in the 1181 lifetime of the system until these kthreads finish the 1182 initialisation. 1183 1184config PAGE_IDLE_FLAG 1185 bool 1186 select PAGE_EXTENSION if !64BIT 1187 help 1188 This adds PG_idle and PG_young flags to 'struct page'. PTE Accessed 1189 bit writers can set the state of the bit in the flags so that PTE 1190 Accessed bit readers may avoid disturbance. 1191 1192config IDLE_PAGE_TRACKING 1193 bool "Enable idle page tracking" 1194 depends on SYSFS && MMU 1195 select PAGE_IDLE_FLAG 1196 help 1197 This feature allows to estimate the amount of user pages that have 1198 not been touched during a given period of time. This information can 1199 be useful to tune memory cgroup limits and/or for job placement 1200 within a compute cluster. 1201 1202 See Documentation/admin-guide/mm/idle_page_tracking.rst for 1203 more details. 1204 1205# Architectures which implement cpu_dcache_is_aliasing() to query 1206# whether the data caches are aliased (VIVT or VIPT with dcache 1207# aliasing) need to select this. 1208config ARCH_HAS_CPU_CACHE_ALIASING 1209 bool 1210 1211config ARCH_HAS_CACHE_LINE_SIZE 1212 bool 1213 1214config ARCH_HAS_CURRENT_STACK_POINTER 1215 bool 1216 help 1217 In support of HARDENED_USERCOPY performing stack variable lifetime 1218 checking, an architecture-agnostic way to find the stack pointer 1219 is needed. Once an architecture defines an unsigned long global 1220 register alias named "current_stack_pointer", this config can be 1221 selected. 1222 1223config ARCH_HAS_ZONE_DMA_SET 1224 bool 1225 1226config ZONE_DMA 1227 bool "Support DMA zone" if ARCH_HAS_ZONE_DMA_SET 1228 default y if ARM64 || X86 1229 1230config ZONE_DMA32 1231 bool "Support DMA32 zone" if ARCH_HAS_ZONE_DMA_SET 1232 depends on !X86_32 1233 default y if ARM64 1234 1235config ZONE_DEVICE 1236 bool "Device memory (pmem, HMM, etc...) hotplug support" 1237 depends on MEMORY_HOTPLUG 1238 depends on MEMORY_HOTREMOVE 1239 depends on SPARSEMEM_VMEMMAP 1240 select XARRAY_MULTI 1241 1242 help 1243 Device memory hotplug support allows for establishing pmem, 1244 or other device driver discovered memory regions, in the 1245 memmap. This allows pfn_to_page() lookups of otherwise 1246 "device-physical" addresses which is needed for DAX, PCI_P2PDMA, and 1247 DEVICE_PRIVATE features among others. 1248 1249 Enabling this option will reduce the entropy of x86 KASLR memory 1250 regions. For example - on a 46 bit system, the entropy goes down 1251 from 16 bits to 15 bits. The actual reduction in entropy depends 1252 on the physical address bits, on processor features, kernel config 1253 (5 level page table) and physical memory present on the system. 1254 1255# 1256# Helpers to mirror range of the CPU page tables of a process into device page 1257# tables. 1258# 1259config HMM_MIRROR 1260 bool 1261 depends on MMU 1262 1263config GET_FREE_REGION 1264 bool 1265 1266config DEVICE_PRIVATE 1267 bool "Unaddressable device memory (GPU memory, ...)" 1268 depends on ZONE_DEVICE 1269 select GET_FREE_REGION 1270 1271 help 1272 Allows creation of struct pages to represent unaddressable device 1273 memory; i.e., memory that is only accessible from the device (or 1274 group of devices). You likely also want to select HMM_MIRROR. 1275 1276config VMAP_PFN 1277 bool 1278 1279config ARCH_USES_HIGH_VMA_FLAGS 1280 bool 1281config ARCH_HAS_PKEYS 1282 bool 1283 1284config ARCH_USES_PG_ARCH_2 1285 bool 1286config ARCH_USES_PG_ARCH_3 1287 bool 1288 1289config VM_EVENT_COUNTERS 1290 default y 1291 bool "Enable VM event counters for /proc/vmstat" if EXPERT 1292 help 1293 VM event counters are needed for event counts to be shown. 1294 This option allows the disabling of the VM event counters 1295 on EXPERT systems. /proc/vmstat will only show page counts 1296 if VM event counters are disabled. 1297 1298config PERCPU_STATS 1299 bool "Collect percpu memory statistics" 1300 help 1301 This feature collects and exposes statistics via debugfs. The 1302 information includes global and per chunk statistics, which can 1303 be used to help understand percpu memory usage. 1304 1305config GUP_TEST 1306 bool "Enable infrastructure for get_user_pages()-related unit tests" 1307 depends on DEBUG_FS 1308 help 1309 Provides /sys/kernel/debug/gup_test, which in turn provides a way 1310 to make ioctl calls that can launch kernel-based unit tests for 1311 the get_user_pages*() and pin_user_pages*() family of API calls. 1312 1313 These tests include benchmark testing of the _fast variants of 1314 get_user_pages*() and pin_user_pages*(), as well as smoke tests of 1315 the non-_fast variants. 1316 1317 There is also a sub-test that allows running dump_page() on any 1318 of up to eight pages (selected by command line args) within the 1319 range of user-space addresses. These pages are either pinned via 1320 pin_user_pages*(), or pinned via get_user_pages*(), as specified 1321 by other command line arguments. 1322 1323 See tools/testing/selftests/mm/gup_test.c 1324 1325comment "GUP_TEST needs to have DEBUG_FS enabled" 1326 depends on !GUP_TEST && !DEBUG_FS 1327 1328config GUP_GET_PXX_LOW_HIGH 1329 bool 1330 1331config DMAPOOL_TEST 1332 tristate "Enable a module to run time tests on dma_pool" 1333 depends on HAS_DMA 1334 help 1335 Provides a test module that will allocate and free many blocks of 1336 various sizes and report how long it takes. This is intended to 1337 provide a consistent way to measure how changes to the 1338 dma_pool_alloc/free routines affect performance. 1339 1340config ARCH_HAS_PTE_SPECIAL 1341 bool 1342 1343config MAPPING_DIRTY_HELPERS 1344 bool 1345 1346config KMAP_LOCAL 1347 bool 1348 1349config KMAP_LOCAL_NON_LINEAR_PTE_ARRAY 1350 bool 1351 1352config MEMFD_CREATE 1353 bool "Enable memfd_create() system call" if EXPERT 1354 1355config SECRETMEM 1356 default y 1357 bool "Enable memfd_secret() system call" if EXPERT 1358 depends on ARCH_HAS_SET_DIRECT_MAP 1359 help 1360 Enable the memfd_secret() system call with the ability to create 1361 memory areas visible only in the context of the owning process and 1362 not mapped to other processes and other kernel page tables. 1363 1364config ANON_VMA_NAME 1365 bool "Anonymous VMA name support" 1366 depends on PROC_FS && ADVISE_SYSCALLS && MMU 1367 1368 help 1369 Allow naming anonymous virtual memory areas. 1370 1371 This feature allows assigning names to virtual memory areas. Assigned 1372 names can be later retrieved from /proc/pid/maps and /proc/pid/smaps 1373 and help identifying individual anonymous memory areas. 1374 Assigning a name to anonymous virtual memory area might prevent that 1375 area from being merged with adjacent virtual memory areas due to the 1376 difference in their name. 1377 1378config HAVE_ARCH_USERFAULTFD_WP 1379 bool 1380 help 1381 Arch has userfaultfd write protection support 1382 1383config HAVE_ARCH_USERFAULTFD_MINOR 1384 bool 1385 help 1386 Arch has userfaultfd minor fault support 1387 1388config USERFAULTFD_RWP 1389 def_bool y 1390 depends on 64BIT && ARCH_HAS_PTE_PROTNONE && HAVE_ARCH_USERFAULTFD_WP 1391 help 1392 Userfaultfd read-write protection (UFFDIO_RWPROTECT) delivers a 1393 userfaultfd notification on every access -- read or write -- to a 1394 protected range, letting userspace observe the working set of a 1395 process. 1396 1397menuconfig USERFAULTFD 1398 bool "Enable userfaultfd() system call" 1399 depends on MMU 1400 help 1401 Enable the userfaultfd() system call that allows to intercept and 1402 handle page faults in userland. 1403 1404if USERFAULTFD 1405config PTE_MARKER_UFFD_WP 1406 bool "Userfaultfd write protection support for shmem/hugetlbfs" 1407 default y 1408 depends on HAVE_ARCH_USERFAULTFD_WP 1409 1410 help 1411 Allows to create marker PTEs for userfaultfd write protection 1412 purposes. It is required to enable userfaultfd write protection on 1413 file-backed memory types like shmem and hugetlbfs. 1414endif # USERFAULTFD 1415 1416# multi-gen LRU { 1417config LRU_GEN 1418 bool "Multi-Gen LRU" 1419 depends on MMU 1420 # make sure folio->flags has enough spare bits 1421 depends on 64BIT || !SPARSEMEM || SPARSEMEM_VMEMMAP 1422 help 1423 A high performance LRU implementation to overcommit memory. See 1424 Documentation/admin-guide/mm/multigen_lru.rst for details. 1425 1426config LRU_GEN_ENABLED 1427 bool "Enable by default" 1428 depends on LRU_GEN 1429 help 1430 This option enables the multi-gen LRU by default. 1431 1432config LRU_GEN_STATS 1433 bool "Full stats for debugging" 1434 depends on LRU_GEN 1435 help 1436 Do not enable this option unless you plan to look at historical stats 1437 from evicted generations for debugging purpose. 1438 1439 This option has a per-memcg and per-node memory overhead. 1440 1441config LRU_GEN_WALKS_MMU 1442 def_bool y 1443 depends on LRU_GEN && ARCH_HAS_HW_PTE_YOUNG 1444# } 1445 1446config ARCH_SUPPORTS_PER_VMA_LOCK 1447 def_bool n 1448 1449config PER_VMA_LOCK 1450 def_bool y 1451 depends on ARCH_SUPPORTS_PER_VMA_LOCK && MMU && SMP 1452 help 1453 Allow per-vma locking during page fault handling. 1454 1455 This feature allows locking each virtual memory area separately when 1456 handling page faults instead of taking mmap_lock. 1457 1458config LOCK_MM_AND_FIND_VMA 1459 bool 1460 depends on !STACK_GROWSUP 1461 1462config IOMMU_MM_DATA 1463 bool 1464 1465config EXECMEM 1466 bool 1467 1468config NUMA_MEMBLKS 1469 bool 1470 1471config NUMA_EMU 1472 bool "NUMA emulation" 1473 depends on NUMA_MEMBLKS 1474 depends on X86 || GENERIC_ARCH_NUMA 1475 help 1476 Enable NUMA emulation. A flat machine will be split 1477 into virtual nodes when booted with "numa=fake=N", where N is the 1478 number of nodes. This is only useful for debugging. 1479 1480config ARCH_HAS_USER_SHADOW_STACK 1481 bool 1482 help 1483 The architecture has hardware support for userspace shadow call 1484 stacks (eg, x86 CET, arm64 GCS or RISC-V Zicfiss). 1485 1486config HAVE_ARCH_TLB_REMOVE_TABLE 1487 def_bool n 1488 1489config PT_RECLAIM 1490 def_bool y 1491 depends on MMU_GATHER_RCU_TABLE_FREE && !HAVE_ARCH_TLB_REMOVE_TABLE 1492 help 1493 Try to reclaim empty user page table pages in paths other than munmap 1494 and exit_mmap path. 1495 1496 Note: now only empty user PTE page table pages will be reclaimed. 1497 1498config FIND_NORMAL_PAGE 1499 def_bool n 1500 1501config ARCH_HAS_LAZY_MMU_MODE 1502 bool 1503 help 1504 The architecture uses the lazy MMU mode. This allows changes to 1505 MMU-related architectural state to be deferred until the mode is 1506 exited. See <linux/pgtable.h> for details. 1507 1508config LAZY_MMU_MODE_KUNIT_TEST 1509 tristate "KUnit tests for the lazy MMU mode" if !KUNIT_ALL_TESTS 1510 depends on ARCH_HAS_LAZY_MMU_MODE 1511 depends on KUNIT 1512 default KUNIT_ALL_TESTS 1513 help 1514 Enable this option to check that the lazy MMU mode interface behaves 1515 as expected. Only tests for the generic interface are included (not 1516 architecture-specific behaviours). 1517 1518 If unsure, say N. 1519 1520source "mm/damon/Kconfig" 1521 1522endmenu 1523