1 /* SPDX-License-Identifier: GPL-2.0 */
2 #ifndef _LINUX_MM_TYPES_H
3 #define _LINUX_MM_TYPES_H
4
5 #include <linux/mm_types_task.h>
6
7 #include <linux/auxvec.h>
8 #include <linux/kref.h>
9 #include <linux/list.h>
10 #include <linux/spinlock.h>
11 #include <linux/rbtree.h>
12 #include <linux/maple_tree.h>
13 #include <linux/rwsem.h>
14 #include <linux/completion.h>
15 #include <linux/cpumask.h>
16 #include <linux/uprobes.h>
17 #include <linux/rcupdate.h>
18 #include <linux/page-flags-layout.h>
19 #include <linux/workqueue.h>
20 #include <linux/seqlock.h>
21 #include <linux/percpu_counter.h>
22 #include <linux/types.h>
23 #include <linux/futex_types.h>
24 #include <linux/rseq_types.h>
25 #include <linux/bitmap.h>
26
27 #include <asm/mmu.h>
28
29 #ifndef AT_VECTOR_SIZE_ARCH
30 #define AT_VECTOR_SIZE_ARCH 0
31 #endif
32 #define AT_VECTOR_SIZE (2*(AT_VECTOR_SIZE_ARCH + AT_VECTOR_SIZE_BASE + 1))
33
34
35 struct address_space;
36 struct futex_private_hash;
37 struct mem_cgroup;
38
39 typedef struct {
40 unsigned long f;
41 } memdesc_flags_t;
42
43 /*
44 * Each physical page in the system has a struct page associated with
45 * it to keep track of whatever it is we are using the page for at the
46 * moment. Note that we have no way to track which tasks are using
47 * a page, though if it is a pagecache page, rmap structures can tell us
48 * who is mapping it.
49 *
50 * If you allocate the page using alloc_pages(), you can use some of the
51 * space in struct page for your own purposes. The five words in the main
52 * union are available, except for bit 0 of the first word which must be
53 * kept clear. Many users use this word to store a pointer to an object
54 * which is guaranteed to be aligned. If you use the same storage as
55 * page->mapping, you must restore it to NULL before freeing the page.
56 *
57 * The mapcount field must not be used for own purposes.
58 *
59 * If you want to use the refcount field, it must be used in such a way
60 * that other CPUs temporarily incrementing and then decrementing the
61 * refcount does not cause problems. On receiving the page from
62 * alloc_pages(), the refcount will be positive.
63 *
64 * If you allocate pages of order > 0, you can use some of the fields
65 * in each subpage, but you may need to restore some of their values
66 * afterwards.
67 *
68 * SLUB uses cmpxchg_double() to atomically update its freelist and counters.
69 * That requires that freelist & counters in struct slab be adjacent and
70 * double-word aligned. Because struct slab currently just reinterprets the
71 * bits of struct page, we align all struct pages to double-word boundaries,
72 * and ensure that 'freelist' is aligned within struct slab.
73 */
74 #ifdef CONFIG_HAVE_ALIGNED_STRUCT_PAGE
75 #define _struct_page_alignment __aligned(2 * sizeof(unsigned long))
76 #else
77 #define _struct_page_alignment __aligned(sizeof(unsigned long))
78 #endif
79
80 struct page {
81 memdesc_flags_t flags; /* Atomic flags, some possibly
82 * updated asynchronously */
83 /*
84 * Five words (20/40 bytes) are available in this union.
85 * WARNING: bit 0 of the first word is used for PageTail(). That
86 * means the other users of this union MUST NOT use the bit to
87 * avoid collision and false-positive PageTail().
88 */
89 union {
90 struct { /* Page cache and anonymous pages */
91 /**
92 * @lru: Pageout list, eg. active_list protected by
93 * lruvec->lru_lock. Sometimes used as a generic list
94 * by the page owner.
95 */
96 union {
97 struct list_head lru;
98
99 /* Or, free page */
100 struct list_head buddy_list;
101 struct list_head pcp_list;
102 struct llist_node pcp_llist;
103 };
104 struct address_space *mapping;
105 union {
106 pgoff_t __folio_index; /* Our offset within mapping. */
107 unsigned long share; /* share count for fsdax */
108 };
109 /**
110 * @private: Mapping-private opaque data.
111 * Usually used for buffer_heads if PagePrivate.
112 * Used for swp_entry_t if swapcache flag set.
113 * Indicates order in the buddy system if PageBuddy
114 * or on pcp_llist.
115 */
116 unsigned long private;
117 };
118 struct { /* page_pool used by netstack */
119 /**
120 * @pp_magic: magic value to avoid recycling non
121 * page_pool allocated pages.
122 */
123 unsigned long pp_magic;
124 struct page_pool *pp;
125 unsigned long _pp_mapping_pad;
126 unsigned long dma_addr;
127 atomic_long_t pp_ref_count;
128 };
129 struct { /* Tail pages of compound page */
130 unsigned long compound_info; /* Bit zero is set */
131 };
132 struct { /* ZONE_DEVICE pages */
133 /*
134 * The first word is used for compound_info or folio
135 * pgmap
136 */
137 void *_unused_pgmap_compound_info;
138 void *zone_device_data;
139 /*
140 * ZONE_DEVICE private pages are counted as being
141 * mapped so the next 3 words hold the mapping, index,
142 * and private fields from the source anonymous or
143 * page cache page while the page is migrated to device
144 * private memory.
145 * ZONE_DEVICE MEMORY_DEVICE_FS_DAX pages also
146 * use the mapping, index, and private fields when
147 * pmem backed DAX files are mapped.
148 */
149 };
150
151 /** @rcu_head: You can use this to free a page by RCU. */
152 struct rcu_head rcu_head;
153 };
154
155 union { /* This union is 4 bytes in size. */
156 /*
157 * For head pages of typed folios, the value stored here
158 * allows for determining what this page is used for. The
159 * tail pages of typed folios will not store a type
160 * (page_type == _mapcount == -1).
161 *
162 * See page-flags.h for a list of page types which are currently
163 * stored here.
164 *
165 * Owners of typed folios may reuse the lower 16 bit of the
166 * head page page_type field after setting the page type,
167 * but must reset these 16 bit to -1 before clearing the
168 * page type.
169 */
170 unsigned int page_type;
171
172 /*
173 * For pages that are part of non-typed folios for which mappings
174 * are tracked via the RMAP, encodes the number of times this page
175 * is directly referenced by a page table.
176 *
177 * Note that the mapcount is always initialized to -1, so that
178 * transitions both from it and to it can be tracked, using
179 * atomic_inc_and_test() and atomic_add_negative(-1).
180 */
181 atomic_t _mapcount;
182 };
183
184 /* Usage count. *DO NOT USE DIRECTLY*. See page_ref.h */
185 atomic_t _refcount;
186
187 #ifdef CONFIG_MEMCG
188 unsigned long memcg_data;
189 #elif defined(CONFIG_SLAB_OBJ_EXT)
190 unsigned long _unused_slab_obj_exts;
191 #endif
192
193 /*
194 * On machines where all RAM is mapped into kernel address space,
195 * we can simply calculate the virtual address. On machines with
196 * highmem some memory is mapped into kernel virtual memory
197 * dynamically, so we need a place to store that address.
198 * Note that this field could be 16 bits on x86 ... ;)
199 *
200 * Architectures with slow multiplication can define
201 * WANT_PAGE_VIRTUAL in asm/page.h
202 */
203 #if defined(WANT_PAGE_VIRTUAL)
204 void *virtual; /* Kernel virtual address (NULL if
205 not kmapped, ie. highmem) */
206 #endif /* WANT_PAGE_VIRTUAL */
207
208 #ifdef LAST_CPUPID_NOT_IN_PAGE_FLAGS
209 int _last_cpupid;
210 #endif
211
212 #ifdef CONFIG_KMSAN
213 /*
214 * KMSAN metadata for this page:
215 * - shadow page: every bit indicates whether the corresponding
216 * bit of the original page is initialized (0) or not (1);
217 * - origin page: every 4 bytes contain an id of the stack trace
218 * where the uninitialized value was created.
219 */
220 struct page *kmsan_shadow;
221 struct page *kmsan_origin;
222 #endif
223 } _struct_page_alignment;
224
225 /*
226 * struct encoded_page - a nonexistent type marking this pointer
227 *
228 * An 'encoded_page' pointer is a pointer to a regular 'struct page', but
229 * with the low bits of the pointer indicating extra context-dependent
230 * information. Only used in mmu_gather handling, and this acts as a type
231 * system check on that use.
232 *
233 * We only really have two guaranteed bits in general, although you could
234 * play with 'struct page' alignment (see CONFIG_HAVE_ALIGNED_STRUCT_PAGE)
235 * for more.
236 *
237 * Use the supplied helper functions to endcode/decode the pointer and bits.
238 */
239 struct encoded_page;
240
241 #define ENCODED_PAGE_BITS 3ul
242
243 /* Perform rmap removal after we have flushed the TLB. */
244 #define ENCODED_PAGE_BIT_DELAY_RMAP 1ul
245
246 /*
247 * The next item in an encoded_page array is the "nr_pages" argument, specifying
248 * the number of consecutive pages starting from this page, that all belong to
249 * the same folio. For example, "nr_pages" corresponds to the number of folio
250 * references that must be dropped. If this bit is not set, "nr_pages" is
251 * implicitly 1.
252 */
253 #define ENCODED_PAGE_BIT_NR_PAGES_NEXT 2ul
254
encode_page(struct page * page,unsigned long flags)255 static __always_inline struct encoded_page *encode_page(struct page *page, unsigned long flags)
256 {
257 BUILD_BUG_ON(flags > ENCODED_PAGE_BITS);
258 return (struct encoded_page *)(flags | (unsigned long)page);
259 }
260
encoded_page_flags(struct encoded_page * page)261 static inline unsigned long encoded_page_flags(struct encoded_page *page)
262 {
263 return ENCODED_PAGE_BITS & (unsigned long)page;
264 }
265
encoded_page_ptr(struct encoded_page * page)266 static inline struct page *encoded_page_ptr(struct encoded_page *page)
267 {
268 return (struct page *)(~ENCODED_PAGE_BITS & (unsigned long)page);
269 }
270
encode_nr_pages(unsigned long nr)271 static __always_inline struct encoded_page *encode_nr_pages(unsigned long nr)
272 {
273 VM_WARN_ON_ONCE((nr << 2) >> 2 != nr);
274 return (struct encoded_page *)(nr << 2);
275 }
276
encoded_nr_pages(struct encoded_page * page)277 static __always_inline unsigned long encoded_nr_pages(struct encoded_page *page)
278 {
279 return ((unsigned long)page) >> 2;
280 }
281
282 /*
283 * A swap entry has to fit into a "unsigned long", as the entry is hidden
284 * in the "index" field of the swapper address space.
285 */
286 typedef struct {
287 unsigned long val;
288 } swp_entry_t;
289
290 /**
291 * typedef softleaf_t - Describes a page table software leaf entry, abstracted
292 * from its architecture-specific encoding.
293 *
294 * Page table leaf entries are those which do not reference any descendent page
295 * tables but rather either reference a data page, are an empty (or 'none'
296 * entry), or contain a non-present entry.
297 *
298 * If referencing another page table or a data page then the page table entry is
299 * pertinent to hardware - that is it tells the hardware how to decode the page
300 * table entry.
301 *
302 * Otherwise it is a software-defined leaf page table entry, which this type
303 * describes. See leafops.h and specifically @softleaf_type for a list of all
304 * possible kinds of software leaf entry.
305 *
306 * A softleaf_t entry is abstracted from the hardware page table entry, so is
307 * not architecture-specific.
308 *
309 * NOTE: While we transition from the confusing swp_entry_t type used for this
310 * purpose, we simply alias this type. This will be removed once the
311 * transition is complete.
312 */
313 typedef swp_entry_t softleaf_t;
314
315 #if defined(CONFIG_MEMCG) || defined(CONFIG_SLAB_OBJ_EXT)
316 /* We have some extra room after the refcount in tail pages. */
317 #define NR_PAGES_IN_LARGE_FOLIO
318 #endif
319
320 /*
321 * On 32bit, we can cut the required metadata in half, because:
322 * (a) PID_MAX_LIMIT implicitly limits the number of MMs we could ever have,
323 * so we can limit MM IDs to 15 bit (32767).
324 * (b) We don't expect folios where even a single complete PTE mapping by
325 * one MM would exceed 15 bits (order-15).
326 */
327 #ifdef CONFIG_64BIT
328 typedef int mm_id_mapcount_t;
329 #define MM_ID_MAPCOUNT_MAX INT_MAX
330 typedef unsigned int mm_id_t;
331 #else /* !CONFIG_64BIT */
332 typedef short mm_id_mapcount_t;
333 #define MM_ID_MAPCOUNT_MAX SHRT_MAX
334 typedef unsigned short mm_id_t;
335 #endif /* CONFIG_64BIT */
336
337 /* We implicitly use the dummy ID for init-mm etc. where we never rmap pages. */
338 #define MM_ID_DUMMY 0
339 #define MM_ID_MIN (MM_ID_DUMMY + 1)
340
341 /*
342 * We leave the highest bit of each MM id unused, so we can store a flag
343 * in the highest bit of each folio->_mm_id[].
344 */
345 #define MM_ID_BITS ((sizeof(mm_id_t) * BITS_PER_BYTE) - 1)
346 #define MM_ID_MASK ((1U << MM_ID_BITS) - 1)
347 #define MM_ID_MAX MM_ID_MASK
348
349 /*
350 * In order to use bit_spin_lock(), which requires an unsigned long, we
351 * operate on folio->_mm_ids when working on flags.
352 */
353 #define FOLIO_MM_IDS_LOCK_BITNUM MM_ID_BITS
354 #define FOLIO_MM_IDS_LOCK_BIT BIT(FOLIO_MM_IDS_LOCK_BITNUM)
355 #define FOLIO_MM_IDS_SHARED_BITNUM (2 * MM_ID_BITS + 1)
356 #define FOLIO_MM_IDS_SHARED_BIT BIT(FOLIO_MM_IDS_SHARED_BITNUM)
357
358 /**
359 * struct folio - Represents a contiguous set of bytes.
360 * @flags: Identical to the page flags.
361 * @lru: Least Recently Used list; tracks how recently this folio was used.
362 * @mlock_count: Number of times this folio has been pinned by mlock().
363 * @mapping: The file this page belongs to, or refers to the anon_vma for
364 * anonymous memory.
365 * @index: Offset within the file, in units of pages. For anonymous memory,
366 * this is the index from the beginning of the mmap.
367 * @share: number of DAX mappings that reference this folio. See
368 * dax_associate_entry.
369 * @private: Filesystem per-folio data (see folio_attach_private()).
370 * @swap: Used for swp_entry_t if folio_test_swapcache().
371 * @migrate_info: Stores migration state (anon_vma pointer and
372 * FOLIO_WAS_* markers).
373 * @_mapcount: Do not access this member directly. Use folio_mapcount() to
374 * find out how many times this folio is mapped by userspace.
375 * @_refcount: Do not access this member directly. Use folio_ref_count()
376 * to find how many references there are to this folio.
377 * @memcg_data: Memory Control Group data.
378 * @pgmap: Metadata for ZONE_DEVICE mappings
379 * @virtual: Virtual address in the kernel direct map.
380 * @_last_cpupid: IDs of last CPU and last process that accessed the folio.
381 * @_entire_mapcount: Do not use directly, call folio_entire_mapcount().
382 * @_large_mapcount: Do not use directly, call folio_mapcount().
383 * @_nr_pages_mapped: Do not use outside of rmap and debug code.
384 * @_pincount: Do not use directly, call folio_maybe_dma_pinned().
385 * @_nr_pages: Do not use directly, call folio_nr_pages().
386 * @_mm_id: Do not use outside of rmap code.
387 * @_mm_ids: Do not use outside of rmap code.
388 * @_mm_id_mapcount: Do not use outside of rmap code.
389 * @_hugetlb_subpool: Do not use directly, use accessor in hugetlb.h.
390 * @_hugetlb_cgroup: Do not use directly, use accessor in hugetlb_cgroup.h.
391 * @_hugetlb_cgroup_rsvd: Do not use directly, use accessor in hugetlb_cgroup.h.
392 * @_hugetlb_hwpoison: Do not use directly, call raw_hwp_list_head().
393 * @_deferred_list: Folios to be split under memory pressure.
394 * @_unused_slab_obj_exts: Placeholder to match obj_exts in struct slab.
395 *
396 * A folio is a physically, virtually and logically contiguous set
397 * of bytes. It is a power-of-two in size, and it is aligned to that
398 * same power-of-two. It is at least as large as %PAGE_SIZE. If it is
399 * in the page cache, it is at a file offset which is a multiple of that
400 * power-of-two. It may be mapped into userspace at an address which is
401 * at an arbitrary page offset, but its kernel virtual address is aligned
402 * to its size.
403 */
404 struct folio {
405 /* private: don't document the anon union */
406 union {
407 struct {
408 /* public: */
409 memdesc_flags_t flags;
410 union {
411 struct list_head lru;
412 /* private: avoid cluttering the output */
413 /* For the Unevictable "LRU list" slot */
414 struct {
415 /* Avoid compound_info */
416 void *__filler;
417 /* public: */
418 unsigned int mlock_count;
419 /* private: */
420 };
421 /* public: */
422 struct dev_pagemap *pgmap;
423 };
424 struct address_space *mapping;
425 union {
426 pgoff_t index;
427 unsigned long share;
428 };
429 union {
430 void *private;
431 swp_entry_t swap;
432 unsigned long migrate_info;
433 };
434 atomic_t _mapcount;
435 atomic_t _refcount;
436 #ifdef CONFIG_MEMCG
437 unsigned long memcg_data;
438 #elif defined(CONFIG_SLAB_OBJ_EXT)
439 unsigned long _unused_slab_obj_exts;
440 #endif
441 #if defined(WANT_PAGE_VIRTUAL)
442 void *virtual;
443 #endif
444 #ifdef LAST_CPUPID_NOT_IN_PAGE_FLAGS
445 int _last_cpupid;
446 #endif
447 /* private: the union with struct page is transitional */
448 };
449 struct page page;
450 };
451 union {
452 struct {
453 unsigned long _flags_1;
454 unsigned long _head_1;
455 union {
456 struct {
457 /* public: */
458 atomic_t _large_mapcount;
459 atomic_t _nr_pages_mapped;
460 #ifdef CONFIG_64BIT
461 atomic_t _entire_mapcount;
462 atomic_t _pincount;
463 #endif /* CONFIG_64BIT */
464 mm_id_mapcount_t _mm_id_mapcount[2];
465 union {
466 mm_id_t _mm_id[2];
467 unsigned long _mm_ids;
468 };
469 /* private: the union with struct page is transitional */
470 };
471 unsigned long _usable_1[4];
472 };
473 atomic_t _mapcount_1;
474 atomic_t _refcount_1;
475 /* public: */
476 #ifdef NR_PAGES_IN_LARGE_FOLIO
477 unsigned int _nr_pages;
478 #endif /* NR_PAGES_IN_LARGE_FOLIO */
479 /* private: the union with struct page is transitional */
480 };
481 struct page __page_1;
482 };
483 union {
484 struct {
485 unsigned long _flags_2;
486 unsigned long _head_2;
487 /* public: */
488 struct list_head _deferred_list;
489 #ifndef CONFIG_64BIT
490 atomic_t _entire_mapcount;
491 atomic_t _pincount;
492 #endif /* !CONFIG_64BIT */
493 /* private: the union with struct page is transitional */
494 };
495 struct page __page_2;
496 };
497 union {
498 struct {
499 unsigned long _flags_3;
500 unsigned long _head_3;
501 /* public: */
502 void *_hugetlb_subpool;
503 void *_hugetlb_cgroup;
504 void *_hugetlb_cgroup_rsvd;
505 void *_hugetlb_hwpoison;
506 /* private: the union with struct page is transitional */
507 };
508 struct page __page_3;
509 };
510 };
511
512 #define FOLIO_MATCH(pg, fl) \
513 static_assert(offsetof(struct page, pg) == offsetof(struct folio, fl))
514 FOLIO_MATCH(flags, flags);
515 FOLIO_MATCH(lru, lru);
516 FOLIO_MATCH(mapping, mapping);
517 FOLIO_MATCH(compound_info, lru);
518 FOLIO_MATCH(__folio_index, index);
519 FOLIO_MATCH(private, private);
520 FOLIO_MATCH(_mapcount, _mapcount);
521 FOLIO_MATCH(_refcount, _refcount);
522 #ifdef CONFIG_MEMCG
523 FOLIO_MATCH(memcg_data, memcg_data);
524 #endif
525 #if defined(WANT_PAGE_VIRTUAL)
526 FOLIO_MATCH(virtual, virtual);
527 #endif
528 #ifdef LAST_CPUPID_NOT_IN_PAGE_FLAGS
529 FOLIO_MATCH(_last_cpupid, _last_cpupid);
530 #endif
531 #undef FOLIO_MATCH
532 #define FOLIO_MATCH(pg, fl) \
533 static_assert(offsetof(struct folio, fl) == \
534 offsetof(struct page, pg) + sizeof(struct page))
535 FOLIO_MATCH(flags, _flags_1);
536 FOLIO_MATCH(compound_info, _head_1);
537 FOLIO_MATCH(_mapcount, _mapcount_1);
538 FOLIO_MATCH(_refcount, _refcount_1);
539 #undef FOLIO_MATCH
540 #define FOLIO_MATCH(pg, fl) \
541 static_assert(offsetof(struct folio, fl) == \
542 offsetof(struct page, pg) + 2 * sizeof(struct page))
543 FOLIO_MATCH(flags, _flags_2);
544 FOLIO_MATCH(compound_info, _head_2);
545 #undef FOLIO_MATCH
546 #define FOLIO_MATCH(pg, fl) \
547 static_assert(offsetof(struct folio, fl) == \
548 offsetof(struct page, pg) + 3 * sizeof(struct page))
549 FOLIO_MATCH(flags, _flags_3);
550 FOLIO_MATCH(compound_info, _head_3);
551 #undef FOLIO_MATCH
552
553 /**
554 * struct ptdesc - Memory descriptor for page tables.
555 * @pt_flags: enum pt_flags plus zone/node/section.
556 * @pt_rcu_head: For freeing page table pages.
557 * @pt_list: List of used page tables. Used for s390 gmap shadow pages
558 * (which are not linked into the user page tables) and x86
559 * pgds.
560 * @_pt_pad_1: Padding that aliases with page's compound head.
561 * @pmd_huge_pte: Protected by ptdesc->ptl, used for THPs.
562 * @__page_mapping: Aliases with page->mapping. Unused for page tables.
563 * @pt_index: Used for s390 gmap.
564 * @pt_mm: Used for x86 pgds.
565 * @pt_frag_refcount: For fragmented page table tracking. Powerpc only.
566 * @pt_share_count: Used for HugeTLB PMD page table share count.
567 * @_pt_pad_2: Padding to ensure proper alignment.
568 * @ptl: Lock for the page table.
569 * @__page_type: Same as page->page_type. Unused for page tables.
570 * @__page_refcount: Same as page refcount.
571 * @pt_memcg_data: Memcg data. Tracked for page tables here.
572 *
573 * This struct overlays struct page for now. Do not modify without a good
574 * understanding of the issues.
575 */
576 struct ptdesc {
577 memdesc_flags_t pt_flags;
578
579 union {
580 struct rcu_head pt_rcu_head;
581 struct list_head pt_list;
582 struct {
583 unsigned long _pt_pad_1;
584 pgtable_t pmd_huge_pte;
585 };
586 };
587 unsigned long __page_mapping;
588
589 union {
590 pgoff_t pt_index;
591 struct mm_struct *pt_mm;
592 atomic_t pt_frag_refcount;
593 #ifdef CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING
594 atomic_t pt_share_count;
595 #endif
596 };
597
598 union {
599 unsigned long _pt_pad_2;
600 #if ALLOC_SPLIT_PTLOCKS
601 spinlock_t *ptl;
602 #else
603 spinlock_t ptl;
604 #endif
605 };
606 unsigned int __page_type;
607 atomic_t __page_refcount;
608 #ifdef CONFIG_MEMCG
609 unsigned long pt_memcg_data;
610 #endif
611 };
612
613 #define TABLE_MATCH(pg, pt) \
614 static_assert(offsetof(struct page, pg) == offsetof(struct ptdesc, pt))
615 TABLE_MATCH(flags, pt_flags);
616 TABLE_MATCH(compound_info, pt_list);
617 TABLE_MATCH(compound_info, _pt_pad_1);
618 TABLE_MATCH(mapping, __page_mapping);
619 TABLE_MATCH(__folio_index, pt_index);
620 TABLE_MATCH(rcu_head, pt_rcu_head);
621 TABLE_MATCH(page_type, __page_type);
622 TABLE_MATCH(_refcount, __page_refcount);
623 #ifdef CONFIG_MEMCG
624 TABLE_MATCH(memcg_data, pt_memcg_data);
625 #endif
626 #undef TABLE_MATCH
627 static_assert(sizeof(struct ptdesc) <= sizeof(struct page));
628
629 #define ptdesc_page(pt) (_Generic((pt), \
630 const struct ptdesc *: (const struct page *)(pt), \
631 struct ptdesc *: (struct page *)(pt)))
632
633 #define ptdesc_folio(pt) (_Generic((pt), \
634 const struct ptdesc *: (const struct folio *)(pt), \
635 struct ptdesc *: (struct folio *)(pt)))
636
637 #define page_ptdesc(p) (_Generic((p), \
638 const struct page *: (const struct ptdesc *)(p), \
639 struct page *: (struct ptdesc *)(p)))
640
641 #ifdef CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING
ptdesc_pmd_pts_init(struct ptdesc * ptdesc)642 static inline void ptdesc_pmd_pts_init(struct ptdesc *ptdesc)
643 {
644 atomic_set(&ptdesc->pt_share_count, 0);
645 }
646
ptdesc_pmd_pts_inc(struct ptdesc * ptdesc)647 static inline void ptdesc_pmd_pts_inc(struct ptdesc *ptdesc)
648 {
649 atomic_inc(&ptdesc->pt_share_count);
650 }
651
ptdesc_pmd_pts_dec(struct ptdesc * ptdesc)652 static inline void ptdesc_pmd_pts_dec(struct ptdesc *ptdesc)
653 {
654 atomic_dec(&ptdesc->pt_share_count);
655 }
656
ptdesc_pmd_pts_count(const struct ptdesc * ptdesc)657 static inline int ptdesc_pmd_pts_count(const struct ptdesc *ptdesc)
658 {
659 return atomic_read(&ptdesc->pt_share_count);
660 }
661
ptdesc_pmd_is_shared(struct ptdesc * ptdesc)662 static inline bool ptdesc_pmd_is_shared(struct ptdesc *ptdesc)
663 {
664 return !!ptdesc_pmd_pts_count(ptdesc);
665 }
666 #else
ptdesc_pmd_pts_init(struct ptdesc * ptdesc)667 static inline void ptdesc_pmd_pts_init(struct ptdesc *ptdesc)
668 {
669 }
670 #endif
671
672 /*
673 * Used for sizing the vmemmap region on some architectures
674 */
675 #define STRUCT_PAGE_MAX_SHIFT (order_base_2(sizeof(struct page)))
676
677 /*
678 * page_private can be used on tail pages. However, PagePrivate is only
679 * checked by the VM on the head page. So page_private on the tail pages
680 * should be used for data that's ancillary to the head page (eg attaching
681 * buffer heads to tail pages after attaching buffer heads to the head page)
682 */
683 #define page_private(page) ((page)->private)
684
set_page_private(struct page * page,unsigned long private)685 static inline void set_page_private(struct page *page, unsigned long private)
686 {
687 page->private = private;
688 }
689
folio_get_private(const struct folio * folio)690 static inline void *folio_get_private(const struct folio *folio)
691 {
692 return folio->private;
693 }
694
695 typedef unsigned long vm_flags_t;
696
697 /*
698 * freeptr_t represents a SLUB freelist pointer, which might be encoded
699 * and not dereferenceable if CONFIG_SLAB_FREELIST_HARDENED is enabled.
700 */
701 typedef struct { unsigned long v; } freeptr_t;
702
703 /*
704 * A region containing a mapping of a non-memory backed file under NOMMU
705 * conditions. These are held in a global tree and are pinned by the VMAs that
706 * map parts of them.
707 */
708 struct vm_region {
709 struct rb_node vm_rb; /* link in global region tree */
710 vm_flags_t vm_flags; /* VMA vm_flags */
711 unsigned long vm_start; /* start address of region */
712 unsigned long vm_end; /* region initialised to here */
713 unsigned long vm_top; /* region allocated to here */
714 unsigned long vm_pgoff; /* the offset in vm_file corresponding to vm_start */
715 struct file *vm_file; /* the backing file or NULL */
716
717 int vm_usage; /* region usage count (access under nommu_region_sem) */
718 bool vm_icache_flushed : 1; /* true if the icache has been flushed for
719 * this region */
720 };
721
722 #ifdef CONFIG_USERFAULTFD
723 #define NULL_VM_UFFD_CTX ((struct vm_userfaultfd_ctx) { NULL, })
724 struct vm_userfaultfd_ctx {
725 struct userfaultfd_ctx *ctx;
726 };
727 #else /* CONFIG_USERFAULTFD */
728 #define NULL_VM_UFFD_CTX ((struct vm_userfaultfd_ctx) {})
729 struct vm_userfaultfd_ctx {};
730 #endif /* CONFIG_USERFAULTFD */
731
732 struct anon_vma_name {
733 struct kref kref;
734 /* The name needs to be at the end because it is dynamically sized. */
735 char name[];
736 };
737
738 #ifdef CONFIG_ANON_VMA_NAME
739 /*
740 * mmap_lock should be read-locked when calling anon_vma_name(). Caller should
741 * either keep holding the lock while using the returned pointer or it should
742 * raise anon_vma_name refcount before releasing the lock.
743 */
744 struct anon_vma_name *anon_vma_name(struct vm_area_struct *vma);
745 struct anon_vma_name *anon_vma_name_alloc(const char *name);
746 void anon_vma_name_free(struct kref *kref);
747 #else /* CONFIG_ANON_VMA_NAME */
anon_vma_name(struct vm_area_struct * vma)748 static inline struct anon_vma_name *anon_vma_name(struct vm_area_struct *vma)
749 {
750 return NULL;
751 }
752
anon_vma_name_alloc(const char * name)753 static inline struct anon_vma_name *anon_vma_name_alloc(const char *name)
754 {
755 return NULL;
756 }
757 #endif
758
759 /*
760 * While __vma_enter_locked() is working to ensure are no read-locks held on a
761 * VMA (either while acquiring a VMA write lock or marking a VMA detached) we
762 * set the VM_REFCNT_EXCLUDE_READERS_FLAG in vma->vm_refcnt to indiciate to
763 * vma_start_read() that the reference count should be left alone.
764 *
765 * See the comment describing vm_refcnt in vm_area_struct for details as to
766 * which values the VMA reference count can be.
767 */
768 #define VM_REFCNT_EXCLUDE_READERS_BIT (30)
769 #define VM_REFCNT_EXCLUDE_READERS_FLAG (1U << VM_REFCNT_EXCLUDE_READERS_BIT)
770 #define VM_REFCNT_LIMIT (VM_REFCNT_EXCLUDE_READERS_FLAG - 1)
771
772 struct vma_numab_state {
773 /*
774 * Initialised as time in 'jiffies' after which VMA
775 * should be scanned. Delays first scan of new VMA by at
776 * least sysctl_numa_balancing_scan_delay:
777 */
778 unsigned long next_scan;
779
780 /*
781 * Time in jiffies when pids_active[] is reset to
782 * detect phase change behaviour:
783 */
784 unsigned long pids_active_reset;
785
786 /*
787 * Approximate tracking of PIDs that trapped a NUMA hinting
788 * fault. May produce false positives due to hash collisions.
789 *
790 * [0] Previous PID tracking
791 * [1] Current PID tracking
792 *
793 * Window moves after next_pid_reset has expired approximately
794 * every VMA_PID_RESET_PERIOD jiffies:
795 */
796 unsigned long pids_active[2];
797
798 /* MM scan sequence ID when scan first started after VMA creation */
799 int start_scan_seq;
800
801 /*
802 * MM scan sequence ID when the VMA was last completely scanned.
803 * A VMA is not eligible for scanning if prev_scan_seq == numa_scan_seq
804 */
805 int prev_scan_seq;
806 };
807
808 #ifdef __HAVE_PFNMAP_TRACKING
809 struct pfnmap_track_ctx {
810 struct kref kref;
811 unsigned long pfn;
812 unsigned long size; /* in bytes */
813 };
814 #endif
815
816 /* What action should be taken after an .mmap_prepare call is complete? */
817 enum mmap_action_type {
818 MMAP_NOTHING, /* Mapping is complete, no further action. */
819 MMAP_REMAP_PFN, /* Remap PFN range. */
820 MMAP_IO_REMAP_PFN, /* I/O remap PFN range. */
821 MMAP_SIMPLE_IO_REMAP, /* I/O remap with guardrails. */
822 MMAP_MAP_KERNEL_PAGES, /* Map kernel page range from array. */
823 };
824
825 /*
826 * Describes an action an mmap_prepare hook can instruct to be taken to complete
827 * the mapping of a VMA. Specified in vm_area_desc.
828 */
829 struct mmap_action {
830 union {
831 struct {
832 unsigned long start;
833 unsigned long start_pfn;
834 unsigned long size;
835 pgprot_t pgprot;
836 } remap;
837 struct {
838 phys_addr_t start_phys_addr;
839 unsigned long size;
840 } simple_ioremap;
841 struct {
842 unsigned long start;
843 struct page **pages;
844 unsigned long nr_pages;
845 pgoff_t pgoff;
846 } map_kernel;
847 };
848 enum mmap_action_type type;
849
850 /*
851 * If non-zero, replace errors that arise from mmap actions with this
852 * value instead. Only valid error codes may be specified.
853 */
854 int error_override;
855
856 /*
857 * This should be set in rare instances where the operation required
858 * that the rmap should not be able to access the VMA until
859 * completely set up.
860 */
861 bool hide_from_rmap_until_complete :1;
862 };
863
864 /*
865 * Opaque type representing current VMA (vm_area_struct) flag state. Must be
866 * accessed via vma_flags_xxx() helper functions.
867 */
868 #define NUM_VMA_FLAG_BITS BITS_PER_LONG
869 typedef struct {
870 DECLARE_BITMAP(__vma_flags, NUM_VMA_FLAG_BITS);
871 } vma_flags_t;
872
873 #define EMPTY_VMA_FLAGS ((vma_flags_t){ })
874
875 /* Are no flags set in the specified VMA flags? */
vma_flags_empty(const vma_flags_t * flags)876 static __always_inline bool vma_flags_empty(const vma_flags_t *flags)
877 {
878 const unsigned long *bitmap = flags->__vma_flags;
879
880 return bitmap_empty(bitmap, NUM_VMA_FLAG_BITS);
881 }
882
883 /*
884 * Describes a VMA that is about to be mmap()'ed. Drivers may choose to
885 * manipulate mutable fields which will cause those fields to be updated in the
886 * resultant VMA.
887 *
888 * Helper functions are not required for manipulating any field.
889 */
890 struct vm_area_desc {
891 /* Immutable state. */
892 struct mm_struct *mm;
893 struct file *file; /* May vary from vm_file in stacked callers. */
894 unsigned long start;
895 unsigned long end;
896
897 /* Mutable fields. Populated with initial state. */
898 pgoff_t pgoff;
899 struct file *vm_file;
900 vma_flags_t vma_flags;
901 pgprot_t page_prot;
902
903 /* Write-only fields. */
904 const struct vm_operations_struct *vm_ops;
905 void *private_data;
906
907 /* Take further action? */
908 struct mmap_action action;
909 };
910
911 /*
912 * This struct describes a virtual memory area. There is one of these
913 * per VM-area/task. A VM area is any part of the process virtual memory
914 * space that has a special rule for the page-fault handlers (ie a shared
915 * library, the executable area etc).
916 *
917 * Only explicitly marked struct members may be accessed by RCU readers before
918 * getting a stable reference.
919 *
920 * WARNING: when adding new members, please update vm_area_init_from() to copy
921 * them during vm_area_struct content duplication.
922 */
923 struct vm_area_struct {
924 /* The first cache line has the info for VMA tree walking. */
925
926 union {
927 struct {
928 /* VMA covers [vm_start; vm_end) addresses within mm */
929 unsigned long vm_start;
930 unsigned long vm_end;
931 };
932 freeptr_t vm_freeptr; /* Pointer used by SLAB_TYPESAFE_BY_RCU */
933 };
934
935 /*
936 * The address space we belong to.
937 * Unstable RCU readers are allowed to read this.
938 */
939 struct mm_struct *vm_mm;
940 pgprot_t vm_page_prot; /* Access permissions of this VMA. */
941
942 /*
943 * Flags, see mm.h.
944 * To modify use vm_flags_{init|reset|set|clear|mod} functions.
945 * Preferably, use vma_flags_xxx() functions.
946 */
947 union {
948 /* Temporary while VMA flags are being converted. */
949 const vm_flags_t vm_flags;
950 vma_flags_t flags;
951 };
952
953 #ifdef CONFIG_PER_VMA_LOCK
954 /*
955 * Can only be written (using WRITE_ONCE()) while holding both:
956 * - mmap_lock (in write mode)
957 * - vm_refcnt bit at VM_REFCNT_EXCLUDE_READERS_FLAG is set
958 * Can be read reliably while holding one of:
959 * - mmap_lock (in read or write mode)
960 * - vm_refcnt bit at VM_REFCNT_EXCLUDE_READERS_BIT is set or vm_refcnt > 1
961 * Can be read unreliably (using READ_ONCE()) for pessimistic bailout
962 * while holding nothing (except RCU to keep the VMA struct allocated).
963 *
964 * This sequence counter is explicitly allowed to overflow; sequence
965 * counter reuse can only lead to occasional unnecessary use of the
966 * slowpath.
967 */
968 unsigned int vm_lock_seq;
969 #endif
970 /*
971 * Low 32-bits of anonymous page offset.
972 * See vma_start_anon_pgoff() comment for details.
973 */
974 unsigned int __vm_anon_pgoff_lo;
975 /*
976 * A file's MAP_PRIVATE vma can be in both i_mmap tree and anon_vma
977 * list, after a COW of one of the file pages. A MAP_SHARED vma
978 * can only be in the i_mmap tree. An anonymous MAP_PRIVATE, stack
979 * or brk vma (with NULL file) can only be in an anon_vma list.
980 */
981 struct list_head anon_vma_chain; /* Serialized by mmap_lock &
982 * page_table_lock */
983 struct anon_vma *anon_vma; /* Serialized by page_table_lock */
984
985 /* Function pointers to deal with this struct. */
986 const struct vm_operations_struct *vm_ops;
987
988 /* Information about our backing store: */
989 unsigned long vm_pgoff; /* Offset (within vm_file) in PAGE_SIZE
990 units */
991 struct file * vm_file; /* File we map to (can be NULL). */
992 void * vm_private_data; /* was vm_pte (shared mem) */
993
994 #ifdef CONFIG_SWAP
995 atomic_long_t swap_readahead_info;
996 #endif
997 #ifndef CONFIG_MMU
998 struct vm_region *vm_region; /* NOMMU mapping region */
999 #endif
1000 #ifdef CONFIG_NUMA
1001 struct mempolicy *vm_policy; /* NUMA policy for the VMA */
1002 #endif
1003 #ifdef CONFIG_NUMA_BALANCING
1004 struct vma_numab_state *numab_state; /* NUMA Balancing state */
1005 #endif
1006 #ifdef CONFIG_PER_VMA_LOCK
1007 /*
1008 * Used to keep track of firstly, whether the VMA is attached, secondly,
1009 * if attached, how many read locks are taken, and thirdly, if the
1010 * VM_REFCNT_EXCLUDE_READERS_FLAG is set, whether any read locks held
1011 * are currently in the process of being excluded.
1012 *
1013 * This value can be equal to:
1014 *
1015 * 0 - Detached. IMPORTANT: when the refcnt is zero, readers cannot
1016 * increment it.
1017 *
1018 * 1 - Attached and either unlocked or write-locked. Write locks are
1019 * identified via __is_vma_write_locked() which checks for equality of
1020 * vma->vm_lock_seq and mm->mm_lock_seq.
1021 *
1022 * >1, < VM_REFCNT_EXCLUDE_READERS_FLAG - Read-locked or (unlikely)
1023 * write-locked with other threads having temporarily incremented the
1024 * reference count prior to determining it is write-locked and
1025 * decrementing it again.
1026 *
1027 * VM_REFCNT_EXCLUDE_READERS_FLAG - Detached, pending
1028 * __vma_end_exclude_readers() completion which will decrement the
1029 * reference count to zero. IMPORTANT - at this stage no further readers
1030 * can increment the reference count. It can only be reduced.
1031 *
1032 * VM_REFCNT_EXCLUDE_READERS_FLAG + 1 - A thread is either write-locking
1033 * an attached VMA and has yet to invoke __vma_end_exclude_readers(),
1034 * OR a thread is detaching a VMA and is waiting on a single spurious
1035 * reader in order to decrement the reference count. IMPORTANT - as
1036 * above, no further readers can increment the reference count.
1037 *
1038 * > VM_REFCNT_EXCLUDE_READERS_FLAG + 1 - A thread is either
1039 * write-locking or detaching a VMA is waiting on readers to
1040 * exit. IMPORTANT - as above, no further readers can increment the
1041 * reference count.
1042 *
1043 * NOTE: Unstable RCU readers are allowed to read this.
1044 */
1045 refcount_t vm_refcnt ____cacheline_aligned_in_smp;
1046 #ifdef CONFIG_DEBUG_LOCK_ALLOC
1047 struct lockdep_map vmlock_dep_map;
1048 #endif
1049 #endif
1050 #ifdef CONFIG_64BIT
1051 /*
1052 * High 32-bits of anonymous page offset.
1053 * See vma_start_anon_pgoff() comment for details.
1054 */
1055 unsigned int __vm_anon_pgoff_hi;
1056 #endif
1057 /*
1058 * For areas with an address space and backing store,
1059 * linkage into the address_space->i_mmap interval tree.
1060 *
1061 */
1062 struct {
1063 struct rb_node rb;
1064 unsigned long rb_subtree_last;
1065 } shared;
1066 #ifdef CONFIG_ANON_VMA_NAME
1067 /*
1068 * For private and shared anonymous mappings, a pointer to a null
1069 * terminated string containing the name given to the vma, or NULL if
1070 * unnamed. Serialized by mmap_lock. Use anon_vma_name to access.
1071 */
1072 struct anon_vma_name *anon_name;
1073 #endif
1074 struct vm_userfaultfd_ctx vm_userfaultfd_ctx;
1075 #ifdef __HAVE_PFNMAP_TRACKING
1076 struct pfnmap_track_ctx *pfnmap_track_ctx;
1077 #endif
1078 } __randomize_layout;
1079
1080 /* Clears all bits in the VMA flags bitmap, non-atomically. */
vma_flags_clear_all(vma_flags_t * flags)1081 static __always_inline void vma_flags_clear_all(vma_flags_t *flags)
1082 {
1083 bitmap_zero(flags->__vma_flags, NUM_VMA_FLAG_BITS);
1084 }
1085
1086 /*
1087 * Helper function which converts a vma_flags_t value to a legacy vm_flags_t
1088 * value. This is only valid if the input flags value can be expressed in a
1089 * system word.
1090 *
1091 * Will be removed once the conversion to VMA flags is complete.
1092 */
vma_flags_to_legacy(vma_flags_t flags)1093 static __always_inline vm_flags_t vma_flags_to_legacy(vma_flags_t flags)
1094 {
1095 return (vm_flags_t)flags.__vma_flags[0];
1096 }
1097
1098 /*
1099 * Copy value to the first system word of VMA flags, non-atomically.
1100 *
1101 * IMPORTANT: This does not overwrite bytes past the first system word. The
1102 * caller must account for this.
1103 */
vma_flags_overwrite_word(vma_flags_t * flags,unsigned long value)1104 static __always_inline void vma_flags_overwrite_word(vma_flags_t *flags,
1105 unsigned long value)
1106 {
1107 unsigned long *bitmap = flags->__vma_flags;
1108
1109 bitmap[0] = value;
1110 }
1111
1112 /*
1113 * Helper function which converts a legacy vm_flags_t value to a vma_flags_t
1114 * value.
1115 *
1116 * Will be removed once the conversion to VMA flags is complete.
1117 */
legacy_to_vma_flags(vm_flags_t flags)1118 static __always_inline vma_flags_t legacy_to_vma_flags(vm_flags_t flags)
1119 {
1120 vma_flags_t ret = EMPTY_VMA_FLAGS;
1121
1122 vma_flags_overwrite_word(&ret, flags);
1123 return ret;
1124 }
1125
1126 /*
1127 * Copy value to the first system word of VMA flags ONCE, non-atomically.
1128 *
1129 * IMPORTANT: This does not overwrite bytes past the first system word. The
1130 * caller must account for this.
1131 */
vma_flags_overwrite_word_once(vma_flags_t * flags,unsigned long value)1132 static __always_inline void vma_flags_overwrite_word_once(vma_flags_t *flags,
1133 unsigned long value)
1134 {
1135 unsigned long *bitmap = flags->__vma_flags;
1136
1137 WRITE_ONCE(*bitmap, value);
1138 }
1139
1140 /* Update the first system word of VMA flags setting bits, non-atomically. */
vma_flags_set_word(vma_flags_t * flags,unsigned long value)1141 static __always_inline void vma_flags_set_word(vma_flags_t *flags,
1142 unsigned long value)
1143 {
1144 unsigned long *bitmap = flags->__vma_flags;
1145
1146 *bitmap |= value;
1147 }
1148
1149 /* Update the first system word of VMA flags clearing bits, non-atomically. */
vma_flags_clear_word(vma_flags_t * flags,unsigned long value)1150 static __always_inline void vma_flags_clear_word(vma_flags_t *flags,
1151 unsigned long value)
1152 {
1153 unsigned long *bitmap = flags->__vma_flags;
1154
1155 *bitmap &= ~value;
1156 }
1157
1158 #ifdef CONFIG_NUMA
1159 #define vma_policy(vma) ((vma)->vm_policy)
1160 #else
1161 #define vma_policy(vma) NULL
1162 #endif
1163
1164 /*
1165 * Opaque type representing current mm_struct flag state. Must be accessed via
1166 * mm_flags_xxx() helper functions.
1167 */
1168 #define NUM_MM_FLAG_BITS (64)
1169 typedef struct {
1170 DECLARE_BITMAP(__mm_flags, NUM_MM_FLAG_BITS);
1171 } __private mm_flags_t;
1172
1173 struct kioctx_table;
1174 struct iommu_mm_data;
1175 struct mm_struct {
1176 struct {
1177 /*
1178 * Fields which are often written to are placed in a separate
1179 * cache line.
1180 */
1181 struct {
1182 /**
1183 * @mm_count: The number of references to &struct
1184 * mm_struct (@mm_users count as 1).
1185 *
1186 * Use mmgrab()/mmdrop() to modify. When this drops to
1187 * 0, the &struct mm_struct is freed.
1188 */
1189 atomic_t mm_count;
1190 } ____cacheline_aligned_in_smp;
1191
1192 struct maple_tree mm_mt;
1193
1194 unsigned long mmap_base; /* base of mmap area */
1195 unsigned long mmap_legacy_base; /* base of mmap area in bottom-up allocations */
1196 #ifdef CONFIG_HAVE_ARCH_COMPAT_MMAP_BASES
1197 /* Base addresses for compatible mmap() */
1198 unsigned long mmap_compat_base;
1199 unsigned long mmap_compat_legacy_base;
1200 #endif
1201 unsigned long task_size; /* size of task vm space */
1202 pgd_t * pgd;
1203
1204 #ifdef CONFIG_MEMBARRIER
1205 /**
1206 * @membarrier_state: Flags controlling membarrier behavior.
1207 *
1208 * This field is close to @pgd to hopefully fit in the same
1209 * cache-line, which needs to be touched by switch_mm().
1210 */
1211 atomic_t membarrier_state;
1212 #endif
1213
1214 /**
1215 * @mm_users: The number of users including userspace.
1216 *
1217 * Use mmget()/mmget_not_zero()/mmput() to modify. When this
1218 * drops to 0 (i.e. when the task exits and there are no other
1219 * temporary reference holders), we also release a reference on
1220 * @mm_count (which may then free the &struct mm_struct if
1221 * @mm_count also drops to 0).
1222 */
1223 atomic_t mm_users;
1224
1225 /* MM CID related storage */
1226 struct mm_mm_cid mm_cid;
1227
1228 /* sched_cache related statistics */
1229 struct sched_cache_stat sc_stat;
1230 #ifdef CONFIG_MMU
1231 atomic_long_t pgtables_bytes; /* size of all page tables */
1232 #endif
1233 int map_count; /* number of VMAs */
1234
1235 spinlock_t page_table_lock; /* Protects page tables and some
1236 * counters
1237 */
1238 /*
1239 * Typically the current mmap_lock's offset is 56 bytes from
1240 * the last cacheline boundary, which is very optimal, as
1241 * its two hot fields 'count' and 'owner' sit in 2 different
1242 * cachelines, and when mmap_lock is highly contended, both
1243 * of the 2 fields will be accessed frequently, current layout
1244 * will help to reduce cache bouncing.
1245 *
1246 * So please be careful with adding new fields before
1247 * mmap_lock, which can easily push the 2 fields into one
1248 * cacheline.
1249 */
1250 struct rw_semaphore mmap_lock;
1251
1252 struct list_head mmlist; /* List of maybe swapped mm's. These
1253 * are globally strung together off
1254 * init_mm.mmlist, and are protected
1255 * by mmlist_lock
1256 */
1257 #ifdef CONFIG_PER_VMA_LOCK
1258 struct rcuwait vma_writer_wait;
1259 /*
1260 * This field has lock-like semantics, meaning it is sometimes
1261 * accessed with ACQUIRE/RELEASE semantics.
1262 * Roughly speaking, incrementing the sequence number is
1263 * equivalent to releasing locks on VMAs; reading the sequence
1264 * number can be part of taking a read lock on a VMA.
1265 * Incremented every time mmap_lock is write-locked/unlocked.
1266 * Initialized to 0, therefore odd values indicate mmap_lock
1267 * is write-locked and even values that it's released.
1268 *
1269 * Can be modified under write mmap_lock using RELEASE
1270 * semantics.
1271 * Can be read with no other protection when holding write
1272 * mmap_lock.
1273 * Can be read with ACQUIRE semantics if not holding write
1274 * mmap_lock.
1275 */
1276 seqcount_t mm_lock_seq;
1277 #endif
1278 struct futex_mm_data futex;
1279
1280 unsigned long hiwater_rss; /* High-watermark of RSS usage */
1281 unsigned long hiwater_vm; /* High-water virtual memory usage */
1282
1283 unsigned long total_vm; /* Total pages mapped */
1284 unsigned long locked_vm; /* Pages that have PG_mlocked set */
1285 atomic64_t pinned_vm; /* Refcount permanently increased */
1286 unsigned long data_vm; /* VM_WRITE & ~VM_SHARED & ~VM_STACK */
1287 unsigned long exec_vm; /* VM_EXEC & ~VM_WRITE & ~VM_STACK */
1288 unsigned long stack_vm; /* VM_STACK */
1289 union {
1290 /* Temporary while VMA flags are being converted. */
1291 vm_flags_t def_flags;
1292 vma_flags_t def_vma_flags;
1293 };
1294
1295 /**
1296 * @write_protect_seq: Locked when any thread is write
1297 * protecting pages mapped by this mm to enforce a later COW,
1298 * for instance during page table copying for fork().
1299 */
1300 seqcount_t write_protect_seq;
1301
1302 spinlock_t arg_lock; /* protect the below fields */
1303
1304 unsigned long start_code, end_code, start_data, end_data;
1305 unsigned long start_brk, brk, start_stack;
1306 unsigned long arg_start, arg_end, env_start, env_end;
1307
1308 unsigned long saved_auxv[AT_VECTOR_SIZE]; /* for /proc/PID/auxv */
1309
1310 #ifdef CONFIG_ARCH_HAS_ELF_CORE_EFLAGS
1311 /* the ABI-related flags from the ELF header. Used for core dump */
1312 unsigned long saved_e_flags;
1313 #endif
1314
1315 struct percpu_counter rss_stat[NR_MM_COUNTERS];
1316
1317 struct linux_binfmt *binfmt;
1318
1319 /* Architecture-specific MM context */
1320 mm_context_t context;
1321
1322 mm_flags_t flags; /* Must use mm_flags_* hlpers to access */
1323
1324 #ifdef CONFIG_AIO
1325 spinlock_t ioctx_lock;
1326 struct kioctx_table __rcu *ioctx_table;
1327 #endif
1328 #ifdef CONFIG_MEMCG
1329 /*
1330 * "owner" points to a task that is regarded as the canonical
1331 * user/owner of this mm. All of the following must be true in
1332 * order for it to be changed:
1333 *
1334 * current == mm->owner
1335 * current->mm != mm
1336 * new_owner->mm == mm
1337 * new_owner->alloc_lock is held
1338 */
1339 struct task_struct __rcu *owner;
1340 #endif
1341
1342 /* store ref to file /proc/<pid>/exe symlink points to */
1343 struct file __rcu *exe_file;
1344 #ifdef CONFIG_MMU_NOTIFIER
1345 struct mmu_notifier_subscriptions *notifier_subscriptions;
1346 #endif
1347 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) && !defined(CONFIG_SPLIT_PMD_PTLOCKS)
1348 pgtable_t pmd_huge_pte; /* protected by page_table_lock */
1349 #endif
1350 #ifdef CONFIG_NUMA_BALANCING
1351 /*
1352 * numa_next_scan is the next time that PTEs will be remapped
1353 * PROT_NONE to trigger NUMA hinting faults; such faults gather
1354 * statistics and migrate pages to new nodes if necessary.
1355 */
1356 unsigned long numa_next_scan;
1357
1358 /* Restart point for scanning and remapping PTEs. */
1359 unsigned long numa_scan_offset;
1360
1361 /* numa_scan_seq prevents two threads remapping PTEs. */
1362 int numa_scan_seq;
1363 #endif
1364 /*
1365 * An operation with batched TLB flushing is going on. Anything
1366 * that can move process memory needs to flush the TLB when
1367 * moving a PROT_NONE mapped page.
1368 */
1369 atomic_t tlb_flush_pending;
1370 #ifdef CONFIG_ARCH_WANT_BATCHED_UNMAP_TLB_FLUSH
1371 /* See flush_tlb_batched_pending() */
1372 atomic_t tlb_flush_batched;
1373 #endif
1374 struct uprobes_state uprobes_state;
1375 #ifdef CONFIG_PREEMPT_RT
1376 struct rcu_head delayed_drop;
1377 #endif
1378 #ifdef CONFIG_HUGETLB_PAGE
1379 atomic_long_t hugetlb_usage;
1380 #endif
1381 struct work_struct async_put_work;
1382
1383 #ifdef CONFIG_IOMMU_MM_DATA
1384 struct iommu_mm_data *iommu_mm;
1385 #endif
1386 #ifdef CONFIG_KSM
1387 /*
1388 * Represent how many pages of this process are involved in KSM
1389 * merging (not including ksm_zero_pages).
1390 */
1391 unsigned long ksm_merging_pages;
1392 /*
1393 * Represent how many pages are checked for ksm merging
1394 * including merged and not merged.
1395 */
1396 unsigned long ksm_rmap_items;
1397 /*
1398 * Represent how many empty pages are merged with kernel zero
1399 * pages when enabling KSM use_zero_pages.
1400 */
1401 atomic_long_t ksm_zero_pages;
1402 #endif /* CONFIG_KSM */
1403 #ifdef CONFIG_LRU_GEN_WALKS_MMU
1404 struct {
1405 /* this mm_struct is on lru_gen_mm_list */
1406 struct list_head list;
1407 /*
1408 * Set when switching to this mm_struct, as a hint of
1409 * whether it has been used since the last time per-node
1410 * page table walkers cleared the corresponding bits.
1411 */
1412 unsigned long bitmap;
1413 #ifdef CONFIG_MEMCG
1414 /* points to the memcg of "owner" above */
1415 struct mem_cgroup *memcg;
1416 #endif
1417 } lru_gen;
1418 #endif /* CONFIG_LRU_GEN_WALKS_MMU */
1419 #ifdef CONFIG_MM_ID
1420 mm_id_t mm_id;
1421 #endif /* CONFIG_MM_ID */
1422 } __randomize_layout;
1423
1424 /*
1425 * The mm_cpumask needs to be at the end of mm_struct, because it
1426 * is dynamically sized based on nr_cpu_ids.
1427 */
1428 char flexible_array[] __aligned(__alignof__(unsigned long));
1429 };
1430
1431 /* Copy value to the first system word of mm flags, non-atomically. */
__mm_flags_overwrite_word(struct mm_struct * mm,unsigned long value)1432 static inline void __mm_flags_overwrite_word(struct mm_struct *mm, unsigned long value)
1433 {
1434 *ACCESS_PRIVATE(&mm->flags, __mm_flags) = value;
1435 }
1436
1437 /* Obtain a read-only view of the mm flags bitmap. */
__mm_flags_get_bitmap(const struct mm_struct * mm)1438 static inline const unsigned long *__mm_flags_get_bitmap(const struct mm_struct *mm)
1439 {
1440 return (const unsigned long *)ACCESS_PRIVATE(&mm->flags, __mm_flags);
1441 }
1442
1443 /* Read the first system word of mm flags, non-atomically. */
__mm_flags_get_word(const struct mm_struct * mm)1444 static inline unsigned long __mm_flags_get_word(const struct mm_struct *mm)
1445 {
1446 return *__mm_flags_get_bitmap(mm);
1447 }
1448
1449 /*
1450 * Update the first system word of mm flags ONLY, applying the specified mask to
1451 * it, then setting all flags specified by bits.
1452 */
__mm_flags_set_mask_bits_word(struct mm_struct * mm,unsigned long mask,unsigned long bits)1453 static inline void __mm_flags_set_mask_bits_word(struct mm_struct *mm,
1454 unsigned long mask, unsigned long bits)
1455 {
1456 unsigned long *bitmap = ACCESS_PRIVATE(&mm->flags, __mm_flags);
1457
1458 set_mask_bits(bitmap, mask, bits);
1459 }
1460
1461 #define MM_MT_FLAGS (MT_FLAGS_ALLOC_RANGE | MT_FLAGS_LOCK_EXTERN | \
1462 MT_FLAGS_USE_RCU)
1463 extern struct mm_struct init_mm;
1464
1465 #define MM_STRUCT_FLEXIBLE_ARRAY_INIT \
1466 { \
1467 [0 ... sizeof(cpumask_t) + MM_CID_STATIC_SIZE - 1] = 0 \
1468 }
1469
1470 /* Pointer magic because the dynamic array size confuses some compilers. */
mm_init_cpumask(struct mm_struct * mm)1471 static inline void mm_init_cpumask(struct mm_struct *mm)
1472 {
1473 unsigned long cpu_bitmap = (unsigned long)mm;
1474
1475 cpu_bitmap += offsetof(struct mm_struct, flexible_array);
1476 cpumask_clear((struct cpumask *)cpu_bitmap);
1477 }
1478
1479 /* Future-safe accessor for struct mm_struct's cpu_vm_mask. */
mm_cpumask(struct mm_struct * mm)1480 static inline cpumask_t *mm_cpumask(struct mm_struct *mm)
1481 {
1482 return (struct cpumask *)&mm->flexible_array;
1483 }
1484
1485 #ifdef CONFIG_LRU_GEN
1486
1487 struct lru_gen_mm_list {
1488 /* mm_struct list for page table walkers */
1489 struct list_head fifo;
1490 /* protects the list above */
1491 spinlock_t lock;
1492 };
1493
1494 #endif /* CONFIG_LRU_GEN */
1495
1496 #ifdef CONFIG_LRU_GEN_WALKS_MMU
1497
1498 void lru_gen_add_mm(struct mm_struct *mm);
1499 void lru_gen_del_mm(struct mm_struct *mm);
1500 void lru_gen_migrate_mm(struct mm_struct *mm);
1501
lru_gen_init_mm(struct mm_struct * mm)1502 static inline void lru_gen_init_mm(struct mm_struct *mm)
1503 {
1504 INIT_LIST_HEAD(&mm->lru_gen.list);
1505 mm->lru_gen.bitmap = 0;
1506 #ifdef CONFIG_MEMCG
1507 mm->lru_gen.memcg = NULL;
1508 #endif
1509 }
1510
lru_gen_use_mm(struct mm_struct * mm)1511 static inline void lru_gen_use_mm(struct mm_struct *mm)
1512 {
1513 /*
1514 * When the bitmap is set, page reclaim knows this mm_struct has been
1515 * used since the last time it cleared the bitmap. So it might be worth
1516 * walking the page tables of this mm_struct to clear the accessed bit.
1517 */
1518 WRITE_ONCE(mm->lru_gen.bitmap, -1);
1519 }
1520
1521 #else /* !CONFIG_LRU_GEN_WALKS_MMU */
1522
lru_gen_add_mm(struct mm_struct * mm)1523 static inline void lru_gen_add_mm(struct mm_struct *mm)
1524 {
1525 }
1526
lru_gen_del_mm(struct mm_struct * mm)1527 static inline void lru_gen_del_mm(struct mm_struct *mm)
1528 {
1529 }
1530
lru_gen_migrate_mm(struct mm_struct * mm)1531 static inline void lru_gen_migrate_mm(struct mm_struct *mm)
1532 {
1533 }
1534
lru_gen_init_mm(struct mm_struct * mm)1535 static inline void lru_gen_init_mm(struct mm_struct *mm)
1536 {
1537 }
1538
lru_gen_use_mm(struct mm_struct * mm)1539 static inline void lru_gen_use_mm(struct mm_struct *mm)
1540 {
1541 }
1542
1543 #endif /* CONFIG_LRU_GEN_WALKS_MMU */
1544
1545 struct vma_iterator {
1546 struct ma_state mas;
1547 };
1548
1549 #define VMA_ITERATOR(name, __mm, __addr) \
1550 struct vma_iterator name = { \
1551 .mas = { \
1552 .tree = &(__mm)->mm_mt, \
1553 .index = __addr, \
1554 .node = NULL, \
1555 .status = ma_start, \
1556 }, \
1557 }
1558
vma_iter_init(struct vma_iterator * vmi,struct mm_struct * mm,unsigned long addr)1559 static inline void vma_iter_init(struct vma_iterator *vmi,
1560 struct mm_struct *mm, unsigned long addr)
1561 {
1562 mas_init(&vmi->mas, &mm->mm_mt, addr);
1563 }
1564
1565 #ifdef CONFIG_SCHED_MM_CID
1566 /*
1567 * mm_cpus_allowed: Union of all mm's threads allowed CPUs.
1568 */
mm_cpus_allowed(struct mm_struct * mm)1569 static inline cpumask_t *mm_cpus_allowed(struct mm_struct *mm)
1570 {
1571 unsigned long bitmap = (unsigned long)mm;
1572
1573 bitmap += offsetof(struct mm_struct, flexible_array);
1574 /* Skip cpu_bitmap */
1575 bitmap += cpumask_size();
1576 return (struct cpumask *)bitmap;
1577 }
1578
1579 /* Accessor for struct mm_struct's cidmask. */
mm_cidmask(struct mm_struct * mm)1580 static inline unsigned long *mm_cidmask(struct mm_struct *mm)
1581 {
1582 unsigned long cid_bitmap = (unsigned long)mm_cpus_allowed(mm);
1583
1584 /* Skip mm_cpus_allowed */
1585 cid_bitmap += cpumask_size();
1586 return (unsigned long *)cid_bitmap;
1587 }
1588
1589 void mm_init_cid(struct mm_struct *mm, struct task_struct *p);
1590
mm_alloc_cid_noprof(struct mm_struct * mm,struct task_struct * p)1591 static inline int mm_alloc_cid_noprof(struct mm_struct *mm, struct task_struct *p)
1592 {
1593 mm->mm_cid.pcpu = alloc_percpu_noprof(struct mm_cid_pcpu);
1594 if (!mm->mm_cid.pcpu)
1595 return -ENOMEM;
1596 mm_init_cid(mm, p);
1597 return 0;
1598 }
1599 # define mm_alloc_cid(...) alloc_hooks(mm_alloc_cid_noprof(__VA_ARGS__))
1600
mm_destroy_cid(struct mm_struct * mm)1601 static inline void mm_destroy_cid(struct mm_struct *mm)
1602 {
1603 free_percpu(mm->mm_cid.pcpu);
1604 mm->mm_cid.pcpu = NULL;
1605 }
1606
mm_cid_size(void)1607 static inline unsigned int mm_cid_size(void)
1608 {
1609 /* mm_cpus_allowed(), mm_cidmask(). */
1610 return cpumask_size() + bitmap_size(num_possible_cpus());
1611 }
1612
1613 /* Use 2 * NR_CPUS as worse case for static allocation. */
1614 # define MM_CID_STATIC_SIZE (2 * sizeof(cpumask_t))
1615 #else /* CONFIG_SCHED_MM_CID */
mm_init_cid(struct mm_struct * mm,struct task_struct * p)1616 static inline void mm_init_cid(struct mm_struct *mm, struct task_struct *p) { }
mm_alloc_cid(struct mm_struct * mm,struct task_struct * p)1617 static inline int mm_alloc_cid(struct mm_struct *mm, struct task_struct *p) { return 0; }
mm_destroy_cid(struct mm_struct * mm)1618 static inline void mm_destroy_cid(struct mm_struct *mm) { }
mm_cid_size(void)1619 static inline unsigned int mm_cid_size(void)
1620 {
1621 return 0;
1622 }
1623 # define MM_CID_STATIC_SIZE 0
1624 #endif /* CONFIG_SCHED_MM_CID */
1625
1626 #ifdef CONFIG_SCHED_CACHE
1627 void mm_init_sched(struct mm_struct *mm,
1628 struct sched_cache_time __percpu *pcpu_sched);
1629
mm_alloc_sched_noprof(struct mm_struct * mm)1630 static inline int mm_alloc_sched_noprof(struct mm_struct *mm)
1631 {
1632 struct sched_cache_time __percpu *pcpu_sched =
1633 alloc_percpu_noprof(struct sched_cache_time);
1634
1635 if (!pcpu_sched)
1636 return -ENOMEM;
1637
1638 mm_init_sched(mm, pcpu_sched);
1639 return 0;
1640 }
1641
1642 #define mm_alloc_sched(...) alloc_hooks(mm_alloc_sched_noprof(__VA_ARGS__))
1643
mm_destroy_sched(struct mm_struct * mm)1644 static inline void mm_destroy_sched(struct mm_struct *mm)
1645 {
1646 free_percpu(mm->sc_stat.pcpu_sched);
1647 mm->sc_stat.pcpu_sched = NULL;
1648 }
1649 #else /* !CONFIG_SCHED_CACHE */
1650
mm_alloc_sched(struct mm_struct * mm)1651 static inline int mm_alloc_sched(struct mm_struct *mm) { return 0; }
mm_destroy_sched(struct mm_struct * mm)1652 static inline void mm_destroy_sched(struct mm_struct *mm) { }
1653
1654 #endif /* CONFIG_SCHED_CACHE */
1655
1656 struct mmu_gather;
1657 extern void tlb_gather_mmu(struct mmu_gather *tlb, struct mm_struct *mm);
1658 extern void tlb_gather_mmu_fullmm(struct mmu_gather *tlb, struct mm_struct *mm);
1659 void tlb_gather_mmu_vma(struct mmu_gather *tlb, struct vm_area_struct *vma);
1660 extern void tlb_finish_mmu(struct mmu_gather *tlb);
1661
1662 struct vm_fault;
1663
1664 /**
1665 * typedef vm_fault_t - Return type for page fault handlers.
1666 *
1667 * Page fault handlers return a bitmask of %VM_FAULT values.
1668 */
1669 typedef __bitwise unsigned int vm_fault_t;
1670
1671 /**
1672 * enum vm_fault_reason - Page fault handlers return a bitmask of
1673 * these values to tell the core VM what happened when handling the
1674 * fault. Used to decide whether a process gets delivered SIGBUS or
1675 * just gets major/minor fault counters bumped up.
1676 *
1677 * @VM_FAULT_OOM: Out Of Memory
1678 * @VM_FAULT_SIGBUS: Bad access
1679 * @VM_FAULT_MAJOR: Page read from storage
1680 * @VM_FAULT_HWPOISON: Hit poisoned small page
1681 * @VM_FAULT_HWPOISON_LARGE: Hit poisoned large page. Index encoded
1682 * in upper bits
1683 * @VM_FAULT_SIGSEGV: segmentation fault
1684 * @VM_FAULT_NOPAGE: ->fault installed the pte, not return page
1685 * @VM_FAULT_LOCKED: ->fault locked the returned page
1686 * @VM_FAULT_RETRY: ->fault blocked, must retry
1687 * @VM_FAULT_FALLBACK: huge page fault failed, fall back to small
1688 * @VM_FAULT_DONE_COW: ->fault has fully handled COW
1689 * @VM_FAULT_NEEDDSYNC: ->fault did not modify page tables and needs
1690 * fsync() to complete (for synchronous page faults
1691 * in DAX)
1692 * @VM_FAULT_COMPLETED: ->fault completed, meanwhile mmap lock released
1693 * @VM_FAULT_HINDEX_MASK: mask HINDEX value
1694 *
1695 */
1696 enum vm_fault_reason {
1697 VM_FAULT_OOM = (__force vm_fault_t)0x000001,
1698 VM_FAULT_SIGBUS = (__force vm_fault_t)0x000002,
1699 VM_FAULT_MAJOR = (__force vm_fault_t)0x000004,
1700 VM_FAULT_HWPOISON = (__force vm_fault_t)0x000010,
1701 VM_FAULT_HWPOISON_LARGE = (__force vm_fault_t)0x000020,
1702 VM_FAULT_SIGSEGV = (__force vm_fault_t)0x000040,
1703 VM_FAULT_NOPAGE = (__force vm_fault_t)0x000100,
1704 VM_FAULT_LOCKED = (__force vm_fault_t)0x000200,
1705 VM_FAULT_RETRY = (__force vm_fault_t)0x000400,
1706 VM_FAULT_FALLBACK = (__force vm_fault_t)0x000800,
1707 VM_FAULT_DONE_COW = (__force vm_fault_t)0x001000,
1708 VM_FAULT_NEEDDSYNC = (__force vm_fault_t)0x002000,
1709 VM_FAULT_COMPLETED = (__force vm_fault_t)0x004000,
1710 VM_FAULT_HINDEX_MASK = (__force vm_fault_t)0x0f0000,
1711 };
1712
1713 /* Encode hstate index for a hwpoisoned large page */
1714 #define VM_FAULT_SET_HINDEX(x) ((__force vm_fault_t)((x) << 16))
1715 #define VM_FAULT_GET_HINDEX(x) (((__force unsigned int)(x) >> 16) & 0xf)
1716
1717 #define VM_FAULT_ERROR (VM_FAULT_OOM | VM_FAULT_SIGBUS | \
1718 VM_FAULT_SIGSEGV | VM_FAULT_HWPOISON | \
1719 VM_FAULT_HWPOISON_LARGE | VM_FAULT_FALLBACK)
1720
1721 #define VM_FAULT_RESULT_TRACE \
1722 { (__force u32)VM_FAULT_OOM, "OOM" }, \
1723 { (__force u32)VM_FAULT_SIGBUS, "SIGBUS" }, \
1724 { (__force u32)VM_FAULT_MAJOR, "MAJOR" }, \
1725 { (__force u32)VM_FAULT_HWPOISON, "HWPOISON" }, \
1726 { (__force u32)VM_FAULT_HWPOISON_LARGE, "HWPOISON_LARGE" }, \
1727 { (__force u32)VM_FAULT_SIGSEGV, "SIGSEGV" }, \
1728 { (__force u32)VM_FAULT_NOPAGE, "NOPAGE" }, \
1729 { (__force u32)VM_FAULT_LOCKED, "LOCKED" }, \
1730 { (__force u32)VM_FAULT_RETRY, "RETRY" }, \
1731 { (__force u32)VM_FAULT_FALLBACK, "FALLBACK" }, \
1732 { (__force u32)VM_FAULT_DONE_COW, "DONE_COW" }, \
1733 { (__force u32)VM_FAULT_NEEDDSYNC, "NEEDDSYNC" }, \
1734 { (__force u32)VM_FAULT_COMPLETED, "COMPLETED" }
1735
1736 struct vm_special_mapping {
1737 const char *name; /* The name, e.g. "[vdso]". */
1738
1739 /*
1740 * If .fault is not provided, this points to a
1741 * NULL-terminated array of pages that back the special mapping.
1742 *
1743 * This must not be NULL unless .fault is provided.
1744 */
1745 struct page **pages;
1746
1747 /*
1748 * If non-NULL, then this is called to resolve page faults
1749 * on the special mapping. If used, .pages is not checked.
1750 */
1751 vm_fault_t (*fault)(const struct vm_special_mapping *sm,
1752 struct vm_area_struct *vma,
1753 struct vm_fault *vmf);
1754
1755 int (*mremap)(const struct vm_special_mapping *sm,
1756 struct vm_area_struct *new_vma);
1757
1758 void (*close)(const struct vm_special_mapping *sm,
1759 struct vm_area_struct *vma);
1760 };
1761
1762 enum tlb_flush_reason {
1763 TLB_FLUSH_ON_TASK_SWITCH,
1764 TLB_REMOTE_SHOOTDOWN,
1765 TLB_LOCAL_SHOOTDOWN,
1766 TLB_LOCAL_MM_SHOOTDOWN,
1767 TLB_REMOTE_SEND_IPI,
1768 TLB_REMOTE_WRONG_CPU,
1769 };
1770
1771 /**
1772 * enum fault_flag - Fault flag definitions.
1773 * @FAULT_FLAG_WRITE: Fault was a write fault.
1774 * @FAULT_FLAG_MKWRITE: Fault was mkwrite of existing PTE.
1775 * @FAULT_FLAG_ALLOW_RETRY: Allow to retry the fault if blocked.
1776 * @FAULT_FLAG_RETRY_NOWAIT: Don't drop mmap_lock and wait when retrying.
1777 * @FAULT_FLAG_KILLABLE: The fault task is in SIGKILL killable region.
1778 * @FAULT_FLAG_TRIED: The fault has been tried once.
1779 * @FAULT_FLAG_USER: The fault originated in userspace.
1780 * @FAULT_FLAG_REMOTE: The fault is not for current task/mm.
1781 * @FAULT_FLAG_INSTRUCTION: The fault was during an instruction fetch.
1782 * @FAULT_FLAG_INTERRUPTIBLE: The fault can be interrupted by non-fatal signals.
1783 * @FAULT_FLAG_UNSHARE: The fault is an unsharing request to break COW in a
1784 * COW mapping, making sure that an exclusive anon page is
1785 * mapped after the fault.
1786 * @FAULT_FLAG_ORIG_PTE_VALID: whether the fault has vmf->orig_pte cached.
1787 * We should only access orig_pte if this flag set.
1788 * @FAULT_FLAG_VMA_LOCK: The fault is handled under VMA lock.
1789 *
1790 * About @FAULT_FLAG_ALLOW_RETRY and @FAULT_FLAG_TRIED: we can specify
1791 * whether we would allow page faults to retry by specifying these two
1792 * fault flags correctly. Currently there can be three legal combinations:
1793 *
1794 * (a) ALLOW_RETRY and !TRIED: this means the page fault allows retry, and
1795 * this is the first try
1796 *
1797 * (b) ALLOW_RETRY and TRIED: this means the page fault allows retry, and
1798 * we've already tried at least once
1799 *
1800 * (c) !ALLOW_RETRY and !TRIED: this means the page fault does not allow retry
1801 *
1802 * The unlisted combination (!ALLOW_RETRY && TRIED) is illegal and should never
1803 * be used. Note that page faults can be allowed to retry for multiple times,
1804 * in which case we'll have an initial fault with flags (a) then later on
1805 * continuous faults with flags (b). We should always try to detect pending
1806 * signals before a retry to make sure the continuous page faults can still be
1807 * interrupted if necessary.
1808 *
1809 * The combination FAULT_FLAG_WRITE|FAULT_FLAG_UNSHARE is illegal.
1810 * FAULT_FLAG_UNSHARE is ignored and treated like an ordinary read fault when
1811 * applied to mappings that are not COW mappings.
1812 */
1813 enum fault_flag {
1814 FAULT_FLAG_WRITE = 1 << 0,
1815 FAULT_FLAG_MKWRITE = 1 << 1,
1816 FAULT_FLAG_ALLOW_RETRY = 1 << 2,
1817 FAULT_FLAG_RETRY_NOWAIT = 1 << 3,
1818 FAULT_FLAG_KILLABLE = 1 << 4,
1819 FAULT_FLAG_TRIED = 1 << 5,
1820 FAULT_FLAG_USER = 1 << 6,
1821 FAULT_FLAG_REMOTE = 1 << 7,
1822 FAULT_FLAG_INSTRUCTION = 1 << 8,
1823 FAULT_FLAG_INTERRUPTIBLE = 1 << 9,
1824 FAULT_FLAG_UNSHARE = 1 << 10,
1825 FAULT_FLAG_ORIG_PTE_VALID = 1 << 11,
1826 FAULT_FLAG_VMA_LOCK = 1 << 12,
1827 };
1828
1829 typedef unsigned int __bitwise zap_flags_t;
1830
1831 /* Flags for clear_young_dirty_ptes(). */
1832 typedef int __bitwise cydp_t;
1833
1834 /* Clear the access bit */
1835 #define CYDP_CLEAR_YOUNG ((__force cydp_t)BIT(0))
1836
1837 /* Clear the dirty bit */
1838 #define CYDP_CLEAR_DIRTY ((__force cydp_t)BIT(1))
1839
1840 /*
1841 * FOLL_PIN and FOLL_LONGTERM may be used in various combinations with each
1842 * other. Here is what they mean, and how to use them:
1843 *
1844 *
1845 * FIXME: For pages which are part of a filesystem, mappings are subject to the
1846 * lifetime enforced by the filesystem and we need guarantees that longterm
1847 * users like RDMA and V4L2 only establish mappings which coordinate usage with
1848 * the filesystem. Ideas for this coordination include revoking the longterm
1849 * pin, delaying writeback, bounce buffer page writeback, etc. As FS DAX was
1850 * added after the problem with filesystems was found FS DAX VMAs are
1851 * specifically failed. Filesystem pages are still subject to bugs and use of
1852 * FOLL_LONGTERM should be avoided on those pages.
1853 *
1854 * In the CMA case: long term pins in a CMA region would unnecessarily fragment
1855 * that region. And so, CMA attempts to migrate the page before pinning, when
1856 * FOLL_LONGTERM is specified.
1857 *
1858 * FOLL_PIN indicates that a special kind of tracking (not just page->_refcount,
1859 * but an additional pin counting system) will be invoked. This is intended for
1860 * anything that gets a page reference and then touches page data (for example,
1861 * Direct IO). This lets the filesystem know that some non-file-system entity is
1862 * potentially changing the pages' data. In contrast to FOLL_GET (whose pages
1863 * are released via put_page()), FOLL_PIN pages must be released, ultimately, by
1864 * a call to unpin_user_page().
1865 *
1866 * FOLL_PIN is similar to FOLL_GET: both of these pin pages. They use different
1867 * and separate refcounting mechanisms, however, and that means that each has
1868 * its own acquire and release mechanisms:
1869 *
1870 * FOLL_GET: get_user_pages*() to acquire, and put_page() to release.
1871 *
1872 * FOLL_PIN: pin_user_pages*() to acquire, and unpin_user_pages to release.
1873 *
1874 * FOLL_PIN and FOLL_GET are mutually exclusive for a given function call.
1875 * (The underlying pages may experience both FOLL_GET-based and FOLL_PIN-based
1876 * calls applied to them, and that's perfectly OK. This is a constraint on the
1877 * callers, not on the pages.)
1878 *
1879 * FOLL_PIN should be set internally by the pin_user_pages*() APIs, never
1880 * directly by the caller. That's in order to help avoid mismatches when
1881 * releasing pages: get_user_pages*() pages must be released via put_page(),
1882 * while pin_user_pages*() pages must be released via unpin_user_page().
1883 *
1884 * Please see Documentation/core-api/pin_user_pages.rst for more information.
1885 */
1886
1887 enum {
1888 /* check pte is writable */
1889 FOLL_WRITE = 1 << 0,
1890 /* do get_page on page */
1891 FOLL_GET = 1 << 1,
1892 /* give error on hole if it would be zero */
1893 FOLL_DUMP = 1 << 2,
1894 /* get_user_pages read/write w/o permission */
1895 FOLL_FORCE = 1 << 3,
1896 /*
1897 * if a disk transfer is needed, start the IO and return without waiting
1898 * upon it
1899 */
1900 FOLL_NOWAIT = 1 << 4,
1901 /* do not fault in pages */
1902 FOLL_NOFAULT = 1 << 5,
1903 /* check page is hwpoisoned */
1904 FOLL_HWPOISON = 1 << 6,
1905 /* don't do file mappings */
1906 FOLL_ANON = 1 << 7,
1907 /*
1908 * FOLL_LONGTERM indicates that the page will be held for an indefinite
1909 * time period _often_ under userspace control. This is in contrast to
1910 * iov_iter_get_pages(), whose usages are transient.
1911 */
1912 FOLL_LONGTERM = 1 << 8,
1913 /* split huge pmd before returning */
1914 FOLL_SPLIT_PMD = 1 << 9,
1915 /* allow returning PCI P2PDMA pages */
1916 FOLL_PCI_P2PDMA = 1 << 10,
1917 /* allow interrupts from generic signals */
1918 FOLL_INTERRUPTIBLE = 1 << 11,
1919 /*
1920 * Always honor (trigger) NUMA hinting faults.
1921 *
1922 * FOLL_WRITE implicitly honors NUMA hinting faults because a
1923 * PROT_NONE-mapped page is not writable (exceptions with FOLL_FORCE
1924 * apply). get_user_pages_fast_only() always implicitly honors NUMA
1925 * hinting faults.
1926 */
1927 FOLL_HONOR_NUMA_FAULT = 1 << 12,
1928
1929 /* See also internal only FOLL flags in mm/internal.h */
1930 };
1931
1932 /* mm flags */
1933
1934 /*
1935 * Bits 0 and 1 were dumpability; that moved to task->exec_state. Reserve
1936 * the bits so MMF_DUMP_FILTER_* positions stay stable for the
1937 * /proc/<pid>/coredump_filter ABI.
1938 */
1939 #define MMF_DUMPABLE_BITS 2
1940 /* coredump filter bits */
1941 #define MMF_DUMP_ANON_PRIVATE 2
1942 #define MMF_DUMP_ANON_SHARED 3
1943 #define MMF_DUMP_MAPPED_PRIVATE 4
1944 #define MMF_DUMP_MAPPED_SHARED 5
1945 #define MMF_DUMP_ELF_HEADERS 6
1946 #define MMF_DUMP_HUGETLB_PRIVATE 7
1947 #define MMF_DUMP_HUGETLB_SHARED 8
1948 #define MMF_DUMP_DAX_PRIVATE 9
1949 #define MMF_DUMP_DAX_SHARED 10
1950
1951 #define MMF_DUMP_FILTER_SHIFT MMF_DUMPABLE_BITS
1952 #define MMF_DUMP_FILTER_BITS 9
1953 #define MMF_DUMP_FILTER_MASK \
1954 ((BIT(MMF_DUMP_FILTER_BITS) - 1) << MMF_DUMP_FILTER_SHIFT)
1955 #define MMF_DUMP_FILTER_DEFAULT \
1956 (BIT(MMF_DUMP_ANON_PRIVATE) | BIT(MMF_DUMP_ANON_SHARED) | \
1957 BIT(MMF_DUMP_HUGETLB_PRIVATE) | MMF_DUMP_MASK_DEFAULT_ELF)
1958
1959 #ifdef CONFIG_CORE_DUMP_DEFAULT_ELF_HEADERS
1960 # define MMF_DUMP_MASK_DEFAULT_ELF BIT(MMF_DUMP_ELF_HEADERS)
1961 #else
1962 # define MMF_DUMP_MASK_DEFAULT_ELF 0
1963 #endif
1964 /* leave room for more dump flags */
1965 #define MMF_VM_MERGEABLE 16 /* KSM may merge identical pages */
1966 #define MMF_VM_HUGEPAGE 17 /* set when mm is available for khugepaged */
1967
1968 #define MMF_HUGE_ZERO_FOLIO 18 /* mm has ever used the global huge zero folio */
1969
1970 #define MMF_HAS_UPROBES 19 /* has uprobes */
1971 #define MMF_RECALC_UPROBES 20 /* MMF_HAS_UPROBES can be wrong */
1972 #define MMF_OOM_SKIP 21 /* mm is of no interest for the OOM killer */
1973 #define MMF_UNSTABLE 22 /* mm is unstable for copy_from_user */
1974 #define MMF_DISABLE_THP_EXCEPT_ADVISED 23 /* no THP except when advised (e.g., VM_HUGEPAGE) */
1975 #define MMF_DISABLE_THP_COMPLETELY 24 /* no THP for all VMAs */
1976 #define MMF_DISABLE_THP_MASK (BIT(MMF_DISABLE_THP_COMPLETELY) | \
1977 BIT(MMF_DISABLE_THP_EXCEPT_ADVISED))
1978 #define MMF_OOM_REAP_QUEUED 25 /* mm was queued for oom_reaper */
1979 #define MMF_MULTIPROCESS 26 /* mm is shared between processes */
1980 /*
1981 * MMF_HAS_PINNED: Whether this mm has pinned any pages. This can be either
1982 * replaced in the future by mm.pinned_vm when it becomes stable, or grow into
1983 * a counter on its own. We're aggresive on this bit for now: even if the
1984 * pinned pages were unpinned later on, we'll still keep this bit set for the
1985 * lifecycle of this mm, just for simplicity.
1986 */
1987 #define MMF_HAS_PINNED 27 /* FOLL_PIN has run, never cleared */
1988
1989 #define MMF_HAS_MDWE 28
1990 #define MMF_HAS_MDWE_MASK BIT(MMF_HAS_MDWE)
1991
1992 #define MMF_HAS_MDWE_NO_INHERIT 29
1993
1994 #define MMF_VM_MERGE_ANY 30
1995 #define MMF_VM_MERGE_ANY_MASK BIT(MMF_VM_MERGE_ANY)
1996
1997 #define MMF_TOPDOWN 31 /* mm searches top down by default */
1998 #define MMF_TOPDOWN_MASK BIT(MMF_TOPDOWN)
1999
2000 #define MMF_INIT_LEGACY_MASK (MMF_DUMP_FILTER_MASK |\
2001 MMF_DISABLE_THP_MASK | MMF_HAS_MDWE_MASK |\
2002 MMF_VM_MERGE_ANY_MASK | MMF_TOPDOWN_MASK)
2003
2004 /* Legacy flags must fit within 32 bits. */
2005 static_assert((u64)MMF_INIT_LEGACY_MASK <= (u64)UINT_MAX);
2006
2007 /*
2008 * Initialise legacy flags according to masks, propagating selected flags on
2009 * fork. Further flag manipulation can be performed by the caller.
2010 */
mmf_init_legacy_flags(unsigned long flags)2011 static inline unsigned long mmf_init_legacy_flags(unsigned long flags)
2012 {
2013 if (flags & (1UL << MMF_HAS_MDWE_NO_INHERIT))
2014 flags &= ~((1UL << MMF_HAS_MDWE) |
2015 (1UL << MMF_HAS_MDWE_NO_INHERIT));
2016 return flags & MMF_INIT_LEGACY_MASK;
2017 }
2018
2019 #endif /* _LINUX_MM_TYPES_H */
2020