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page-flags: define behavior of LRU-related flags on compound pages
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CommitLineData
1da177e4
LT
1/*
2 * Macros for manipulating and testing page->flags
3 */
4
5#ifndef PAGE_FLAGS_H
6#define PAGE_FLAGS_H
7
f886ed44 8#include <linux/types.h>
187f1882 9#include <linux/bug.h>
072bb0aa 10#include <linux/mmdebug.h>
9223b419 11#ifndef __GENERATING_BOUNDS_H
6d777953 12#include <linux/mm_types.h>
01fc0ac1 13#include <generated/bounds.h>
9223b419 14#endif /* !__GENERATING_BOUNDS_H */
f886ed44 15
1da177e4
LT
16/*
17 * Various page->flags bits:
18 *
19 * PG_reserved is set for special pages, which can never be swapped out. Some
20 * of them might not even exist (eg empty_bad_page)...
21 *
da6052f7
NP
22 * The PG_private bitflag is set on pagecache pages if they contain filesystem
23 * specific data (which is normally at page->private). It can be used by
24 * private allocations for its own usage.
1da177e4 25 *
da6052f7
NP
26 * During initiation of disk I/O, PG_locked is set. This bit is set before I/O
27 * and cleared when writeback _starts_ or when read _completes_. PG_writeback
28 * is set before writeback starts and cleared when it finishes.
29 *
30 * PG_locked also pins a page in pagecache, and blocks truncation of the file
31 * while it is held.
32 *
33 * page_waitqueue(page) is a wait queue of all tasks waiting for the page
34 * to become unlocked.
1da177e4
LT
35 *
36 * PG_uptodate tells whether the page's contents is valid. When a read
37 * completes, the page becomes uptodate, unless a disk I/O error happened.
38 *
da6052f7
NP
39 * PG_referenced, PG_reclaim are used for page reclaim for anonymous and
40 * file-backed pagecache (see mm/vmscan.c).
1da177e4
LT
41 *
42 * PG_error is set to indicate that an I/O error occurred on this page.
43 *
44 * PG_arch_1 is an architecture specific page state bit. The generic code
45 * guarantees that this bit is cleared for a page when it first is entered into
46 * the page cache.
47 *
48 * PG_highmem pages are not permanently mapped into the kernel virtual address
49 * space, they need to be kmapped separately for doing IO on the pages. The
50 * struct page (these bits with information) are always mapped into kernel
51 * address space...
da6052f7 52 *
d466f2fc
AK
53 * PG_hwpoison indicates that a page got corrupted in hardware and contains
54 * data with incorrect ECC bits that triggered a machine check. Accessing is
55 * not safe since it may cause another machine check. Don't touch!
1da177e4
LT
56 */
57
58/*
59 * Don't use the *_dontuse flags. Use the macros. Otherwise you'll break
91fc8ab3
AW
60 * locked- and dirty-page accounting.
61 *
62 * The page flags field is split into two parts, the main flags area
63 * which extends from the low bits upwards, and the fields area which
64 * extends from the high bits downwards.
65 *
66 * | FIELD | ... | FLAGS |
9223b419
CL
67 * N-1 ^ 0
68 * (NR_PAGEFLAGS)
91fc8ab3 69 *
9223b419
CL
70 * The fields area is reserved for fields mapping zone, node (for NUMA) and
71 * SPARSEMEM section (for variants of SPARSEMEM that require section ids like
72 * SPARSEMEM_EXTREME with !SPARSEMEM_VMEMMAP).
1da177e4 73 */
e2683181
CL
74enum pageflags {
75 PG_locked, /* Page is locked. Don't touch. */
76 PG_error,
77 PG_referenced,
78 PG_uptodate,
79 PG_dirty,
80 PG_lru,
81 PG_active,
82 PG_slab,
83 PG_owner_priv_1, /* Owner use. If pagecache, fs may use*/
e2683181
CL
84 PG_arch_1,
85 PG_reserved,
86 PG_private, /* If pagecache, has fs-private data */
266cf658 87 PG_private_2, /* If pagecache, has fs aux data */
e2683181 88 PG_writeback, /* Page is under writeback */
e20b8cca 89 PG_head, /* A head page */
e2683181
CL
90 PG_swapcache, /* Swap page: swp_entry_t in private */
91 PG_mappedtodisk, /* Has blocks allocated on-disk */
92 PG_reclaim, /* To be reclaimed asap */
b2e18538 93 PG_swapbacked, /* Page is backed by RAM/swap */
894bc310 94 PG_unevictable, /* Page is "unevictable" */
af8e3354 95#ifdef CONFIG_MMU
b291f000 96 PG_mlocked, /* Page is vma mlocked */
894bc310 97#endif
46cf98cd 98#ifdef CONFIG_ARCH_USES_PG_UNCACHED
602c4d11 99 PG_uncached, /* Page has been mapped as uncached */
d466f2fc
AK
100#endif
101#ifdef CONFIG_MEMORY_FAILURE
102 PG_hwpoison, /* hardware poisoned page. Don't touch */
e9da73d6
AA
103#endif
104#ifdef CONFIG_TRANSPARENT_HUGEPAGE
105 PG_compound_lock,
33c3fc71
VD
106#endif
107#if defined(CONFIG_IDLE_PAGE_TRACKING) && defined(CONFIG_64BIT)
108 PG_young,
109 PG_idle,
f886ed44 110#endif
0cad47cf
AW
111 __NR_PAGEFLAGS,
112
113 /* Filesystems */
114 PG_checked = PG_owner_priv_1,
115
266cf658
DH
116 /* Two page bits are conscripted by FS-Cache to maintain local caching
117 * state. These bits are set on pages belonging to the netfs's inodes
118 * when those inodes are being locally cached.
119 */
120 PG_fscache = PG_private_2, /* page backed by cache */
121
0cad47cf 122 /* XEN */
d8ac3dd4 123 /* Pinned in Xen as a read-only pagetable page. */
0cad47cf 124 PG_pinned = PG_owner_priv_1,
d8ac3dd4 125 /* Pinned as part of domain save (see xen_mm_pin_all()). */
0cad47cf 126 PG_savepinned = PG_dirty,
d8ac3dd4
JH
127 /* Has a grant mapping of another (foreign) domain's page. */
128 PG_foreign = PG_owner_priv_1,
8a38082d 129
9023cb7e 130 /* SLOB */
9023cb7e 131 PG_slob_free = PG_private,
e2683181 132};
1da177e4 133
9223b419
CL
134#ifndef __GENERATING_BOUNDS_H
135
0e6d31a7
KS
136struct page; /* forward declaration */
137
138static inline struct page *compound_head(struct page *page)
139{
140 unsigned long head = READ_ONCE(page->compound_head);
141
142 if (unlikely(head & 1))
143 return (struct page *) (head - 1);
144 return page;
145}
146
147static inline int PageTail(struct page *page)
148{
149 return READ_ONCE(page->compound_head) & 1;
150}
151
152static inline int PageCompound(struct page *page)
153{
154 return test_bit(PG_head, &page->flags) || PageTail(page);
155}
156
95ad9755
KS
157/*
158 * Page flags policies wrt compound pages
159 *
160 * PF_ANY:
161 * the page flag is relevant for small, head and tail pages.
162 *
163 * PF_HEAD:
164 * for compound page all operations related to the page flag applied to
165 * head page.
166 *
167 * PF_NO_TAIL:
168 * modifications of the page flag must be done on small or head pages,
169 * checks can be done on tail pages too.
170 *
171 * PF_NO_COMPOUND:
172 * the page flag is not relevant for compound pages.
173 */
174#define PF_ANY(page, enforce) page
175#define PF_HEAD(page, enforce) compound_head(page)
176#define PF_NO_TAIL(page, enforce) ({ \
177 VM_BUG_ON_PGFLAGS(enforce && PageTail(page), page); \
178 compound_head(page);})
179#define PF_NO_COMPOUND(page, enforce) ({ \
180 VM_BUG_ON_PGFLAGS(enforce && PageCompound(page), page); \
181 page;})
182
f94a62e9
CL
183/*
184 * Macros to create function definitions for page flags
185 */
95ad9755
KS
186#define TESTPAGEFLAG(uname, lname, policy) \
187static inline int Page##uname(struct page *page) \
188 { return test_bit(PG_##lname, &policy(page, 0)->flags); }
f94a62e9 189
95ad9755 190#define SETPAGEFLAG(uname, lname, policy) \
f94a62e9 191static inline void SetPage##uname(struct page *page) \
95ad9755 192 { set_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 193
95ad9755 194#define CLEARPAGEFLAG(uname, lname, policy) \
f94a62e9 195static inline void ClearPage##uname(struct page *page) \
95ad9755 196 { clear_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 197
95ad9755 198#define __SETPAGEFLAG(uname, lname, policy) \
f94a62e9 199static inline void __SetPage##uname(struct page *page) \
95ad9755 200 { __set_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 201
95ad9755 202#define __CLEARPAGEFLAG(uname, lname, policy) \
f94a62e9 203static inline void __ClearPage##uname(struct page *page) \
95ad9755 204 { __clear_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 205
95ad9755 206#define TESTSETFLAG(uname, lname, policy) \
f94a62e9 207static inline int TestSetPage##uname(struct page *page) \
95ad9755 208 { return test_and_set_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 209
95ad9755 210#define TESTCLEARFLAG(uname, lname, policy) \
f94a62e9 211static inline int TestClearPage##uname(struct page *page) \
95ad9755 212 { return test_and_clear_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 213
95ad9755 214#define __TESTCLEARFLAG(uname, lname, policy) \
451ea25d 215static inline int __TestClearPage##uname(struct page *page) \
95ad9755 216 { return __test_and_clear_bit(PG_##lname, &policy(page, 1)->flags); }
f94a62e9 217
95ad9755
KS
218#define PAGEFLAG(uname, lname, policy) \
219 TESTPAGEFLAG(uname, lname, policy) \
220 SETPAGEFLAG(uname, lname, policy) \
221 CLEARPAGEFLAG(uname, lname, policy)
f94a62e9 222
95ad9755
KS
223#define __PAGEFLAG(uname, lname, policy) \
224 TESTPAGEFLAG(uname, lname, policy) \
225 __SETPAGEFLAG(uname, lname, policy) \
226 __CLEARPAGEFLAG(uname, lname, policy)
f94a62e9 227
95ad9755
KS
228#define TESTSCFLAG(uname, lname, policy) \
229 TESTSETFLAG(uname, lname, policy) \
230 TESTCLEARFLAG(uname, lname, policy)
f94a62e9 231
2f3e442c
JW
232#define TESTPAGEFLAG_FALSE(uname) \
233static inline int Page##uname(const struct page *page) { return 0; }
234
8a7a8544
LS
235#define SETPAGEFLAG_NOOP(uname) \
236static inline void SetPage##uname(struct page *page) { }
237
238#define CLEARPAGEFLAG_NOOP(uname) \
239static inline void ClearPage##uname(struct page *page) { }
240
241#define __CLEARPAGEFLAG_NOOP(uname) \
242static inline void __ClearPage##uname(struct page *page) { }
243
2f3e442c
JW
244#define TESTSETFLAG_FALSE(uname) \
245static inline int TestSetPage##uname(struct page *page) { return 0; }
246
8a7a8544
LS
247#define TESTCLEARFLAG_FALSE(uname) \
248static inline int TestClearPage##uname(struct page *page) { return 0; }
249
451ea25d
JW
250#define __TESTCLEARFLAG_FALSE(uname) \
251static inline int __TestClearPage##uname(struct page *page) { return 0; }
252
2f3e442c
JW
253#define PAGEFLAG_FALSE(uname) TESTPAGEFLAG_FALSE(uname) \
254 SETPAGEFLAG_NOOP(uname) CLEARPAGEFLAG_NOOP(uname)
255
256#define TESTSCFLAG_FALSE(uname) \
257 TESTSETFLAG_FALSE(uname) TESTCLEARFLAG_FALSE(uname)
258
48c935ad 259__PAGEFLAG(Locked, locked, PF_NO_TAIL)
df8c94d1 260PAGEFLAG(Error, error, PF_NO_COMPOUND) TESTCLEARFLAG(Error, error, PF_NO_COMPOUND)
8cb38fab
KS
261PAGEFLAG(Referenced, referenced, PF_HEAD)
262 TESTCLEARFLAG(Referenced, referenced, PF_HEAD)
263 __SETPAGEFLAG(Referenced, referenced, PF_HEAD)
df8c94d1
KS
264PAGEFLAG(Dirty, dirty, PF_HEAD) TESTSCFLAG(Dirty, dirty, PF_HEAD)
265 __CLEARPAGEFLAG(Dirty, dirty, PF_HEAD)
8cb38fab
KS
266PAGEFLAG(LRU, lru, PF_HEAD) __CLEARPAGEFLAG(LRU, lru, PF_HEAD)
267PAGEFLAG(Active, active, PF_HEAD) __CLEARPAGEFLAG(Active, active, PF_HEAD)
268 TESTCLEARFLAG(Active, active, PF_HEAD)
95ad9755 269__PAGEFLAG(Slab, slab, PF_ANY)
df8c94d1 270PAGEFLAG(Checked, checked, PF_NO_COMPOUND) /* Used by some filesystems */
95ad9755
KS
271PAGEFLAG(Pinned, pinned, PF_ANY) TESTSCFLAG(Pinned, pinned, PF_ANY) /* Xen */
272PAGEFLAG(SavePinned, savepinned, PF_ANY); /* Xen */
273PAGEFLAG(Foreign, foreign, PF_ANY); /* Xen */
274PAGEFLAG(Reserved, reserved, PF_ANY) __CLEARPAGEFLAG(Reserved, reserved, PF_ANY)
275PAGEFLAG(SwapBacked, swapbacked, PF_ANY)
276 __CLEARPAGEFLAG(SwapBacked, swapbacked, PF_ANY)
277 __SETPAGEFLAG(SwapBacked, swapbacked, PF_ANY)
278
279__PAGEFLAG(SlobFree, slob_free, PF_ANY)
9023cb7e 280
266cf658
DH
281/*
282 * Private page markings that may be used by the filesystem that owns the page
283 * for its own purposes.
284 * - PG_private and PG_private_2 cause releasepage() and co to be invoked
285 */
95ad9755
KS
286PAGEFLAG(Private, private, PF_ANY) __SETPAGEFLAG(Private, private, PF_ANY)
287 __CLEARPAGEFLAG(Private, private, PF_ANY)
288PAGEFLAG(Private2, private_2, PF_ANY) TESTSCFLAG(Private2, private_2, PF_ANY)
289PAGEFLAG(OwnerPriv1, owner_priv_1, PF_ANY)
290 TESTCLEARFLAG(OwnerPriv1, owner_priv_1, PF_ANY)
266cf658 291
6a1e7f77
CL
292/*
293 * Only test-and-set exist for PG_writeback. The unconditional operators are
294 * risky: they bypass page accounting.
295 */
df8c94d1
KS
296TESTPAGEFLAG(Writeback, writeback, PF_NO_COMPOUND)
297 TESTSCFLAG(Writeback, writeback, PF_NO_COMPOUND)
298PAGEFLAG(MappedToDisk, mappedtodisk, PF_NO_COMPOUND)
6a1e7f77 299
579f8290 300/* PG_readahead is only used for reads; PG_reclaim is only for writes */
df8c94d1
KS
301PAGEFLAG(Reclaim, reclaim, PF_NO_COMPOUND)
302 TESTCLEARFLAG(Reclaim, reclaim, PF_NO_COMPOUND)
303PAGEFLAG(Readahead, reclaim, PF_NO_COMPOUND)
304 TESTCLEARFLAG(Readahead, reclaim, PF_NO_COMPOUND)
6a1e7f77
CL
305
306#ifdef CONFIG_HIGHMEM
1da177e4 307/*
6a1e7f77
CL
308 * Must use a macro here due to header dependency issues. page_zone() is not
309 * available at this point.
1da177e4 310 */
3ca65c19 311#define PageHighMem(__p) is_highmem_idx(page_zonenum(__p))
6a1e7f77 312#else
ec7cade8 313PAGEFLAG_FALSE(HighMem)
6a1e7f77
CL
314#endif
315
316#ifdef CONFIG_SWAP
95ad9755 317PAGEFLAG(SwapCache, swapcache, PF_ANY)
6a1e7f77 318#else
ec7cade8 319PAGEFLAG_FALSE(SwapCache)
6a1e7f77
CL
320#endif
321
8cb38fab
KS
322PAGEFLAG(Unevictable, unevictable, PF_HEAD)
323 __CLEARPAGEFLAG(Unevictable, unevictable, PF_HEAD)
324 TESTCLEARFLAG(Unevictable, unevictable, PF_HEAD)
b291f000 325
af8e3354 326#ifdef CONFIG_MMU
95ad9755
KS
327PAGEFLAG(Mlocked, mlocked, PF_ANY) __CLEARPAGEFLAG(Mlocked, mlocked, PF_ANY)
328 TESTSCFLAG(Mlocked, mlocked, PF_ANY) __TESTCLEARFLAG(Mlocked, mlocked, PF_ANY)
894bc310 329#else
2f3e442c
JW
330PAGEFLAG_FALSE(Mlocked) __CLEARPAGEFLAG_NOOP(Mlocked)
331 TESTSCFLAG_FALSE(Mlocked) __TESTCLEARFLAG_FALSE(Mlocked)
894bc310
LS
332#endif
333
46cf98cd 334#ifdef CONFIG_ARCH_USES_PG_UNCACHED
95ad9755 335PAGEFLAG(Uncached, uncached, PF_ANY)
602c4d11 336#else
ec7cade8 337PAGEFLAG_FALSE(Uncached)
6a1e7f77 338#endif
1da177e4 339
d466f2fc 340#ifdef CONFIG_MEMORY_FAILURE
95ad9755
KS
341PAGEFLAG(HWPoison, hwpoison, PF_ANY)
342TESTSCFLAG(HWPoison, hwpoison, PF_ANY)
d466f2fc
AK
343#define __PG_HWPOISON (1UL << PG_hwpoison)
344#else
345PAGEFLAG_FALSE(HWPoison)
346#define __PG_HWPOISON 0
347#endif
348
33c3fc71 349#if defined(CONFIG_IDLE_PAGE_TRACKING) && defined(CONFIG_64BIT)
95ad9755
KS
350TESTPAGEFLAG(Young, young, PF_ANY)
351SETPAGEFLAG(Young, young, PF_ANY)
352TESTCLEARFLAG(Young, young, PF_ANY)
353PAGEFLAG(Idle, idle, PF_ANY)
33c3fc71
VD
354#endif
355
e8c6158f
KS
356/*
357 * On an anonymous page mapped into a user virtual memory area,
358 * page->mapping points to its anon_vma, not to a struct address_space;
359 * with the PAGE_MAPPING_ANON bit set to distinguish it. See rmap.h.
360 *
361 * On an anonymous page in a VM_MERGEABLE area, if CONFIG_KSM is enabled,
362 * the PAGE_MAPPING_KSM bit may be set along with the PAGE_MAPPING_ANON bit;
363 * and then page->mapping points, not to an anon_vma, but to a private
364 * structure which KSM associates with that merged page. See ksm.h.
365 *
366 * PAGE_MAPPING_KSM without PAGE_MAPPING_ANON is currently never used.
367 *
368 * Please note that, confusingly, "page_mapping" refers to the inode
369 * address_space which maps the page from disk; whereas "page_mapped"
370 * refers to user virtual address space into which the page is mapped.
371 */
372#define PAGE_MAPPING_ANON 1
373#define PAGE_MAPPING_KSM 2
374#define PAGE_MAPPING_FLAGS (PAGE_MAPPING_ANON | PAGE_MAPPING_KSM)
375
376static inline int PageAnon(struct page *page)
377{
378 return ((unsigned long)page->mapping & PAGE_MAPPING_ANON) != 0;
379}
380
381#ifdef CONFIG_KSM
382/*
383 * A KSM page is one of those write-protected "shared pages" or "merged pages"
384 * which KSM maps into multiple mms, wherever identical anonymous page content
385 * is found in VM_MERGEABLE vmas. It's a PageAnon page, pointing not to any
386 * anon_vma, but to that page's node of the stable tree.
387 */
388static inline int PageKsm(struct page *page)
389{
390 return ((unsigned long)page->mapping & PAGE_MAPPING_FLAGS) ==
391 (PAGE_MAPPING_ANON | PAGE_MAPPING_KSM);
392}
393#else
394TESTPAGEFLAG_FALSE(Ksm)
395#endif
396
1a9b5b7f
WF
397u64 stable_page_flags(struct page *page);
398
0ed361de
NP
399static inline int PageUptodate(struct page *page)
400{
401 int ret = test_bit(PG_uptodate, &(page)->flags);
402
403 /*
404 * Must ensure that the data we read out of the page is loaded
405 * _after_ we've loaded page->flags to check for PageUptodate.
406 * We can skip the barrier if the page is not uptodate, because
407 * we wouldn't be reading anything from it.
408 *
409 * See SetPageUptodate() for the other side of the story.
410 */
411 if (ret)
412 smp_rmb();
413
414 return ret;
415}
416
417static inline void __SetPageUptodate(struct page *page)
418{
419 smp_wmb();
df8c94d1 420 __set_bit(PG_uptodate, &page->flags);
0ed361de
NP
421}
422
2dcea57a
HC
423static inline void SetPageUptodate(struct page *page)
424{
0ed361de
NP
425 /*
426 * Memory barrier must be issued before setting the PG_uptodate bit,
427 * so that all previous stores issued in order to bring the page
428 * uptodate are actually visible before PageUptodate becomes true.
0ed361de
NP
429 */
430 smp_wmb();
df8c94d1 431 set_bit(PG_uptodate, &page->flags);
0ed361de
NP
432}
433
95ad9755 434CLEARPAGEFLAG(Uptodate, uptodate, PF_ANY)
1da177e4 435
6a1e7f77 436int test_clear_page_writeback(struct page *page);
1c8349a1
NJ
437int __test_set_page_writeback(struct page *page, bool keep_write);
438
439#define test_set_page_writeback(page) \
440 __test_set_page_writeback(page, false)
441#define test_set_page_writeback_keepwrite(page) \
442 __test_set_page_writeback(page, true)
1da177e4 443
6a1e7f77
CL
444static inline void set_page_writeback(struct page *page)
445{
446 test_set_page_writeback(page);
447}
1da177e4 448
1c8349a1
NJ
449static inline void set_page_writeback_keepwrite(struct page *page)
450{
451 test_set_page_writeback_keepwrite(page);
452}
453
95ad9755 454__PAGEFLAG(Head, head, PF_ANY) CLEARPAGEFLAG(Head, head, PF_ANY)
e20b8cca 455
1d798ca3 456static inline void set_compound_head(struct page *page, struct page *head)
ad4b3fb7 457{
1d798ca3 458 WRITE_ONCE(page->compound_head, (unsigned long)head + 1);
ad4b3fb7
CD
459}
460
1d798ca3 461static inline void clear_compound_head(struct page *page)
6a1e7f77 462{
1d798ca3 463 WRITE_ONCE(page->compound_head, 0);
6a1e7f77 464}
6d777953 465
4e6af67e
AA
466#ifdef CONFIG_TRANSPARENT_HUGEPAGE
467static inline void ClearPageCompound(struct page *page)
468{
1d798ca3
KS
469 BUG_ON(!PageHead(page));
470 ClearPageHead(page);
4e6af67e
AA
471}
472#endif
473
1d798ca3 474#define PG_head_mask ((1L << PG_head))
dfa7e20c 475
e8c6158f
KS
476#ifdef CONFIG_HUGETLB_PAGE
477int PageHuge(struct page *page);
478int PageHeadHuge(struct page *page);
7e1f049e 479bool page_huge_active(struct page *page);
e8c6158f
KS
480#else
481TESTPAGEFLAG_FALSE(Huge)
482TESTPAGEFLAG_FALSE(HeadHuge)
7e1f049e
NH
483
484static inline bool page_huge_active(struct page *page)
485{
486 return 0;
487}
e8c6158f
KS
488#endif
489
7e1f049e 490
936a5fe6 491#ifdef CONFIG_TRANSPARENT_HUGEPAGE
71e3aac0
AA
492/*
493 * PageHuge() only returns true for hugetlbfs pages, but not for
494 * normal or transparent huge pages.
495 *
496 * PageTransHuge() returns true for both transparent huge and
497 * hugetlbfs pages, but not normal pages. PageTransHuge() can only be
498 * called only in the core VM paths where hugetlbfs pages can't exist.
499 */
500static inline int PageTransHuge(struct page *page)
501{
309381fe 502 VM_BUG_ON_PAGE(PageTail(page), page);
71e3aac0
AA
503 return PageHead(page);
504}
505
385de357
DN
506/*
507 * PageTransCompound returns true for both transparent huge pages
508 * and hugetlbfs pages, so it should only be called when it's known
509 * that hugetlbfs pages aren't involved.
510 */
936a5fe6
AA
511static inline int PageTransCompound(struct page *page)
512{
513 return PageCompound(page);
514}
71e3aac0 515
385de357
DN
516/*
517 * PageTransTail returns true for both transparent huge pages
518 * and hugetlbfs pages, so it should only be called when it's known
519 * that hugetlbfs pages aren't involved.
520 */
521static inline int PageTransTail(struct page *page)
522{
523 return PageTail(page);
524}
525
936a5fe6 526#else
d8c1bdeb
KS
527TESTPAGEFLAG_FALSE(TransHuge)
528TESTPAGEFLAG_FALSE(TransCompound)
529TESTPAGEFLAG_FALSE(TransTail)
936a5fe6
AA
530#endif
531
e8c6158f
KS
532/*
533 * PageBuddy() indicate that the page is free and in the buddy system
534 * (see mm/page_alloc.c).
535 *
536 * PAGE_BUDDY_MAPCOUNT_VALUE must be <= -2 but better not too close to
537 * -2 so that an underflow of the page_mapcount() won't be mistaken
538 * for a genuine PAGE_BUDDY_MAPCOUNT_VALUE. -128 can be created very
539 * efficiently by most CPU architectures.
540 */
541#define PAGE_BUDDY_MAPCOUNT_VALUE (-128)
542
543static inline int PageBuddy(struct page *page)
544{
545 return atomic_read(&page->_mapcount) == PAGE_BUDDY_MAPCOUNT_VALUE;
546}
547
548static inline void __SetPageBuddy(struct page *page)
549{
550 VM_BUG_ON_PAGE(atomic_read(&page->_mapcount) != -1, page);
551 atomic_set(&page->_mapcount, PAGE_BUDDY_MAPCOUNT_VALUE);
552}
553
554static inline void __ClearPageBuddy(struct page *page)
555{
556 VM_BUG_ON_PAGE(!PageBuddy(page), page);
557 atomic_set(&page->_mapcount, -1);
558}
559
560#define PAGE_BALLOON_MAPCOUNT_VALUE (-256)
561
562static inline int PageBalloon(struct page *page)
563{
564 return atomic_read(&page->_mapcount) == PAGE_BALLOON_MAPCOUNT_VALUE;
565}
566
567static inline void __SetPageBalloon(struct page *page)
568{
569 VM_BUG_ON_PAGE(atomic_read(&page->_mapcount) != -1, page);
570 atomic_set(&page->_mapcount, PAGE_BALLOON_MAPCOUNT_VALUE);
571}
572
573static inline void __ClearPageBalloon(struct page *page)
574{
575 VM_BUG_ON_PAGE(!PageBalloon(page), page);
576 atomic_set(&page->_mapcount, -1);
577}
578
072bb0aa
MG
579/*
580 * If network-based swap is enabled, sl*b must keep track of whether pages
581 * were allocated from pfmemalloc reserves.
582 */
583static inline int PageSlabPfmemalloc(struct page *page)
584{
309381fe 585 VM_BUG_ON_PAGE(!PageSlab(page), page);
072bb0aa
MG
586 return PageActive(page);
587}
588
589static inline void SetPageSlabPfmemalloc(struct page *page)
590{
309381fe 591 VM_BUG_ON_PAGE(!PageSlab(page), page);
072bb0aa
MG
592 SetPageActive(page);
593}
594
595static inline void __ClearPageSlabPfmemalloc(struct page *page)
596{
309381fe 597 VM_BUG_ON_PAGE(!PageSlab(page), page);
072bb0aa
MG
598 __ClearPageActive(page);
599}
600
601static inline void ClearPageSlabPfmemalloc(struct page *page)
602{
309381fe 603 VM_BUG_ON_PAGE(!PageSlab(page), page);
072bb0aa
MG
604 ClearPageActive(page);
605}
606
af8e3354 607#ifdef CONFIG_MMU
33925b25
DH
608#define __PG_MLOCKED (1 << PG_mlocked)
609#else
b291f000 610#define __PG_MLOCKED 0
894bc310
LS
611#endif
612
e9da73d6
AA
613#ifdef CONFIG_TRANSPARENT_HUGEPAGE
614#define __PG_COMPOUND_LOCK (1 << PG_compound_lock)
615#else
616#define __PG_COMPOUND_LOCK 0
617#endif
618
dfa7e20c
RA
619/*
620 * Flags checked when a page is freed. Pages being freed should not have
621 * these flags set. It they are, there is a problem.
622 */
79f4b7bf 623#define PAGE_FLAGS_CHECK_AT_FREE \
266cf658
DH
624 (1 << PG_lru | 1 << PG_locked | \
625 1 << PG_private | 1 << PG_private_2 | \
5f24ce5f 626 1 << PG_writeback | 1 << PG_reserved | \
266cf658 627 1 << PG_slab | 1 << PG_swapcache | 1 << PG_active | \
f4c18e6f 628 1 << PG_unevictable | __PG_MLOCKED | \
e9da73d6 629 __PG_COMPOUND_LOCK)
dfa7e20c
RA
630
631/*
632 * Flags checked when a page is prepped for return by the page allocator.
f4c18e6f 633 * Pages being prepped should not have these flags set. It they are set,
79f4b7bf 634 * there has been a kernel bug or struct page corruption.
f4c18e6f
NH
635 *
636 * __PG_HWPOISON is exceptional because it needs to be kept beyond page's
637 * alloc-free cycle to prevent from reusing the page.
dfa7e20c 638 */
f4c18e6f
NH
639#define PAGE_FLAGS_CHECK_AT_PREP \
640 (((1 << NR_PAGEFLAGS) - 1) & ~__PG_HWPOISON)
dfa7e20c 641
edcf4748
JW
642#define PAGE_FLAGS_PRIVATE \
643 (1 << PG_private | 1 << PG_private_2)
266cf658
DH
644/**
645 * page_has_private - Determine if page has private stuff
646 * @page: The page to be checked
647 *
648 * Determine if a page has private stuff, indicating that release routines
649 * should be invoked upon it.
650 */
edcf4748
JW
651static inline int page_has_private(struct page *page)
652{
653 return !!(page->flags & PAGE_FLAGS_PRIVATE);
654}
655
95ad9755
KS
656#undef PF_ANY
657#undef PF_HEAD
658#undef PF_NO_TAIL
659#undef PF_NO_COMPOUND
edcf4748 660#endif /* !__GENERATING_BOUNDS_H */
266cf658 661
1da177e4 662#endif /* PAGE_FLAGS_H */