1 /* SPDX-License-Identifier: GPL-2.0 */ 2 #ifndef _LINUX_MM_H 3 #define _LINUX_MM_H 4 5 #include <linux/errno.h> 6 #include <linux/mmdebug.h> 7 #include <linux/gfp.h> 8 #include <linux/pgalloc_tag.h> 9 #include <linux/bug.h> 10 #include <linux/list.h> 11 #include <linux/mmzone.h> 12 #include <linux/rbtree.h> 13 #include <linux/atomic.h> 14 #include <linux/debug_locks.h> 15 #include <linux/mm_types.h> 16 #include <linux/mmap_lock.h> 17 #include <linux/range.h> 18 #include <linux/pfn.h> 19 #include <linux/percpu-refcount.h> 20 #include <linux/bit_spinlock.h> 21 #include <linux/shrinker.h> 22 #include <linux/resource.h> 23 #include <linux/page_ext.h> 24 #include <linux/err.h> 25 #include <linux/page-flags.h> 26 #include <linux/page_ref.h> 27 #include <linux/overflow.h> 28 #include <linux/sizes.h> 29 #include <linux/sched.h> 30 #include <linux/pgtable.h> 31 #include <linux/kasan.h> 32 #include <linux/memremap.h> 33 #include <linux/slab.h> 34 #include <linux/cacheinfo.h> 35 #include <linux/rcuwait.h> 36 37 struct mempolicy; 38 struct anon_vma; 39 struct anon_vma_chain; 40 struct user_struct; 41 struct pt_regs; 42 struct folio_batch; 43 44 extern int sysctl_page_lock_unfairness; 45 46 void mm_core_init(void); 47 void init_mm_internals(void); 48 49 #ifndef CONFIG_NUMA /* Don't use mapnrs, do it properly */ 50 extern unsigned long max_mapnr; 51 52 static inline void set_max_mapnr(unsigned long limit) 53 { 54 max_mapnr = limit; 55 } 56 #else 57 static inline void set_max_mapnr(unsigned long limit) { } 58 #endif 59 60 extern atomic_long_t _totalram_pages; 61 static inline unsigned long totalram_pages(void) 62 { 63 return (unsigned long)atomic_long_read(&_totalram_pages); 64 } 65 66 static inline void totalram_pages_inc(void) 67 { 68 atomic_long_inc(&_totalram_pages); 69 } 70 71 static inline void totalram_pages_dec(void) 72 { 73 atomic_long_dec(&_totalram_pages); 74 } 75 76 static inline void totalram_pages_add(long count) 77 { 78 atomic_long_add(count, &_totalram_pages); 79 } 80 81 extern void * high_memory; 82 extern int page_cluster; 83 extern const int page_cluster_max; 84 85 #ifdef CONFIG_SYSCTL 86 extern int sysctl_legacy_va_layout; 87 #else 88 #define sysctl_legacy_va_layout 0 89 #endif 90 91 #ifdef CONFIG_HAVE_ARCH_MMAP_RND_BITS 92 extern const int mmap_rnd_bits_min; 93 extern int mmap_rnd_bits_max __ro_after_init; 94 extern int mmap_rnd_bits __read_mostly; 95 #endif 96 #ifdef CONFIG_HAVE_ARCH_MMAP_RND_COMPAT_BITS 97 extern const int mmap_rnd_compat_bits_min; 98 extern const int mmap_rnd_compat_bits_max; 99 extern int mmap_rnd_compat_bits __read_mostly; 100 #endif 101 102 #ifndef DIRECT_MAP_PHYSMEM_END 103 # ifdef MAX_PHYSMEM_BITS 104 # define DIRECT_MAP_PHYSMEM_END ((1ULL << MAX_PHYSMEM_BITS) - 1) 105 # else 106 # define DIRECT_MAP_PHYSMEM_END (((phys_addr_t)-1)&~(1ULL<<63)) 107 # endif 108 #endif 109 110 #include <asm/page.h> 111 #include <asm/processor.h> 112 113 #ifndef __pa_symbol 114 #define __pa_symbol(x) __pa(RELOC_HIDE((unsigned long)(x), 0)) 115 #endif 116 117 #ifndef page_to_virt 118 #define page_to_virt(x) __va(PFN_PHYS(page_to_pfn(x))) 119 #endif 120 121 #ifndef lm_alias 122 #define lm_alias(x) __va(__pa_symbol(x)) 123 #endif 124 125 /* 126 * To prevent common memory management code establishing 127 * a zero page mapping on a read fault. 128 * This macro should be defined within <asm/pgtable.h>. 129 * s390 does this to prevent multiplexing of hardware bits 130 * related to the physical page in case of virtualization. 131 */ 132 #ifndef mm_forbids_zeropage 133 #define mm_forbids_zeropage(X) (0) 134 #endif 135 136 /* 137 * On some architectures it is expensive to call memset() for small sizes. 138 * If an architecture decides to implement their own version of 139 * mm_zero_struct_page they should wrap the defines below in a #ifndef and 140 * define their own version of this macro in <asm/pgtable.h> 141 */ 142 #if BITS_PER_LONG == 64 143 /* This function must be updated when the size of struct page grows above 96 144 * or reduces below 56. The idea that compiler optimizes out switch() 145 * statement, and only leaves move/store instructions. Also the compiler can 146 * combine write statements if they are both assignments and can be reordered, 147 * this can result in several of the writes here being dropped. 148 */ 149 #define mm_zero_struct_page(pp) __mm_zero_struct_page(pp) 150 static inline void __mm_zero_struct_page(struct page *page) 151 { 152 unsigned long *_pp = (void *)page; 153 154 /* Check that struct page is either 56, 64, 72, 80, 88 or 96 bytes */ 155 BUILD_BUG_ON(sizeof(struct page) & 7); 156 BUILD_BUG_ON(sizeof(struct page) < 56); 157 BUILD_BUG_ON(sizeof(struct page) > 96); 158 159 switch (sizeof(struct page)) { 160 case 96: 161 _pp[11] = 0; 162 fallthrough; 163 case 88: 164 _pp[10] = 0; 165 fallthrough; 166 case 80: 167 _pp[9] = 0; 168 fallthrough; 169 case 72: 170 _pp[8] = 0; 171 fallthrough; 172 case 64: 173 _pp[7] = 0; 174 fallthrough; 175 case 56: 176 _pp[6] = 0; 177 _pp[5] = 0; 178 _pp[4] = 0; 179 _pp[3] = 0; 180 _pp[2] = 0; 181 _pp[1] = 0; 182 _pp[0] = 0; 183 } 184 } 185 #else 186 #define mm_zero_struct_page(pp) ((void)memset((pp), 0, sizeof(struct page))) 187 #endif 188 189 /* 190 * Default maximum number of active map areas, this limits the number of vmas 191 * per mm struct. Users can overwrite this number by sysctl but there is a 192 * problem. 193 * 194 * When a program's coredump is generated as ELF format, a section is created 195 * per a vma. In ELF, the number of sections is represented in unsigned short. 196 * This means the number of sections should be smaller than 65535 at coredump. 197 * Because the kernel adds some informative sections to a image of program at 198 * generating coredump, we need some margin. The number of extra sections is 199 * 1-3 now and depends on arch. We use "5" as safe margin, here. 200 * 201 * ELF extended numbering allows more than 65535 sections, so 16-bit bound is 202 * not a hard limit any more. Although some userspace tools can be surprised by 203 * that. 204 */ 205 #define MAPCOUNT_ELF_CORE_MARGIN (5) 206 #define DEFAULT_MAX_MAP_COUNT (USHRT_MAX - MAPCOUNT_ELF_CORE_MARGIN) 207 208 extern int sysctl_max_map_count; 209 210 extern unsigned long sysctl_user_reserve_kbytes; 211 extern unsigned long sysctl_admin_reserve_kbytes; 212 213 extern int sysctl_overcommit_memory; 214 extern int sysctl_overcommit_ratio; 215 extern unsigned long sysctl_overcommit_kbytes; 216 217 int overcommit_ratio_handler(const struct ctl_table *, int, void *, size_t *, 218 loff_t *); 219 int overcommit_kbytes_handler(const struct ctl_table *, int, void *, size_t *, 220 loff_t *); 221 int overcommit_policy_handler(const struct ctl_table *, int, void *, size_t *, 222 loff_t *); 223 224 #if defined(CONFIG_SPARSEMEM) && !defined(CONFIG_SPARSEMEM_VMEMMAP) 225 #define nth_page(page,n) pfn_to_page(page_to_pfn((page)) + (n)) 226 #define folio_page_idx(folio, p) (page_to_pfn(p) - folio_pfn(folio)) 227 #else 228 #define nth_page(page,n) ((page) + (n)) 229 #define folio_page_idx(folio, p) ((p) - &(folio)->page) 230 #endif 231 232 /* to align the pointer to the (next) page boundary */ 233 #define PAGE_ALIGN(addr) ALIGN(addr, PAGE_SIZE) 234 235 /* to align the pointer to the (prev) page boundary */ 236 #define PAGE_ALIGN_DOWN(addr) ALIGN_DOWN(addr, PAGE_SIZE) 237 238 /* test whether an address (unsigned long or pointer) is aligned to PAGE_SIZE */ 239 #define PAGE_ALIGNED(addr) IS_ALIGNED((unsigned long)(addr), PAGE_SIZE) 240 241 static inline struct folio *lru_to_folio(struct list_head *head) 242 { 243 return list_entry((head)->prev, struct folio, lru); 244 } 245 246 void setup_initial_init_mm(void *start_code, void *end_code, 247 void *end_data, void *brk); 248 249 /* 250 * Linux kernel virtual memory manager primitives. 251 * The idea being to have a "virtual" mm in the same way 252 * we have a virtual fs - giving a cleaner interface to the 253 * mm details, and allowing different kinds of memory mappings 254 * (from shared memory to executable loading to arbitrary 255 * mmap() functions). 256 */ 257 258 struct vm_area_struct *vm_area_alloc(struct mm_struct *); 259 struct vm_area_struct *vm_area_dup(struct vm_area_struct *); 260 void vm_area_free(struct vm_area_struct *); 261 262 #ifndef CONFIG_MMU 263 extern struct rb_root nommu_region_tree; 264 extern struct rw_semaphore nommu_region_sem; 265 266 extern unsigned int kobjsize(const void *objp); 267 #endif 268 269 /* 270 * vm_flags in vm_area_struct, see mm_types.h. 271 * When changing, update also include/trace/events/mmflags.h 272 */ 273 #define VM_NONE 0x00000000 274 275 #define VM_READ 0x00000001 /* currently active flags */ 276 #define VM_WRITE 0x00000002 277 #define VM_EXEC 0x00000004 278 #define VM_SHARED 0x00000008 279 280 /* mprotect() hardcodes VM_MAYREAD >> 4 == VM_READ, and so for r/w/x bits. */ 281 #define VM_MAYREAD 0x00000010 /* limits for mprotect() etc */ 282 #define VM_MAYWRITE 0x00000020 283 #define VM_MAYEXEC 0x00000040 284 #define VM_MAYSHARE 0x00000080 285 286 #define VM_GROWSDOWN 0x00000100 /* general info on the segment */ 287 #ifdef CONFIG_MMU 288 #define VM_UFFD_MISSING 0x00000200 /* missing pages tracking */ 289 #else /* CONFIG_MMU */ 290 #define VM_MAYOVERLAY 0x00000200 /* nommu: R/O MAP_PRIVATE mapping that might overlay a file mapping */ 291 #define VM_UFFD_MISSING 0 292 #endif /* CONFIG_MMU */ 293 #define VM_PFNMAP 0x00000400 /* Page-ranges managed without "struct page", just pure PFN */ 294 #define VM_UFFD_WP 0x00001000 /* wrprotect pages tracking */ 295 296 #define VM_LOCKED 0x00002000 297 #define VM_IO 0x00004000 /* Memory mapped I/O or similar */ 298 299 /* Used by sys_madvise() */ 300 #define VM_SEQ_READ 0x00008000 /* App will access data sequentially */ 301 #define VM_RAND_READ 0x00010000 /* App will not benefit from clustered reads */ 302 303 #define VM_DONTCOPY 0x00020000 /* Do not copy this vma on fork */ 304 #define VM_DONTEXPAND 0x00040000 /* Cannot expand with mremap() */ 305 #define VM_LOCKONFAULT 0x00080000 /* Lock the pages covered when they are faulted in */ 306 #define VM_ACCOUNT 0x00100000 /* Is a VM accounted object */ 307 #define VM_NORESERVE 0x00200000 /* should the VM suppress accounting */ 308 #define VM_HUGETLB 0x00400000 /* Huge TLB Page VM */ 309 #define VM_SYNC 0x00800000 /* Synchronous page faults */ 310 #define VM_ARCH_1 0x01000000 /* Architecture-specific flag */ 311 #define VM_WIPEONFORK 0x02000000 /* Wipe VMA contents in child. */ 312 #define VM_DONTDUMP 0x04000000 /* Do not include in the core dump */ 313 314 #ifdef CONFIG_MEM_SOFT_DIRTY 315 # define VM_SOFTDIRTY 0x08000000 /* Not soft dirty clean area */ 316 #else 317 # define VM_SOFTDIRTY 0 318 #endif 319 320 #define VM_MIXEDMAP 0x10000000 /* Can contain "struct page" and pure PFN pages */ 321 #define VM_HUGEPAGE 0x20000000 /* MADV_HUGEPAGE marked this vma */ 322 #define VM_NOHUGEPAGE 0x40000000 /* MADV_NOHUGEPAGE marked this vma */ 323 #define VM_MERGEABLE 0x80000000 /* KSM may merge identical pages */ 324 325 #ifdef CONFIG_ARCH_USES_HIGH_VMA_FLAGS 326 #define VM_HIGH_ARCH_BIT_0 32 /* bit only usable on 64-bit architectures */ 327 #define VM_HIGH_ARCH_BIT_1 33 /* bit only usable on 64-bit architectures */ 328 #define VM_HIGH_ARCH_BIT_2 34 /* bit only usable on 64-bit architectures */ 329 #define VM_HIGH_ARCH_BIT_3 35 /* bit only usable on 64-bit architectures */ 330 #define VM_HIGH_ARCH_BIT_4 36 /* bit only usable on 64-bit architectures */ 331 #define VM_HIGH_ARCH_BIT_5 37 /* bit only usable on 64-bit architectures */ 332 #define VM_HIGH_ARCH_BIT_6 38 /* bit only usable on 64-bit architectures */ 333 #define VM_HIGH_ARCH_0 BIT(VM_HIGH_ARCH_BIT_0) 334 #define VM_HIGH_ARCH_1 BIT(VM_HIGH_ARCH_BIT_1) 335 #define VM_HIGH_ARCH_2 BIT(VM_HIGH_ARCH_BIT_2) 336 #define VM_HIGH_ARCH_3 BIT(VM_HIGH_ARCH_BIT_3) 337 #define VM_HIGH_ARCH_4 BIT(VM_HIGH_ARCH_BIT_4) 338 #define VM_HIGH_ARCH_5 BIT(VM_HIGH_ARCH_BIT_5) 339 #define VM_HIGH_ARCH_6 BIT(VM_HIGH_ARCH_BIT_6) 340 #endif /* CONFIG_ARCH_USES_HIGH_VMA_FLAGS */ 341 342 #ifdef CONFIG_ARCH_HAS_PKEYS 343 # define VM_PKEY_SHIFT VM_HIGH_ARCH_BIT_0 344 # define VM_PKEY_BIT0 VM_HIGH_ARCH_0 345 # define VM_PKEY_BIT1 VM_HIGH_ARCH_1 346 # define VM_PKEY_BIT2 VM_HIGH_ARCH_2 347 #if CONFIG_ARCH_PKEY_BITS > 3 348 # define VM_PKEY_BIT3 VM_HIGH_ARCH_3 349 #else 350 # define VM_PKEY_BIT3 0 351 #endif 352 #if CONFIG_ARCH_PKEY_BITS > 4 353 # define VM_PKEY_BIT4 VM_HIGH_ARCH_4 354 #else 355 # define VM_PKEY_BIT4 0 356 #endif 357 #endif /* CONFIG_ARCH_HAS_PKEYS */ 358 359 #ifdef CONFIG_X86_USER_SHADOW_STACK 360 /* 361 * VM_SHADOW_STACK should not be set with VM_SHARED because of lack of 362 * support core mm. 363 * 364 * These VMAs will get a single end guard page. This helps userspace protect 365 * itself from attacks. A single page is enough for current shadow stack archs 366 * (x86). See the comments near alloc_shstk() in arch/x86/kernel/shstk.c 367 * for more details on the guard size. 368 */ 369 # define VM_SHADOW_STACK VM_HIGH_ARCH_5 370 #endif 371 372 #if defined(CONFIG_ARM64_GCS) 373 /* 374 * arm64's Guarded Control Stack implements similar functionality and 375 * has similar constraints to shadow stacks. 376 */ 377 # define VM_SHADOW_STACK VM_HIGH_ARCH_6 378 #endif 379 380 #ifndef VM_SHADOW_STACK 381 # define VM_SHADOW_STACK VM_NONE 382 #endif 383 384 #if defined(CONFIG_X86) 385 # define VM_PAT VM_ARCH_1 /* PAT reserves whole VMA at once (x86) */ 386 #elif defined(CONFIG_PPC64) 387 # define VM_SAO VM_ARCH_1 /* Strong Access Ordering (powerpc) */ 388 #elif defined(CONFIG_PARISC) 389 # define VM_GROWSUP VM_ARCH_1 390 #elif defined(CONFIG_SPARC64) 391 # define VM_SPARC_ADI VM_ARCH_1 /* Uses ADI tag for access control */ 392 # define VM_ARCH_CLEAR VM_SPARC_ADI 393 #elif defined(CONFIG_ARM64) 394 # define VM_ARM64_BTI VM_ARCH_1 /* BTI guarded page, a.k.a. GP bit */ 395 # define VM_ARCH_CLEAR VM_ARM64_BTI 396 #elif !defined(CONFIG_MMU) 397 # define VM_MAPPED_COPY VM_ARCH_1 /* T if mapped copy of data (nommu mmap) */ 398 #endif 399 400 #if defined(CONFIG_ARM64_MTE) 401 # define VM_MTE VM_HIGH_ARCH_4 /* Use Tagged memory for access control */ 402 # define VM_MTE_ALLOWED VM_HIGH_ARCH_5 /* Tagged memory permitted */ 403 #else 404 # define VM_MTE VM_NONE 405 # define VM_MTE_ALLOWED VM_NONE 406 #endif 407 408 #ifndef VM_GROWSUP 409 # define VM_GROWSUP VM_NONE 410 #endif 411 412 #ifdef CONFIG_HAVE_ARCH_USERFAULTFD_MINOR 413 # define VM_UFFD_MINOR_BIT 38 414 # define VM_UFFD_MINOR BIT(VM_UFFD_MINOR_BIT) /* UFFD minor faults */ 415 #else /* !CONFIG_HAVE_ARCH_USERFAULTFD_MINOR */ 416 # define VM_UFFD_MINOR VM_NONE 417 #endif /* CONFIG_HAVE_ARCH_USERFAULTFD_MINOR */ 418 419 /* 420 * This flag is used to connect VFIO to arch specific KVM code. It 421 * indicates that the memory under this VMA is safe for use with any 422 * non-cachable memory type inside KVM. Some VFIO devices, on some 423 * platforms, are thought to be unsafe and can cause machine crashes 424 * if KVM does not lock down the memory type. 425 */ 426 #ifdef CONFIG_64BIT 427 #define VM_ALLOW_ANY_UNCACHED_BIT 39 428 #define VM_ALLOW_ANY_UNCACHED BIT(VM_ALLOW_ANY_UNCACHED_BIT) 429 #else 430 #define VM_ALLOW_ANY_UNCACHED VM_NONE 431 #endif 432 433 #ifdef CONFIG_64BIT 434 #define VM_DROPPABLE_BIT 40 435 #define VM_DROPPABLE BIT(VM_DROPPABLE_BIT) 436 #elif defined(CONFIG_PPC32) 437 #define VM_DROPPABLE VM_ARCH_1 438 #else 439 #define VM_DROPPABLE VM_NONE 440 #endif 441 442 #ifdef CONFIG_64BIT 443 /* VM is sealed, in vm_flags */ 444 #define VM_SEALED _BITUL(63) 445 #endif 446 447 /* Bits set in the VMA until the stack is in its final location */ 448 #define VM_STACK_INCOMPLETE_SETUP (VM_RAND_READ | VM_SEQ_READ | VM_STACK_EARLY) 449 450 #define TASK_EXEC ((current->personality & READ_IMPLIES_EXEC) ? VM_EXEC : 0) 451 452 /* Common data flag combinations */ 453 #define VM_DATA_FLAGS_TSK_EXEC (VM_READ | VM_WRITE | TASK_EXEC | \ 454 VM_MAYREAD | VM_MAYWRITE | VM_MAYEXEC) 455 #define VM_DATA_FLAGS_NON_EXEC (VM_READ | VM_WRITE | VM_MAYREAD | \ 456 VM_MAYWRITE | VM_MAYEXEC) 457 #define VM_DATA_FLAGS_EXEC (VM_READ | VM_WRITE | VM_EXEC | \ 458 VM_MAYREAD | VM_MAYWRITE | VM_MAYEXEC) 459 460 #ifndef VM_DATA_DEFAULT_FLAGS /* arch can override this */ 461 #define VM_DATA_DEFAULT_FLAGS VM_DATA_FLAGS_EXEC 462 #endif 463 464 #ifndef VM_STACK_DEFAULT_FLAGS /* arch can override this */ 465 #define VM_STACK_DEFAULT_FLAGS VM_DATA_DEFAULT_FLAGS 466 #endif 467 468 #define VM_STARTGAP_FLAGS (VM_GROWSDOWN | VM_SHADOW_STACK) 469 470 #ifdef CONFIG_STACK_GROWSUP 471 #define VM_STACK VM_GROWSUP 472 #define VM_STACK_EARLY VM_GROWSDOWN 473 #else 474 #define VM_STACK VM_GROWSDOWN 475 #define VM_STACK_EARLY 0 476 #endif 477 478 #define VM_STACK_FLAGS (VM_STACK | VM_STACK_DEFAULT_FLAGS | VM_ACCOUNT) 479 480 /* VMA basic access permission flags */ 481 #define VM_ACCESS_FLAGS (VM_READ | VM_WRITE | VM_EXEC) 482 483 484 /* 485 * Special vmas that are non-mergable, non-mlock()able. 486 */ 487 #define VM_SPECIAL (VM_IO | VM_DONTEXPAND | VM_PFNMAP | VM_MIXEDMAP) 488 489 /* This mask prevents VMA from being scanned with khugepaged */ 490 #define VM_NO_KHUGEPAGED (VM_SPECIAL | VM_HUGETLB) 491 492 /* This mask defines which mm->def_flags a process can inherit its parent */ 493 #define VM_INIT_DEF_MASK VM_NOHUGEPAGE 494 495 /* This mask represents all the VMA flag bits used by mlock */ 496 #define VM_LOCKED_MASK (VM_LOCKED | VM_LOCKONFAULT) 497 498 /* Arch-specific flags to clear when updating VM flags on protection change */ 499 #ifndef VM_ARCH_CLEAR 500 # define VM_ARCH_CLEAR VM_NONE 501 #endif 502 #define VM_FLAGS_CLEAR (ARCH_VM_PKEY_FLAGS | VM_ARCH_CLEAR) 503 504 /* 505 * mapping from the currently active vm_flags protection bits (the 506 * low four bits) to a page protection mask.. 507 */ 508 509 /* 510 * The default fault flags that should be used by most of the 511 * arch-specific page fault handlers. 512 */ 513 #define FAULT_FLAG_DEFAULT (FAULT_FLAG_ALLOW_RETRY | \ 514 FAULT_FLAG_KILLABLE | \ 515 FAULT_FLAG_INTERRUPTIBLE) 516 517 /** 518 * fault_flag_allow_retry_first - check ALLOW_RETRY the first time 519 * @flags: Fault flags. 520 * 521 * This is mostly used for places where we want to try to avoid taking 522 * the mmap_lock for too long a time when waiting for another condition 523 * to change, in which case we can try to be polite to release the 524 * mmap_lock in the first round to avoid potential starvation of other 525 * processes that would also want the mmap_lock. 526 * 527 * Return: true if the page fault allows retry and this is the first 528 * attempt of the fault handling; false otherwise. 529 */ 530 static inline bool fault_flag_allow_retry_first(enum fault_flag flags) 531 { 532 return (flags & FAULT_FLAG_ALLOW_RETRY) && 533 (!(flags & FAULT_FLAG_TRIED)); 534 } 535 536 #define FAULT_FLAG_TRACE \ 537 { FAULT_FLAG_WRITE, "WRITE" }, \ 538 { FAULT_FLAG_MKWRITE, "MKWRITE" }, \ 539 { FAULT_FLAG_ALLOW_RETRY, "ALLOW_RETRY" }, \ 540 { FAULT_FLAG_RETRY_NOWAIT, "RETRY_NOWAIT" }, \ 541 { FAULT_FLAG_KILLABLE, "KILLABLE" }, \ 542 { FAULT_FLAG_TRIED, "TRIED" }, \ 543 { FAULT_FLAG_USER, "USER" }, \ 544 { FAULT_FLAG_REMOTE, "REMOTE" }, \ 545 { FAULT_FLAG_INSTRUCTION, "INSTRUCTION" }, \ 546 { FAULT_FLAG_INTERRUPTIBLE, "INTERRUPTIBLE" }, \ 547 { FAULT_FLAG_VMA_LOCK, "VMA_LOCK" } 548 549 /* 550 * vm_fault is filled by the pagefault handler and passed to the vma's 551 * ->fault function. The vma's ->fault is responsible for returning a bitmask 552 * of VM_FAULT_xxx flags that give details about how the fault was handled. 553 * 554 * MM layer fills up gfp_mask for page allocations but fault handler might 555 * alter it if its implementation requires a different allocation context. 556 * 557 * pgoff should be used in favour of virtual_address, if possible. 558 */ 559 struct vm_fault { 560 const struct { 561 struct vm_area_struct *vma; /* Target VMA */ 562 gfp_t gfp_mask; /* gfp mask to be used for allocations */ 563 pgoff_t pgoff; /* Logical page offset based on vma */ 564 unsigned long address; /* Faulting virtual address - masked */ 565 unsigned long real_address; /* Faulting virtual address - unmasked */ 566 }; 567 enum fault_flag flags; /* FAULT_FLAG_xxx flags 568 * XXX: should really be 'const' */ 569 pmd_t *pmd; /* Pointer to pmd entry matching 570 * the 'address' */ 571 pud_t *pud; /* Pointer to pud entry matching 572 * the 'address' 573 */ 574 union { 575 pte_t orig_pte; /* Value of PTE at the time of fault */ 576 pmd_t orig_pmd; /* Value of PMD at the time of fault, 577 * used by PMD fault only. 578 */ 579 }; 580 581 struct page *cow_page; /* Page handler may use for COW fault */ 582 struct page *page; /* ->fault handlers should return a 583 * page here, unless VM_FAULT_NOPAGE 584 * is set (which is also implied by 585 * VM_FAULT_ERROR). 586 */ 587 /* These three entries are valid only while holding ptl lock */ 588 pte_t *pte; /* Pointer to pte entry matching 589 * the 'address'. NULL if the page 590 * table hasn't been allocated. 591 */ 592 spinlock_t *ptl; /* Page table lock. 593 * Protects pte page table if 'pte' 594 * is not NULL, otherwise pmd. 595 */ 596 pgtable_t prealloc_pte; /* Pre-allocated pte page table. 597 * vm_ops->map_pages() sets up a page 598 * table from atomic context. 599 * do_fault_around() pre-allocates 600 * page table to avoid allocation from 601 * atomic context. 602 */ 603 }; 604 605 /* 606 * These are the virtual MM functions - opening of an area, closing and 607 * unmapping it (needed to keep files on disk up-to-date etc), pointer 608 * to the functions called when a no-page or a wp-page exception occurs. 609 */ 610 struct vm_operations_struct { 611 void (*open)(struct vm_area_struct * area); 612 /** 613 * @close: Called when the VMA is being removed from the MM. 614 * Context: User context. May sleep. Caller holds mmap_lock. 615 */ 616 void (*close)(struct vm_area_struct * area); 617 /* Called any time before splitting to check if it's allowed */ 618 int (*may_split)(struct vm_area_struct *area, unsigned long addr); 619 int (*mremap)(struct vm_area_struct *area); 620 /* 621 * Called by mprotect() to make driver-specific permission 622 * checks before mprotect() is finalised. The VMA must not 623 * be modified. Returns 0 if mprotect() can proceed. 624 */ 625 int (*mprotect)(struct vm_area_struct *vma, unsigned long start, 626 unsigned long end, unsigned long newflags); 627 vm_fault_t (*fault)(struct vm_fault *vmf); 628 vm_fault_t (*huge_fault)(struct vm_fault *vmf, unsigned int order); 629 vm_fault_t (*map_pages)(struct vm_fault *vmf, 630 pgoff_t start_pgoff, pgoff_t end_pgoff); 631 unsigned long (*pagesize)(struct vm_area_struct * area); 632 633 /* notification that a previously read-only page is about to become 634 * writable, if an error is returned it will cause a SIGBUS */ 635 vm_fault_t (*page_mkwrite)(struct vm_fault *vmf); 636 637 /* same as page_mkwrite when using VM_PFNMAP|VM_MIXEDMAP */ 638 vm_fault_t (*pfn_mkwrite)(struct vm_fault *vmf); 639 640 /* called by access_process_vm when get_user_pages() fails, typically 641 * for use by special VMAs. See also generic_access_phys() for a generic 642 * implementation useful for any iomem mapping. 643 */ 644 int (*access)(struct vm_area_struct *vma, unsigned long addr, 645 void *buf, int len, int write); 646 647 /* Called by the /proc/PID/maps code to ask the vma whether it 648 * has a special name. Returning non-NULL will also cause this 649 * vma to be dumped unconditionally. */ 650 const char *(*name)(struct vm_area_struct *vma); 651 652 #ifdef CONFIG_NUMA 653 /* 654 * set_policy() op must add a reference to any non-NULL @new mempolicy 655 * to hold the policy upon return. Caller should pass NULL @new to 656 * remove a policy and fall back to surrounding context--i.e. do not 657 * install a MPOL_DEFAULT policy, nor the task or system default 658 * mempolicy. 659 */ 660 int (*set_policy)(struct vm_area_struct *vma, struct mempolicy *new); 661 662 /* 663 * get_policy() op must add reference [mpol_get()] to any policy at 664 * (vma,addr) marked as MPOL_SHARED. The shared policy infrastructure 665 * in mm/mempolicy.c will do this automatically. 666 * get_policy() must NOT add a ref if the policy at (vma,addr) is not 667 * marked as MPOL_SHARED. vma policies are protected by the mmap_lock. 668 * If no [shared/vma] mempolicy exists at the addr, get_policy() op 669 * must return NULL--i.e., do not "fallback" to task or system default 670 * policy. 671 */ 672 struct mempolicy *(*get_policy)(struct vm_area_struct *vma, 673 unsigned long addr, pgoff_t *ilx); 674 #endif 675 /* 676 * Called by vm_normal_page() for special PTEs to find the 677 * page for @addr. This is useful if the default behavior 678 * (using pte_page()) would not find the correct page. 679 */ 680 struct page *(*find_special_page)(struct vm_area_struct *vma, 681 unsigned long addr); 682 }; 683 684 #ifdef CONFIG_NUMA_BALANCING 685 static inline void vma_numab_state_init(struct vm_area_struct *vma) 686 { 687 vma->numab_state = NULL; 688 } 689 static inline void vma_numab_state_free(struct vm_area_struct *vma) 690 { 691 kfree(vma->numab_state); 692 } 693 #else 694 static inline void vma_numab_state_init(struct vm_area_struct *vma) {} 695 static inline void vma_numab_state_free(struct vm_area_struct *vma) {} 696 #endif /* CONFIG_NUMA_BALANCING */ 697 698 #ifdef CONFIG_PER_VMA_LOCK 699 static inline void vma_lock_init(struct vm_area_struct *vma, bool reset_refcnt) 700 { 701 #ifdef CONFIG_DEBUG_LOCK_ALLOC 702 static struct lock_class_key lockdep_key; 703 704 lockdep_init_map(&vma->vmlock_dep_map, "vm_lock", &lockdep_key, 0); 705 #endif 706 if (reset_refcnt) 707 refcount_set(&vma->vm_refcnt, 0); 708 vma->vm_lock_seq = UINT_MAX; 709 } 710 711 static inline bool is_vma_writer_only(int refcnt) 712 { 713 /* 714 * With a writer and no readers, refcnt is VMA_LOCK_OFFSET if the vma 715 * is detached and (VMA_LOCK_OFFSET + 1) if it is attached. Waiting on 716 * a detached vma happens only in vma_mark_detached() and is a rare 717 * case, therefore most of the time there will be no unnecessary wakeup. 718 */ 719 return refcnt & VMA_LOCK_OFFSET && refcnt <= VMA_LOCK_OFFSET + 1; 720 } 721 722 static inline void vma_refcount_put(struct vm_area_struct *vma) 723 { 724 /* Use a copy of vm_mm in case vma is freed after we drop vm_refcnt */ 725 struct mm_struct *mm = vma->vm_mm; 726 int oldcnt; 727 728 rwsem_release(&vma->vmlock_dep_map, _RET_IP_); 729 if (!__refcount_dec_and_test(&vma->vm_refcnt, &oldcnt)) { 730 731 if (is_vma_writer_only(oldcnt - 1)) 732 rcuwait_wake_up(&mm->vma_writer_wait); 733 } 734 } 735 736 /* 737 * Try to read-lock a vma. The function is allowed to occasionally yield false 738 * locked result to avoid performance overhead, in which case we fall back to 739 * using mmap_lock. The function should never yield false unlocked result. 740 * False locked result is possible if mm_lock_seq overflows or if vma gets 741 * reused and attached to a different mm before we lock it. 742 * Returns the vma on success, NULL on failure to lock and EAGAIN if vma got 743 * detached. 744 */ 745 static inline struct vm_area_struct *vma_start_read(struct mm_struct *mm, 746 struct vm_area_struct *vma) 747 { 748 int oldcnt; 749 750 /* 751 * Check before locking. A race might cause false locked result. 752 * We can use READ_ONCE() for the mm_lock_seq here, and don't need 753 * ACQUIRE semantics, because this is just a lockless check whose result 754 * we don't rely on for anything - the mm_lock_seq read against which we 755 * need ordering is below. 756 */ 757 if (READ_ONCE(vma->vm_lock_seq) == READ_ONCE(mm->mm_lock_seq.sequence)) 758 return NULL; 759 760 /* 761 * If VMA_LOCK_OFFSET is set, __refcount_inc_not_zero_limited_acquire() 762 * will fail because VMA_REF_LIMIT is less than VMA_LOCK_OFFSET. 763 * Acquire fence is required here to avoid reordering against later 764 * vm_lock_seq check and checks inside lock_vma_under_rcu(). 765 */ 766 if (unlikely(!__refcount_inc_not_zero_limited_acquire(&vma->vm_refcnt, &oldcnt, 767 VMA_REF_LIMIT))) { 768 /* return EAGAIN if vma got detached from under us */ 769 return oldcnt ? NULL : ERR_PTR(-EAGAIN); 770 } 771 772 rwsem_acquire_read(&vma->vmlock_dep_map, 0, 1, _RET_IP_); 773 /* 774 * Overflow of vm_lock_seq/mm_lock_seq might produce false locked result. 775 * False unlocked result is impossible because we modify and check 776 * vma->vm_lock_seq under vma->vm_refcnt protection and mm->mm_lock_seq 777 * modification invalidates all existing locks. 778 * 779 * We must use ACQUIRE semantics for the mm_lock_seq so that if we are 780 * racing with vma_end_write_all(), we only start reading from the VMA 781 * after it has been unlocked. 782 * This pairs with RELEASE semantics in vma_end_write_all(). 783 */ 784 if (unlikely(vma->vm_lock_seq == raw_read_seqcount(&mm->mm_lock_seq))) { 785 vma_refcount_put(vma); 786 return NULL; 787 } 788 789 return vma; 790 } 791 792 /* 793 * Use only while holding mmap read lock which guarantees that locking will not 794 * fail (nobody can concurrently write-lock the vma). vma_start_read() should 795 * not be used in such cases because it might fail due to mm_lock_seq overflow. 796 * This functionality is used to obtain vma read lock and drop the mmap read lock. 797 */ 798 static inline bool vma_start_read_locked_nested(struct vm_area_struct *vma, int subclass) 799 { 800 int oldcnt; 801 802 mmap_assert_locked(vma->vm_mm); 803 if (unlikely(!__refcount_inc_not_zero_limited_acquire(&vma->vm_refcnt, &oldcnt, 804 VMA_REF_LIMIT))) 805 return false; 806 807 rwsem_acquire_read(&vma->vmlock_dep_map, 0, 1, _RET_IP_); 808 return true; 809 } 810 811 /* 812 * Use only while holding mmap read lock which guarantees that locking will not 813 * fail (nobody can concurrently write-lock the vma). vma_start_read() should 814 * not be used in such cases because it might fail due to mm_lock_seq overflow. 815 * This functionality is used to obtain vma read lock and drop the mmap read lock. 816 */ 817 static inline bool vma_start_read_locked(struct vm_area_struct *vma) 818 { 819 return vma_start_read_locked_nested(vma, 0); 820 } 821 822 static inline void vma_end_read(struct vm_area_struct *vma) 823 { 824 vma_refcount_put(vma); 825 } 826 827 /* WARNING! Can only be used if mmap_lock is expected to be write-locked */ 828 static bool __is_vma_write_locked(struct vm_area_struct *vma, unsigned int *mm_lock_seq) 829 { 830 mmap_assert_write_locked(vma->vm_mm); 831 832 /* 833 * current task is holding mmap_write_lock, both vma->vm_lock_seq and 834 * mm->mm_lock_seq can't be concurrently modified. 835 */ 836 *mm_lock_seq = vma->vm_mm->mm_lock_seq.sequence; 837 return (vma->vm_lock_seq == *mm_lock_seq); 838 } 839 840 void __vma_start_write(struct vm_area_struct *vma, unsigned int mm_lock_seq); 841 842 /* 843 * Begin writing to a VMA. 844 * Exclude concurrent readers under the per-VMA lock until the currently 845 * write-locked mmap_lock is dropped or downgraded. 846 */ 847 static inline void vma_start_write(struct vm_area_struct *vma) 848 { 849 unsigned int mm_lock_seq; 850 851 if (__is_vma_write_locked(vma, &mm_lock_seq)) 852 return; 853 854 __vma_start_write(vma, mm_lock_seq); 855 } 856 857 static inline void vma_assert_write_locked(struct vm_area_struct *vma) 858 { 859 unsigned int mm_lock_seq; 860 861 VM_BUG_ON_VMA(!__is_vma_write_locked(vma, &mm_lock_seq), vma); 862 } 863 864 static inline void vma_assert_locked(struct vm_area_struct *vma) 865 { 866 unsigned int mm_lock_seq; 867 868 VM_BUG_ON_VMA(refcount_read(&vma->vm_refcnt) <= 1 && 869 !__is_vma_write_locked(vma, &mm_lock_seq), vma); 870 } 871 872 /* 873 * WARNING: to avoid racing with vma_mark_attached()/vma_mark_detached(), these 874 * assertions should be made either under mmap_write_lock or when the object 875 * has been isolated under mmap_write_lock, ensuring no competing writers. 876 */ 877 static inline void vma_assert_attached(struct vm_area_struct *vma) 878 { 879 WARN_ON_ONCE(!refcount_read(&vma->vm_refcnt)); 880 } 881 882 static inline void vma_assert_detached(struct vm_area_struct *vma) 883 { 884 WARN_ON_ONCE(refcount_read(&vma->vm_refcnt)); 885 } 886 887 static inline void vma_mark_attached(struct vm_area_struct *vma) 888 { 889 vma_assert_write_locked(vma); 890 vma_assert_detached(vma); 891 refcount_set_release(&vma->vm_refcnt, 1); 892 } 893 894 void vma_mark_detached(struct vm_area_struct *vma); 895 896 static inline void release_fault_lock(struct vm_fault *vmf) 897 { 898 if (vmf->flags & FAULT_FLAG_VMA_LOCK) 899 vma_end_read(vmf->vma); 900 else 901 mmap_read_unlock(vmf->vma->vm_mm); 902 } 903 904 static inline void assert_fault_locked(struct vm_fault *vmf) 905 { 906 if (vmf->flags & FAULT_FLAG_VMA_LOCK) 907 vma_assert_locked(vmf->vma); 908 else 909 mmap_assert_locked(vmf->vma->vm_mm); 910 } 911 912 struct vm_area_struct *lock_vma_under_rcu(struct mm_struct *mm, 913 unsigned long address); 914 915 #else /* CONFIG_PER_VMA_LOCK */ 916 917 static inline void vma_lock_init(struct vm_area_struct *vma, bool reset_refcnt) {} 918 static inline struct vm_area_struct *vma_start_read(struct mm_struct *mm, 919 struct vm_area_struct *vma) 920 { return NULL; } 921 static inline void vma_end_read(struct vm_area_struct *vma) {} 922 static inline void vma_start_write(struct vm_area_struct *vma) {} 923 static inline void vma_assert_write_locked(struct vm_area_struct *vma) 924 { mmap_assert_write_locked(vma->vm_mm); } 925 static inline void vma_assert_attached(struct vm_area_struct *vma) {} 926 static inline void vma_assert_detached(struct vm_area_struct *vma) {} 927 static inline void vma_mark_attached(struct vm_area_struct *vma) {} 928 static inline void vma_mark_detached(struct vm_area_struct *vma) {} 929 930 static inline struct vm_area_struct *lock_vma_under_rcu(struct mm_struct *mm, 931 unsigned long address) 932 { 933 return NULL; 934 } 935 936 static inline void vma_assert_locked(struct vm_area_struct *vma) 937 { 938 mmap_assert_locked(vma->vm_mm); 939 } 940 941 static inline void release_fault_lock(struct vm_fault *vmf) 942 { 943 mmap_read_unlock(vmf->vma->vm_mm); 944 } 945 946 static inline void assert_fault_locked(struct vm_fault *vmf) 947 { 948 mmap_assert_locked(vmf->vma->vm_mm); 949 } 950 951 #endif /* CONFIG_PER_VMA_LOCK */ 952 953 extern const struct vm_operations_struct vma_dummy_vm_ops; 954 955 static inline void vma_init(struct vm_area_struct *vma, struct mm_struct *mm) 956 { 957 memset(vma, 0, sizeof(*vma)); 958 vma->vm_mm = mm; 959 vma->vm_ops = &vma_dummy_vm_ops; 960 INIT_LIST_HEAD(&vma->anon_vma_chain); 961 vma_lock_init(vma, false); 962 } 963 964 /* Use when VMA is not part of the VMA tree and needs no locking */ 965 static inline void vm_flags_init(struct vm_area_struct *vma, 966 vm_flags_t flags) 967 { 968 ACCESS_PRIVATE(vma, __vm_flags) = flags; 969 } 970 971 /* 972 * Use when VMA is part of the VMA tree and modifications need coordination 973 * Note: vm_flags_reset and vm_flags_reset_once do not lock the vma and 974 * it should be locked explicitly beforehand. 975 */ 976 static inline void vm_flags_reset(struct vm_area_struct *vma, 977 vm_flags_t flags) 978 { 979 vma_assert_write_locked(vma); 980 vm_flags_init(vma, flags); 981 } 982 983 static inline void vm_flags_reset_once(struct vm_area_struct *vma, 984 vm_flags_t flags) 985 { 986 vma_assert_write_locked(vma); 987 WRITE_ONCE(ACCESS_PRIVATE(vma, __vm_flags), flags); 988 } 989 990 static inline void vm_flags_set(struct vm_area_struct *vma, 991 vm_flags_t flags) 992 { 993 vma_start_write(vma); 994 ACCESS_PRIVATE(vma, __vm_flags) |= flags; 995 } 996 997 static inline void vm_flags_clear(struct vm_area_struct *vma, 998 vm_flags_t flags) 999 { 1000 vma_start_write(vma); 1001 ACCESS_PRIVATE(vma, __vm_flags) &= ~flags; 1002 } 1003 1004 /* 1005 * Use only if VMA is not part of the VMA tree or has no other users and 1006 * therefore needs no locking. 1007 */ 1008 static inline void __vm_flags_mod(struct vm_area_struct *vma, 1009 vm_flags_t set, vm_flags_t clear) 1010 { 1011 vm_flags_init(vma, (vma->vm_flags | set) & ~clear); 1012 } 1013 1014 /* 1015 * Use only when the order of set/clear operations is unimportant, otherwise 1016 * use vm_flags_{set|clear} explicitly. 1017 */ 1018 static inline void vm_flags_mod(struct vm_area_struct *vma, 1019 vm_flags_t set, vm_flags_t clear) 1020 { 1021 vma_start_write(vma); 1022 __vm_flags_mod(vma, set, clear); 1023 } 1024 1025 static inline void vma_set_anonymous(struct vm_area_struct *vma) 1026 { 1027 vma->vm_ops = NULL; 1028 } 1029 1030 static inline bool vma_is_anonymous(struct vm_area_struct *vma) 1031 { 1032 return !vma->vm_ops; 1033 } 1034 1035 /* 1036 * Indicate if the VMA is a heap for the given task; for 1037 * /proc/PID/maps that is the heap of the main task. 1038 */ 1039 static inline bool vma_is_initial_heap(const struct vm_area_struct *vma) 1040 { 1041 return vma->vm_start < vma->vm_mm->brk && 1042 vma->vm_end > vma->vm_mm->start_brk; 1043 } 1044 1045 /* 1046 * Indicate if the VMA is a stack for the given task; for 1047 * /proc/PID/maps that is the stack of the main task. 1048 */ 1049 static inline bool vma_is_initial_stack(const struct vm_area_struct *vma) 1050 { 1051 /* 1052 * We make no effort to guess what a given thread considers to be 1053 * its "stack". It's not even well-defined for programs written 1054 * languages like Go. 1055 */ 1056 return vma->vm_start <= vma->vm_mm->start_stack && 1057 vma->vm_end >= vma->vm_mm->start_stack; 1058 } 1059 1060 static inline bool vma_is_temporary_stack(struct vm_area_struct *vma) 1061 { 1062 int maybe_stack = vma->vm_flags & (VM_GROWSDOWN | VM_GROWSUP); 1063 1064 if (!maybe_stack) 1065 return false; 1066 1067 if ((vma->vm_flags & VM_STACK_INCOMPLETE_SETUP) == 1068 VM_STACK_INCOMPLETE_SETUP) 1069 return true; 1070 1071 return false; 1072 } 1073 1074 static inline bool vma_is_foreign(struct vm_area_struct *vma) 1075 { 1076 if (!current->mm) 1077 return true; 1078 1079 if (current->mm != vma->vm_mm) 1080 return true; 1081 1082 return false; 1083 } 1084 1085 static inline bool vma_is_accessible(struct vm_area_struct *vma) 1086 { 1087 return vma->vm_flags & VM_ACCESS_FLAGS; 1088 } 1089 1090 static inline bool is_shared_maywrite(vm_flags_t vm_flags) 1091 { 1092 return (vm_flags & (VM_SHARED | VM_MAYWRITE)) == 1093 (VM_SHARED | VM_MAYWRITE); 1094 } 1095 1096 static inline bool vma_is_shared_maywrite(struct vm_area_struct *vma) 1097 { 1098 return is_shared_maywrite(vma->vm_flags); 1099 } 1100 1101 static inline 1102 struct vm_area_struct *vma_find(struct vma_iterator *vmi, unsigned long max) 1103 { 1104 return mas_find(&vmi->mas, max - 1); 1105 } 1106 1107 static inline struct vm_area_struct *vma_next(struct vma_iterator *vmi) 1108 { 1109 /* 1110 * Uses mas_find() to get the first VMA when the iterator starts. 1111 * Calling mas_next() could skip the first entry. 1112 */ 1113 return mas_find(&vmi->mas, ULONG_MAX); 1114 } 1115 1116 static inline 1117 struct vm_area_struct *vma_iter_next_range(struct vma_iterator *vmi) 1118 { 1119 return mas_next_range(&vmi->mas, ULONG_MAX); 1120 } 1121 1122 1123 static inline struct vm_area_struct *vma_prev(struct vma_iterator *vmi) 1124 { 1125 return mas_prev(&vmi->mas, 0); 1126 } 1127 1128 static inline int vma_iter_clear_gfp(struct vma_iterator *vmi, 1129 unsigned long start, unsigned long end, gfp_t gfp) 1130 { 1131 __mas_set_range(&vmi->mas, start, end - 1); 1132 mas_store_gfp(&vmi->mas, NULL, gfp); 1133 if (unlikely(mas_is_err(&vmi->mas))) 1134 return -ENOMEM; 1135 1136 return 0; 1137 } 1138 1139 /* Free any unused preallocations */ 1140 static inline void vma_iter_free(struct vma_iterator *vmi) 1141 { 1142 mas_destroy(&vmi->mas); 1143 } 1144 1145 static inline int vma_iter_bulk_store(struct vma_iterator *vmi, 1146 struct vm_area_struct *vma) 1147 { 1148 vmi->mas.index = vma->vm_start; 1149 vmi->mas.last = vma->vm_end - 1; 1150 mas_store(&vmi->mas, vma); 1151 if (unlikely(mas_is_err(&vmi->mas))) 1152 return -ENOMEM; 1153 1154 vma_mark_attached(vma); 1155 return 0; 1156 } 1157 1158 static inline void vma_iter_invalidate(struct vma_iterator *vmi) 1159 { 1160 mas_pause(&vmi->mas); 1161 } 1162 1163 static inline void vma_iter_set(struct vma_iterator *vmi, unsigned long addr) 1164 { 1165 mas_set(&vmi->mas, addr); 1166 } 1167 1168 #define for_each_vma(__vmi, __vma) \ 1169 while (((__vma) = vma_next(&(__vmi))) != NULL) 1170 1171 /* The MM code likes to work with exclusive end addresses */ 1172 #define for_each_vma_range(__vmi, __vma, __end) \ 1173 while (((__vma) = vma_find(&(__vmi), (__end))) != NULL) 1174 1175 #ifdef CONFIG_SHMEM 1176 /* 1177 * The vma_is_shmem is not inline because it is used only by slow 1178 * paths in userfault. 1179 */ 1180 bool vma_is_shmem(struct vm_area_struct *vma); 1181 bool vma_is_anon_shmem(struct vm_area_struct *vma); 1182 #else 1183 static inline bool vma_is_shmem(struct vm_area_struct *vma) { return false; } 1184 static inline bool vma_is_anon_shmem(struct vm_area_struct *vma) { return false; } 1185 #endif 1186 1187 int vma_is_stack_for_current(struct vm_area_struct *vma); 1188 1189 /* flush_tlb_range() takes a vma, not a mm, and can care about flags */ 1190 #define TLB_FLUSH_VMA(mm,flags) { .vm_mm = (mm), .vm_flags = (flags) } 1191 1192 struct mmu_gather; 1193 struct inode; 1194 1195 extern void prep_compound_page(struct page *page, unsigned int order); 1196 1197 static inline unsigned int folio_large_order(const struct folio *folio) 1198 { 1199 return folio->_flags_1 & 0xff; 1200 } 1201 1202 #ifdef NR_PAGES_IN_LARGE_FOLIO 1203 static inline long folio_large_nr_pages(const struct folio *folio) 1204 { 1205 return folio->_nr_pages; 1206 } 1207 #else 1208 static inline long folio_large_nr_pages(const struct folio *folio) 1209 { 1210 return 1L << folio_large_order(folio); 1211 } 1212 #endif 1213 1214 /* 1215 * compound_order() can be called without holding a reference, which means 1216 * that niceties like page_folio() don't work. These callers should be 1217 * prepared to handle wild return values. For example, PG_head may be 1218 * set before the order is initialised, or this may be a tail page. 1219 * See compaction.c for some good examples. 1220 */ 1221 static inline unsigned int compound_order(struct page *page) 1222 { 1223 struct folio *folio = (struct folio *)page; 1224 1225 if (!test_bit(PG_head, &folio->flags)) 1226 return 0; 1227 return folio_large_order(folio); 1228 } 1229 1230 /** 1231 * folio_order - The allocation order of a folio. 1232 * @folio: The folio. 1233 * 1234 * A folio is composed of 2^order pages. See get_order() for the definition 1235 * of order. 1236 * 1237 * Return: The order of the folio. 1238 */ 1239 static inline unsigned int folio_order(const struct folio *folio) 1240 { 1241 if (!folio_test_large(folio)) 1242 return 0; 1243 return folio_large_order(folio); 1244 } 1245 1246 #include <linux/huge_mm.h> 1247 1248 /* 1249 * Methods to modify the page usage count. 1250 * 1251 * What counts for a page usage: 1252 * - cache mapping (page->mapping) 1253 * - private data (page->private) 1254 * - page mapped in a task's page tables, each mapping 1255 * is counted separately 1256 * 1257 * Also, many kernel routines increase the page count before a critical 1258 * routine so they can be sure the page doesn't go away from under them. 1259 */ 1260 1261 /* 1262 * Drop a ref, return true if the refcount fell to zero (the page has no users) 1263 */ 1264 static inline int put_page_testzero(struct page *page) 1265 { 1266 VM_BUG_ON_PAGE(page_ref_count(page) == 0, page); 1267 return page_ref_dec_and_test(page); 1268 } 1269 1270 static inline int folio_put_testzero(struct folio *folio) 1271 { 1272 return put_page_testzero(&folio->page); 1273 } 1274 1275 /* 1276 * Try to grab a ref unless the page has a refcount of zero, return false if 1277 * that is the case. 1278 * This can be called when MMU is off so it must not access 1279 * any of the virtual mappings. 1280 */ 1281 static inline bool get_page_unless_zero(struct page *page) 1282 { 1283 return page_ref_add_unless(page, 1, 0); 1284 } 1285 1286 static inline struct folio *folio_get_nontail_page(struct page *page) 1287 { 1288 if (unlikely(!get_page_unless_zero(page))) 1289 return NULL; 1290 return (struct folio *)page; 1291 } 1292 1293 extern int page_is_ram(unsigned long pfn); 1294 1295 enum { 1296 REGION_INTERSECTS, 1297 REGION_DISJOINT, 1298 REGION_MIXED, 1299 }; 1300 1301 int region_intersects(resource_size_t offset, size_t size, unsigned long flags, 1302 unsigned long desc); 1303 1304 /* Support for virtually mapped pages */ 1305 struct page *vmalloc_to_page(const void *addr); 1306 unsigned long vmalloc_to_pfn(const void *addr); 1307 1308 /* 1309 * Determine if an address is within the vmalloc range 1310 * 1311 * On nommu, vmalloc/vfree wrap through kmalloc/kfree directly, so there 1312 * is no special casing required. 1313 */ 1314 #ifdef CONFIG_MMU 1315 extern bool is_vmalloc_addr(const void *x); 1316 extern int is_vmalloc_or_module_addr(const void *x); 1317 #else 1318 static inline bool is_vmalloc_addr(const void *x) 1319 { 1320 return false; 1321 } 1322 static inline int is_vmalloc_or_module_addr(const void *x) 1323 { 1324 return 0; 1325 } 1326 #endif 1327 1328 /* 1329 * How many times the entire folio is mapped as a single unit (eg by a 1330 * PMD or PUD entry). This is probably not what you want, except for 1331 * debugging purposes or implementation of other core folio_*() primitives. 1332 */ 1333 static inline int folio_entire_mapcount(const struct folio *folio) 1334 { 1335 VM_BUG_ON_FOLIO(!folio_test_large(folio), folio); 1336 if (!IS_ENABLED(CONFIG_64BIT) && unlikely(folio_large_order(folio) == 1)) 1337 return 0; 1338 return atomic_read(&folio->_entire_mapcount) + 1; 1339 } 1340 1341 static inline int folio_large_mapcount(const struct folio *folio) 1342 { 1343 VM_WARN_ON_FOLIO(!folio_test_large(folio), folio); 1344 return atomic_read(&folio->_large_mapcount) + 1; 1345 } 1346 1347 /** 1348 * folio_mapcount() - Number of mappings of this folio. 1349 * @folio: The folio. 1350 * 1351 * The folio mapcount corresponds to the number of present user page table 1352 * entries that reference any part of a folio. Each such present user page 1353 * table entry must be paired with exactly on folio reference. 1354 * 1355 * For ordindary folios, each user page table entry (PTE/PMD/PUD/...) counts 1356 * exactly once. 1357 * 1358 * For hugetlb folios, each abstracted "hugetlb" user page table entry that 1359 * references the entire folio counts exactly once, even when such special 1360 * page table entries are comprised of multiple ordinary page table entries. 1361 * 1362 * Will report 0 for pages which cannot be mapped into userspace, such as 1363 * slab, page tables and similar. 1364 * 1365 * Return: The number of times this folio is mapped. 1366 */ 1367 static inline int folio_mapcount(const struct folio *folio) 1368 { 1369 int mapcount; 1370 1371 if (likely(!folio_test_large(folio))) { 1372 mapcount = atomic_read(&folio->_mapcount) + 1; 1373 if (page_mapcount_is_type(mapcount)) 1374 mapcount = 0; 1375 return mapcount; 1376 } 1377 return folio_large_mapcount(folio); 1378 } 1379 1380 /** 1381 * folio_mapped - Is this folio mapped into userspace? 1382 * @folio: The folio. 1383 * 1384 * Return: True if any page in this folio is referenced by user page tables. 1385 */ 1386 static inline bool folio_mapped(const struct folio *folio) 1387 { 1388 return folio_mapcount(folio) >= 1; 1389 } 1390 1391 /* 1392 * Return true if this page is mapped into pagetables. 1393 * For compound page it returns true if any sub-page of compound page is mapped, 1394 * even if this particular sub-page is not itself mapped by any PTE or PMD. 1395 */ 1396 static inline bool page_mapped(const struct page *page) 1397 { 1398 return folio_mapped(page_folio(page)); 1399 } 1400 1401 static inline struct page *virt_to_head_page(const void *x) 1402 { 1403 struct page *page = virt_to_page(x); 1404 1405 return compound_head(page); 1406 } 1407 1408 static inline struct folio *virt_to_folio(const void *x) 1409 { 1410 struct page *page = virt_to_page(x); 1411 1412 return page_folio(page); 1413 } 1414 1415 void __folio_put(struct folio *folio); 1416 1417 void split_page(struct page *page, unsigned int order); 1418 void folio_copy(struct folio *dst, struct folio *src); 1419 int folio_mc_copy(struct folio *dst, struct folio *src); 1420 1421 unsigned long nr_free_buffer_pages(void); 1422 1423 /* Returns the number of bytes in this potentially compound page. */ 1424 static inline unsigned long page_size(struct page *page) 1425 { 1426 return PAGE_SIZE << compound_order(page); 1427 } 1428 1429 /* Returns the number of bits needed for the number of bytes in a page */ 1430 static inline unsigned int page_shift(struct page *page) 1431 { 1432 return PAGE_SHIFT + compound_order(page); 1433 } 1434 1435 /** 1436 * thp_order - Order of a transparent huge page. 1437 * @page: Head page of a transparent huge page. 1438 */ 1439 static inline unsigned int thp_order(struct page *page) 1440 { 1441 VM_BUG_ON_PGFLAGS(PageTail(page), page); 1442 return compound_order(page); 1443 } 1444 1445 /** 1446 * thp_size - Size of a transparent huge page. 1447 * @page: Head page of a transparent huge page. 1448 * 1449 * Return: Number of bytes in this page. 1450 */ 1451 static inline unsigned long thp_size(struct page *page) 1452 { 1453 return PAGE_SIZE << thp_order(page); 1454 } 1455 1456 #ifdef CONFIG_MMU 1457 /* 1458 * Do pte_mkwrite, but only if the vma says VM_WRITE. We do this when 1459 * servicing faults for write access. In the normal case, do always want 1460 * pte_mkwrite. But get_user_pages can cause write faults for mappings 1461 * that do not have writing enabled, when used by access_process_vm. 1462 */ 1463 static inline pte_t maybe_mkwrite(pte_t pte, struct vm_area_struct *vma) 1464 { 1465 if (likely(vma->vm_flags & VM_WRITE)) 1466 pte = pte_mkwrite(pte, vma); 1467 return pte; 1468 } 1469 1470 vm_fault_t do_set_pmd(struct vm_fault *vmf, struct page *page); 1471 void set_pte_range(struct vm_fault *vmf, struct folio *folio, 1472 struct page *page, unsigned int nr, unsigned long addr); 1473 1474 vm_fault_t finish_fault(struct vm_fault *vmf); 1475 #endif 1476 1477 /* 1478 * Multiple processes may "see" the same page. E.g. for untouched 1479 * mappings of /dev/null, all processes see the same page full of 1480 * zeroes, and text pages of executables and shared libraries have 1481 * only one copy in memory, at most, normally. 1482 * 1483 * For the non-reserved pages, page_count(page) denotes a reference count. 1484 * page_count() == 0 means the page is free. page->lru is then used for 1485 * freelist management in the buddy allocator. 1486 * page_count() > 0 means the page has been allocated. 1487 * 1488 * Pages are allocated by the slab allocator in order to provide memory 1489 * to kmalloc and kmem_cache_alloc. In this case, the management of the 1490 * page, and the fields in 'struct page' are the responsibility of mm/slab.c 1491 * unless a particular usage is carefully commented. (the responsibility of 1492 * freeing the kmalloc memory is the caller's, of course). 1493 * 1494 * A page may be used by anyone else who does a __get_free_page(). 1495 * In this case, page_count still tracks the references, and should only 1496 * be used through the normal accessor functions. The top bits of page->flags 1497 * and page->virtual store page management information, but all other fields 1498 * are unused and could be used privately, carefully. The management of this 1499 * page is the responsibility of the one who allocated it, and those who have 1500 * subsequently been given references to it. 1501 * 1502 * The other pages (we may call them "pagecache pages") are completely 1503 * managed by the Linux memory manager: I/O, buffers, swapping etc. 1504 * The following discussion applies only to them. 1505 * 1506 * A pagecache page contains an opaque `private' member, which belongs to the 1507 * page's address_space. Usually, this is the address of a circular list of 1508 * the page's disk buffers. PG_private must be set to tell the VM to call 1509 * into the filesystem to release these pages. 1510 * 1511 * A page may belong to an inode's memory mapping. In this case, page->mapping 1512 * is the pointer to the inode, and page->index is the file offset of the page, 1513 * in units of PAGE_SIZE. 1514 * 1515 * If pagecache pages are not associated with an inode, they are said to be 1516 * anonymous pages. These may become associated with the swapcache, and in that 1517 * case PG_swapcache is set, and page->private is an offset into the swapcache. 1518 * 1519 * In either case (swapcache or inode backed), the pagecache itself holds one 1520 * reference to the page. Setting PG_private should also increment the 1521 * refcount. The each user mapping also has a reference to the page. 1522 * 1523 * The pagecache pages are stored in a per-mapping radix tree, which is 1524 * rooted at mapping->i_pages, and indexed by offset. 1525 * Where 2.4 and early 2.6 kernels kept dirty/clean pages in per-address_space 1526 * lists, we instead now tag pages as dirty/writeback in the radix tree. 1527 * 1528 * All pagecache pages may be subject to I/O: 1529 * - inode pages may need to be read from disk, 1530 * - inode pages which have been modified and are MAP_SHARED may need 1531 * to be written back to the inode on disk, 1532 * - anonymous pages (including MAP_PRIVATE file mappings) which have been 1533 * modified may need to be swapped out to swap space and (later) to be read 1534 * back into memory. 1535 */ 1536 1537 /* 127: arbitrary random number, small enough to assemble well */ 1538 #define folio_ref_zero_or_close_to_overflow(folio) \ 1539 ((unsigned int) folio_ref_count(folio) + 127u <= 127u) 1540 1541 /** 1542 * folio_get - Increment the reference count on a folio. 1543 * @folio: The folio. 1544 * 1545 * Context: May be called in any context, as long as you know that 1546 * you have a refcount on the folio. If you do not already have one, 1547 * folio_try_get() may be the right interface for you to use. 1548 */ 1549 static inline void folio_get(struct folio *folio) 1550 { 1551 VM_BUG_ON_FOLIO(folio_ref_zero_or_close_to_overflow(folio), folio); 1552 folio_ref_inc(folio); 1553 } 1554 1555 static inline void get_page(struct page *page) 1556 { 1557 struct folio *folio = page_folio(page); 1558 if (WARN_ON_ONCE(folio_test_slab(folio))) 1559 return; 1560 folio_get(folio); 1561 } 1562 1563 static inline __must_check bool try_get_page(struct page *page) 1564 { 1565 page = compound_head(page); 1566 if (WARN_ON_ONCE(page_ref_count(page) <= 0)) 1567 return false; 1568 page_ref_inc(page); 1569 return true; 1570 } 1571 1572 /** 1573 * folio_put - Decrement the reference count on a folio. 1574 * @folio: The folio. 1575 * 1576 * If the folio's reference count reaches zero, the memory will be 1577 * released back to the page allocator and may be used by another 1578 * allocation immediately. Do not access the memory or the struct folio 1579 * after calling folio_put() unless you can be sure that it wasn't the 1580 * last reference. 1581 * 1582 * Context: May be called in process or interrupt context, but not in NMI 1583 * context. May be called while holding a spinlock. 1584 */ 1585 static inline void folio_put(struct folio *folio) 1586 { 1587 if (folio_put_testzero(folio)) 1588 __folio_put(folio); 1589 } 1590 1591 /** 1592 * folio_put_refs - Reduce the reference count on a folio. 1593 * @folio: The folio. 1594 * @refs: The amount to subtract from the folio's reference count. 1595 * 1596 * If the folio's reference count reaches zero, the memory will be 1597 * released back to the page allocator and may be used by another 1598 * allocation immediately. Do not access the memory or the struct folio 1599 * after calling folio_put_refs() unless you can be sure that these weren't 1600 * the last references. 1601 * 1602 * Context: May be called in process or interrupt context, but not in NMI 1603 * context. May be called while holding a spinlock. 1604 */ 1605 static inline void folio_put_refs(struct folio *folio, int refs) 1606 { 1607 if (folio_ref_sub_and_test(folio, refs)) 1608 __folio_put(folio); 1609 } 1610 1611 void folios_put_refs(struct folio_batch *folios, unsigned int *refs); 1612 1613 /* 1614 * union release_pages_arg - an array of pages or folios 1615 * 1616 * release_pages() releases a simple array of multiple pages, and 1617 * accepts various different forms of said page array: either 1618 * a regular old boring array of pages, an array of folios, or 1619 * an array of encoded page pointers. 1620 * 1621 * The transparent union syntax for this kind of "any of these 1622 * argument types" is all kinds of ugly, so look away. 1623 */ 1624 typedef union { 1625 struct page **pages; 1626 struct folio **folios; 1627 struct encoded_page **encoded_pages; 1628 } release_pages_arg __attribute__ ((__transparent_union__)); 1629 1630 void release_pages(release_pages_arg, int nr); 1631 1632 /** 1633 * folios_put - Decrement the reference count on an array of folios. 1634 * @folios: The folios. 1635 * 1636 * Like folio_put(), but for a batch of folios. This is more efficient 1637 * than writing the loop yourself as it will optimise the locks which need 1638 * to be taken if the folios are freed. The folios batch is returned 1639 * empty and ready to be reused for another batch; there is no need to 1640 * reinitialise it. 1641 * 1642 * Context: May be called in process or interrupt context, but not in NMI 1643 * context. May be called while holding a spinlock. 1644 */ 1645 static inline void folios_put(struct folio_batch *folios) 1646 { 1647 folios_put_refs(folios, NULL); 1648 } 1649 1650 static inline void put_page(struct page *page) 1651 { 1652 struct folio *folio = page_folio(page); 1653 1654 if (folio_test_slab(folio)) 1655 return; 1656 1657 folio_put(folio); 1658 } 1659 1660 /* 1661 * GUP_PIN_COUNTING_BIAS, and the associated functions that use it, overload 1662 * the page's refcount so that two separate items are tracked: the original page 1663 * reference count, and also a new count of how many pin_user_pages() calls were 1664 * made against the page. ("gup-pinned" is another term for the latter). 1665 * 1666 * With this scheme, pin_user_pages() becomes special: such pages are marked as 1667 * distinct from normal pages. As such, the unpin_user_page() call (and its 1668 * variants) must be used in order to release gup-pinned pages. 1669 * 1670 * Choice of value: 1671 * 1672 * By making GUP_PIN_COUNTING_BIAS a power of two, debugging of page reference 1673 * counts with respect to pin_user_pages() and unpin_user_page() becomes 1674 * simpler, due to the fact that adding an even power of two to the page 1675 * refcount has the effect of using only the upper N bits, for the code that 1676 * counts up using the bias value. This means that the lower bits are left for 1677 * the exclusive use of the original code that increments and decrements by one 1678 * (or at least, by much smaller values than the bias value). 1679 * 1680 * Of course, once the lower bits overflow into the upper bits (and this is 1681 * OK, because subtraction recovers the original values), then visual inspection 1682 * no longer suffices to directly view the separate counts. However, for normal 1683 * applications that don't have huge page reference counts, this won't be an 1684 * issue. 1685 * 1686 * Locking: the lockless algorithm described in folio_try_get_rcu() 1687 * provides safe operation for get_user_pages(), folio_mkclean() and 1688 * other calls that race to set up page table entries. 1689 */ 1690 #define GUP_PIN_COUNTING_BIAS (1U << 10) 1691 1692 void unpin_user_page(struct page *page); 1693 void unpin_folio(struct folio *folio); 1694 void unpin_user_pages_dirty_lock(struct page **pages, unsigned long npages, 1695 bool make_dirty); 1696 void unpin_user_page_range_dirty_lock(struct page *page, unsigned long npages, 1697 bool make_dirty); 1698 void unpin_user_pages(struct page **pages, unsigned long npages); 1699 void unpin_user_folio(struct folio *folio, unsigned long npages); 1700 void unpin_folios(struct folio **folios, unsigned long nfolios); 1701 1702 static inline bool is_cow_mapping(vm_flags_t flags) 1703 { 1704 return (flags & (VM_SHARED | VM_MAYWRITE)) == VM_MAYWRITE; 1705 } 1706 1707 #ifndef CONFIG_MMU 1708 static inline bool is_nommu_shared_mapping(vm_flags_t flags) 1709 { 1710 /* 1711 * NOMMU shared mappings are ordinary MAP_SHARED mappings and selected 1712 * R/O MAP_PRIVATE file mappings that are an effective R/O overlay of 1713 * a file mapping. R/O MAP_PRIVATE mappings might still modify 1714 * underlying memory if ptrace is active, so this is only possible if 1715 * ptrace does not apply. Note that there is no mprotect() to upgrade 1716 * write permissions later. 1717 */ 1718 return flags & (VM_MAYSHARE | VM_MAYOVERLAY); 1719 } 1720 #endif 1721 1722 #if defined(CONFIG_SPARSEMEM) && !defined(CONFIG_SPARSEMEM_VMEMMAP) 1723 #define SECTION_IN_PAGE_FLAGS 1724 #endif 1725 1726 /* 1727 * The identification function is mainly used by the buddy allocator for 1728 * determining if two pages could be buddies. We are not really identifying 1729 * the zone since we could be using the section number id if we do not have 1730 * node id available in page flags. 1731 * We only guarantee that it will return the same value for two combinable 1732 * pages in a zone. 1733 */ 1734 static inline int page_zone_id(struct page *page) 1735 { 1736 return (page->flags >> ZONEID_PGSHIFT) & ZONEID_MASK; 1737 } 1738 1739 #ifdef NODE_NOT_IN_PAGE_FLAGS 1740 int page_to_nid(const struct page *page); 1741 #else 1742 static inline int page_to_nid(const struct page *page) 1743 { 1744 return (PF_POISONED_CHECK(page)->flags >> NODES_PGSHIFT) & NODES_MASK; 1745 } 1746 #endif 1747 1748 static inline int folio_nid(const struct folio *folio) 1749 { 1750 return page_to_nid(&folio->page); 1751 } 1752 1753 #ifdef CONFIG_NUMA_BALANCING 1754 /* page access time bits needs to hold at least 4 seconds */ 1755 #define PAGE_ACCESS_TIME_MIN_BITS 12 1756 #if LAST_CPUPID_SHIFT < PAGE_ACCESS_TIME_MIN_BITS 1757 #define PAGE_ACCESS_TIME_BUCKETS \ 1758 (PAGE_ACCESS_TIME_MIN_BITS - LAST_CPUPID_SHIFT) 1759 #else 1760 #define PAGE_ACCESS_TIME_BUCKETS 0 1761 #endif 1762 1763 #define PAGE_ACCESS_TIME_MASK \ 1764 (LAST_CPUPID_MASK << PAGE_ACCESS_TIME_BUCKETS) 1765 1766 static inline int cpu_pid_to_cpupid(int cpu, int pid) 1767 { 1768 return ((cpu & LAST__CPU_MASK) << LAST__PID_SHIFT) | (pid & LAST__PID_MASK); 1769 } 1770 1771 static inline int cpupid_to_pid(int cpupid) 1772 { 1773 return cpupid & LAST__PID_MASK; 1774 } 1775 1776 static inline int cpupid_to_cpu(int cpupid) 1777 { 1778 return (cpupid >> LAST__PID_SHIFT) & LAST__CPU_MASK; 1779 } 1780 1781 static inline int cpupid_to_nid(int cpupid) 1782 { 1783 return cpu_to_node(cpupid_to_cpu(cpupid)); 1784 } 1785 1786 static inline bool cpupid_pid_unset(int cpupid) 1787 { 1788 return cpupid_to_pid(cpupid) == (-1 & LAST__PID_MASK); 1789 } 1790 1791 static inline bool cpupid_cpu_unset(int cpupid) 1792 { 1793 return cpupid_to_cpu(cpupid) == (-1 & LAST__CPU_MASK); 1794 } 1795 1796 static inline bool __cpupid_match_pid(pid_t task_pid, int cpupid) 1797 { 1798 return (task_pid & LAST__PID_MASK) == cpupid_to_pid(cpupid); 1799 } 1800 1801 #define cpupid_match_pid(task, cpupid) __cpupid_match_pid(task->pid, cpupid) 1802 #ifdef LAST_CPUPID_NOT_IN_PAGE_FLAGS 1803 static inline int folio_xchg_last_cpupid(struct folio *folio, int cpupid) 1804 { 1805 return xchg(&folio->_last_cpupid, cpupid & LAST_CPUPID_MASK); 1806 } 1807 1808 static inline int folio_last_cpupid(struct folio *folio) 1809 { 1810 return folio->_last_cpupid; 1811 } 1812 static inline void page_cpupid_reset_last(struct page *page) 1813 { 1814 page->_last_cpupid = -1 & LAST_CPUPID_MASK; 1815 } 1816 #else 1817 static inline int folio_last_cpupid(struct folio *folio) 1818 { 1819 return (folio->flags >> LAST_CPUPID_PGSHIFT) & LAST_CPUPID_MASK; 1820 } 1821 1822 int folio_xchg_last_cpupid(struct folio *folio, int cpupid); 1823 1824 static inline void page_cpupid_reset_last(struct page *page) 1825 { 1826 page->flags |= LAST_CPUPID_MASK << LAST_CPUPID_PGSHIFT; 1827 } 1828 #endif /* LAST_CPUPID_NOT_IN_PAGE_FLAGS */ 1829 1830 static inline int folio_xchg_access_time(struct folio *folio, int time) 1831 { 1832 int last_time; 1833 1834 last_time = folio_xchg_last_cpupid(folio, 1835 time >> PAGE_ACCESS_TIME_BUCKETS); 1836 return last_time << PAGE_ACCESS_TIME_BUCKETS; 1837 } 1838 1839 static inline void vma_set_access_pid_bit(struct vm_area_struct *vma) 1840 { 1841 unsigned int pid_bit; 1842 1843 pid_bit = hash_32(current->pid, ilog2(BITS_PER_LONG)); 1844 if (vma->numab_state && !test_bit(pid_bit, &vma->numab_state->pids_active[1])) { 1845 __set_bit(pid_bit, &vma->numab_state->pids_active[1]); 1846 } 1847 } 1848 1849 bool folio_use_access_time(struct folio *folio); 1850 #else /* !CONFIG_NUMA_BALANCING */ 1851 static inline int folio_xchg_last_cpupid(struct folio *folio, int cpupid) 1852 { 1853 return folio_nid(folio); /* XXX */ 1854 } 1855 1856 static inline int folio_xchg_access_time(struct folio *folio, int time) 1857 { 1858 return 0; 1859 } 1860 1861 static inline int folio_last_cpupid(struct folio *folio) 1862 { 1863 return folio_nid(folio); /* XXX */ 1864 } 1865 1866 static inline int cpupid_to_nid(int cpupid) 1867 { 1868 return -1; 1869 } 1870 1871 static inline int cpupid_to_pid(int cpupid) 1872 { 1873 return -1; 1874 } 1875 1876 static inline int cpupid_to_cpu(int cpupid) 1877 { 1878 return -1; 1879 } 1880 1881 static inline int cpu_pid_to_cpupid(int nid, int pid) 1882 { 1883 return -1; 1884 } 1885 1886 static inline bool cpupid_pid_unset(int cpupid) 1887 { 1888 return true; 1889 } 1890 1891 static inline void page_cpupid_reset_last(struct page *page) 1892 { 1893 } 1894 1895 static inline bool cpupid_match_pid(struct task_struct *task, int cpupid) 1896 { 1897 return false; 1898 } 1899 1900 static inline void vma_set_access_pid_bit(struct vm_area_struct *vma) 1901 { 1902 } 1903 static inline bool folio_use_access_time(struct folio *folio) 1904 { 1905 return false; 1906 } 1907 #endif /* CONFIG_NUMA_BALANCING */ 1908 1909 #if defined(CONFIG_KASAN_SW_TAGS) || defined(CONFIG_KASAN_HW_TAGS) 1910 1911 /* 1912 * KASAN per-page tags are stored xor'ed with 0xff. This allows to avoid 1913 * setting tags for all pages to native kernel tag value 0xff, as the default 1914 * value 0x00 maps to 0xff. 1915 */ 1916 1917 static inline u8 page_kasan_tag(const struct page *page) 1918 { 1919 u8 tag = KASAN_TAG_KERNEL; 1920 1921 if (kasan_enabled()) { 1922 tag = (page->flags >> KASAN_TAG_PGSHIFT) & KASAN_TAG_MASK; 1923 tag ^= 0xff; 1924 } 1925 1926 return tag; 1927 } 1928 1929 static inline void page_kasan_tag_set(struct page *page, u8 tag) 1930 { 1931 unsigned long old_flags, flags; 1932 1933 if (!kasan_enabled()) 1934 return; 1935 1936 tag ^= 0xff; 1937 old_flags = READ_ONCE(page->flags); 1938 do { 1939 flags = old_flags; 1940 flags &= ~(KASAN_TAG_MASK << KASAN_TAG_PGSHIFT); 1941 flags |= (tag & KASAN_TAG_MASK) << KASAN_TAG_PGSHIFT; 1942 } while (unlikely(!try_cmpxchg(&page->flags, &old_flags, flags))); 1943 } 1944 1945 static inline void page_kasan_tag_reset(struct page *page) 1946 { 1947 if (kasan_enabled()) 1948 page_kasan_tag_set(page, KASAN_TAG_KERNEL); 1949 } 1950 1951 #else /* CONFIG_KASAN_SW_TAGS || CONFIG_KASAN_HW_TAGS */ 1952 1953 static inline u8 page_kasan_tag(const struct page *page) 1954 { 1955 return 0xff; 1956 } 1957 1958 static inline void page_kasan_tag_set(struct page *page, u8 tag) { } 1959 static inline void page_kasan_tag_reset(struct page *page) { } 1960 1961 #endif /* CONFIG_KASAN_SW_TAGS || CONFIG_KASAN_HW_TAGS */ 1962 1963 static inline struct zone *page_zone(const struct page *page) 1964 { 1965 return &NODE_DATA(page_to_nid(page))->node_zones[page_zonenum(page)]; 1966 } 1967 1968 static inline pg_data_t *page_pgdat(const struct page *page) 1969 { 1970 return NODE_DATA(page_to_nid(page)); 1971 } 1972 1973 static inline struct zone *folio_zone(const struct folio *folio) 1974 { 1975 return page_zone(&folio->page); 1976 } 1977 1978 static inline pg_data_t *folio_pgdat(const struct folio *folio) 1979 { 1980 return page_pgdat(&folio->page); 1981 } 1982 1983 #ifdef SECTION_IN_PAGE_FLAGS 1984 static inline void set_page_section(struct page *page, unsigned long section) 1985 { 1986 page->flags &= ~(SECTIONS_MASK << SECTIONS_PGSHIFT); 1987 page->flags |= (section & SECTIONS_MASK) << SECTIONS_PGSHIFT; 1988 } 1989 1990 static inline unsigned long page_to_section(const struct page *page) 1991 { 1992 return (page->flags >> SECTIONS_PGSHIFT) & SECTIONS_MASK; 1993 } 1994 #endif 1995 1996 /** 1997 * folio_pfn - Return the Page Frame Number of a folio. 1998 * @folio: The folio. 1999 * 2000 * A folio may contain multiple pages. The pages have consecutive 2001 * Page Frame Numbers. 2002 * 2003 * Return: The Page Frame Number of the first page in the folio. 2004 */ 2005 static inline unsigned long folio_pfn(const struct folio *folio) 2006 { 2007 return page_to_pfn(&folio->page); 2008 } 2009 2010 static inline struct folio *pfn_folio(unsigned long pfn) 2011 { 2012 return page_folio(pfn_to_page(pfn)); 2013 } 2014 2015 static inline bool folio_has_pincount(const struct folio *folio) 2016 { 2017 if (IS_ENABLED(CONFIG_64BIT)) 2018 return folio_test_large(folio); 2019 return folio_order(folio) > 1; 2020 } 2021 2022 /** 2023 * folio_maybe_dma_pinned - Report if a folio may be pinned for DMA. 2024 * @folio: The folio. 2025 * 2026 * This function checks if a folio has been pinned via a call to 2027 * a function in the pin_user_pages() family. 2028 * 2029 * For small folios, the return value is partially fuzzy: false is not fuzzy, 2030 * because it means "definitely not pinned for DMA", but true means "probably 2031 * pinned for DMA, but possibly a false positive due to having at least 2032 * GUP_PIN_COUNTING_BIAS worth of normal folio references". 2033 * 2034 * False positives are OK, because: a) it's unlikely for a folio to 2035 * get that many refcounts, and b) all the callers of this routine are 2036 * expected to be able to deal gracefully with a false positive. 2037 * 2038 * For most large folios, the result will be exactly correct. That's because 2039 * we have more tracking data available: the _pincount field is used 2040 * instead of the GUP_PIN_COUNTING_BIAS scheme. 2041 * 2042 * For more information, please see Documentation/core-api/pin_user_pages.rst. 2043 * 2044 * Return: True, if it is likely that the folio has been "dma-pinned". 2045 * False, if the folio is definitely not dma-pinned. 2046 */ 2047 static inline bool folio_maybe_dma_pinned(struct folio *folio) 2048 { 2049 if (folio_has_pincount(folio)) 2050 return atomic_read(&folio->_pincount) > 0; 2051 2052 /* 2053 * folio_ref_count() is signed. If that refcount overflows, then 2054 * folio_ref_count() returns a negative value, and callers will avoid 2055 * further incrementing the refcount. 2056 * 2057 * Here, for that overflow case, use the sign bit to count a little 2058 * bit higher via unsigned math, and thus still get an accurate result. 2059 */ 2060 return ((unsigned int)folio_ref_count(folio)) >= 2061 GUP_PIN_COUNTING_BIAS; 2062 } 2063 2064 /* 2065 * This should most likely only be called during fork() to see whether we 2066 * should break the cow immediately for an anon page on the src mm. 2067 * 2068 * The caller has to hold the PT lock and the vma->vm_mm->->write_protect_seq. 2069 */ 2070 static inline bool folio_needs_cow_for_dma(struct vm_area_struct *vma, 2071 struct folio *folio) 2072 { 2073 VM_BUG_ON(!(raw_read_seqcount(&vma->vm_mm->write_protect_seq) & 1)); 2074 2075 if (!test_bit(MMF_HAS_PINNED, &vma->vm_mm->flags)) 2076 return false; 2077 2078 return folio_maybe_dma_pinned(folio); 2079 } 2080 2081 /** 2082 * is_zero_page - Query if a page is a zero page 2083 * @page: The page to query 2084 * 2085 * This returns true if @page is one of the permanent zero pages. 2086 */ 2087 static inline bool is_zero_page(const struct page *page) 2088 { 2089 return is_zero_pfn(page_to_pfn(page)); 2090 } 2091 2092 /** 2093 * is_zero_folio - Query if a folio is a zero page 2094 * @folio: The folio to query 2095 * 2096 * This returns true if @folio is one of the permanent zero pages. 2097 */ 2098 static inline bool is_zero_folio(const struct folio *folio) 2099 { 2100 return is_zero_page(&folio->page); 2101 } 2102 2103 /* MIGRATE_CMA and ZONE_MOVABLE do not allow pin folios */ 2104 #ifdef CONFIG_MIGRATION 2105 static inline bool folio_is_longterm_pinnable(struct folio *folio) 2106 { 2107 #ifdef CONFIG_CMA 2108 int mt = folio_migratetype(folio); 2109 2110 if (mt == MIGRATE_CMA || mt == MIGRATE_ISOLATE) 2111 return false; 2112 #endif 2113 /* The zero page can be "pinned" but gets special handling. */ 2114 if (is_zero_folio(folio)) 2115 return true; 2116 2117 /* Coherent device memory must always allow eviction. */ 2118 if (folio_is_device_coherent(folio)) 2119 return false; 2120 2121 /* 2122 * Filesystems can only tolerate transient delays to truncate and 2123 * hole-punch operations 2124 */ 2125 if (folio_is_fsdax(folio)) 2126 return false; 2127 2128 /* Otherwise, non-movable zone folios can be pinned. */ 2129 return !folio_is_zone_movable(folio); 2130 2131 } 2132 #else 2133 static inline bool folio_is_longterm_pinnable(struct folio *folio) 2134 { 2135 return true; 2136 } 2137 #endif 2138 2139 static inline void set_page_zone(struct page *page, enum zone_type zone) 2140 { 2141 page->flags &= ~(ZONES_MASK << ZONES_PGSHIFT); 2142 page->flags |= (zone & ZONES_MASK) << ZONES_PGSHIFT; 2143 } 2144 2145 static inline void set_page_node(struct page *page, unsigned long node) 2146 { 2147 page->flags &= ~(NODES_MASK << NODES_PGSHIFT); 2148 page->flags |= (node & NODES_MASK) << NODES_PGSHIFT; 2149 } 2150 2151 static inline void set_page_links(struct page *page, enum zone_type zone, 2152 unsigned long node, unsigned long pfn) 2153 { 2154 set_page_zone(page, zone); 2155 set_page_node(page, node); 2156 #ifdef SECTION_IN_PAGE_FLAGS 2157 set_page_section(page, pfn_to_section_nr(pfn)); 2158 #endif 2159 } 2160 2161 /** 2162 * folio_nr_pages - The number of pages in the folio. 2163 * @folio: The folio. 2164 * 2165 * Return: A positive power of two. 2166 */ 2167 static inline long folio_nr_pages(const struct folio *folio) 2168 { 2169 if (!folio_test_large(folio)) 2170 return 1; 2171 return folio_large_nr_pages(folio); 2172 } 2173 2174 /* Only hugetlbfs can allocate folios larger than MAX_ORDER */ 2175 #ifdef CONFIG_ARCH_HAS_GIGANTIC_PAGE 2176 #define MAX_FOLIO_NR_PAGES (1UL << PUD_ORDER) 2177 #else 2178 #define MAX_FOLIO_NR_PAGES MAX_ORDER_NR_PAGES 2179 #endif 2180 2181 /* 2182 * compound_nr() returns the number of pages in this potentially compound 2183 * page. compound_nr() can be called on a tail page, and is defined to 2184 * return 1 in that case. 2185 */ 2186 static inline long compound_nr(struct page *page) 2187 { 2188 struct folio *folio = (struct folio *)page; 2189 2190 if (!test_bit(PG_head, &folio->flags)) 2191 return 1; 2192 return folio_large_nr_pages(folio); 2193 } 2194 2195 /** 2196 * thp_nr_pages - The number of regular pages in this huge page. 2197 * @page: The head page of a huge page. 2198 */ 2199 static inline long thp_nr_pages(struct page *page) 2200 { 2201 return folio_nr_pages((struct folio *)page); 2202 } 2203 2204 /** 2205 * folio_next - Move to the next physical folio. 2206 * @folio: The folio we're currently operating on. 2207 * 2208 * If you have physically contiguous memory which may span more than 2209 * one folio (eg a &struct bio_vec), use this function to move from one 2210 * folio to the next. Do not use it if the memory is only virtually 2211 * contiguous as the folios are almost certainly not adjacent to each 2212 * other. This is the folio equivalent to writing ``page++``. 2213 * 2214 * Context: We assume that the folios are refcounted and/or locked at a 2215 * higher level and do not adjust the reference counts. 2216 * Return: The next struct folio. 2217 */ 2218 static inline struct folio *folio_next(struct folio *folio) 2219 { 2220 return (struct folio *)folio_page(folio, folio_nr_pages(folio)); 2221 } 2222 2223 /** 2224 * folio_shift - The size of the memory described by this folio. 2225 * @folio: The folio. 2226 * 2227 * A folio represents a number of bytes which is a power-of-two in size. 2228 * This function tells you which power-of-two the folio is. See also 2229 * folio_size() and folio_order(). 2230 * 2231 * Context: The caller should have a reference on the folio to prevent 2232 * it from being split. It is not necessary for the folio to be locked. 2233 * Return: The base-2 logarithm of the size of this folio. 2234 */ 2235 static inline unsigned int folio_shift(const struct folio *folio) 2236 { 2237 return PAGE_SHIFT + folio_order(folio); 2238 } 2239 2240 /** 2241 * folio_size - The number of bytes in a folio. 2242 * @folio: The folio. 2243 * 2244 * Context: The caller should have a reference on the folio to prevent 2245 * it from being split. It is not necessary for the folio to be locked. 2246 * Return: The number of bytes in this folio. 2247 */ 2248 static inline size_t folio_size(const struct folio *folio) 2249 { 2250 return PAGE_SIZE << folio_order(folio); 2251 } 2252 2253 /** 2254 * folio_maybe_mapped_shared - Whether the folio is mapped into the page 2255 * tables of more than one MM 2256 * @folio: The folio. 2257 * 2258 * This function checks if the folio maybe currently mapped into more than one 2259 * MM ("maybe mapped shared"), or if the folio is certainly mapped into a single 2260 * MM ("mapped exclusively"). 2261 * 2262 * For KSM folios, this function also returns "mapped shared" when a folio is 2263 * mapped multiple times into the same MM, because the individual page mappings 2264 * are independent. 2265 * 2266 * For small anonymous folios and anonymous hugetlb folios, the return 2267 * value will be exactly correct: non-KSM folios can only be mapped at most once 2268 * into an MM, and they cannot be partially mapped. KSM folios are 2269 * considered shared even if mapped multiple times into the same MM. 2270 * 2271 * For other folios, the result can be fuzzy: 2272 * #. For partially-mappable large folios (THP), the return value can wrongly 2273 * indicate "mapped shared" (false positive) if a folio was mapped by 2274 * more than two MMs at one point in time. 2275 * #. For pagecache folios (including hugetlb), the return value can wrongly 2276 * indicate "mapped shared" (false positive) when two VMAs in the same MM 2277 * cover the same file range. 2278 * 2279 * Further, this function only considers current page table mappings that 2280 * are tracked using the folio mapcount(s). 2281 * 2282 * This function does not consider: 2283 * #. If the folio might get mapped in the (near) future (e.g., swapcache, 2284 * pagecache, temporary unmapping for migration). 2285 * #. If the folio is mapped differently (VM_PFNMAP). 2286 * #. If hugetlb page table sharing applies. Callers might want to check 2287 * hugetlb_pmd_shared(). 2288 * 2289 * Return: Whether the folio is estimated to be mapped into more than one MM. 2290 */ 2291 static inline bool folio_maybe_mapped_shared(struct folio *folio) 2292 { 2293 int mapcount = folio_mapcount(folio); 2294 2295 /* Only partially-mappable folios require more care. */ 2296 if (!folio_test_large(folio) || unlikely(folio_test_hugetlb(folio))) 2297 return mapcount > 1; 2298 2299 /* 2300 * vm_insert_page() without CONFIG_TRANSPARENT_HUGEPAGE ... 2301 * simply assume "mapped shared", nobody should really care 2302 * about this for arbitrary kernel allocations. 2303 */ 2304 if (!IS_ENABLED(CONFIG_MM_ID)) 2305 return true; 2306 2307 /* 2308 * A single mapping implies "mapped exclusively", even if the 2309 * folio flag says something different: it's easier to handle this 2310 * case here instead of on the RMAP hot path. 2311 */ 2312 if (mapcount <= 1) 2313 return false; 2314 return folio_test_large_maybe_mapped_shared(folio); 2315 } 2316 2317 #ifndef HAVE_ARCH_MAKE_FOLIO_ACCESSIBLE 2318 static inline int arch_make_folio_accessible(struct folio *folio) 2319 { 2320 return 0; 2321 } 2322 #endif 2323 2324 /* 2325 * Some inline functions in vmstat.h depend on page_zone() 2326 */ 2327 #include <linux/vmstat.h> 2328 2329 #if defined(CONFIG_HIGHMEM) && !defined(WANT_PAGE_VIRTUAL) 2330 #define HASHED_PAGE_VIRTUAL 2331 #endif 2332 2333 #if defined(WANT_PAGE_VIRTUAL) 2334 static inline void *page_address(const struct page *page) 2335 { 2336 return page->virtual; 2337 } 2338 static inline void set_page_address(struct page *page, void *address) 2339 { 2340 page->virtual = address; 2341 } 2342 #define page_address_init() do { } while(0) 2343 #endif 2344 2345 #if defined(HASHED_PAGE_VIRTUAL) 2346 void *page_address(const struct page *page); 2347 void set_page_address(struct page *page, void *virtual); 2348 void page_address_init(void); 2349 #endif 2350 2351 static __always_inline void *lowmem_page_address(const struct page *page) 2352 { 2353 return page_to_virt(page); 2354 } 2355 2356 #if !defined(HASHED_PAGE_VIRTUAL) && !defined(WANT_PAGE_VIRTUAL) 2357 #define page_address(page) lowmem_page_address(page) 2358 #define set_page_address(page, address) do { } while(0) 2359 #define page_address_init() do { } while(0) 2360 #endif 2361 2362 static inline void *folio_address(const struct folio *folio) 2363 { 2364 return page_address(&folio->page); 2365 } 2366 2367 /* 2368 * Return true only if the page has been allocated with 2369 * ALLOC_NO_WATERMARKS and the low watermark was not 2370 * met implying that the system is under some pressure. 2371 */ 2372 static inline bool page_is_pfmemalloc(const struct page *page) 2373 { 2374 /* 2375 * lru.next has bit 1 set if the page is allocated from the 2376 * pfmemalloc reserves. Callers may simply overwrite it if 2377 * they do not need to preserve that information. 2378 */ 2379 return (uintptr_t)page->lru.next & BIT(1); 2380 } 2381 2382 /* 2383 * Return true only if the folio has been allocated with 2384 * ALLOC_NO_WATERMARKS and the low watermark was not 2385 * met implying that the system is under some pressure. 2386 */ 2387 static inline bool folio_is_pfmemalloc(const struct folio *folio) 2388 { 2389 /* 2390 * lru.next has bit 1 set if the page is allocated from the 2391 * pfmemalloc reserves. Callers may simply overwrite it if 2392 * they do not need to preserve that information. 2393 */ 2394 return (uintptr_t)folio->lru.next & BIT(1); 2395 } 2396 2397 /* 2398 * Only to be called by the page allocator on a freshly allocated 2399 * page. 2400 */ 2401 static inline void set_page_pfmemalloc(struct page *page) 2402 { 2403 page->lru.next = (void *)BIT(1); 2404 } 2405 2406 static inline void clear_page_pfmemalloc(struct page *page) 2407 { 2408 page->lru.next = NULL; 2409 } 2410 2411 /* 2412 * Can be called by the pagefault handler when it gets a VM_FAULT_OOM. 2413 */ 2414 extern void pagefault_out_of_memory(void); 2415 2416 #define offset_in_page(p) ((unsigned long)(p) & ~PAGE_MASK) 2417 #define offset_in_thp(page, p) ((unsigned long)(p) & (thp_size(page) - 1)) 2418 #define offset_in_folio(folio, p) ((unsigned long)(p) & (folio_size(folio) - 1)) 2419 2420 /* 2421 * Parameter block passed down to zap_pte_range in exceptional cases. 2422 */ 2423 struct zap_details { 2424 struct folio *single_folio; /* Locked folio to be unmapped */ 2425 bool even_cows; /* Zap COWed private pages too? */ 2426 bool reclaim_pt; /* Need reclaim page tables? */ 2427 zap_flags_t zap_flags; /* Extra flags for zapping */ 2428 }; 2429 2430 /* 2431 * Whether to drop the pte markers, for example, the uffd-wp information for 2432 * file-backed memory. This should only be specified when we will completely 2433 * drop the page in the mm, either by truncation or unmapping of the vma. By 2434 * default, the flag is not set. 2435 */ 2436 #define ZAP_FLAG_DROP_MARKER ((__force zap_flags_t) BIT(0)) 2437 /* Set in unmap_vmas() to indicate a final unmap call. Only used by hugetlb */ 2438 #define ZAP_FLAG_UNMAP ((__force zap_flags_t) BIT(1)) 2439 2440 #ifdef CONFIG_SCHED_MM_CID 2441 void sched_mm_cid_before_execve(struct task_struct *t); 2442 void sched_mm_cid_after_execve(struct task_struct *t); 2443 void sched_mm_cid_fork(struct task_struct *t); 2444 void sched_mm_cid_exit_signals(struct task_struct *t); 2445 static inline int task_mm_cid(struct task_struct *t) 2446 { 2447 return t->mm_cid; 2448 } 2449 #else 2450 static inline void sched_mm_cid_before_execve(struct task_struct *t) { } 2451 static inline void sched_mm_cid_after_execve(struct task_struct *t) { } 2452 static inline void sched_mm_cid_fork(struct task_struct *t) { } 2453 static inline void sched_mm_cid_exit_signals(struct task_struct *t) { } 2454 static inline int task_mm_cid(struct task_struct *t) 2455 { 2456 /* 2457 * Use the processor id as a fall-back when the mm cid feature is 2458 * disabled. This provides functional per-cpu data structure accesses 2459 * in user-space, althrough it won't provide the memory usage benefits. 2460 */ 2461 return raw_smp_processor_id(); 2462 } 2463 #endif 2464 2465 #ifdef CONFIG_MMU 2466 extern bool can_do_mlock(void); 2467 #else 2468 static inline bool can_do_mlock(void) { return false; } 2469 #endif 2470 extern int user_shm_lock(size_t, struct ucounts *); 2471 extern void user_shm_unlock(size_t, struct ucounts *); 2472 2473 struct folio *vm_normal_folio(struct vm_area_struct *vma, unsigned long addr, 2474 pte_t pte); 2475 struct page *vm_normal_page(struct vm_area_struct *vma, unsigned long addr, 2476 pte_t pte); 2477 struct folio *vm_normal_folio_pmd(struct vm_area_struct *vma, 2478 unsigned long addr, pmd_t pmd); 2479 struct page *vm_normal_page_pmd(struct vm_area_struct *vma, unsigned long addr, 2480 pmd_t pmd); 2481 2482 void zap_vma_ptes(struct vm_area_struct *vma, unsigned long address, 2483 unsigned long size); 2484 void zap_page_range_single(struct vm_area_struct *vma, unsigned long address, 2485 unsigned long size, struct zap_details *details); 2486 static inline void zap_vma_pages(struct vm_area_struct *vma) 2487 { 2488 zap_page_range_single(vma, vma->vm_start, 2489 vma->vm_end - vma->vm_start, NULL); 2490 } 2491 void unmap_vmas(struct mmu_gather *tlb, struct ma_state *mas, 2492 struct vm_area_struct *start_vma, unsigned long start, 2493 unsigned long end, unsigned long tree_end, bool mm_wr_locked); 2494 2495 struct mmu_notifier_range; 2496 2497 void free_pgd_range(struct mmu_gather *tlb, unsigned long addr, 2498 unsigned long end, unsigned long floor, unsigned long ceiling); 2499 int 2500 copy_page_range(struct vm_area_struct *dst_vma, struct vm_area_struct *src_vma); 2501 int generic_access_phys(struct vm_area_struct *vma, unsigned long addr, 2502 void *buf, int len, int write); 2503 2504 struct follow_pfnmap_args { 2505 /** 2506 * Inputs: 2507 * @vma: Pointer to @vm_area_struct struct 2508 * @address: the virtual address to walk 2509 */ 2510 struct vm_area_struct *vma; 2511 unsigned long address; 2512 /** 2513 * Internals: 2514 * 2515 * The caller shouldn't touch any of these. 2516 */ 2517 spinlock_t *lock; 2518 pte_t *ptep; 2519 /** 2520 * Outputs: 2521 * 2522 * @pfn: the PFN of the address 2523 * @pgprot: the pgprot_t of the mapping 2524 * @writable: whether the mapping is writable 2525 * @special: whether the mapping is a special mapping (real PFN maps) 2526 */ 2527 unsigned long pfn; 2528 pgprot_t pgprot; 2529 bool writable; 2530 bool special; 2531 }; 2532 int follow_pfnmap_start(struct follow_pfnmap_args *args); 2533 void follow_pfnmap_end(struct follow_pfnmap_args *args); 2534 2535 extern void truncate_pagecache(struct inode *inode, loff_t new); 2536 extern void truncate_setsize(struct inode *inode, loff_t newsize); 2537 void pagecache_isize_extended(struct inode *inode, loff_t from, loff_t to); 2538 void truncate_pagecache_range(struct inode *inode, loff_t offset, loff_t end); 2539 int generic_error_remove_folio(struct address_space *mapping, 2540 struct folio *folio); 2541 2542 struct vm_area_struct *lock_mm_and_find_vma(struct mm_struct *mm, 2543 unsigned long address, struct pt_regs *regs); 2544 2545 #ifdef CONFIG_MMU 2546 extern vm_fault_t handle_mm_fault(struct vm_area_struct *vma, 2547 unsigned long address, unsigned int flags, 2548 struct pt_regs *regs); 2549 extern int fixup_user_fault(struct mm_struct *mm, 2550 unsigned long address, unsigned int fault_flags, 2551 bool *unlocked); 2552 void unmap_mapping_pages(struct address_space *mapping, 2553 pgoff_t start, pgoff_t nr, bool even_cows); 2554 void unmap_mapping_range(struct address_space *mapping, 2555 loff_t const holebegin, loff_t const holelen, int even_cows); 2556 #else 2557 static inline vm_fault_t handle_mm_fault(struct vm_area_struct *vma, 2558 unsigned long address, unsigned int flags, 2559 struct pt_regs *regs) 2560 { 2561 /* should never happen if there's no MMU */ 2562 BUG(); 2563 return VM_FAULT_SIGBUS; 2564 } 2565 static inline int fixup_user_fault(struct mm_struct *mm, unsigned long address, 2566 unsigned int fault_flags, bool *unlocked) 2567 { 2568 /* should never happen if there's no MMU */ 2569 BUG(); 2570 return -EFAULT; 2571 } 2572 static inline void unmap_mapping_pages(struct address_space *mapping, 2573 pgoff_t start, pgoff_t nr, bool even_cows) { } 2574 static inline void unmap_mapping_range(struct address_space *mapping, 2575 loff_t const holebegin, loff_t const holelen, int even_cows) { } 2576 #endif 2577 2578 static inline void unmap_shared_mapping_range(struct address_space *mapping, 2579 loff_t const holebegin, loff_t const holelen) 2580 { 2581 unmap_mapping_range(mapping, holebegin, holelen, 0); 2582 } 2583 2584 static inline struct vm_area_struct *vma_lookup(struct mm_struct *mm, 2585 unsigned long addr); 2586 2587 extern int access_process_vm(struct task_struct *tsk, unsigned long addr, 2588 void *buf, int len, unsigned int gup_flags); 2589 extern int access_remote_vm(struct mm_struct *mm, unsigned long addr, 2590 void *buf, int len, unsigned int gup_flags); 2591 2592 long get_user_pages_remote(struct mm_struct *mm, 2593 unsigned long start, unsigned long nr_pages, 2594 unsigned int gup_flags, struct page **pages, 2595 int *locked); 2596 long pin_user_pages_remote(struct mm_struct *mm, 2597 unsigned long start, unsigned long nr_pages, 2598 unsigned int gup_flags, struct page **pages, 2599 int *locked); 2600 2601 /* 2602 * Retrieves a single page alongside its VMA. Does not support FOLL_NOWAIT. 2603 */ 2604 static inline struct page *get_user_page_vma_remote(struct mm_struct *mm, 2605 unsigned long addr, 2606 int gup_flags, 2607 struct vm_area_struct **vmap) 2608 { 2609 struct page *page; 2610 struct vm_area_struct *vma; 2611 int got; 2612 2613 if (WARN_ON_ONCE(unlikely(gup_flags & FOLL_NOWAIT))) 2614 return ERR_PTR(-EINVAL); 2615 2616 got = get_user_pages_remote(mm, addr, 1, gup_flags, &page, NULL); 2617 2618 if (got < 0) 2619 return ERR_PTR(got); 2620 2621 vma = vma_lookup(mm, addr); 2622 if (WARN_ON_ONCE(!vma)) { 2623 put_page(page); 2624 return ERR_PTR(-EINVAL); 2625 } 2626 2627 *vmap = vma; 2628 return page; 2629 } 2630 2631 long get_user_pages(unsigned long start, unsigned long nr_pages, 2632 unsigned int gup_flags, struct page **pages); 2633 long pin_user_pages(unsigned long start, unsigned long nr_pages, 2634 unsigned int gup_flags, struct page **pages); 2635 long get_user_pages_unlocked(unsigned long start, unsigned long nr_pages, 2636 struct page **pages, unsigned int gup_flags); 2637 long pin_user_pages_unlocked(unsigned long start, unsigned long nr_pages, 2638 struct page **pages, unsigned int gup_flags); 2639 long memfd_pin_folios(struct file *memfd, loff_t start, loff_t end, 2640 struct folio **folios, unsigned int max_folios, 2641 pgoff_t *offset); 2642 int folio_add_pins(struct folio *folio, unsigned int pins); 2643 2644 int get_user_pages_fast(unsigned long start, int nr_pages, 2645 unsigned int gup_flags, struct page **pages); 2646 int pin_user_pages_fast(unsigned long start, int nr_pages, 2647 unsigned int gup_flags, struct page **pages); 2648 void folio_add_pin(struct folio *folio); 2649 2650 int account_locked_vm(struct mm_struct *mm, unsigned long pages, bool inc); 2651 int __account_locked_vm(struct mm_struct *mm, unsigned long pages, bool inc, 2652 struct task_struct *task, bool bypass_rlim); 2653 2654 struct kvec; 2655 struct page *get_dump_page(unsigned long addr); 2656 2657 bool folio_mark_dirty(struct folio *folio); 2658 bool folio_mark_dirty_lock(struct folio *folio); 2659 bool set_page_dirty(struct page *page); 2660 int set_page_dirty_lock(struct page *page); 2661 2662 int get_cmdline(struct task_struct *task, char *buffer, int buflen); 2663 2664 /* 2665 * Flags used by change_protection(). For now we make it a bitmap so 2666 * that we can pass in multiple flags just like parameters. However 2667 * for now all the callers are only use one of the flags at the same 2668 * time. 2669 */ 2670 /* 2671 * Whether we should manually check if we can map individual PTEs writable, 2672 * because something (e.g., COW, uffd-wp) blocks that from happening for all 2673 * PTEs automatically in a writable mapping. 2674 */ 2675 #define MM_CP_TRY_CHANGE_WRITABLE (1UL << 0) 2676 /* Whether this protection change is for NUMA hints */ 2677 #define MM_CP_PROT_NUMA (1UL << 1) 2678 /* Whether this change is for write protecting */ 2679 #define MM_CP_UFFD_WP (1UL << 2) /* do wp */ 2680 #define MM_CP_UFFD_WP_RESOLVE (1UL << 3) /* Resolve wp */ 2681 #define MM_CP_UFFD_WP_ALL (MM_CP_UFFD_WP | \ 2682 MM_CP_UFFD_WP_RESOLVE) 2683 2684 bool can_change_pte_writable(struct vm_area_struct *vma, unsigned long addr, 2685 pte_t pte); 2686 extern long change_protection(struct mmu_gather *tlb, 2687 struct vm_area_struct *vma, unsigned long start, 2688 unsigned long end, unsigned long cp_flags); 2689 extern int mprotect_fixup(struct vma_iterator *vmi, struct mmu_gather *tlb, 2690 struct vm_area_struct *vma, struct vm_area_struct **pprev, 2691 unsigned long start, unsigned long end, unsigned long newflags); 2692 2693 /* 2694 * doesn't attempt to fault and will return short. 2695 */ 2696 int get_user_pages_fast_only(unsigned long start, int nr_pages, 2697 unsigned int gup_flags, struct page **pages); 2698 2699 static inline bool get_user_page_fast_only(unsigned long addr, 2700 unsigned int gup_flags, struct page **pagep) 2701 { 2702 return get_user_pages_fast_only(addr, 1, gup_flags, pagep) == 1; 2703 } 2704 /* 2705 * per-process(per-mm_struct) statistics. 2706 */ 2707 static inline unsigned long get_mm_counter(struct mm_struct *mm, int member) 2708 { 2709 return percpu_counter_read_positive(&mm->rss_stat[member]); 2710 } 2711 2712 void mm_trace_rss_stat(struct mm_struct *mm, int member); 2713 2714 static inline void add_mm_counter(struct mm_struct *mm, int member, long value) 2715 { 2716 percpu_counter_add(&mm->rss_stat[member], value); 2717 2718 mm_trace_rss_stat(mm, member); 2719 } 2720 2721 static inline void inc_mm_counter(struct mm_struct *mm, int member) 2722 { 2723 percpu_counter_inc(&mm->rss_stat[member]); 2724 2725 mm_trace_rss_stat(mm, member); 2726 } 2727 2728 static inline void dec_mm_counter(struct mm_struct *mm, int member) 2729 { 2730 percpu_counter_dec(&mm->rss_stat[member]); 2731 2732 mm_trace_rss_stat(mm, member); 2733 } 2734 2735 /* Optimized variant when folio is already known not to be anon */ 2736 static inline int mm_counter_file(struct folio *folio) 2737 { 2738 if (folio_test_swapbacked(folio)) 2739 return MM_SHMEMPAGES; 2740 return MM_FILEPAGES; 2741 } 2742 2743 static inline int mm_counter(struct folio *folio) 2744 { 2745 if (folio_test_anon(folio)) 2746 return MM_ANONPAGES; 2747 return mm_counter_file(folio); 2748 } 2749 2750 static inline unsigned long get_mm_rss(struct mm_struct *mm) 2751 { 2752 return get_mm_counter(mm, MM_FILEPAGES) + 2753 get_mm_counter(mm, MM_ANONPAGES) + 2754 get_mm_counter(mm, MM_SHMEMPAGES); 2755 } 2756 2757 static inline unsigned long get_mm_hiwater_rss(struct mm_struct *mm) 2758 { 2759 return max(mm->hiwater_rss, get_mm_rss(mm)); 2760 } 2761 2762 static inline unsigned long get_mm_hiwater_vm(struct mm_struct *mm) 2763 { 2764 return max(mm->hiwater_vm, mm->total_vm); 2765 } 2766 2767 static inline void update_hiwater_rss(struct mm_struct *mm) 2768 { 2769 unsigned long _rss = get_mm_rss(mm); 2770 2771 if ((mm)->hiwater_rss < _rss) 2772 (mm)->hiwater_rss = _rss; 2773 } 2774 2775 static inline void update_hiwater_vm(struct mm_struct *mm) 2776 { 2777 if (mm->hiwater_vm < mm->total_vm) 2778 mm->hiwater_vm = mm->total_vm; 2779 } 2780 2781 static inline void reset_mm_hiwater_rss(struct mm_struct *mm) 2782 { 2783 mm->hiwater_rss = get_mm_rss(mm); 2784 } 2785 2786 static inline void setmax_mm_hiwater_rss(unsigned long *maxrss, 2787 struct mm_struct *mm) 2788 { 2789 unsigned long hiwater_rss = get_mm_hiwater_rss(mm); 2790 2791 if (*maxrss < hiwater_rss) 2792 *maxrss = hiwater_rss; 2793 } 2794 2795 #ifndef CONFIG_ARCH_HAS_PTE_SPECIAL 2796 static inline int pte_special(pte_t pte) 2797 { 2798 return 0; 2799 } 2800 2801 static inline pte_t pte_mkspecial(pte_t pte) 2802 { 2803 return pte; 2804 } 2805 #endif 2806 2807 #ifndef CONFIG_ARCH_SUPPORTS_PMD_PFNMAP 2808 static inline bool pmd_special(pmd_t pmd) 2809 { 2810 return false; 2811 } 2812 2813 static inline pmd_t pmd_mkspecial(pmd_t pmd) 2814 { 2815 return pmd; 2816 } 2817 #endif /* CONFIG_ARCH_SUPPORTS_PMD_PFNMAP */ 2818 2819 #ifndef CONFIG_ARCH_SUPPORTS_PUD_PFNMAP 2820 static inline bool pud_special(pud_t pud) 2821 { 2822 return false; 2823 } 2824 2825 static inline pud_t pud_mkspecial(pud_t pud) 2826 { 2827 return pud; 2828 } 2829 #endif /* CONFIG_ARCH_SUPPORTS_PUD_PFNMAP */ 2830 2831 #ifndef CONFIG_ARCH_HAS_PTE_DEVMAP 2832 static inline int pte_devmap(pte_t pte) 2833 { 2834 return 0; 2835 } 2836 #endif 2837 2838 extern pte_t *__get_locked_pte(struct mm_struct *mm, unsigned long addr, 2839 spinlock_t **ptl); 2840 static inline pte_t *get_locked_pte(struct mm_struct *mm, unsigned long addr, 2841 spinlock_t **ptl) 2842 { 2843 pte_t *ptep; 2844 __cond_lock(*ptl, ptep = __get_locked_pte(mm, addr, ptl)); 2845 return ptep; 2846 } 2847 2848 #ifdef __PAGETABLE_P4D_FOLDED 2849 static inline int __p4d_alloc(struct mm_struct *mm, pgd_t *pgd, 2850 unsigned long address) 2851 { 2852 return 0; 2853 } 2854 #else 2855 int __p4d_alloc(struct mm_struct *mm, pgd_t *pgd, unsigned long address); 2856 #endif 2857 2858 #if defined(__PAGETABLE_PUD_FOLDED) || !defined(CONFIG_MMU) 2859 static inline int __pud_alloc(struct mm_struct *mm, p4d_t *p4d, 2860 unsigned long address) 2861 { 2862 return 0; 2863 } 2864 static inline void mm_inc_nr_puds(struct mm_struct *mm) {} 2865 static inline void mm_dec_nr_puds(struct mm_struct *mm) {} 2866 2867 #else 2868 int __pud_alloc(struct mm_struct *mm, p4d_t *p4d, unsigned long address); 2869 2870 static inline void mm_inc_nr_puds(struct mm_struct *mm) 2871 { 2872 if (mm_pud_folded(mm)) 2873 return; 2874 atomic_long_add(PTRS_PER_PUD * sizeof(pud_t), &mm->pgtables_bytes); 2875 } 2876 2877 static inline void mm_dec_nr_puds(struct mm_struct *mm) 2878 { 2879 if (mm_pud_folded(mm)) 2880 return; 2881 atomic_long_sub(PTRS_PER_PUD * sizeof(pud_t), &mm->pgtables_bytes); 2882 } 2883 #endif 2884 2885 #if defined(__PAGETABLE_PMD_FOLDED) || !defined(CONFIG_MMU) 2886 static inline int __pmd_alloc(struct mm_struct *mm, pud_t *pud, 2887 unsigned long address) 2888 { 2889 return 0; 2890 } 2891 2892 static inline void mm_inc_nr_pmds(struct mm_struct *mm) {} 2893 static inline void mm_dec_nr_pmds(struct mm_struct *mm) {} 2894 2895 #else 2896 int __pmd_alloc(struct mm_struct *mm, pud_t *pud, unsigned long address); 2897 2898 static inline void mm_inc_nr_pmds(struct mm_struct *mm) 2899 { 2900 if (mm_pmd_folded(mm)) 2901 return; 2902 atomic_long_add(PTRS_PER_PMD * sizeof(pmd_t), &mm->pgtables_bytes); 2903 } 2904 2905 static inline void mm_dec_nr_pmds(struct mm_struct *mm) 2906 { 2907 if (mm_pmd_folded(mm)) 2908 return; 2909 atomic_long_sub(PTRS_PER_PMD * sizeof(pmd_t), &mm->pgtables_bytes); 2910 } 2911 #endif 2912 2913 #ifdef CONFIG_MMU 2914 static inline void mm_pgtables_bytes_init(struct mm_struct *mm) 2915 { 2916 atomic_long_set(&mm->pgtables_bytes, 0); 2917 } 2918 2919 static inline unsigned long mm_pgtables_bytes(const struct mm_struct *mm) 2920 { 2921 return atomic_long_read(&mm->pgtables_bytes); 2922 } 2923 2924 static inline void mm_inc_nr_ptes(struct mm_struct *mm) 2925 { 2926 atomic_long_add(PTRS_PER_PTE * sizeof(pte_t), &mm->pgtables_bytes); 2927 } 2928 2929 static inline void mm_dec_nr_ptes(struct mm_struct *mm) 2930 { 2931 atomic_long_sub(PTRS_PER_PTE * sizeof(pte_t), &mm->pgtables_bytes); 2932 } 2933 #else 2934 2935 static inline void mm_pgtables_bytes_init(struct mm_struct *mm) {} 2936 static inline unsigned long mm_pgtables_bytes(const struct mm_struct *mm) 2937 { 2938 return 0; 2939 } 2940 2941 static inline void mm_inc_nr_ptes(struct mm_struct *mm) {} 2942 static inline void mm_dec_nr_ptes(struct mm_struct *mm) {} 2943 #endif 2944 2945 int __pte_alloc(struct mm_struct *mm, pmd_t *pmd); 2946 int __pte_alloc_kernel(pmd_t *pmd); 2947 2948 #if defined(CONFIG_MMU) 2949 2950 static inline p4d_t *p4d_alloc(struct mm_struct *mm, pgd_t *pgd, 2951 unsigned long address) 2952 { 2953 return (unlikely(pgd_none(*pgd)) && __p4d_alloc(mm, pgd, address)) ? 2954 NULL : p4d_offset(pgd, address); 2955 } 2956 2957 static inline pud_t *pud_alloc(struct mm_struct *mm, p4d_t *p4d, 2958 unsigned long address) 2959 { 2960 return (unlikely(p4d_none(*p4d)) && __pud_alloc(mm, p4d, address)) ? 2961 NULL : pud_offset(p4d, address); 2962 } 2963 2964 static inline pmd_t *pmd_alloc(struct mm_struct *mm, pud_t *pud, unsigned long address) 2965 { 2966 return (unlikely(pud_none(*pud)) && __pmd_alloc(mm, pud, address))? 2967 NULL: pmd_offset(pud, address); 2968 } 2969 #endif /* CONFIG_MMU */ 2970 2971 static inline struct ptdesc *virt_to_ptdesc(const void *x) 2972 { 2973 return page_ptdesc(virt_to_page(x)); 2974 } 2975 2976 static inline void *ptdesc_to_virt(const struct ptdesc *pt) 2977 { 2978 return page_to_virt(ptdesc_page(pt)); 2979 } 2980 2981 static inline void *ptdesc_address(const struct ptdesc *pt) 2982 { 2983 return folio_address(ptdesc_folio(pt)); 2984 } 2985 2986 static inline bool pagetable_is_reserved(struct ptdesc *pt) 2987 { 2988 return folio_test_reserved(ptdesc_folio(pt)); 2989 } 2990 2991 /** 2992 * pagetable_alloc - Allocate pagetables 2993 * @gfp: GFP flags 2994 * @order: desired pagetable order 2995 * 2996 * pagetable_alloc allocates memory for page tables as well as a page table 2997 * descriptor to describe that memory. 2998 * 2999 * Return: The ptdesc describing the allocated page tables. 3000 */ 3001 static inline struct ptdesc *pagetable_alloc_noprof(gfp_t gfp, unsigned int order) 3002 { 3003 struct page *page = alloc_pages_noprof(gfp | __GFP_COMP, order); 3004 3005 return page_ptdesc(page); 3006 } 3007 #define pagetable_alloc(...) alloc_hooks(pagetable_alloc_noprof(__VA_ARGS__)) 3008 3009 /** 3010 * pagetable_free - Free pagetables 3011 * @pt: The page table descriptor 3012 * 3013 * pagetable_free frees the memory of all page tables described by a page 3014 * table descriptor and the memory for the descriptor itself. 3015 */ 3016 static inline void pagetable_free(struct ptdesc *pt) 3017 { 3018 struct page *page = ptdesc_page(pt); 3019 3020 __free_pages(page, compound_order(page)); 3021 } 3022 3023 #if defined(CONFIG_SPLIT_PTE_PTLOCKS) 3024 #if ALLOC_SPLIT_PTLOCKS 3025 void __init ptlock_cache_init(void); 3026 bool ptlock_alloc(struct ptdesc *ptdesc); 3027 void ptlock_free(struct ptdesc *ptdesc); 3028 3029 static inline spinlock_t *ptlock_ptr(struct ptdesc *ptdesc) 3030 { 3031 return ptdesc->ptl; 3032 } 3033 #else /* ALLOC_SPLIT_PTLOCKS */ 3034 static inline void ptlock_cache_init(void) 3035 { 3036 } 3037 3038 static inline bool ptlock_alloc(struct ptdesc *ptdesc) 3039 { 3040 return true; 3041 } 3042 3043 static inline void ptlock_free(struct ptdesc *ptdesc) 3044 { 3045 } 3046 3047 static inline spinlock_t *ptlock_ptr(struct ptdesc *ptdesc) 3048 { 3049 return &ptdesc->ptl; 3050 } 3051 #endif /* ALLOC_SPLIT_PTLOCKS */ 3052 3053 static inline spinlock_t *pte_lockptr(struct mm_struct *mm, pmd_t *pmd) 3054 { 3055 return ptlock_ptr(page_ptdesc(pmd_page(*pmd))); 3056 } 3057 3058 static inline spinlock_t *ptep_lockptr(struct mm_struct *mm, pte_t *pte) 3059 { 3060 BUILD_BUG_ON(IS_ENABLED(CONFIG_HIGHPTE)); 3061 BUILD_BUG_ON(MAX_PTRS_PER_PTE * sizeof(pte_t) > PAGE_SIZE); 3062 return ptlock_ptr(virt_to_ptdesc(pte)); 3063 } 3064 3065 static inline bool ptlock_init(struct ptdesc *ptdesc) 3066 { 3067 /* 3068 * prep_new_page() initialize page->private (and therefore page->ptl) 3069 * with 0. Make sure nobody took it in use in between. 3070 * 3071 * It can happen if arch try to use slab for page table allocation: 3072 * slab code uses page->slab_cache, which share storage with page->ptl. 3073 */ 3074 VM_BUG_ON_PAGE(*(unsigned long *)&ptdesc->ptl, ptdesc_page(ptdesc)); 3075 if (!ptlock_alloc(ptdesc)) 3076 return false; 3077 spin_lock_init(ptlock_ptr(ptdesc)); 3078 return true; 3079 } 3080 3081 #else /* !defined(CONFIG_SPLIT_PTE_PTLOCKS) */ 3082 /* 3083 * We use mm->page_table_lock to guard all pagetable pages of the mm. 3084 */ 3085 static inline spinlock_t *pte_lockptr(struct mm_struct *mm, pmd_t *pmd) 3086 { 3087 return &mm->page_table_lock; 3088 } 3089 static inline spinlock_t *ptep_lockptr(struct mm_struct *mm, pte_t *pte) 3090 { 3091 return &mm->page_table_lock; 3092 } 3093 static inline void ptlock_cache_init(void) {} 3094 static inline bool ptlock_init(struct ptdesc *ptdesc) { return true; } 3095 static inline void ptlock_free(struct ptdesc *ptdesc) {} 3096 #endif /* defined(CONFIG_SPLIT_PTE_PTLOCKS) */ 3097 3098 static inline void __pagetable_ctor(struct ptdesc *ptdesc) 3099 { 3100 struct folio *folio = ptdesc_folio(ptdesc); 3101 3102 __folio_set_pgtable(folio); 3103 lruvec_stat_add_folio(folio, NR_PAGETABLE); 3104 } 3105 3106 static inline void pagetable_dtor(struct ptdesc *ptdesc) 3107 { 3108 struct folio *folio = ptdesc_folio(ptdesc); 3109 3110 ptlock_free(ptdesc); 3111 __folio_clear_pgtable(folio); 3112 lruvec_stat_sub_folio(folio, NR_PAGETABLE); 3113 } 3114 3115 static inline void pagetable_dtor_free(struct ptdesc *ptdesc) 3116 { 3117 pagetable_dtor(ptdesc); 3118 pagetable_free(ptdesc); 3119 } 3120 3121 static inline bool pagetable_pte_ctor(struct ptdesc *ptdesc) 3122 { 3123 if (!ptlock_init(ptdesc)) 3124 return false; 3125 __pagetable_ctor(ptdesc); 3126 return true; 3127 } 3128 3129 pte_t *___pte_offset_map(pmd_t *pmd, unsigned long addr, pmd_t *pmdvalp); 3130 static inline pte_t *__pte_offset_map(pmd_t *pmd, unsigned long addr, 3131 pmd_t *pmdvalp) 3132 { 3133 pte_t *pte; 3134 3135 __cond_lock(RCU, pte = ___pte_offset_map(pmd, addr, pmdvalp)); 3136 return pte; 3137 } 3138 static inline pte_t *pte_offset_map(pmd_t *pmd, unsigned long addr) 3139 { 3140 return __pte_offset_map(pmd, addr, NULL); 3141 } 3142 3143 pte_t *__pte_offset_map_lock(struct mm_struct *mm, pmd_t *pmd, 3144 unsigned long addr, spinlock_t **ptlp); 3145 static inline pte_t *pte_offset_map_lock(struct mm_struct *mm, pmd_t *pmd, 3146 unsigned long addr, spinlock_t **ptlp) 3147 { 3148 pte_t *pte; 3149 3150 __cond_lock(RCU, __cond_lock(*ptlp, 3151 pte = __pte_offset_map_lock(mm, pmd, addr, ptlp))); 3152 return pte; 3153 } 3154 3155 pte_t *pte_offset_map_ro_nolock(struct mm_struct *mm, pmd_t *pmd, 3156 unsigned long addr, spinlock_t **ptlp); 3157 pte_t *pte_offset_map_rw_nolock(struct mm_struct *mm, pmd_t *pmd, 3158 unsigned long addr, pmd_t *pmdvalp, 3159 spinlock_t **ptlp); 3160 3161 #define pte_unmap_unlock(pte, ptl) do { \ 3162 spin_unlock(ptl); \ 3163 pte_unmap(pte); \ 3164 } while (0) 3165 3166 #define pte_alloc(mm, pmd) (unlikely(pmd_none(*(pmd))) && __pte_alloc(mm, pmd)) 3167 3168 #define pte_alloc_map(mm, pmd, address) \ 3169 (pte_alloc(mm, pmd) ? NULL : pte_offset_map(pmd, address)) 3170 3171 #define pte_alloc_map_lock(mm, pmd, address, ptlp) \ 3172 (pte_alloc(mm, pmd) ? \ 3173 NULL : pte_offset_map_lock(mm, pmd, address, ptlp)) 3174 3175 #define pte_alloc_kernel(pmd, address) \ 3176 ((unlikely(pmd_none(*(pmd))) && __pte_alloc_kernel(pmd))? \ 3177 NULL: pte_offset_kernel(pmd, address)) 3178 3179 #if defined(CONFIG_SPLIT_PMD_PTLOCKS) 3180 3181 static inline struct page *pmd_pgtable_page(pmd_t *pmd) 3182 { 3183 unsigned long mask = ~(PTRS_PER_PMD * sizeof(pmd_t) - 1); 3184 return virt_to_page((void *)((unsigned long) pmd & mask)); 3185 } 3186 3187 static inline struct ptdesc *pmd_ptdesc(pmd_t *pmd) 3188 { 3189 return page_ptdesc(pmd_pgtable_page(pmd)); 3190 } 3191 3192 static inline spinlock_t *pmd_lockptr(struct mm_struct *mm, pmd_t *pmd) 3193 { 3194 return ptlock_ptr(pmd_ptdesc(pmd)); 3195 } 3196 3197 static inline bool pmd_ptlock_init(struct ptdesc *ptdesc) 3198 { 3199 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 3200 ptdesc->pmd_huge_pte = NULL; 3201 #endif 3202 return ptlock_init(ptdesc); 3203 } 3204 3205 #define pmd_huge_pte(mm, pmd) (pmd_ptdesc(pmd)->pmd_huge_pte) 3206 3207 #else 3208 3209 static inline spinlock_t *pmd_lockptr(struct mm_struct *mm, pmd_t *pmd) 3210 { 3211 return &mm->page_table_lock; 3212 } 3213 3214 static inline bool pmd_ptlock_init(struct ptdesc *ptdesc) { return true; } 3215 3216 #define pmd_huge_pte(mm, pmd) ((mm)->pmd_huge_pte) 3217 3218 #endif 3219 3220 static inline spinlock_t *pmd_lock(struct mm_struct *mm, pmd_t *pmd) 3221 { 3222 spinlock_t *ptl = pmd_lockptr(mm, pmd); 3223 spin_lock(ptl); 3224 return ptl; 3225 } 3226 3227 static inline bool pagetable_pmd_ctor(struct ptdesc *ptdesc) 3228 { 3229 if (!pmd_ptlock_init(ptdesc)) 3230 return false; 3231 ptdesc_pmd_pts_init(ptdesc); 3232 __pagetable_ctor(ptdesc); 3233 return true; 3234 } 3235 3236 /* 3237 * No scalability reason to split PUD locks yet, but follow the same pattern 3238 * as the PMD locks to make it easier if we decide to. The VM should not be 3239 * considered ready to switch to split PUD locks yet; there may be places 3240 * which need to be converted from page_table_lock. 3241 */ 3242 static inline spinlock_t *pud_lockptr(struct mm_struct *mm, pud_t *pud) 3243 { 3244 return &mm->page_table_lock; 3245 } 3246 3247 static inline spinlock_t *pud_lock(struct mm_struct *mm, pud_t *pud) 3248 { 3249 spinlock_t *ptl = pud_lockptr(mm, pud); 3250 3251 spin_lock(ptl); 3252 return ptl; 3253 } 3254 3255 static inline void pagetable_pud_ctor(struct ptdesc *ptdesc) 3256 { 3257 __pagetable_ctor(ptdesc); 3258 } 3259 3260 static inline void pagetable_p4d_ctor(struct ptdesc *ptdesc) 3261 { 3262 __pagetable_ctor(ptdesc); 3263 } 3264 3265 static inline void pagetable_pgd_ctor(struct ptdesc *ptdesc) 3266 { 3267 __pagetable_ctor(ptdesc); 3268 } 3269 3270 extern void __init pagecache_init(void); 3271 extern void free_initmem(void); 3272 3273 /* 3274 * Free reserved pages within range [PAGE_ALIGN(start), end & PAGE_MASK) 3275 * into the buddy system. The freed pages will be poisoned with pattern 3276 * "poison" if it's within range [0, UCHAR_MAX]. 3277 * Return pages freed into the buddy system. 3278 */ 3279 extern unsigned long free_reserved_area(void *start, void *end, 3280 int poison, const char *s); 3281 3282 extern void adjust_managed_page_count(struct page *page, long count); 3283 3284 extern void reserve_bootmem_region(phys_addr_t start, 3285 phys_addr_t end, int nid); 3286 3287 /* Free the reserved page into the buddy system, so it gets managed. */ 3288 void free_reserved_page(struct page *page); 3289 #define free_highmem_page(page) free_reserved_page(page) 3290 3291 static inline void mark_page_reserved(struct page *page) 3292 { 3293 SetPageReserved(page); 3294 adjust_managed_page_count(page, -1); 3295 } 3296 3297 static inline void free_reserved_ptdesc(struct ptdesc *pt) 3298 { 3299 free_reserved_page(ptdesc_page(pt)); 3300 } 3301 3302 /* 3303 * Default method to free all the __init memory into the buddy system. 3304 * The freed pages will be poisoned with pattern "poison" if it's within 3305 * range [0, UCHAR_MAX]. 3306 * Return pages freed into the buddy system. 3307 */ 3308 static inline unsigned long free_initmem_default(int poison) 3309 { 3310 extern char __init_begin[], __init_end[]; 3311 3312 return free_reserved_area(&__init_begin, &__init_end, 3313 poison, "unused kernel image (initmem)"); 3314 } 3315 3316 static inline unsigned long get_num_physpages(void) 3317 { 3318 int nid; 3319 unsigned long phys_pages = 0; 3320 3321 for_each_online_node(nid) 3322 phys_pages += node_present_pages(nid); 3323 3324 return phys_pages; 3325 } 3326 3327 /* 3328 * Using memblock node mappings, an architecture may initialise its 3329 * zones, allocate the backing mem_map and account for memory holes in an 3330 * architecture independent manner. 3331 * 3332 * An architecture is expected to register range of page frames backed by 3333 * physical memory with memblock_add[_node]() before calling 3334 * free_area_init() passing in the PFN each zone ends at. At a basic 3335 * usage, an architecture is expected to do something like 3336 * 3337 * unsigned long max_zone_pfns[MAX_NR_ZONES] = {max_dma, max_normal_pfn, 3338 * max_highmem_pfn}; 3339 * for_each_valid_physical_page_range() 3340 * memblock_add_node(base, size, nid, MEMBLOCK_NONE) 3341 * free_area_init(max_zone_pfns); 3342 */ 3343 void free_area_init(unsigned long *max_zone_pfn); 3344 unsigned long node_map_pfn_alignment(void); 3345 extern unsigned long absent_pages_in_range(unsigned long start_pfn, 3346 unsigned long end_pfn); 3347 extern void get_pfn_range_for_nid(unsigned int nid, 3348 unsigned long *start_pfn, unsigned long *end_pfn); 3349 3350 #ifndef CONFIG_NUMA 3351 static inline int early_pfn_to_nid(unsigned long pfn) 3352 { 3353 return 0; 3354 } 3355 #else 3356 /* please see mm/page_alloc.c */ 3357 extern int __meminit early_pfn_to_nid(unsigned long pfn); 3358 #endif 3359 3360 extern void mem_init(void); 3361 extern void __init mmap_init(void); 3362 3363 extern void __show_mem(unsigned int flags, nodemask_t *nodemask, int max_zone_idx); 3364 static inline void show_mem(void) 3365 { 3366 __show_mem(0, NULL, MAX_NR_ZONES - 1); 3367 } 3368 extern long si_mem_available(void); 3369 extern void si_meminfo(struct sysinfo * val); 3370 extern void si_meminfo_node(struct sysinfo *val, int nid); 3371 3372 extern __printf(3, 4) 3373 void warn_alloc(gfp_t gfp_mask, nodemask_t *nodemask, const char *fmt, ...); 3374 3375 extern void setup_per_cpu_pageset(void); 3376 3377 /* nommu.c */ 3378 extern atomic_long_t mmap_pages_allocated; 3379 extern int nommu_shrink_inode_mappings(struct inode *, size_t, size_t); 3380 3381 /* interval_tree.c */ 3382 void vma_interval_tree_insert(struct vm_area_struct *node, 3383 struct rb_root_cached *root); 3384 void vma_interval_tree_insert_after(struct vm_area_struct *node, 3385 struct vm_area_struct *prev, 3386 struct rb_root_cached *root); 3387 void vma_interval_tree_remove(struct vm_area_struct *node, 3388 struct rb_root_cached *root); 3389 struct vm_area_struct *vma_interval_tree_iter_first(struct rb_root_cached *root, 3390 unsigned long start, unsigned long last); 3391 struct vm_area_struct *vma_interval_tree_iter_next(struct vm_area_struct *node, 3392 unsigned long start, unsigned long last); 3393 3394 #define vma_interval_tree_foreach(vma, root, start, last) \ 3395 for (vma = vma_interval_tree_iter_first(root, start, last); \ 3396 vma; vma = vma_interval_tree_iter_next(vma, start, last)) 3397 3398 void anon_vma_interval_tree_insert(struct anon_vma_chain *node, 3399 struct rb_root_cached *root); 3400 void anon_vma_interval_tree_remove(struct anon_vma_chain *node, 3401 struct rb_root_cached *root); 3402 struct anon_vma_chain * 3403 anon_vma_interval_tree_iter_first(struct rb_root_cached *root, 3404 unsigned long start, unsigned long last); 3405 struct anon_vma_chain *anon_vma_interval_tree_iter_next( 3406 struct anon_vma_chain *node, unsigned long start, unsigned long last); 3407 #ifdef CONFIG_DEBUG_VM_RB 3408 void anon_vma_interval_tree_verify(struct anon_vma_chain *node); 3409 #endif 3410 3411 #define anon_vma_interval_tree_foreach(avc, root, start, last) \ 3412 for (avc = anon_vma_interval_tree_iter_first(root, start, last); \ 3413 avc; avc = anon_vma_interval_tree_iter_next(avc, start, last)) 3414 3415 /* mmap.c */ 3416 extern int __vm_enough_memory(struct mm_struct *mm, long pages, int cap_sys_admin); 3417 extern int insert_vm_struct(struct mm_struct *, struct vm_area_struct *); 3418 extern void exit_mmap(struct mm_struct *); 3419 int relocate_vma_down(struct vm_area_struct *vma, unsigned long shift); 3420 bool mmap_read_lock_maybe_expand(struct mm_struct *mm, struct vm_area_struct *vma, 3421 unsigned long addr, bool write); 3422 3423 static inline int check_data_rlimit(unsigned long rlim, 3424 unsigned long new, 3425 unsigned long start, 3426 unsigned long end_data, 3427 unsigned long start_data) 3428 { 3429 if (rlim < RLIM_INFINITY) { 3430 if (((new - start) + (end_data - start_data)) > rlim) 3431 return -ENOSPC; 3432 } 3433 3434 return 0; 3435 } 3436 3437 extern int mm_take_all_locks(struct mm_struct *mm); 3438 extern void mm_drop_all_locks(struct mm_struct *mm); 3439 3440 extern int set_mm_exe_file(struct mm_struct *mm, struct file *new_exe_file); 3441 extern int replace_mm_exe_file(struct mm_struct *mm, struct file *new_exe_file); 3442 extern struct file *get_mm_exe_file(struct mm_struct *mm); 3443 extern struct file *get_task_exe_file(struct task_struct *task); 3444 3445 extern bool may_expand_vm(struct mm_struct *, vm_flags_t, unsigned long npages); 3446 extern void vm_stat_account(struct mm_struct *, vm_flags_t, long npages); 3447 3448 extern bool vma_is_special_mapping(const struct vm_area_struct *vma, 3449 const struct vm_special_mapping *sm); 3450 extern struct vm_area_struct *_install_special_mapping(struct mm_struct *mm, 3451 unsigned long addr, unsigned long len, 3452 unsigned long flags, 3453 const struct vm_special_mapping *spec); 3454 3455 unsigned long randomize_stack_top(unsigned long stack_top); 3456 unsigned long randomize_page(unsigned long start, unsigned long range); 3457 3458 unsigned long 3459 __get_unmapped_area(struct file *file, unsigned long addr, unsigned long len, 3460 unsigned long pgoff, unsigned long flags, vm_flags_t vm_flags); 3461 3462 static inline unsigned long 3463 get_unmapped_area(struct file *file, unsigned long addr, unsigned long len, 3464 unsigned long pgoff, unsigned long flags) 3465 { 3466 return __get_unmapped_area(file, addr, len, pgoff, flags, 0); 3467 } 3468 3469 extern unsigned long do_mmap(struct file *file, unsigned long addr, 3470 unsigned long len, unsigned long prot, unsigned long flags, 3471 vm_flags_t vm_flags, unsigned long pgoff, unsigned long *populate, 3472 struct list_head *uf); 3473 extern int do_vmi_munmap(struct vma_iterator *vmi, struct mm_struct *mm, 3474 unsigned long start, size_t len, struct list_head *uf, 3475 bool unlock); 3476 int do_vmi_align_munmap(struct vma_iterator *vmi, struct vm_area_struct *vma, 3477 struct mm_struct *mm, unsigned long start, 3478 unsigned long end, struct list_head *uf, bool unlock); 3479 extern int do_munmap(struct mm_struct *, unsigned long, size_t, 3480 struct list_head *uf); 3481 extern int do_madvise(struct mm_struct *mm, unsigned long start, size_t len_in, int behavior); 3482 3483 #ifdef CONFIG_MMU 3484 extern int __mm_populate(unsigned long addr, unsigned long len, 3485 int ignore_errors); 3486 static inline void mm_populate(unsigned long addr, unsigned long len) 3487 { 3488 /* Ignore errors */ 3489 (void) __mm_populate(addr, len, 1); 3490 } 3491 #else 3492 static inline void mm_populate(unsigned long addr, unsigned long len) {} 3493 #endif 3494 3495 /* This takes the mm semaphore itself */ 3496 extern int __must_check vm_brk_flags(unsigned long, unsigned long, unsigned long); 3497 extern int vm_munmap(unsigned long, size_t); 3498 extern unsigned long __must_check vm_mmap(struct file *, unsigned long, 3499 unsigned long, unsigned long, 3500 unsigned long, unsigned long); 3501 3502 struct vm_unmapped_area_info { 3503 #define VM_UNMAPPED_AREA_TOPDOWN 1 3504 unsigned long flags; 3505 unsigned long length; 3506 unsigned long low_limit; 3507 unsigned long high_limit; 3508 unsigned long align_mask; 3509 unsigned long align_offset; 3510 unsigned long start_gap; 3511 }; 3512 3513 extern unsigned long vm_unmapped_area(struct vm_unmapped_area_info *info); 3514 3515 /* truncate.c */ 3516 extern void truncate_inode_pages(struct address_space *, loff_t); 3517 extern void truncate_inode_pages_range(struct address_space *, 3518 loff_t lstart, loff_t lend); 3519 extern void truncate_inode_pages_final(struct address_space *); 3520 3521 /* generic vm_area_ops exported for stackable file systems */ 3522 extern vm_fault_t filemap_fault(struct vm_fault *vmf); 3523 extern vm_fault_t filemap_map_pages(struct vm_fault *vmf, 3524 pgoff_t start_pgoff, pgoff_t end_pgoff); 3525 extern vm_fault_t filemap_page_mkwrite(struct vm_fault *vmf); 3526 extern vm_fault_t filemap_fsnotify_fault(struct vm_fault *vmf); 3527 3528 extern unsigned long stack_guard_gap; 3529 /* Generic expand stack which grows the stack according to GROWS{UP,DOWN} */ 3530 int expand_stack_locked(struct vm_area_struct *vma, unsigned long address); 3531 struct vm_area_struct *expand_stack(struct mm_struct * mm, unsigned long addr); 3532 3533 /* Look up the first VMA which satisfies addr < vm_end, NULL if none. */ 3534 extern struct vm_area_struct * find_vma(struct mm_struct * mm, unsigned long addr); 3535 extern struct vm_area_struct * find_vma_prev(struct mm_struct * mm, unsigned long addr, 3536 struct vm_area_struct **pprev); 3537 3538 /* 3539 * Look up the first VMA which intersects the interval [start_addr, end_addr) 3540 * NULL if none. Assume start_addr < end_addr. 3541 */ 3542 struct vm_area_struct *find_vma_intersection(struct mm_struct *mm, 3543 unsigned long start_addr, unsigned long end_addr); 3544 3545 /** 3546 * vma_lookup() - Find a VMA at a specific address 3547 * @mm: The process address space. 3548 * @addr: The user address. 3549 * 3550 * Return: The vm_area_struct at the given address, %NULL otherwise. 3551 */ 3552 static inline 3553 struct vm_area_struct *vma_lookup(struct mm_struct *mm, unsigned long addr) 3554 { 3555 return mtree_load(&mm->mm_mt, addr); 3556 } 3557 3558 static inline unsigned long stack_guard_start_gap(struct vm_area_struct *vma) 3559 { 3560 if (vma->vm_flags & VM_GROWSDOWN) 3561 return stack_guard_gap; 3562 3563 /* See reasoning around the VM_SHADOW_STACK definition */ 3564 if (vma->vm_flags & VM_SHADOW_STACK) 3565 return PAGE_SIZE; 3566 3567 return 0; 3568 } 3569 3570 static inline unsigned long vm_start_gap(struct vm_area_struct *vma) 3571 { 3572 unsigned long gap = stack_guard_start_gap(vma); 3573 unsigned long vm_start = vma->vm_start; 3574 3575 vm_start -= gap; 3576 if (vm_start > vma->vm_start) 3577 vm_start = 0; 3578 return vm_start; 3579 } 3580 3581 static inline unsigned long vm_end_gap(struct vm_area_struct *vma) 3582 { 3583 unsigned long vm_end = vma->vm_end; 3584 3585 if (vma->vm_flags & VM_GROWSUP) { 3586 vm_end += stack_guard_gap; 3587 if (vm_end < vma->vm_end) 3588 vm_end = -PAGE_SIZE; 3589 } 3590 return vm_end; 3591 } 3592 3593 static inline unsigned long vma_pages(struct vm_area_struct *vma) 3594 { 3595 return (vma->vm_end - vma->vm_start) >> PAGE_SHIFT; 3596 } 3597 3598 /* Look up the first VMA which exactly match the interval vm_start ... vm_end */ 3599 static inline struct vm_area_struct *find_exact_vma(struct mm_struct *mm, 3600 unsigned long vm_start, unsigned long vm_end) 3601 { 3602 struct vm_area_struct *vma = vma_lookup(mm, vm_start); 3603 3604 if (vma && (vma->vm_start != vm_start || vma->vm_end != vm_end)) 3605 vma = NULL; 3606 3607 return vma; 3608 } 3609 3610 static inline bool range_in_vma(struct vm_area_struct *vma, 3611 unsigned long start, unsigned long end) 3612 { 3613 return (vma && vma->vm_start <= start && end <= vma->vm_end); 3614 } 3615 3616 #ifdef CONFIG_MMU 3617 pgprot_t vm_get_page_prot(unsigned long vm_flags); 3618 void vma_set_page_prot(struct vm_area_struct *vma); 3619 #else 3620 static inline pgprot_t vm_get_page_prot(unsigned long vm_flags) 3621 { 3622 return __pgprot(0); 3623 } 3624 static inline void vma_set_page_prot(struct vm_area_struct *vma) 3625 { 3626 vma->vm_page_prot = vm_get_page_prot(vma->vm_flags); 3627 } 3628 #endif 3629 3630 void vma_set_file(struct vm_area_struct *vma, struct file *file); 3631 3632 #ifdef CONFIG_NUMA_BALANCING 3633 unsigned long change_prot_numa(struct vm_area_struct *vma, 3634 unsigned long start, unsigned long end); 3635 #endif 3636 3637 struct vm_area_struct *find_extend_vma_locked(struct mm_struct *, 3638 unsigned long addr); 3639 int remap_pfn_range(struct vm_area_struct *, unsigned long addr, 3640 unsigned long pfn, unsigned long size, pgprot_t); 3641 int remap_pfn_range_notrack(struct vm_area_struct *vma, unsigned long addr, 3642 unsigned long pfn, unsigned long size, pgprot_t prot); 3643 int vm_insert_page(struct vm_area_struct *, unsigned long addr, struct page *); 3644 int vm_insert_pages(struct vm_area_struct *vma, unsigned long addr, 3645 struct page **pages, unsigned long *num); 3646 int vm_map_pages(struct vm_area_struct *vma, struct page **pages, 3647 unsigned long num); 3648 int vm_map_pages_zero(struct vm_area_struct *vma, struct page **pages, 3649 unsigned long num); 3650 vm_fault_t vmf_insert_page_mkwrite(struct vm_fault *vmf, struct page *page, 3651 bool write); 3652 vm_fault_t vmf_insert_pfn(struct vm_area_struct *vma, unsigned long addr, 3653 unsigned long pfn); 3654 vm_fault_t vmf_insert_pfn_prot(struct vm_area_struct *vma, unsigned long addr, 3655 unsigned long pfn, pgprot_t pgprot); 3656 vm_fault_t vmf_insert_mixed(struct vm_area_struct *vma, unsigned long addr, 3657 pfn_t pfn); 3658 vm_fault_t vmf_insert_mixed_mkwrite(struct vm_area_struct *vma, 3659 unsigned long addr, pfn_t pfn); 3660 int vm_iomap_memory(struct vm_area_struct *vma, phys_addr_t start, unsigned long len); 3661 3662 static inline vm_fault_t vmf_insert_page(struct vm_area_struct *vma, 3663 unsigned long addr, struct page *page) 3664 { 3665 int err = vm_insert_page(vma, addr, page); 3666 3667 if (err == -ENOMEM) 3668 return VM_FAULT_OOM; 3669 if (err < 0 && err != -EBUSY) 3670 return VM_FAULT_SIGBUS; 3671 3672 return VM_FAULT_NOPAGE; 3673 } 3674 3675 #ifndef io_remap_pfn_range 3676 static inline int io_remap_pfn_range(struct vm_area_struct *vma, 3677 unsigned long addr, unsigned long pfn, 3678 unsigned long size, pgprot_t prot) 3679 { 3680 return remap_pfn_range(vma, addr, pfn, size, pgprot_decrypted(prot)); 3681 } 3682 #endif 3683 3684 static inline vm_fault_t vmf_error(int err) 3685 { 3686 if (err == -ENOMEM) 3687 return VM_FAULT_OOM; 3688 else if (err == -EHWPOISON) 3689 return VM_FAULT_HWPOISON; 3690 return VM_FAULT_SIGBUS; 3691 } 3692 3693 /* 3694 * Convert errno to return value for ->page_mkwrite() calls. 3695 * 3696 * This should eventually be merged with vmf_error() above, but will need a 3697 * careful audit of all vmf_error() callers. 3698 */ 3699 static inline vm_fault_t vmf_fs_error(int err) 3700 { 3701 if (err == 0) 3702 return VM_FAULT_LOCKED; 3703 if (err == -EFAULT || err == -EAGAIN) 3704 return VM_FAULT_NOPAGE; 3705 if (err == -ENOMEM) 3706 return VM_FAULT_OOM; 3707 /* -ENOSPC, -EDQUOT, -EIO ... */ 3708 return VM_FAULT_SIGBUS; 3709 } 3710 3711 static inline int vm_fault_to_errno(vm_fault_t vm_fault, int foll_flags) 3712 { 3713 if (vm_fault & VM_FAULT_OOM) 3714 return -ENOMEM; 3715 if (vm_fault & (VM_FAULT_HWPOISON | VM_FAULT_HWPOISON_LARGE)) 3716 return (foll_flags & FOLL_HWPOISON) ? -EHWPOISON : -EFAULT; 3717 if (vm_fault & (VM_FAULT_SIGBUS | VM_FAULT_SIGSEGV)) 3718 return -EFAULT; 3719 return 0; 3720 } 3721 3722 /* 3723 * Indicates whether GUP can follow a PROT_NONE mapped page, or whether 3724 * a (NUMA hinting) fault is required. 3725 */ 3726 static inline bool gup_can_follow_protnone(struct vm_area_struct *vma, 3727 unsigned int flags) 3728 { 3729 /* 3730 * If callers don't want to honor NUMA hinting faults, no need to 3731 * determine if we would actually have to trigger a NUMA hinting fault. 3732 */ 3733 if (!(flags & FOLL_HONOR_NUMA_FAULT)) 3734 return true; 3735 3736 /* 3737 * NUMA hinting faults don't apply in inaccessible (PROT_NONE) VMAs. 3738 * 3739 * Requiring a fault here even for inaccessible VMAs would mean that 3740 * FOLL_FORCE cannot make any progress, because handle_mm_fault() 3741 * refuses to process NUMA hinting faults in inaccessible VMAs. 3742 */ 3743 return !vma_is_accessible(vma); 3744 } 3745 3746 typedef int (*pte_fn_t)(pte_t *pte, unsigned long addr, void *data); 3747 extern int apply_to_page_range(struct mm_struct *mm, unsigned long address, 3748 unsigned long size, pte_fn_t fn, void *data); 3749 extern int apply_to_existing_page_range(struct mm_struct *mm, 3750 unsigned long address, unsigned long size, 3751 pte_fn_t fn, void *data); 3752 3753 #ifdef CONFIG_PAGE_POISONING 3754 extern void __kernel_poison_pages(struct page *page, int numpages); 3755 extern void __kernel_unpoison_pages(struct page *page, int numpages); 3756 extern bool _page_poisoning_enabled_early; 3757 DECLARE_STATIC_KEY_FALSE(_page_poisoning_enabled); 3758 static inline bool page_poisoning_enabled(void) 3759 { 3760 return _page_poisoning_enabled_early; 3761 } 3762 /* 3763 * For use in fast paths after init_mem_debugging() has run, or when a 3764 * false negative result is not harmful when called too early. 3765 */ 3766 static inline bool page_poisoning_enabled_static(void) 3767 { 3768 return static_branch_unlikely(&_page_poisoning_enabled); 3769 } 3770 static inline void kernel_poison_pages(struct page *page, int numpages) 3771 { 3772 if (page_poisoning_enabled_static()) 3773 __kernel_poison_pages(page, numpages); 3774 } 3775 static inline void kernel_unpoison_pages(struct page *page, int numpages) 3776 { 3777 if (page_poisoning_enabled_static()) 3778 __kernel_unpoison_pages(page, numpages); 3779 } 3780 #else 3781 static inline bool page_poisoning_enabled(void) { return false; } 3782 static inline bool page_poisoning_enabled_static(void) { return false; } 3783 static inline void __kernel_poison_pages(struct page *page, int nunmpages) { } 3784 static inline void kernel_poison_pages(struct page *page, int numpages) { } 3785 static inline void kernel_unpoison_pages(struct page *page, int numpages) { } 3786 #endif 3787 3788 DECLARE_STATIC_KEY_MAYBE(CONFIG_INIT_ON_ALLOC_DEFAULT_ON, init_on_alloc); 3789 static inline bool want_init_on_alloc(gfp_t flags) 3790 { 3791 if (static_branch_maybe(CONFIG_INIT_ON_ALLOC_DEFAULT_ON, 3792 &init_on_alloc)) 3793 return true; 3794 return flags & __GFP_ZERO; 3795 } 3796 3797 DECLARE_STATIC_KEY_MAYBE(CONFIG_INIT_ON_FREE_DEFAULT_ON, init_on_free); 3798 static inline bool want_init_on_free(void) 3799 { 3800 return static_branch_maybe(CONFIG_INIT_ON_FREE_DEFAULT_ON, 3801 &init_on_free); 3802 } 3803 3804 extern bool _debug_pagealloc_enabled_early; 3805 DECLARE_STATIC_KEY_FALSE(_debug_pagealloc_enabled); 3806 3807 static inline bool debug_pagealloc_enabled(void) 3808 { 3809 return IS_ENABLED(CONFIG_DEBUG_PAGEALLOC) && 3810 _debug_pagealloc_enabled_early; 3811 } 3812 3813 /* 3814 * For use in fast paths after mem_debugging_and_hardening_init() has run, 3815 * or when a false negative result is not harmful when called too early. 3816 */ 3817 static inline bool debug_pagealloc_enabled_static(void) 3818 { 3819 if (!IS_ENABLED(CONFIG_DEBUG_PAGEALLOC)) 3820 return false; 3821 3822 return static_branch_unlikely(&_debug_pagealloc_enabled); 3823 } 3824 3825 /* 3826 * To support DEBUG_PAGEALLOC architecture must ensure that 3827 * __kernel_map_pages() never fails 3828 */ 3829 extern void __kernel_map_pages(struct page *page, int numpages, int enable); 3830 #ifdef CONFIG_DEBUG_PAGEALLOC 3831 static inline void debug_pagealloc_map_pages(struct page *page, int numpages) 3832 { 3833 if (debug_pagealloc_enabled_static()) 3834 __kernel_map_pages(page, numpages, 1); 3835 } 3836 3837 static inline void debug_pagealloc_unmap_pages(struct page *page, int numpages) 3838 { 3839 if (debug_pagealloc_enabled_static()) 3840 __kernel_map_pages(page, numpages, 0); 3841 } 3842 3843 extern unsigned int _debug_guardpage_minorder; 3844 DECLARE_STATIC_KEY_FALSE(_debug_guardpage_enabled); 3845 3846 static inline unsigned int debug_guardpage_minorder(void) 3847 { 3848 return _debug_guardpage_minorder; 3849 } 3850 3851 static inline bool debug_guardpage_enabled(void) 3852 { 3853 return static_branch_unlikely(&_debug_guardpage_enabled); 3854 } 3855 3856 static inline bool page_is_guard(struct page *page) 3857 { 3858 if (!debug_guardpage_enabled()) 3859 return false; 3860 3861 return PageGuard(page); 3862 } 3863 3864 bool __set_page_guard(struct zone *zone, struct page *page, unsigned int order); 3865 static inline bool set_page_guard(struct zone *zone, struct page *page, 3866 unsigned int order) 3867 { 3868 if (!debug_guardpage_enabled()) 3869 return false; 3870 return __set_page_guard(zone, page, order); 3871 } 3872 3873 void __clear_page_guard(struct zone *zone, struct page *page, unsigned int order); 3874 static inline void clear_page_guard(struct zone *zone, struct page *page, 3875 unsigned int order) 3876 { 3877 if (!debug_guardpage_enabled()) 3878 return; 3879 __clear_page_guard(zone, page, order); 3880 } 3881 3882 #else /* CONFIG_DEBUG_PAGEALLOC */ 3883 static inline void debug_pagealloc_map_pages(struct page *page, int numpages) {} 3884 static inline void debug_pagealloc_unmap_pages(struct page *page, int numpages) {} 3885 static inline unsigned int debug_guardpage_minorder(void) { return 0; } 3886 static inline bool debug_guardpage_enabled(void) { return false; } 3887 static inline bool page_is_guard(struct page *page) { return false; } 3888 static inline bool set_page_guard(struct zone *zone, struct page *page, 3889 unsigned int order) { return false; } 3890 static inline void clear_page_guard(struct zone *zone, struct page *page, 3891 unsigned int order) {} 3892 #endif /* CONFIG_DEBUG_PAGEALLOC */ 3893 3894 #ifdef __HAVE_ARCH_GATE_AREA 3895 extern struct vm_area_struct *get_gate_vma(struct mm_struct *mm); 3896 extern int in_gate_area_no_mm(unsigned long addr); 3897 extern int in_gate_area(struct mm_struct *mm, unsigned long addr); 3898 #else 3899 static inline struct vm_area_struct *get_gate_vma(struct mm_struct *mm) 3900 { 3901 return NULL; 3902 } 3903 static inline int in_gate_area_no_mm(unsigned long addr) { return 0; } 3904 static inline int in_gate_area(struct mm_struct *mm, unsigned long addr) 3905 { 3906 return 0; 3907 } 3908 #endif /* __HAVE_ARCH_GATE_AREA */ 3909 3910 extern bool process_shares_mm(struct task_struct *p, struct mm_struct *mm); 3911 3912 #ifdef CONFIG_SYSCTL 3913 extern int sysctl_drop_caches; 3914 int drop_caches_sysctl_handler(const struct ctl_table *, int, void *, size_t *, 3915 loff_t *); 3916 #endif 3917 3918 void drop_slab(void); 3919 3920 #ifndef CONFIG_MMU 3921 #define randomize_va_space 0 3922 #else 3923 extern int randomize_va_space; 3924 #endif 3925 3926 const char * arch_vma_name(struct vm_area_struct *vma); 3927 #ifdef CONFIG_MMU 3928 void print_vma_addr(char *prefix, unsigned long rip); 3929 #else 3930 static inline void print_vma_addr(char *prefix, unsigned long rip) 3931 { 3932 } 3933 #endif 3934 3935 void *sparse_buffer_alloc(unsigned long size); 3936 unsigned long section_map_size(void); 3937 struct page * __populate_section_memmap(unsigned long pfn, 3938 unsigned long nr_pages, int nid, struct vmem_altmap *altmap, 3939 struct dev_pagemap *pgmap); 3940 pgd_t *vmemmap_pgd_populate(unsigned long addr, int node); 3941 p4d_t *vmemmap_p4d_populate(pgd_t *pgd, unsigned long addr, int node); 3942 pud_t *vmemmap_pud_populate(p4d_t *p4d, unsigned long addr, int node); 3943 pmd_t *vmemmap_pmd_populate(pud_t *pud, unsigned long addr, int node); 3944 pte_t *vmemmap_pte_populate(pmd_t *pmd, unsigned long addr, int node, 3945 struct vmem_altmap *altmap, unsigned long ptpfn, 3946 unsigned long flags); 3947 void *vmemmap_alloc_block(unsigned long size, int node); 3948 struct vmem_altmap; 3949 void *vmemmap_alloc_block_buf(unsigned long size, int node, 3950 struct vmem_altmap *altmap); 3951 void vmemmap_verify(pte_t *, int, unsigned long, unsigned long); 3952 void vmemmap_set_pmd(pmd_t *pmd, void *p, int node, 3953 unsigned long addr, unsigned long next); 3954 int vmemmap_check_pmd(pmd_t *pmd, int node, 3955 unsigned long addr, unsigned long next); 3956 int vmemmap_populate_basepages(unsigned long start, unsigned long end, 3957 int node, struct vmem_altmap *altmap); 3958 int vmemmap_populate_hugepages(unsigned long start, unsigned long end, 3959 int node, struct vmem_altmap *altmap); 3960 int vmemmap_populate(unsigned long start, unsigned long end, int node, 3961 struct vmem_altmap *altmap); 3962 int vmemmap_populate_hvo(unsigned long start, unsigned long end, int node, 3963 unsigned long headsize); 3964 int vmemmap_undo_hvo(unsigned long start, unsigned long end, int node, 3965 unsigned long headsize); 3966 void vmemmap_wrprotect_hvo(unsigned long start, unsigned long end, int node, 3967 unsigned long headsize); 3968 void vmemmap_populate_print_last(void); 3969 #ifdef CONFIG_MEMORY_HOTPLUG 3970 void vmemmap_free(unsigned long start, unsigned long end, 3971 struct vmem_altmap *altmap); 3972 #endif 3973 3974 #ifdef CONFIG_SPARSEMEM_VMEMMAP 3975 static inline unsigned long vmem_altmap_offset(struct vmem_altmap *altmap) 3976 { 3977 /* number of pfns from base where pfn_to_page() is valid */ 3978 if (altmap) 3979 return altmap->reserve + altmap->free; 3980 return 0; 3981 } 3982 3983 static inline void vmem_altmap_free(struct vmem_altmap *altmap, 3984 unsigned long nr_pfns) 3985 { 3986 altmap->alloc -= nr_pfns; 3987 } 3988 #else 3989 static inline unsigned long vmem_altmap_offset(struct vmem_altmap *altmap) 3990 { 3991 return 0; 3992 } 3993 3994 static inline void vmem_altmap_free(struct vmem_altmap *altmap, 3995 unsigned long nr_pfns) 3996 { 3997 } 3998 #endif 3999 4000 #define VMEMMAP_RESERVE_NR 2 4001 #ifdef CONFIG_ARCH_WANT_OPTIMIZE_DAX_VMEMMAP 4002 static inline bool __vmemmap_can_optimize(struct vmem_altmap *altmap, 4003 struct dev_pagemap *pgmap) 4004 { 4005 unsigned long nr_pages; 4006 unsigned long nr_vmemmap_pages; 4007 4008 if (!pgmap || !is_power_of_2(sizeof(struct page))) 4009 return false; 4010 4011 nr_pages = pgmap_vmemmap_nr(pgmap); 4012 nr_vmemmap_pages = ((nr_pages * sizeof(struct page)) >> PAGE_SHIFT); 4013 /* 4014 * For vmemmap optimization with DAX we need minimum 2 vmemmap 4015 * pages. See layout diagram in Documentation/mm/vmemmap_dedup.rst 4016 */ 4017 return !altmap && (nr_vmemmap_pages > VMEMMAP_RESERVE_NR); 4018 } 4019 /* 4020 * If we don't have an architecture override, use the generic rule 4021 */ 4022 #ifndef vmemmap_can_optimize 4023 #define vmemmap_can_optimize __vmemmap_can_optimize 4024 #endif 4025 4026 #else 4027 static inline bool vmemmap_can_optimize(struct vmem_altmap *altmap, 4028 struct dev_pagemap *pgmap) 4029 { 4030 return false; 4031 } 4032 #endif 4033 4034 enum mf_flags { 4035 MF_COUNT_INCREASED = 1 << 0, 4036 MF_ACTION_REQUIRED = 1 << 1, 4037 MF_MUST_KILL = 1 << 2, 4038 MF_SOFT_OFFLINE = 1 << 3, 4039 MF_UNPOISON = 1 << 4, 4040 MF_SW_SIMULATED = 1 << 5, 4041 MF_NO_RETRY = 1 << 6, 4042 MF_MEM_PRE_REMOVE = 1 << 7, 4043 }; 4044 int mf_dax_kill_procs(struct address_space *mapping, pgoff_t index, 4045 unsigned long count, int mf_flags); 4046 extern int memory_failure(unsigned long pfn, int flags); 4047 extern void memory_failure_queue_kick(int cpu); 4048 extern int unpoison_memory(unsigned long pfn); 4049 extern atomic_long_t num_poisoned_pages __read_mostly; 4050 extern int soft_offline_page(unsigned long pfn, int flags); 4051 #ifdef CONFIG_MEMORY_FAILURE 4052 /* 4053 * Sysfs entries for memory failure handling statistics. 4054 */ 4055 extern const struct attribute_group memory_failure_attr_group; 4056 extern void memory_failure_queue(unsigned long pfn, int flags); 4057 extern int __get_huge_page_for_hwpoison(unsigned long pfn, int flags, 4058 bool *migratable_cleared); 4059 void num_poisoned_pages_inc(unsigned long pfn); 4060 void num_poisoned_pages_sub(unsigned long pfn, long i); 4061 #else 4062 static inline void memory_failure_queue(unsigned long pfn, int flags) 4063 { 4064 } 4065 4066 static inline int __get_huge_page_for_hwpoison(unsigned long pfn, int flags, 4067 bool *migratable_cleared) 4068 { 4069 return 0; 4070 } 4071 4072 static inline void num_poisoned_pages_inc(unsigned long pfn) 4073 { 4074 } 4075 4076 static inline void num_poisoned_pages_sub(unsigned long pfn, long i) 4077 { 4078 } 4079 #endif 4080 4081 #if defined(CONFIG_MEMORY_FAILURE) && defined(CONFIG_MEMORY_HOTPLUG) 4082 extern void memblk_nr_poison_inc(unsigned long pfn); 4083 extern void memblk_nr_poison_sub(unsigned long pfn, long i); 4084 #else 4085 static inline void memblk_nr_poison_inc(unsigned long pfn) 4086 { 4087 } 4088 4089 static inline void memblk_nr_poison_sub(unsigned long pfn, long i) 4090 { 4091 } 4092 #endif 4093 4094 #ifndef arch_memory_failure 4095 static inline int arch_memory_failure(unsigned long pfn, int flags) 4096 { 4097 return -ENXIO; 4098 } 4099 #endif 4100 4101 #ifndef arch_is_platform_page 4102 static inline bool arch_is_platform_page(u64 paddr) 4103 { 4104 return false; 4105 } 4106 #endif 4107 4108 /* 4109 * Error handlers for various types of pages. 4110 */ 4111 enum mf_result { 4112 MF_IGNORED, /* Error: cannot be handled */ 4113 MF_FAILED, /* Error: handling failed */ 4114 MF_DELAYED, /* Will be handled later */ 4115 MF_RECOVERED, /* Successfully recovered */ 4116 }; 4117 4118 enum mf_action_page_type { 4119 MF_MSG_KERNEL, 4120 MF_MSG_KERNEL_HIGH_ORDER, 4121 MF_MSG_DIFFERENT_COMPOUND, 4122 MF_MSG_HUGE, 4123 MF_MSG_FREE_HUGE, 4124 MF_MSG_GET_HWPOISON, 4125 MF_MSG_UNMAP_FAILED, 4126 MF_MSG_DIRTY_SWAPCACHE, 4127 MF_MSG_CLEAN_SWAPCACHE, 4128 MF_MSG_DIRTY_MLOCKED_LRU, 4129 MF_MSG_CLEAN_MLOCKED_LRU, 4130 MF_MSG_DIRTY_UNEVICTABLE_LRU, 4131 MF_MSG_CLEAN_UNEVICTABLE_LRU, 4132 MF_MSG_DIRTY_LRU, 4133 MF_MSG_CLEAN_LRU, 4134 MF_MSG_TRUNCATED_LRU, 4135 MF_MSG_BUDDY, 4136 MF_MSG_DAX, 4137 MF_MSG_UNSPLIT_THP, 4138 MF_MSG_ALREADY_POISONED, 4139 MF_MSG_UNKNOWN, 4140 }; 4141 4142 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) || defined(CONFIG_HUGETLBFS) 4143 void folio_zero_user(struct folio *folio, unsigned long addr_hint); 4144 int copy_user_large_folio(struct folio *dst, struct folio *src, 4145 unsigned long addr_hint, 4146 struct vm_area_struct *vma); 4147 long copy_folio_from_user(struct folio *dst_folio, 4148 const void __user *usr_src, 4149 bool allow_pagefault); 4150 4151 /** 4152 * vma_is_special_huge - Are transhuge page-table entries considered special? 4153 * @vma: Pointer to the struct vm_area_struct to consider 4154 * 4155 * Whether transhuge page-table entries are considered "special" following 4156 * the definition in vm_normal_page(). 4157 * 4158 * Return: true if transhuge page-table entries should be considered special, 4159 * false otherwise. 4160 */ 4161 static inline bool vma_is_special_huge(const struct vm_area_struct *vma) 4162 { 4163 return vma_is_dax(vma) || (vma->vm_file && 4164 (vma->vm_flags & (VM_PFNMAP | VM_MIXEDMAP))); 4165 } 4166 4167 #endif /* CONFIG_TRANSPARENT_HUGEPAGE || CONFIG_HUGETLBFS */ 4168 4169 #if MAX_NUMNODES > 1 4170 void __init setup_nr_node_ids(void); 4171 #else 4172 static inline void setup_nr_node_ids(void) {} 4173 #endif 4174 4175 extern int memcmp_pages(struct page *page1, struct page *page2); 4176 4177 static inline int pages_identical(struct page *page1, struct page *page2) 4178 { 4179 return !memcmp_pages(page1, page2); 4180 } 4181 4182 #ifdef CONFIG_MAPPING_DIRTY_HELPERS 4183 unsigned long clean_record_shared_mapping_range(struct address_space *mapping, 4184 pgoff_t first_index, pgoff_t nr, 4185 pgoff_t bitmap_pgoff, 4186 unsigned long *bitmap, 4187 pgoff_t *start, 4188 pgoff_t *end); 4189 4190 unsigned long wp_shared_mapping_range(struct address_space *mapping, 4191 pgoff_t first_index, pgoff_t nr); 4192 #endif 4193 4194 extern int sysctl_nr_trim_pages; 4195 4196 #ifdef CONFIG_ANON_VMA_NAME 4197 int madvise_set_anon_name(struct mm_struct *mm, unsigned long start, 4198 unsigned long len_in, 4199 struct anon_vma_name *anon_name); 4200 #else 4201 static inline int 4202 madvise_set_anon_name(struct mm_struct *mm, unsigned long start, 4203 unsigned long len_in, struct anon_vma_name *anon_name) { 4204 return 0; 4205 } 4206 #endif 4207 4208 #ifdef CONFIG_UNACCEPTED_MEMORY 4209 4210 bool range_contains_unaccepted_memory(phys_addr_t start, unsigned long size); 4211 void accept_memory(phys_addr_t start, unsigned long size); 4212 4213 #else 4214 4215 static inline bool range_contains_unaccepted_memory(phys_addr_t start, 4216 unsigned long size) 4217 { 4218 return false; 4219 } 4220 4221 static inline void accept_memory(phys_addr_t start, unsigned long size) 4222 { 4223 } 4224 4225 #endif 4226 4227 static inline bool pfn_is_unaccepted_memory(unsigned long pfn) 4228 { 4229 return range_contains_unaccepted_memory(pfn << PAGE_SHIFT, PAGE_SIZE); 4230 } 4231 4232 void vma_pgtable_walk_begin(struct vm_area_struct *vma); 4233 void vma_pgtable_walk_end(struct vm_area_struct *vma); 4234 4235 int reserve_mem_find_by_name(const char *name, phys_addr_t *start, phys_addr_t *size); 4236 4237 #ifdef CONFIG_64BIT 4238 int do_mseal(unsigned long start, size_t len_in, unsigned long flags); 4239 #else 4240 static inline int do_mseal(unsigned long start, size_t len_in, unsigned long flags) 4241 { 4242 /* noop on 32 bit */ 4243 return 0; 4244 } 4245 #endif 4246 4247 /* 4248 * user_alloc_needs_zeroing checks if a user folio from page allocator needs to 4249 * be zeroed or not. 4250 */ 4251 static inline bool user_alloc_needs_zeroing(void) 4252 { 4253 /* 4254 * for user folios, arch with cache aliasing requires cache flush and 4255 * arc changes folio->flags to make icache coherent with dcache, so 4256 * always return false to make caller use 4257 * clear_user_page()/clear_user_highpage(). 4258 */ 4259 return cpu_dcache_is_aliasing() || cpu_icache_is_aliasing() || 4260 !static_branch_maybe(CONFIG_INIT_ON_ALLOC_DEFAULT_ON, 4261 &init_on_alloc); 4262 } 4263 4264 int arch_get_shadow_stack_status(struct task_struct *t, unsigned long __user *status); 4265 int arch_set_shadow_stack_status(struct task_struct *t, unsigned long status); 4266 int arch_lock_shadow_stack_status(struct task_struct *t, unsigned long status); 4267 4268 #endif /* _LINUX_MM_H */ 4269