x86/mm: Remove kernel_unmap_pages_in_pgd() and efi_cleanup_page_tables()
[deliverable/linux.git] / arch / x86 / mm / pageattr.c
CommitLineData
9f4c815c
IM
1/*
2 * Copyright 2002 Andi Kleen, SuSE Labs.
1da177e4 3 * Thanks to Ben LaHaise for precious feedback.
9f4c815c 4 */
1da177e4 5#include <linux/highmem.h>
8192206d 6#include <linux/bootmem.h>
9f4c815c 7#include <linux/sched.h>
9f4c815c 8#include <linux/mm.h>
76ebd054 9#include <linux/interrupt.h>
ee7ae7a1
TG
10#include <linux/seq_file.h>
11#include <linux/debugfs.h>
e59a1bb2 12#include <linux/pfn.h>
8c4bfc6e 13#include <linux/percpu.h>
5a0e3ad6 14#include <linux/gfp.h>
5bd5a452 15#include <linux/pci.h>
d6472302 16#include <linux/vmalloc.h>
9f4c815c 17
950f9d95 18#include <asm/e820.h>
1da177e4
LT
19#include <asm/processor.h>
20#include <asm/tlbflush.h>
f8af095d 21#include <asm/sections.h>
93dbda7c 22#include <asm/setup.h>
9f4c815c
IM
23#include <asm/uaccess.h>
24#include <asm/pgalloc.h>
c31c7d48 25#include <asm/proto.h>
1219333d 26#include <asm/pat.h>
1da177e4 27
9df84993
IM
28/*
29 * The current flushing context - we pass it instead of 5 arguments:
30 */
72e458df 31struct cpa_data {
d75586ad 32 unsigned long *vaddr;
0fd64c23 33 pgd_t *pgd;
72e458df
TG
34 pgprot_t mask_set;
35 pgprot_t mask_clr;
74256377 36 unsigned long numpages;
d75586ad 37 int flags;
c31c7d48 38 unsigned long pfn;
c9caa02c 39 unsigned force_split : 1;
d75586ad 40 int curpage;
9ae28475 41 struct page **pages;
72e458df
TG
42};
43
ad5ca55f
SS
44/*
45 * Serialize cpa() (for !DEBUG_PAGEALLOC which uses large identity mappings)
46 * using cpa_lock. So that we don't allow any other cpu, with stale large tlb
47 * entries change the page attribute in parallel to some other cpu
48 * splitting a large page entry along with changing the attribute.
49 */
50static DEFINE_SPINLOCK(cpa_lock);
51
d75586ad
SL
52#define CPA_FLUSHTLB 1
53#define CPA_ARRAY 2
9ae28475 54#define CPA_PAGES_ARRAY 4
d75586ad 55
65280e61 56#ifdef CONFIG_PROC_FS
ce0c0e50
AK
57static unsigned long direct_pages_count[PG_LEVEL_NUM];
58
65280e61 59void update_page_count(int level, unsigned long pages)
ce0c0e50 60{
ce0c0e50 61 /* Protect against CPA */
a79e53d8 62 spin_lock(&pgd_lock);
ce0c0e50 63 direct_pages_count[level] += pages;
a79e53d8 64 spin_unlock(&pgd_lock);
65280e61
TG
65}
66
67static void split_page_count(int level)
68{
c9e0d391
DJ
69 if (direct_pages_count[level] == 0)
70 return;
71
65280e61
TG
72 direct_pages_count[level]--;
73 direct_pages_count[level - 1] += PTRS_PER_PTE;
74}
75
e1759c21 76void arch_report_meminfo(struct seq_file *m)
65280e61 77{
b9c3bfc2 78 seq_printf(m, "DirectMap4k: %8lu kB\n",
a06de630
HD
79 direct_pages_count[PG_LEVEL_4K] << 2);
80#if defined(CONFIG_X86_64) || defined(CONFIG_X86_PAE)
b9c3bfc2 81 seq_printf(m, "DirectMap2M: %8lu kB\n",
a06de630
HD
82 direct_pages_count[PG_LEVEL_2M] << 11);
83#else
b9c3bfc2 84 seq_printf(m, "DirectMap4M: %8lu kB\n",
a06de630
HD
85 direct_pages_count[PG_LEVEL_2M] << 12);
86#endif
a06de630 87 if (direct_gbpages)
b9c3bfc2 88 seq_printf(m, "DirectMap1G: %8lu kB\n",
a06de630 89 direct_pages_count[PG_LEVEL_1G] << 20);
ce0c0e50 90}
65280e61
TG
91#else
92static inline void split_page_count(int level) { }
93#endif
ce0c0e50 94
c31c7d48
TG
95#ifdef CONFIG_X86_64
96
97static inline unsigned long highmap_start_pfn(void)
98{
fc8d7826 99 return __pa_symbol(_text) >> PAGE_SHIFT;
c31c7d48
TG
100}
101
102static inline unsigned long highmap_end_pfn(void)
103{
fc8d7826 104 return __pa_symbol(roundup(_brk_end, PMD_SIZE)) >> PAGE_SHIFT;
c31c7d48
TG
105}
106
107#endif
108
ed724be6
AV
109static inline int
110within(unsigned long addr, unsigned long start, unsigned long end)
687c4825 111{
ed724be6
AV
112 return addr >= start && addr < end;
113}
114
d7c8f21a
TG
115/*
116 * Flushing functions
117 */
cd8ddf1a 118
cd8ddf1a
TG
119/**
120 * clflush_cache_range - flush a cache range with clflush
9efc31b8 121 * @vaddr: virtual start address
cd8ddf1a
TG
122 * @size: number of bytes to flush
123 *
8b80fd8b
RZ
124 * clflushopt is an unordered instruction which needs fencing with mfence or
125 * sfence to avoid ordering issues.
cd8ddf1a 126 */
4c61afcd 127void clflush_cache_range(void *vaddr, unsigned int size)
d7c8f21a 128{
1f1a89ac
CW
129 const unsigned long clflush_size = boot_cpu_data.x86_clflush_size;
130 void *p = (void *)((unsigned long)vaddr & ~(clflush_size - 1));
6c434d61 131 void *vend = vaddr + size;
1f1a89ac
CW
132
133 if (p >= vend)
134 return;
d7c8f21a 135
cd8ddf1a 136 mb();
4c61afcd 137
1f1a89ac 138 for (; p < vend; p += clflush_size)
6c434d61 139 clflushopt(p);
4c61afcd 140
cd8ddf1a 141 mb();
d7c8f21a 142}
e517a5e9 143EXPORT_SYMBOL_GPL(clflush_cache_range);
d7c8f21a 144
af1e6844 145static void __cpa_flush_all(void *arg)
d7c8f21a 146{
6bb8383b
AK
147 unsigned long cache = (unsigned long)arg;
148
d7c8f21a
TG
149 /*
150 * Flush all to work around Errata in early athlons regarding
151 * large page flushing.
152 */
153 __flush_tlb_all();
154
0b827537 155 if (cache && boot_cpu_data.x86 >= 4)
d7c8f21a
TG
156 wbinvd();
157}
158
6bb8383b 159static void cpa_flush_all(unsigned long cache)
d7c8f21a
TG
160{
161 BUG_ON(irqs_disabled());
162
15c8b6c1 163 on_each_cpu(__cpa_flush_all, (void *) cache, 1);
d7c8f21a
TG
164}
165
57a6a46a
TG
166static void __cpa_flush_range(void *arg)
167{
57a6a46a
TG
168 /*
169 * We could optimize that further and do individual per page
170 * tlb invalidates for a low number of pages. Caveat: we must
171 * flush the high aliases on 64bit as well.
172 */
173 __flush_tlb_all();
57a6a46a
TG
174}
175
6bb8383b 176static void cpa_flush_range(unsigned long start, int numpages, int cache)
57a6a46a 177{
4c61afcd
IM
178 unsigned int i, level;
179 unsigned long addr;
180
57a6a46a 181 BUG_ON(irqs_disabled());
4c61afcd 182 WARN_ON(PAGE_ALIGN(start) != start);
57a6a46a 183
15c8b6c1 184 on_each_cpu(__cpa_flush_range, NULL, 1);
57a6a46a 185
6bb8383b
AK
186 if (!cache)
187 return;
188
3b233e52
TG
189 /*
190 * We only need to flush on one CPU,
191 * clflush is a MESI-coherent instruction that
192 * will cause all other CPUs to flush the same
193 * cachelines:
194 */
4c61afcd
IM
195 for (i = 0, addr = start; i < numpages; i++, addr += PAGE_SIZE) {
196 pte_t *pte = lookup_address(addr, &level);
197
198 /*
199 * Only flush present addresses:
200 */
7bfb72e8 201 if (pte && (pte_val(*pte) & _PAGE_PRESENT))
4c61afcd
IM
202 clflush_cache_range((void *) addr, PAGE_SIZE);
203 }
57a6a46a
TG
204}
205
9ae28475 206static void cpa_flush_array(unsigned long *start, int numpages, int cache,
207 int in_flags, struct page **pages)
d75586ad
SL
208{
209 unsigned int i, level;
2171787b 210 unsigned long do_wbinvd = cache && numpages >= 1024; /* 4M threshold */
d75586ad
SL
211
212 BUG_ON(irqs_disabled());
213
2171787b 214 on_each_cpu(__cpa_flush_all, (void *) do_wbinvd, 1);
d75586ad 215
2171787b 216 if (!cache || do_wbinvd)
d75586ad
SL
217 return;
218
d75586ad
SL
219 /*
220 * We only need to flush on one CPU,
221 * clflush is a MESI-coherent instruction that
222 * will cause all other CPUs to flush the same
223 * cachelines:
224 */
9ae28475 225 for (i = 0; i < numpages; i++) {
226 unsigned long addr;
227 pte_t *pte;
228
229 if (in_flags & CPA_PAGES_ARRAY)
230 addr = (unsigned long)page_address(pages[i]);
231 else
232 addr = start[i];
233
234 pte = lookup_address(addr, &level);
d75586ad
SL
235
236 /*
237 * Only flush present addresses:
238 */
239 if (pte && (pte_val(*pte) & _PAGE_PRESENT))
9ae28475 240 clflush_cache_range((void *)addr, PAGE_SIZE);
d75586ad
SL
241 }
242}
243
ed724be6
AV
244/*
245 * Certain areas of memory on x86 require very specific protection flags,
246 * for example the BIOS area or kernel text. Callers don't always get this
247 * right (again, ioremap() on BIOS memory is not uncommon) so this function
248 * checks and fixes these known static required protection bits.
249 */
c31c7d48
TG
250static inline pgprot_t static_protections(pgprot_t prot, unsigned long address,
251 unsigned long pfn)
ed724be6
AV
252{
253 pgprot_t forbidden = __pgprot(0);
254
687c4825 255 /*
ed724be6
AV
256 * The BIOS area between 640k and 1Mb needs to be executable for
257 * PCI BIOS based config access (CONFIG_PCI_GOBIOS) support.
687c4825 258 */
5bd5a452
MC
259#ifdef CONFIG_PCI_BIOS
260 if (pcibios_enabled && within(pfn, BIOS_BEGIN >> PAGE_SHIFT, BIOS_END >> PAGE_SHIFT))
ed724be6 261 pgprot_val(forbidden) |= _PAGE_NX;
5bd5a452 262#endif
ed724be6
AV
263
264 /*
265 * The kernel text needs to be executable for obvious reasons
c31c7d48
TG
266 * Does not cover __inittext since that is gone later on. On
267 * 64bit we do not enforce !NX on the low mapping
ed724be6
AV
268 */
269 if (within(address, (unsigned long)_text, (unsigned long)_etext))
270 pgprot_val(forbidden) |= _PAGE_NX;
cc0f21bb 271
cc0f21bb 272 /*
c31c7d48
TG
273 * The .rodata section needs to be read-only. Using the pfn
274 * catches all aliases.
cc0f21bb 275 */
fc8d7826
AD
276 if (within(pfn, __pa_symbol(__start_rodata) >> PAGE_SHIFT,
277 __pa_symbol(__end_rodata) >> PAGE_SHIFT))
cc0f21bb 278 pgprot_val(forbidden) |= _PAGE_RW;
ed724be6 279
9ccaf77c 280#if defined(CONFIG_X86_64)
74e08179 281 /*
502f6604
SS
282 * Once the kernel maps the text as RO (kernel_set_to_readonly is set),
283 * kernel text mappings for the large page aligned text, rodata sections
284 * will be always read-only. For the kernel identity mappings covering
285 * the holes caused by this alignment can be anything that user asks.
74e08179
SS
286 *
287 * This will preserve the large page mappings for kernel text/data
288 * at no extra cost.
289 */
502f6604
SS
290 if (kernel_set_to_readonly &&
291 within(address, (unsigned long)_text,
281ff33b
SS
292 (unsigned long)__end_rodata_hpage_align)) {
293 unsigned int level;
294
295 /*
296 * Don't enforce the !RW mapping for the kernel text mapping,
297 * if the current mapping is already using small page mapping.
298 * No need to work hard to preserve large page mappings in this
299 * case.
300 *
301 * This also fixes the Linux Xen paravirt guest boot failure
302 * (because of unexpected read-only mappings for kernel identity
303 * mappings). In this paravirt guest case, the kernel text
304 * mapping and the kernel identity mapping share the same
305 * page-table pages. Thus we can't really use different
306 * protections for the kernel text and identity mappings. Also,
307 * these shared mappings are made of small page mappings.
308 * Thus this don't enforce !RW mapping for small page kernel
309 * text mapping logic will help Linux Xen parvirt guest boot
0d2eb44f 310 * as well.
281ff33b
SS
311 */
312 if (lookup_address(address, &level) && (level != PG_LEVEL_4K))
313 pgprot_val(forbidden) |= _PAGE_RW;
314 }
74e08179
SS
315#endif
316
ed724be6 317 prot = __pgprot(pgprot_val(prot) & ~pgprot_val(forbidden));
687c4825
IM
318
319 return prot;
320}
321
426e34cc
MF
322/*
323 * Lookup the page table entry for a virtual address in a specific pgd.
324 * Return a pointer to the entry and the level of the mapping.
325 */
326pte_t *lookup_address_in_pgd(pgd_t *pgd, unsigned long address,
327 unsigned int *level)
9f4c815c 328{
1da177e4
LT
329 pud_t *pud;
330 pmd_t *pmd;
9f4c815c 331
30551bb3
TG
332 *level = PG_LEVEL_NONE;
333
1da177e4
LT
334 if (pgd_none(*pgd))
335 return NULL;
9df84993 336
1da177e4
LT
337 pud = pud_offset(pgd, address);
338 if (pud_none(*pud))
339 return NULL;
c2f71ee2
AK
340
341 *level = PG_LEVEL_1G;
342 if (pud_large(*pud) || !pud_present(*pud))
343 return (pte_t *)pud;
344
1da177e4
LT
345 pmd = pmd_offset(pud, address);
346 if (pmd_none(*pmd))
347 return NULL;
30551bb3
TG
348
349 *level = PG_LEVEL_2M;
9a14aefc 350 if (pmd_large(*pmd) || !pmd_present(*pmd))
1da177e4 351 return (pte_t *)pmd;
1da177e4 352
30551bb3 353 *level = PG_LEVEL_4K;
9df84993 354
9f4c815c
IM
355 return pte_offset_kernel(pmd, address);
356}
0fd64c23
BP
357
358/*
359 * Lookup the page table entry for a virtual address. Return a pointer
360 * to the entry and the level of the mapping.
361 *
362 * Note: We return pud and pmd either when the entry is marked large
363 * or when the present bit is not set. Otherwise we would return a
364 * pointer to a nonexisting mapping.
365 */
366pte_t *lookup_address(unsigned long address, unsigned int *level)
367{
426e34cc 368 return lookup_address_in_pgd(pgd_offset_k(address), address, level);
0fd64c23 369}
75bb8835 370EXPORT_SYMBOL_GPL(lookup_address);
9f4c815c 371
0fd64c23
BP
372static pte_t *_lookup_address_cpa(struct cpa_data *cpa, unsigned long address,
373 unsigned int *level)
374{
375 if (cpa->pgd)
426e34cc 376 return lookup_address_in_pgd(cpa->pgd + pgd_index(address),
0fd64c23
BP
377 address, level);
378
379 return lookup_address(address, level);
380}
381
792230c3
JG
382/*
383 * Lookup the PMD entry for a virtual address. Return a pointer to the entry
384 * or NULL if not present.
385 */
386pmd_t *lookup_pmd_address(unsigned long address)
387{
388 pgd_t *pgd;
389 pud_t *pud;
390
391 pgd = pgd_offset_k(address);
392 if (pgd_none(*pgd))
393 return NULL;
394
395 pud = pud_offset(pgd, address);
396 if (pud_none(*pud) || pud_large(*pud) || !pud_present(*pud))
397 return NULL;
398
399 return pmd_offset(pud, address);
400}
401
d7656534
DH
402/*
403 * This is necessary because __pa() does not work on some
404 * kinds of memory, like vmalloc() or the alloc_remap()
405 * areas on 32-bit NUMA systems. The percpu areas can
406 * end up in this kind of memory, for instance.
407 *
408 * This could be optimized, but it is only intended to be
409 * used at inititalization time, and keeping it
410 * unoptimized should increase the testing coverage for
411 * the more obscure platforms.
412 */
413phys_addr_t slow_virt_to_phys(void *__virt_addr)
414{
415 unsigned long virt_addr = (unsigned long)__virt_addr;
bf70e551
DC
416 phys_addr_t phys_addr;
417 unsigned long offset;
d7656534 418 enum pg_level level;
d7656534
DH
419 pte_t *pte;
420
421 pte = lookup_address(virt_addr, &level);
422 BUG_ON(!pte);
34437e67 423
bf70e551
DC
424 /*
425 * pXX_pfn() returns unsigned long, which must be cast to phys_addr_t
426 * before being left-shifted PAGE_SHIFT bits -- this trick is to
427 * make 32-PAE kernel work correctly.
428 */
34437e67
TK
429 switch (level) {
430 case PG_LEVEL_1G:
bf70e551 431 phys_addr = (phys_addr_t)pud_pfn(*(pud_t *)pte) << PAGE_SHIFT;
34437e67
TK
432 offset = virt_addr & ~PUD_PAGE_MASK;
433 break;
434 case PG_LEVEL_2M:
bf70e551 435 phys_addr = (phys_addr_t)pmd_pfn(*(pmd_t *)pte) << PAGE_SHIFT;
34437e67
TK
436 offset = virt_addr & ~PMD_PAGE_MASK;
437 break;
438 default:
bf70e551 439 phys_addr = (phys_addr_t)pte_pfn(*pte) << PAGE_SHIFT;
34437e67
TK
440 offset = virt_addr & ~PAGE_MASK;
441 }
442
443 return (phys_addr_t)(phys_addr | offset);
d7656534
DH
444}
445EXPORT_SYMBOL_GPL(slow_virt_to_phys);
446
9df84993
IM
447/*
448 * Set the new pmd in all the pgds we know about:
449 */
9a3dc780 450static void __set_pmd_pte(pte_t *kpte, unsigned long address, pte_t pte)
9f4c815c 451{
9f4c815c
IM
452 /* change init_mm */
453 set_pte_atomic(kpte, pte);
44af6c41 454#ifdef CONFIG_X86_32
e4b71dcf 455 if (!SHARED_KERNEL_PMD) {
44af6c41
IM
456 struct page *page;
457
e3ed910d 458 list_for_each_entry(page, &pgd_list, lru) {
44af6c41
IM
459 pgd_t *pgd;
460 pud_t *pud;
461 pmd_t *pmd;
462
463 pgd = (pgd_t *)page_address(page) + pgd_index(address);
464 pud = pud_offset(pgd, address);
465 pmd = pmd_offset(pud, address);
466 set_pte_atomic((pte_t *)pmd, pte);
467 }
1da177e4 468 }
44af6c41 469#endif
1da177e4
LT
470}
471
9df84993
IM
472static int
473try_preserve_large_page(pte_t *kpte, unsigned long address,
474 struct cpa_data *cpa)
65e074df 475{
3a19109e 476 unsigned long nextpage_addr, numpages, pmask, psize, addr, pfn, old_pfn;
65e074df 477 pte_t new_pte, old_pte, *tmp;
64edc8ed 478 pgprot_t old_prot, new_prot, req_prot;
fac84939 479 int i, do_split = 1;
f3c4fbb6 480 enum pg_level level;
65e074df 481
c9caa02c
AK
482 if (cpa->force_split)
483 return 1;
484
a79e53d8 485 spin_lock(&pgd_lock);
65e074df
TG
486 /*
487 * Check for races, another CPU might have split this page
488 * up already:
489 */
82f0712c 490 tmp = _lookup_address_cpa(cpa, address, &level);
65e074df
TG
491 if (tmp != kpte)
492 goto out_unlock;
493
494 switch (level) {
495 case PG_LEVEL_2M:
3a19109e
TK
496 old_prot = pmd_pgprot(*(pmd_t *)kpte);
497 old_pfn = pmd_pfn(*(pmd_t *)kpte);
498 break;
65e074df 499 case PG_LEVEL_1G:
3a19109e
TK
500 old_prot = pud_pgprot(*(pud_t *)kpte);
501 old_pfn = pud_pfn(*(pud_t *)kpte);
f3c4fbb6 502 break;
65e074df 503 default:
beaff633 504 do_split = -EINVAL;
65e074df
TG
505 goto out_unlock;
506 }
507
3a19109e
TK
508 psize = page_level_size(level);
509 pmask = page_level_mask(level);
510
65e074df
TG
511 /*
512 * Calculate the number of pages, which fit into this large
513 * page starting at address:
514 */
515 nextpage_addr = (address + psize) & pmask;
516 numpages = (nextpage_addr - address) >> PAGE_SHIFT;
9b5cf48b
RW
517 if (numpages < cpa->numpages)
518 cpa->numpages = numpages;
65e074df
TG
519
520 /*
521 * We are safe now. Check whether the new pgprot is the same:
f5b2831d
JG
522 * Convert protection attributes to 4k-format, as cpa->mask* are set
523 * up accordingly.
65e074df
TG
524 */
525 old_pte = *kpte;
55696b1f 526 req_prot = pgprot_large_2_4k(old_prot);
65e074df 527
64edc8ed 528 pgprot_val(req_prot) &= ~pgprot_val(cpa->mask_clr);
529 pgprot_val(req_prot) |= pgprot_val(cpa->mask_set);
c31c7d48 530
f5b2831d
JG
531 /*
532 * req_prot is in format of 4k pages. It must be converted to large
533 * page format: the caching mode includes the PAT bit located at
534 * different bit positions in the two formats.
535 */
536 req_prot = pgprot_4k_2_large(req_prot);
537
a8aed3e0
AA
538 /*
539 * Set the PSE and GLOBAL flags only if the PRESENT flag is
540 * set otherwise pmd_present/pmd_huge will return true even on
541 * a non present pmd. The canon_pgprot will clear _PAGE_GLOBAL
542 * for the ancient hardware that doesn't support it.
543 */
f76cfa3c
AA
544 if (pgprot_val(req_prot) & _PAGE_PRESENT)
545 pgprot_val(req_prot) |= _PAGE_PSE | _PAGE_GLOBAL;
a8aed3e0 546 else
f76cfa3c 547 pgprot_val(req_prot) &= ~(_PAGE_PSE | _PAGE_GLOBAL);
a8aed3e0 548
f76cfa3c 549 req_prot = canon_pgprot(req_prot);
a8aed3e0 550
c31c7d48 551 /*
3a19109e 552 * old_pfn points to the large page base pfn. So we need
c31c7d48
TG
553 * to add the offset of the virtual address:
554 */
3a19109e 555 pfn = old_pfn + ((address & (psize - 1)) >> PAGE_SHIFT);
c31c7d48
TG
556 cpa->pfn = pfn;
557
64edc8ed 558 new_prot = static_protections(req_prot, address, pfn);
65e074df 559
fac84939
TG
560 /*
561 * We need to check the full range, whether
562 * static_protection() requires a different pgprot for one of
563 * the pages in the range we try to preserve:
564 */
64edc8ed 565 addr = address & pmask;
3a19109e 566 pfn = old_pfn;
64edc8ed 567 for (i = 0; i < (psize >> PAGE_SHIFT); i++, addr += PAGE_SIZE, pfn++) {
568 pgprot_t chk_prot = static_protections(req_prot, addr, pfn);
fac84939
TG
569
570 if (pgprot_val(chk_prot) != pgprot_val(new_prot))
571 goto out_unlock;
572 }
573
65e074df
TG
574 /*
575 * If there are no changes, return. maxpages has been updated
576 * above:
577 */
578 if (pgprot_val(new_prot) == pgprot_val(old_prot)) {
beaff633 579 do_split = 0;
65e074df
TG
580 goto out_unlock;
581 }
582
583 /*
584 * We need to change the attributes. Check, whether we can
585 * change the large page in one go. We request a split, when
586 * the address is not aligned and the number of pages is
587 * smaller than the number of pages in the large page. Note
588 * that we limited the number of possible pages already to
589 * the number of pages in the large page.
590 */
64edc8ed 591 if (address == (address & pmask) && cpa->numpages == (psize >> PAGE_SHIFT)) {
65e074df
TG
592 /*
593 * The address is aligned and the number of pages
594 * covers the full page.
595 */
3a19109e 596 new_pte = pfn_pte(old_pfn, new_prot);
65e074df 597 __set_pmd_pte(kpte, address, new_pte);
d75586ad 598 cpa->flags |= CPA_FLUSHTLB;
beaff633 599 do_split = 0;
65e074df
TG
600 }
601
602out_unlock:
a79e53d8 603 spin_unlock(&pgd_lock);
9df84993 604
beaff633 605 return do_split;
65e074df
TG
606}
607
5952886b 608static int
82f0712c
BP
609__split_large_page(struct cpa_data *cpa, pte_t *kpte, unsigned long address,
610 struct page *base)
bb5c2dbd 611{
5952886b 612 pte_t *pbase = (pte_t *)page_address(base);
d551aaa2 613 unsigned long ref_pfn, pfn, pfninc = 1;
9df84993 614 unsigned int i, level;
ae9aae9e 615 pte_t *tmp;
9df84993 616 pgprot_t ref_prot;
bb5c2dbd 617
a79e53d8 618 spin_lock(&pgd_lock);
bb5c2dbd
IM
619 /*
620 * Check for races, another CPU might have split this page
621 * up for us already:
622 */
82f0712c 623 tmp = _lookup_address_cpa(cpa, address, &level);
ae9aae9e
WC
624 if (tmp != kpte) {
625 spin_unlock(&pgd_lock);
626 return 1;
627 }
bb5c2dbd 628
6944a9c8 629 paravirt_alloc_pte(&init_mm, page_to_pfn(base));
f5b2831d 630
d551aaa2
TK
631 switch (level) {
632 case PG_LEVEL_2M:
633 ref_prot = pmd_pgprot(*(pmd_t *)kpte);
634 /* clear PSE and promote PAT bit to correct position */
f5b2831d 635 ref_prot = pgprot_large_2_4k(ref_prot);
d551aaa2
TK
636 ref_pfn = pmd_pfn(*(pmd_t *)kpte);
637 break;
bb5c2dbd 638
d551aaa2
TK
639 case PG_LEVEL_1G:
640 ref_prot = pud_pgprot(*(pud_t *)kpte);
641 ref_pfn = pud_pfn(*(pud_t *)kpte);
f07333fd 642 pfninc = PMD_PAGE_SIZE >> PAGE_SHIFT;
d551aaa2 643
a8aed3e0 644 /*
d551aaa2 645 * Clear the PSE flags if the PRESENT flag is not set
a8aed3e0
AA
646 * otherwise pmd_present/pmd_huge will return true
647 * even on a non present pmd.
648 */
d551aaa2 649 if (!(pgprot_val(ref_prot) & _PAGE_PRESENT))
a8aed3e0 650 pgprot_val(ref_prot) &= ~_PAGE_PSE;
d551aaa2
TK
651 break;
652
653 default:
654 spin_unlock(&pgd_lock);
655 return 1;
f07333fd 656 }
f07333fd 657
a8aed3e0
AA
658 /*
659 * Set the GLOBAL flags only if the PRESENT flag is set
660 * otherwise pmd/pte_present will return true even on a non
661 * present pmd/pte. The canon_pgprot will clear _PAGE_GLOBAL
662 * for the ancient hardware that doesn't support it.
663 */
664 if (pgprot_val(ref_prot) & _PAGE_PRESENT)
665 pgprot_val(ref_prot) |= _PAGE_GLOBAL;
666 else
667 pgprot_val(ref_prot) &= ~_PAGE_GLOBAL;
668
63c1dcf4
TG
669 /*
670 * Get the target pfn from the original entry:
671 */
d551aaa2 672 pfn = ref_pfn;
f07333fd 673 for (i = 0; i < PTRS_PER_PTE; i++, pfn += pfninc)
a8aed3e0 674 set_pte(&pbase[i], pfn_pte(pfn, canon_pgprot(ref_prot)));
bb5c2dbd 675
2c66e24d
SP
676 if (virt_addr_valid(address)) {
677 unsigned long pfn = PFN_DOWN(__pa(address));
678
679 if (pfn_range_is_mapped(pfn, pfn + 1))
680 split_page_count(level);
681 }
f361a450 682
bb5c2dbd 683 /*
07a66d7c 684 * Install the new, split up pagetable.
4c881ca1 685 *
07a66d7c
IM
686 * We use the standard kernel pagetable protections for the new
687 * pagetable protections, the actual ptes set above control the
688 * primary protection behavior:
bb5c2dbd 689 */
07a66d7c 690 __set_pmd_pte(kpte, address, mk_pte(base, __pgprot(_KERNPG_TABLE)));
211b3d03
IM
691
692 /*
693 * Intel Atom errata AAH41 workaround.
694 *
695 * The real fix should be in hw or in a microcode update, but
696 * we also probabilistically try to reduce the window of having
697 * a large TLB mixed with 4K TLBs while instruction fetches are
698 * going on.
699 */
700 __flush_tlb_all();
ae9aae9e 701 spin_unlock(&pgd_lock);
211b3d03 702
ae9aae9e
WC
703 return 0;
704}
bb5c2dbd 705
82f0712c
BP
706static int split_large_page(struct cpa_data *cpa, pte_t *kpte,
707 unsigned long address)
ae9aae9e 708{
ae9aae9e
WC
709 struct page *base;
710
288cf3c6 711 if (!debug_pagealloc_enabled())
ae9aae9e
WC
712 spin_unlock(&cpa_lock);
713 base = alloc_pages(GFP_KERNEL | __GFP_NOTRACK, 0);
288cf3c6 714 if (!debug_pagealloc_enabled())
ae9aae9e
WC
715 spin_lock(&cpa_lock);
716 if (!base)
717 return -ENOMEM;
718
82f0712c 719 if (__split_large_page(cpa, kpte, address, base))
8311eb84 720 __free_page(base);
bb5c2dbd 721
bb5c2dbd
IM
722 return 0;
723}
724
52a628fb
BP
725static bool try_to_free_pte_page(pte_t *pte)
726{
727 int i;
728
729 for (i = 0; i < PTRS_PER_PTE; i++)
730 if (!pte_none(pte[i]))
731 return false;
732
733 free_page((unsigned long)pte);
734 return true;
735}
736
737static bool try_to_free_pmd_page(pmd_t *pmd)
738{
739 int i;
740
741 for (i = 0; i < PTRS_PER_PMD; i++)
742 if (!pmd_none(pmd[i]))
743 return false;
744
745 free_page((unsigned long)pmd);
746 return true;
747}
748
749static bool unmap_pte_range(pmd_t *pmd, unsigned long start, unsigned long end)
750{
751 pte_t *pte = pte_offset_kernel(pmd, start);
752
753 while (start < end) {
754 set_pte(pte, __pte(0));
755
756 start += PAGE_SIZE;
757 pte++;
758 }
759
760 if (try_to_free_pte_page((pte_t *)pmd_page_vaddr(*pmd))) {
761 pmd_clear(pmd);
762 return true;
763 }
764 return false;
765}
766
767static void __unmap_pmd_range(pud_t *pud, pmd_t *pmd,
768 unsigned long start, unsigned long end)
769{
770 if (unmap_pte_range(pmd, start, end))
771 if (try_to_free_pmd_page((pmd_t *)pud_page_vaddr(*pud)))
772 pud_clear(pud);
773}
774
775static void unmap_pmd_range(pud_t *pud, unsigned long start, unsigned long end)
776{
777 pmd_t *pmd = pmd_offset(pud, start);
778
779 /*
780 * Not on a 2MB page boundary?
781 */
782 if (start & (PMD_SIZE - 1)) {
783 unsigned long next_page = (start + PMD_SIZE) & PMD_MASK;
784 unsigned long pre_end = min_t(unsigned long, end, next_page);
785
786 __unmap_pmd_range(pud, pmd, start, pre_end);
787
788 start = pre_end;
789 pmd++;
790 }
791
792 /*
793 * Try to unmap in 2M chunks.
794 */
795 while (end - start >= PMD_SIZE) {
796 if (pmd_large(*pmd))
797 pmd_clear(pmd);
798 else
799 __unmap_pmd_range(pud, pmd, start, start + PMD_SIZE);
800
801 start += PMD_SIZE;
802 pmd++;
803 }
804
805 /*
806 * 4K leftovers?
807 */
808 if (start < end)
809 return __unmap_pmd_range(pud, pmd, start, end);
810
811 /*
812 * Try again to free the PMD page if haven't succeeded above.
813 */
814 if (!pud_none(*pud))
815 if (try_to_free_pmd_page((pmd_t *)pud_page_vaddr(*pud)))
816 pud_clear(pud);
817}
0bb8aeee
BP
818
819static void unmap_pud_range(pgd_t *pgd, unsigned long start, unsigned long end)
820{
821 pud_t *pud = pud_offset(pgd, start);
822
823 /*
824 * Not on a GB page boundary?
825 */
826 if (start & (PUD_SIZE - 1)) {
827 unsigned long next_page = (start + PUD_SIZE) & PUD_MASK;
828 unsigned long pre_end = min_t(unsigned long, end, next_page);
829
830 unmap_pmd_range(pud, start, pre_end);
831
832 start = pre_end;
833 pud++;
834 }
835
836 /*
837 * Try to unmap in 1G chunks?
838 */
839 while (end - start >= PUD_SIZE) {
840
841 if (pud_large(*pud))
842 pud_clear(pud);
843 else
844 unmap_pmd_range(pud, start, start + PUD_SIZE);
845
846 start += PUD_SIZE;
847 pud++;
848 }
849
850 /*
851 * 2M leftovers?
852 */
853 if (start < end)
854 unmap_pmd_range(pud, start, end);
855
856 /*
857 * No need to try to free the PUD page because we'll free it in
858 * populate_pgd's error path
859 */
860}
861
f900a4b8
BP
862static int alloc_pte_page(pmd_t *pmd)
863{
864 pte_t *pte = (pte_t *)get_zeroed_page(GFP_KERNEL | __GFP_NOTRACK);
865 if (!pte)
866 return -1;
867
868 set_pmd(pmd, __pmd(__pa(pte) | _KERNPG_TABLE));
869 return 0;
870}
871
4b23538d
BP
872static int alloc_pmd_page(pud_t *pud)
873{
874 pmd_t *pmd = (pmd_t *)get_zeroed_page(GFP_KERNEL | __GFP_NOTRACK);
875 if (!pmd)
876 return -1;
877
878 set_pud(pud, __pud(__pa(pmd) | _KERNPG_TABLE));
879 return 0;
880}
881
c6b6f363
BP
882static void populate_pte(struct cpa_data *cpa,
883 unsigned long start, unsigned long end,
884 unsigned num_pages, pmd_t *pmd, pgprot_t pgprot)
885{
886 pte_t *pte;
887
888 pte = pte_offset_kernel(pmd, start);
889
39763015
SP
890 /*
891 * Set the GLOBAL flags only if the PRESENT flag is
892 * set otherwise pte_present will return true even on
893 * a non present pte. The canon_pgprot will clear
894 * _PAGE_GLOBAL for the ancient hardware that doesn't
895 * support it.
896 */
897 if (pgprot_val(pgprot) & _PAGE_PRESENT)
898 pgprot_val(pgprot) |= _PAGE_GLOBAL;
899 else
900 pgprot_val(pgprot) &= ~_PAGE_GLOBAL;
c6b6f363 901
39763015 902 pgprot = canon_pgprot(pgprot);
c6b6f363 903
c6b6f363 904 while (num_pages-- && start < end) {
edc3b912 905 set_pte(pte, pfn_pte(cpa->pfn, pgprot));
c6b6f363
BP
906
907 start += PAGE_SIZE;
edc3b912 908 cpa->pfn++;
c6b6f363
BP
909 pte++;
910 }
911}
f900a4b8
BP
912
913static int populate_pmd(struct cpa_data *cpa,
914 unsigned long start, unsigned long end,
915 unsigned num_pages, pud_t *pud, pgprot_t pgprot)
916{
917 unsigned int cur_pages = 0;
918 pmd_t *pmd;
f5b2831d 919 pgprot_t pmd_pgprot;
f900a4b8
BP
920
921 /*
922 * Not on a 2M boundary?
923 */
924 if (start & (PMD_SIZE - 1)) {
925 unsigned long pre_end = start + (num_pages << PAGE_SHIFT);
926 unsigned long next_page = (start + PMD_SIZE) & PMD_MASK;
927
928 pre_end = min_t(unsigned long, pre_end, next_page);
929 cur_pages = (pre_end - start) >> PAGE_SHIFT;
930 cur_pages = min_t(unsigned int, num_pages, cur_pages);
931
932 /*
933 * Need a PTE page?
934 */
935 pmd = pmd_offset(pud, start);
936 if (pmd_none(*pmd))
937 if (alloc_pte_page(pmd))
938 return -1;
939
940 populate_pte(cpa, start, pre_end, cur_pages, pmd, pgprot);
941
942 start = pre_end;
943 }
944
945 /*
946 * We mapped them all?
947 */
948 if (num_pages == cur_pages)
949 return cur_pages;
950
f5b2831d
JG
951 pmd_pgprot = pgprot_4k_2_large(pgprot);
952
f900a4b8
BP
953 while (end - start >= PMD_SIZE) {
954
955 /*
956 * We cannot use a 1G page so allocate a PMD page if needed.
957 */
958 if (pud_none(*pud))
959 if (alloc_pmd_page(pud))
960 return -1;
961
962 pmd = pmd_offset(pud, start);
963
edc3b912 964 set_pmd(pmd, __pmd(cpa->pfn << PAGE_SHIFT | _PAGE_PSE |
f5b2831d 965 massage_pgprot(pmd_pgprot)));
f900a4b8
BP
966
967 start += PMD_SIZE;
edc3b912 968 cpa->pfn += PMD_SIZE >> PAGE_SHIFT;
f900a4b8
BP
969 cur_pages += PMD_SIZE >> PAGE_SHIFT;
970 }
971
972 /*
973 * Map trailing 4K pages.
974 */
975 if (start < end) {
976 pmd = pmd_offset(pud, start);
977 if (pmd_none(*pmd))
978 if (alloc_pte_page(pmd))
979 return -1;
980
981 populate_pte(cpa, start, end, num_pages - cur_pages,
982 pmd, pgprot);
983 }
984 return num_pages;
985}
4b23538d
BP
986
987static int populate_pud(struct cpa_data *cpa, unsigned long start, pgd_t *pgd,
988 pgprot_t pgprot)
989{
990 pud_t *pud;
991 unsigned long end;
992 int cur_pages = 0;
f5b2831d 993 pgprot_t pud_pgprot;
4b23538d
BP
994
995 end = start + (cpa->numpages << PAGE_SHIFT);
996
997 /*
998 * Not on a Gb page boundary? => map everything up to it with
999 * smaller pages.
1000 */
1001 if (start & (PUD_SIZE - 1)) {
1002 unsigned long pre_end;
1003 unsigned long next_page = (start + PUD_SIZE) & PUD_MASK;
1004
1005 pre_end = min_t(unsigned long, end, next_page);
1006 cur_pages = (pre_end - start) >> PAGE_SHIFT;
1007 cur_pages = min_t(int, (int)cpa->numpages, cur_pages);
1008
1009 pud = pud_offset(pgd, start);
1010
1011 /*
1012 * Need a PMD page?
1013 */
1014 if (pud_none(*pud))
1015 if (alloc_pmd_page(pud))
1016 return -1;
1017
1018 cur_pages = populate_pmd(cpa, start, pre_end, cur_pages,
1019 pud, pgprot);
1020 if (cur_pages < 0)
1021 return cur_pages;
1022
1023 start = pre_end;
1024 }
1025
1026 /* We mapped them all? */
1027 if (cpa->numpages == cur_pages)
1028 return cur_pages;
1029
1030 pud = pud_offset(pgd, start);
f5b2831d 1031 pud_pgprot = pgprot_4k_2_large(pgprot);
4b23538d
BP
1032
1033 /*
1034 * Map everything starting from the Gb boundary, possibly with 1G pages
1035 */
b8291adc 1036 while (boot_cpu_has(X86_FEATURE_GBPAGES) && end - start >= PUD_SIZE) {
edc3b912 1037 set_pud(pud, __pud(cpa->pfn << PAGE_SHIFT | _PAGE_PSE |
f5b2831d 1038 massage_pgprot(pud_pgprot)));
4b23538d
BP
1039
1040 start += PUD_SIZE;
edc3b912 1041 cpa->pfn += PUD_SIZE >> PAGE_SHIFT;
4b23538d
BP
1042 cur_pages += PUD_SIZE >> PAGE_SHIFT;
1043 pud++;
1044 }
1045
1046 /* Map trailing leftover */
1047 if (start < end) {
1048 int tmp;
1049
1050 pud = pud_offset(pgd, start);
1051 if (pud_none(*pud))
1052 if (alloc_pmd_page(pud))
1053 return -1;
1054
1055 tmp = populate_pmd(cpa, start, end, cpa->numpages - cur_pages,
1056 pud, pgprot);
1057 if (tmp < 0)
1058 return cur_pages;
1059
1060 cur_pages += tmp;
1061 }
1062 return cur_pages;
1063}
f3f72966
BP
1064
1065/*
1066 * Restrictions for kernel page table do not necessarily apply when mapping in
1067 * an alternate PGD.
1068 */
1069static int populate_pgd(struct cpa_data *cpa, unsigned long addr)
1070{
1071 pgprot_t pgprot = __pgprot(_KERNPG_TABLE);
f3f72966 1072 pud_t *pud = NULL; /* shut up gcc */
42a54772 1073 pgd_t *pgd_entry;
f3f72966
BP
1074 int ret;
1075
1076 pgd_entry = cpa->pgd + pgd_index(addr);
1077
1078 /*
1079 * Allocate a PUD page and hand it down for mapping.
1080 */
1081 if (pgd_none(*pgd_entry)) {
1082 pud = (pud_t *)get_zeroed_page(GFP_KERNEL | __GFP_NOTRACK);
1083 if (!pud)
1084 return -1;
f3f72966
BP
1085 }
1086
1087 pgprot_val(pgprot) &= ~pgprot_val(cpa->mask_clr);
1088 pgprot_val(pgprot) |= pgprot_val(cpa->mask_set);
1089
1090 ret = populate_pud(cpa, addr, pgd_entry, pgprot);
0bb8aeee 1091 if (ret < 0) {
360cb4d1
AL
1092 if (pud)
1093 free_page((unsigned long)pud);
1094 unmap_pud_range(pgd_entry, addr,
0bb8aeee 1095 addr + (cpa->numpages << PAGE_SHIFT));
f3f72966 1096 return ret;
0bb8aeee 1097 }
42a54772 1098
360cb4d1
AL
1099 if (pud)
1100 set_pgd(pgd_entry, __pgd(__pa(pud) | _KERNPG_TABLE));
1101
f3f72966
BP
1102 cpa->numpages = ret;
1103 return 0;
1104}
1105
a1e46212
SS
1106static int __cpa_process_fault(struct cpa_data *cpa, unsigned long vaddr,
1107 int primary)
1108{
7fc8442f
MF
1109 if (cpa->pgd) {
1110 /*
1111 * Right now, we only execute this code path when mapping
1112 * the EFI virtual memory map regions, no other users
1113 * provide a ->pgd value. This may change in the future.
1114 */
82f0712c 1115 return populate_pgd(cpa, vaddr);
7fc8442f 1116 }
82f0712c 1117
a1e46212
SS
1118 /*
1119 * Ignore all non primary paths.
1120 */
405e1133
JB
1121 if (!primary) {
1122 cpa->numpages = 1;
a1e46212 1123 return 0;
405e1133 1124 }
a1e46212
SS
1125
1126 /*
1127 * Ignore the NULL PTE for kernel identity mapping, as it is expected
1128 * to have holes.
1129 * Also set numpages to '1' indicating that we processed cpa req for
1130 * one virtual address page and its pfn. TBD: numpages can be set based
1131 * on the initial value and the level returned by lookup_address().
1132 */
1133 if (within(vaddr, PAGE_OFFSET,
1134 PAGE_OFFSET + (max_pfn_mapped << PAGE_SHIFT))) {
1135 cpa->numpages = 1;
1136 cpa->pfn = __pa(vaddr) >> PAGE_SHIFT;
1137 return 0;
1138 } else {
1139 WARN(1, KERN_WARNING "CPA: called for zero pte. "
1140 "vaddr = %lx cpa->vaddr = %lx\n", vaddr,
1141 *cpa->vaddr);
1142
1143 return -EFAULT;
1144 }
1145}
1146
c31c7d48 1147static int __change_page_attr(struct cpa_data *cpa, int primary)
9f4c815c 1148{
d75586ad 1149 unsigned long address;
da7bfc50
HH
1150 int do_split, err;
1151 unsigned int level;
c31c7d48 1152 pte_t *kpte, old_pte;
1da177e4 1153
8523acfe
TH
1154 if (cpa->flags & CPA_PAGES_ARRAY) {
1155 struct page *page = cpa->pages[cpa->curpage];
1156 if (unlikely(PageHighMem(page)))
1157 return 0;
1158 address = (unsigned long)page_address(page);
1159 } else if (cpa->flags & CPA_ARRAY)
d75586ad
SL
1160 address = cpa->vaddr[cpa->curpage];
1161 else
1162 address = *cpa->vaddr;
97f99fed 1163repeat:
82f0712c 1164 kpte = _lookup_address_cpa(cpa, address, &level);
1da177e4 1165 if (!kpte)
a1e46212 1166 return __cpa_process_fault(cpa, address, primary);
c31c7d48
TG
1167
1168 old_pte = *kpte;
dcb32d99 1169 if (pte_none(old_pte))
a1e46212 1170 return __cpa_process_fault(cpa, address, primary);
9f4c815c 1171
30551bb3 1172 if (level == PG_LEVEL_4K) {
c31c7d48 1173 pte_t new_pte;
626c2c9d 1174 pgprot_t new_prot = pte_pgprot(old_pte);
c31c7d48 1175 unsigned long pfn = pte_pfn(old_pte);
86f03989 1176
72e458df
TG
1177 pgprot_val(new_prot) &= ~pgprot_val(cpa->mask_clr);
1178 pgprot_val(new_prot) |= pgprot_val(cpa->mask_set);
86f03989 1179
c31c7d48 1180 new_prot = static_protections(new_prot, address, pfn);
86f03989 1181
a8aed3e0
AA
1182 /*
1183 * Set the GLOBAL flags only if the PRESENT flag is
1184 * set otherwise pte_present will return true even on
1185 * a non present pte. The canon_pgprot will clear
1186 * _PAGE_GLOBAL for the ancient hardware that doesn't
1187 * support it.
1188 */
1189 if (pgprot_val(new_prot) & _PAGE_PRESENT)
1190 pgprot_val(new_prot) |= _PAGE_GLOBAL;
1191 else
1192 pgprot_val(new_prot) &= ~_PAGE_GLOBAL;
1193
626c2c9d
AV
1194 /*
1195 * We need to keep the pfn from the existing PTE,
1196 * after all we're only going to change it's attributes
1197 * not the memory it points to
1198 */
c31c7d48
TG
1199 new_pte = pfn_pte(pfn, canon_pgprot(new_prot));
1200 cpa->pfn = pfn;
f4ae5da0
TG
1201 /*
1202 * Do we really change anything ?
1203 */
1204 if (pte_val(old_pte) != pte_val(new_pte)) {
1205 set_pte_atomic(kpte, new_pte);
d75586ad 1206 cpa->flags |= CPA_FLUSHTLB;
f4ae5da0 1207 }
9b5cf48b 1208 cpa->numpages = 1;
65e074df 1209 return 0;
1da177e4 1210 }
65e074df
TG
1211
1212 /*
1213 * Check, whether we can keep the large page intact
1214 * and just change the pte:
1215 */
beaff633 1216 do_split = try_preserve_large_page(kpte, address, cpa);
65e074df
TG
1217 /*
1218 * When the range fits into the existing large page,
9b5cf48b 1219 * return. cp->numpages and cpa->tlbflush have been updated in
65e074df
TG
1220 * try_large_page:
1221 */
87f7f8fe
IM
1222 if (do_split <= 0)
1223 return do_split;
65e074df
TG
1224
1225 /*
1226 * We have to split the large page:
1227 */
82f0712c 1228 err = split_large_page(cpa, kpte, address);
87f7f8fe 1229 if (!err) {
ad5ca55f
SS
1230 /*
1231 * Do a global flush tlb after splitting the large page
1232 * and before we do the actual change page attribute in the PTE.
1233 *
1234 * With out this, we violate the TLB application note, that says
1235 * "The TLBs may contain both ordinary and large-page
1236 * translations for a 4-KByte range of linear addresses. This
1237 * may occur if software modifies the paging structures so that
1238 * the page size used for the address range changes. If the two
1239 * translations differ with respect to page frame or attributes
1240 * (e.g., permissions), processor behavior is undefined and may
1241 * be implementation-specific."
1242 *
1243 * We do this global tlb flush inside the cpa_lock, so that we
1244 * don't allow any other cpu, with stale tlb entries change the
1245 * page attribute in parallel, that also falls into the
1246 * just split large page entry.
1247 */
1248 flush_tlb_all();
87f7f8fe
IM
1249 goto repeat;
1250 }
beaff633 1251
87f7f8fe 1252 return err;
9f4c815c 1253}
1da177e4 1254
c31c7d48
TG
1255static int __change_page_attr_set_clr(struct cpa_data *cpa, int checkalias);
1256
1257static int cpa_process_alias(struct cpa_data *cpa)
1da177e4 1258{
c31c7d48 1259 struct cpa_data alias_cpa;
992f4c1c 1260 unsigned long laddr = (unsigned long)__va(cpa->pfn << PAGE_SHIFT);
e933a73f 1261 unsigned long vaddr;
992f4c1c 1262 int ret;
44af6c41 1263
8eb5779f 1264 if (!pfn_range_is_mapped(cpa->pfn, cpa->pfn + 1))
c31c7d48 1265 return 0;
626c2c9d 1266
f34b439f
TG
1267 /*
1268 * No need to redo, when the primary call touched the direct
1269 * mapping already:
1270 */
8523acfe
TH
1271 if (cpa->flags & CPA_PAGES_ARRAY) {
1272 struct page *page = cpa->pages[cpa->curpage];
1273 if (unlikely(PageHighMem(page)))
1274 return 0;
1275 vaddr = (unsigned long)page_address(page);
1276 } else if (cpa->flags & CPA_ARRAY)
d75586ad
SL
1277 vaddr = cpa->vaddr[cpa->curpage];
1278 else
1279 vaddr = *cpa->vaddr;
1280
1281 if (!(within(vaddr, PAGE_OFFSET,
a1e46212 1282 PAGE_OFFSET + (max_pfn_mapped << PAGE_SHIFT)))) {
44af6c41 1283
f34b439f 1284 alias_cpa = *cpa;
992f4c1c 1285 alias_cpa.vaddr = &laddr;
9ae28475 1286 alias_cpa.flags &= ~(CPA_PAGES_ARRAY | CPA_ARRAY);
d75586ad 1287
f34b439f 1288 ret = __change_page_attr_set_clr(&alias_cpa, 0);
992f4c1c
TH
1289 if (ret)
1290 return ret;
f34b439f 1291 }
44af6c41 1292
44af6c41 1293#ifdef CONFIG_X86_64
488fd995 1294 /*
992f4c1c
TH
1295 * If the primary call didn't touch the high mapping already
1296 * and the physical address is inside the kernel map, we need
0879750f 1297 * to touch the high mapped kernel as well:
488fd995 1298 */
992f4c1c
TH
1299 if (!within(vaddr, (unsigned long)_text, _brk_end) &&
1300 within(cpa->pfn, highmap_start_pfn(), highmap_end_pfn())) {
1301 unsigned long temp_cpa_vaddr = (cpa->pfn << PAGE_SHIFT) +
1302 __START_KERNEL_map - phys_base;
1303 alias_cpa = *cpa;
1304 alias_cpa.vaddr = &temp_cpa_vaddr;
1305 alias_cpa.flags &= ~(CPA_PAGES_ARRAY | CPA_ARRAY);
c31c7d48 1306
992f4c1c
TH
1307 /*
1308 * The high mapping range is imprecise, so ignore the
1309 * return value.
1310 */
1311 __change_page_attr_set_clr(&alias_cpa, 0);
1312 }
488fd995 1313#endif
992f4c1c
TH
1314
1315 return 0;
1da177e4
LT
1316}
1317
c31c7d48 1318static int __change_page_attr_set_clr(struct cpa_data *cpa, int checkalias)
ff31452b 1319{
65e074df 1320 int ret, numpages = cpa->numpages;
ff31452b 1321
65e074df
TG
1322 while (numpages) {
1323 /*
1324 * Store the remaining nr of pages for the large page
1325 * preservation check.
1326 */
9b5cf48b 1327 cpa->numpages = numpages;
d75586ad 1328 /* for array changes, we can't use large page */
9ae28475 1329 if (cpa->flags & (CPA_ARRAY | CPA_PAGES_ARRAY))
d75586ad 1330 cpa->numpages = 1;
c31c7d48 1331
288cf3c6 1332 if (!debug_pagealloc_enabled())
ad5ca55f 1333 spin_lock(&cpa_lock);
c31c7d48 1334 ret = __change_page_attr(cpa, checkalias);
288cf3c6 1335 if (!debug_pagealloc_enabled())
ad5ca55f 1336 spin_unlock(&cpa_lock);
ff31452b
TG
1337 if (ret)
1338 return ret;
ff31452b 1339
c31c7d48
TG
1340 if (checkalias) {
1341 ret = cpa_process_alias(cpa);
1342 if (ret)
1343 return ret;
1344 }
1345
65e074df
TG
1346 /*
1347 * Adjust the number of pages with the result of the
1348 * CPA operation. Either a large page has been
1349 * preserved or a single page update happened.
1350 */
74256377 1351 BUG_ON(cpa->numpages > numpages || !cpa->numpages);
9b5cf48b 1352 numpages -= cpa->numpages;
9ae28475 1353 if (cpa->flags & (CPA_PAGES_ARRAY | CPA_ARRAY))
d75586ad
SL
1354 cpa->curpage++;
1355 else
1356 *cpa->vaddr += cpa->numpages * PAGE_SIZE;
1357
65e074df 1358 }
ff31452b
TG
1359 return 0;
1360}
1361
d75586ad 1362static int change_page_attr_set_clr(unsigned long *addr, int numpages,
c9caa02c 1363 pgprot_t mask_set, pgprot_t mask_clr,
9ae28475 1364 int force_split, int in_flag,
1365 struct page **pages)
ff31452b 1366{
72e458df 1367 struct cpa_data cpa;
cacf8906 1368 int ret, cache, checkalias;
fa526d0d 1369 unsigned long baddr = 0;
331e4065 1370
82f0712c
BP
1371 memset(&cpa, 0, sizeof(cpa));
1372
331e4065
TG
1373 /*
1374 * Check, if we are requested to change a not supported
1375 * feature:
1376 */
1377 mask_set = canon_pgprot(mask_set);
1378 mask_clr = canon_pgprot(mask_clr);
c9caa02c 1379 if (!pgprot_val(mask_set) && !pgprot_val(mask_clr) && !force_split)
331e4065
TG
1380 return 0;
1381
69b1415e 1382 /* Ensure we are PAGE_SIZE aligned */
9ae28475 1383 if (in_flag & CPA_ARRAY) {
d75586ad
SL
1384 int i;
1385 for (i = 0; i < numpages; i++) {
1386 if (addr[i] & ~PAGE_MASK) {
1387 addr[i] &= PAGE_MASK;
1388 WARN_ON_ONCE(1);
1389 }
1390 }
9ae28475 1391 } else if (!(in_flag & CPA_PAGES_ARRAY)) {
1392 /*
1393 * in_flag of CPA_PAGES_ARRAY implies it is aligned.
1394 * No need to cehck in that case
1395 */
1396 if (*addr & ~PAGE_MASK) {
1397 *addr &= PAGE_MASK;
1398 /*
1399 * People should not be passing in unaligned addresses:
1400 */
1401 WARN_ON_ONCE(1);
1402 }
fa526d0d
JS
1403 /*
1404 * Save address for cache flush. *addr is modified in the call
1405 * to __change_page_attr_set_clr() below.
1406 */
1407 baddr = *addr;
69b1415e
TG
1408 }
1409
5843d9a4
NP
1410 /* Must avoid aliasing mappings in the highmem code */
1411 kmap_flush_unused();
1412
db64fe02
NP
1413 vm_unmap_aliases();
1414
72e458df 1415 cpa.vaddr = addr;
9ae28475 1416 cpa.pages = pages;
72e458df
TG
1417 cpa.numpages = numpages;
1418 cpa.mask_set = mask_set;
1419 cpa.mask_clr = mask_clr;
d75586ad
SL
1420 cpa.flags = 0;
1421 cpa.curpage = 0;
c9caa02c 1422 cpa.force_split = force_split;
72e458df 1423
9ae28475 1424 if (in_flag & (CPA_ARRAY | CPA_PAGES_ARRAY))
1425 cpa.flags |= in_flag;
d75586ad 1426
af96e443
TG
1427 /* No alias checking for _NX bit modifications */
1428 checkalias = (pgprot_val(mask_set) | pgprot_val(mask_clr)) != _PAGE_NX;
1429
1430 ret = __change_page_attr_set_clr(&cpa, checkalias);
ff31452b 1431
f4ae5da0
TG
1432 /*
1433 * Check whether we really changed something:
1434 */
d75586ad 1435 if (!(cpa.flags & CPA_FLUSHTLB))
1ac2f7d5 1436 goto out;
cacf8906 1437
6bb8383b
AK
1438 /*
1439 * No need to flush, when we did not set any of the caching
1440 * attributes:
1441 */
c06814d8 1442 cache = !!pgprot2cachemode(mask_set);
6bb8383b 1443
57a6a46a 1444 /*
b82ad3d3
BP
1445 * On success we use CLFLUSH, when the CPU supports it to
1446 * avoid the WBINVD. If the CPU does not support it and in the
f026cfa8 1447 * error case we fall back to cpa_flush_all (which uses
b82ad3d3 1448 * WBINVD):
57a6a46a 1449 */
906bf7fd 1450 if (!ret && boot_cpu_has(X86_FEATURE_CLFLUSH)) {
9ae28475 1451 if (cpa.flags & (CPA_PAGES_ARRAY | CPA_ARRAY)) {
1452 cpa_flush_array(addr, numpages, cache,
1453 cpa.flags, pages);
1454 } else
fa526d0d 1455 cpa_flush_range(baddr, numpages, cache);
d75586ad 1456 } else
6bb8383b 1457 cpa_flush_all(cache);
cacf8906 1458
76ebd054 1459out:
ff31452b
TG
1460 return ret;
1461}
1462
d75586ad
SL
1463static inline int change_page_attr_set(unsigned long *addr, int numpages,
1464 pgprot_t mask, int array)
75cbade8 1465{
d75586ad 1466 return change_page_attr_set_clr(addr, numpages, mask, __pgprot(0), 0,
9ae28475 1467 (array ? CPA_ARRAY : 0), NULL);
75cbade8
AV
1468}
1469
d75586ad
SL
1470static inline int change_page_attr_clear(unsigned long *addr, int numpages,
1471 pgprot_t mask, int array)
72932c7a 1472{
d75586ad 1473 return change_page_attr_set_clr(addr, numpages, __pgprot(0), mask, 0,
9ae28475 1474 (array ? CPA_ARRAY : 0), NULL);
72932c7a
TG
1475}
1476
0f350755 1477static inline int cpa_set_pages_array(struct page **pages, int numpages,
1478 pgprot_t mask)
1479{
1480 return change_page_attr_set_clr(NULL, numpages, mask, __pgprot(0), 0,
1481 CPA_PAGES_ARRAY, pages);
1482}
1483
1484static inline int cpa_clear_pages_array(struct page **pages, int numpages,
1485 pgprot_t mask)
1486{
1487 return change_page_attr_set_clr(NULL, numpages, __pgprot(0), mask, 0,
1488 CPA_PAGES_ARRAY, pages);
1489}
1490
1219333d 1491int _set_memory_uc(unsigned long addr, int numpages)
72932c7a 1492{
de33c442
SS
1493 /*
1494 * for now UC MINUS. see comments in ioremap_nocache()
e4b6be33
LR
1495 * If you really need strong UC use ioremap_uc(), but note
1496 * that you cannot override IO areas with set_memory_*() as
1497 * these helpers cannot work with IO memory.
de33c442 1498 */
d75586ad 1499 return change_page_attr_set(&addr, numpages,
c06814d8
JG
1500 cachemode2pgprot(_PAGE_CACHE_MODE_UC_MINUS),
1501 0);
75cbade8 1502}
1219333d 1503
1504int set_memory_uc(unsigned long addr, int numpages)
1505{
9fa3ab39 1506 int ret;
1507
de33c442
SS
1508 /*
1509 * for now UC MINUS. see comments in ioremap_nocache()
1510 */
9fa3ab39 1511 ret = reserve_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE,
e00c8cc9 1512 _PAGE_CACHE_MODE_UC_MINUS, NULL);
9fa3ab39 1513 if (ret)
1514 goto out_err;
1515
1516 ret = _set_memory_uc(addr, numpages);
1517 if (ret)
1518 goto out_free;
1519
1520 return 0;
1219333d 1521
9fa3ab39 1522out_free:
1523 free_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
1524out_err:
1525 return ret;
1219333d 1526}
75cbade8
AV
1527EXPORT_SYMBOL(set_memory_uc);
1528
2d070eff 1529static int _set_memory_array(unsigned long *addr, int addrinarray,
c06814d8 1530 enum page_cache_mode new_type)
d75586ad 1531{
623dffb2 1532 enum page_cache_mode set_type;
9fa3ab39 1533 int i, j;
1534 int ret;
1535
d75586ad 1536 for (i = 0; i < addrinarray; i++) {
9fa3ab39 1537 ret = reserve_memtype(__pa(addr[i]), __pa(addr[i]) + PAGE_SIZE,
4f646254 1538 new_type, NULL);
9fa3ab39 1539 if (ret)
1540 goto out_free;
d75586ad
SL
1541 }
1542
623dffb2
TK
1543 /* If WC, set to UC- first and then WC */
1544 set_type = (new_type == _PAGE_CACHE_MODE_WC) ?
1545 _PAGE_CACHE_MODE_UC_MINUS : new_type;
1546
9fa3ab39 1547 ret = change_page_attr_set(addr, addrinarray,
623dffb2 1548 cachemode2pgprot(set_type), 1);
4f646254 1549
c06814d8 1550 if (!ret && new_type == _PAGE_CACHE_MODE_WC)
4f646254 1551 ret = change_page_attr_set_clr(addr, addrinarray,
c06814d8
JG
1552 cachemode2pgprot(
1553 _PAGE_CACHE_MODE_WC),
4f646254
PN
1554 __pgprot(_PAGE_CACHE_MASK),
1555 0, CPA_ARRAY, NULL);
9fa3ab39 1556 if (ret)
1557 goto out_free;
1558
1559 return 0;
1560
1561out_free:
1562 for (j = 0; j < i; j++)
1563 free_memtype(__pa(addr[j]), __pa(addr[j]) + PAGE_SIZE);
1564
1565 return ret;
d75586ad 1566}
4f646254
PN
1567
1568int set_memory_array_uc(unsigned long *addr, int addrinarray)
1569{
c06814d8 1570 return _set_memory_array(addr, addrinarray, _PAGE_CACHE_MODE_UC_MINUS);
4f646254 1571}
d75586ad
SL
1572EXPORT_SYMBOL(set_memory_array_uc);
1573
4f646254
PN
1574int set_memory_array_wc(unsigned long *addr, int addrinarray)
1575{
c06814d8 1576 return _set_memory_array(addr, addrinarray, _PAGE_CACHE_MODE_WC);
4f646254
PN
1577}
1578EXPORT_SYMBOL(set_memory_array_wc);
1579
623dffb2
TK
1580int set_memory_array_wt(unsigned long *addr, int addrinarray)
1581{
1582 return _set_memory_array(addr, addrinarray, _PAGE_CACHE_MODE_WT);
1583}
1584EXPORT_SYMBOL_GPL(set_memory_array_wt);
1585
ef354af4 1586int _set_memory_wc(unsigned long addr, int numpages)
1587{
3869c4aa 1588 int ret;
bdc6340f
PV
1589 unsigned long addr_copy = addr;
1590
3869c4aa 1591 ret = change_page_attr_set(&addr, numpages,
c06814d8
JG
1592 cachemode2pgprot(_PAGE_CACHE_MODE_UC_MINUS),
1593 0);
3869c4aa 1594 if (!ret) {
bdc6340f 1595 ret = change_page_attr_set_clr(&addr_copy, numpages,
c06814d8
JG
1596 cachemode2pgprot(
1597 _PAGE_CACHE_MODE_WC),
bdc6340f
PV
1598 __pgprot(_PAGE_CACHE_MASK),
1599 0, 0, NULL);
3869c4aa 1600 }
1601 return ret;
ef354af4 1602}
1603
1604int set_memory_wc(unsigned long addr, int numpages)
1605{
9fa3ab39 1606 int ret;
1607
9fa3ab39 1608 ret = reserve_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE,
e00c8cc9 1609 _PAGE_CACHE_MODE_WC, NULL);
9fa3ab39 1610 if (ret)
623dffb2 1611 return ret;
ef354af4 1612
9fa3ab39 1613 ret = _set_memory_wc(addr, numpages);
1614 if (ret)
623dffb2 1615 free_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
9fa3ab39 1616
9fa3ab39 1617 return ret;
ef354af4 1618}
1619EXPORT_SYMBOL(set_memory_wc);
1620
623dffb2
TK
1621int _set_memory_wt(unsigned long addr, int numpages)
1622{
1623 return change_page_attr_set(&addr, numpages,
1624 cachemode2pgprot(_PAGE_CACHE_MODE_WT), 0);
1625}
1626
1627int set_memory_wt(unsigned long addr, int numpages)
1628{
1629 int ret;
1630
1631 ret = reserve_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE,
1632 _PAGE_CACHE_MODE_WT, NULL);
1633 if (ret)
1634 return ret;
1635
1636 ret = _set_memory_wt(addr, numpages);
1637 if (ret)
1638 free_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
1639
1640 return ret;
1641}
1642EXPORT_SYMBOL_GPL(set_memory_wt);
1643
1219333d 1644int _set_memory_wb(unsigned long addr, int numpages)
75cbade8 1645{
c06814d8 1646 /* WB cache mode is hard wired to all cache attribute bits being 0 */
d75586ad
SL
1647 return change_page_attr_clear(&addr, numpages,
1648 __pgprot(_PAGE_CACHE_MASK), 0);
75cbade8 1649}
1219333d 1650
1651int set_memory_wb(unsigned long addr, int numpages)
1652{
9fa3ab39 1653 int ret;
1654
1655 ret = _set_memory_wb(addr, numpages);
1656 if (ret)
1657 return ret;
1658
c15238df 1659 free_memtype(__pa(addr), __pa(addr) + numpages * PAGE_SIZE);
9fa3ab39 1660 return 0;
1219333d 1661}
75cbade8
AV
1662EXPORT_SYMBOL(set_memory_wb);
1663
d75586ad
SL
1664int set_memory_array_wb(unsigned long *addr, int addrinarray)
1665{
1666 int i;
a5593e0b 1667 int ret;
1668
c06814d8 1669 /* WB cache mode is hard wired to all cache attribute bits being 0 */
a5593e0b 1670 ret = change_page_attr_clear(addr, addrinarray,
1671 __pgprot(_PAGE_CACHE_MASK), 1);
9fa3ab39 1672 if (ret)
1673 return ret;
d75586ad 1674
9fa3ab39 1675 for (i = 0; i < addrinarray; i++)
1676 free_memtype(__pa(addr[i]), __pa(addr[i]) + PAGE_SIZE);
c5e147cf 1677
9fa3ab39 1678 return 0;
d75586ad
SL
1679}
1680EXPORT_SYMBOL(set_memory_array_wb);
1681
75cbade8
AV
1682int set_memory_x(unsigned long addr, int numpages)
1683{
583140af
PA
1684 if (!(__supported_pte_mask & _PAGE_NX))
1685 return 0;
1686
d75586ad 1687 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_NX), 0);
75cbade8
AV
1688}
1689EXPORT_SYMBOL(set_memory_x);
1690
1691int set_memory_nx(unsigned long addr, int numpages)
1692{
583140af
PA
1693 if (!(__supported_pte_mask & _PAGE_NX))
1694 return 0;
1695
d75586ad 1696 return change_page_attr_set(&addr, numpages, __pgprot(_PAGE_NX), 0);
75cbade8
AV
1697}
1698EXPORT_SYMBOL(set_memory_nx);
1699
1700int set_memory_ro(unsigned long addr, int numpages)
1701{
d75586ad 1702 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_RW), 0);
75cbade8 1703}
75cbade8
AV
1704
1705int set_memory_rw(unsigned long addr, int numpages)
1706{
d75586ad 1707 return change_page_attr_set(&addr, numpages, __pgprot(_PAGE_RW), 0);
75cbade8 1708}
f62d0f00
IM
1709
1710int set_memory_np(unsigned long addr, int numpages)
1711{
d75586ad 1712 return change_page_attr_clear(&addr, numpages, __pgprot(_PAGE_PRESENT), 0);
f62d0f00 1713}
75cbade8 1714
c9caa02c
AK
1715int set_memory_4k(unsigned long addr, int numpages)
1716{
d75586ad 1717 return change_page_attr_set_clr(&addr, numpages, __pgprot(0),
9ae28475 1718 __pgprot(0), 1, 0, NULL);
c9caa02c
AK
1719}
1720
75cbade8
AV
1721int set_pages_uc(struct page *page, int numpages)
1722{
1723 unsigned long addr = (unsigned long)page_address(page);
75cbade8 1724
d7c8f21a 1725 return set_memory_uc(addr, numpages);
75cbade8
AV
1726}
1727EXPORT_SYMBOL(set_pages_uc);
1728
4f646254 1729static int _set_pages_array(struct page **pages, int addrinarray,
c06814d8 1730 enum page_cache_mode new_type)
0f350755 1731{
1732 unsigned long start;
1733 unsigned long end;
623dffb2 1734 enum page_cache_mode set_type;
0f350755 1735 int i;
1736 int free_idx;
4f646254 1737 int ret;
0f350755 1738
1739 for (i = 0; i < addrinarray; i++) {
8523acfe
TH
1740 if (PageHighMem(pages[i]))
1741 continue;
1742 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
0f350755 1743 end = start + PAGE_SIZE;
4f646254 1744 if (reserve_memtype(start, end, new_type, NULL))
0f350755 1745 goto err_out;
1746 }
1747
623dffb2
TK
1748 /* If WC, set to UC- first and then WC */
1749 set_type = (new_type == _PAGE_CACHE_MODE_WC) ?
1750 _PAGE_CACHE_MODE_UC_MINUS : new_type;
1751
4f646254 1752 ret = cpa_set_pages_array(pages, addrinarray,
623dffb2 1753 cachemode2pgprot(set_type));
c06814d8 1754 if (!ret && new_type == _PAGE_CACHE_MODE_WC)
4f646254 1755 ret = change_page_attr_set_clr(NULL, addrinarray,
c06814d8
JG
1756 cachemode2pgprot(
1757 _PAGE_CACHE_MODE_WC),
4f646254
PN
1758 __pgprot(_PAGE_CACHE_MASK),
1759 0, CPA_PAGES_ARRAY, pages);
1760 if (ret)
1761 goto err_out;
1762 return 0; /* Success */
0f350755 1763err_out:
1764 free_idx = i;
1765 for (i = 0; i < free_idx; i++) {
8523acfe
TH
1766 if (PageHighMem(pages[i]))
1767 continue;
1768 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
0f350755 1769 end = start + PAGE_SIZE;
1770 free_memtype(start, end);
1771 }
1772 return -EINVAL;
1773}
4f646254
PN
1774
1775int set_pages_array_uc(struct page **pages, int addrinarray)
1776{
c06814d8 1777 return _set_pages_array(pages, addrinarray, _PAGE_CACHE_MODE_UC_MINUS);
4f646254 1778}
0f350755 1779EXPORT_SYMBOL(set_pages_array_uc);
1780
4f646254
PN
1781int set_pages_array_wc(struct page **pages, int addrinarray)
1782{
c06814d8 1783 return _set_pages_array(pages, addrinarray, _PAGE_CACHE_MODE_WC);
4f646254
PN
1784}
1785EXPORT_SYMBOL(set_pages_array_wc);
1786
623dffb2
TK
1787int set_pages_array_wt(struct page **pages, int addrinarray)
1788{
1789 return _set_pages_array(pages, addrinarray, _PAGE_CACHE_MODE_WT);
1790}
1791EXPORT_SYMBOL_GPL(set_pages_array_wt);
1792
75cbade8
AV
1793int set_pages_wb(struct page *page, int numpages)
1794{
1795 unsigned long addr = (unsigned long)page_address(page);
75cbade8 1796
d7c8f21a 1797 return set_memory_wb(addr, numpages);
75cbade8
AV
1798}
1799EXPORT_SYMBOL(set_pages_wb);
1800
0f350755 1801int set_pages_array_wb(struct page **pages, int addrinarray)
1802{
1803 int retval;
1804 unsigned long start;
1805 unsigned long end;
1806 int i;
1807
c06814d8 1808 /* WB cache mode is hard wired to all cache attribute bits being 0 */
0f350755 1809 retval = cpa_clear_pages_array(pages, addrinarray,
1810 __pgprot(_PAGE_CACHE_MASK));
9fa3ab39 1811 if (retval)
1812 return retval;
0f350755 1813
1814 for (i = 0; i < addrinarray; i++) {
8523acfe
TH
1815 if (PageHighMem(pages[i]))
1816 continue;
1817 start = page_to_pfn(pages[i]) << PAGE_SHIFT;
0f350755 1818 end = start + PAGE_SIZE;
1819 free_memtype(start, end);
1820 }
1821
9fa3ab39 1822 return 0;
0f350755 1823}
1824EXPORT_SYMBOL(set_pages_array_wb);
1825
75cbade8
AV
1826int set_pages_x(struct page *page, int numpages)
1827{
1828 unsigned long addr = (unsigned long)page_address(page);
75cbade8 1829
d7c8f21a 1830 return set_memory_x(addr, numpages);
75cbade8
AV
1831}
1832EXPORT_SYMBOL(set_pages_x);
1833
1834int set_pages_nx(struct page *page, int numpages)
1835{
1836 unsigned long addr = (unsigned long)page_address(page);
75cbade8 1837
d7c8f21a 1838 return set_memory_nx(addr, numpages);
75cbade8
AV
1839}
1840EXPORT_SYMBOL(set_pages_nx);
1841
1842int set_pages_ro(struct page *page, int numpages)
1843{
1844 unsigned long addr = (unsigned long)page_address(page);
75cbade8 1845
d7c8f21a 1846 return set_memory_ro(addr, numpages);
75cbade8 1847}
75cbade8
AV
1848
1849int set_pages_rw(struct page *page, int numpages)
1850{
1851 unsigned long addr = (unsigned long)page_address(page);
e81d5dc4 1852
d7c8f21a 1853 return set_memory_rw(addr, numpages);
78c94aba
IM
1854}
1855
1da177e4 1856#ifdef CONFIG_DEBUG_PAGEALLOC
f62d0f00
IM
1857
1858static int __set_pages_p(struct page *page, int numpages)
1859{
d75586ad
SL
1860 unsigned long tempaddr = (unsigned long) page_address(page);
1861 struct cpa_data cpa = { .vaddr = &tempaddr,
82f0712c 1862 .pgd = NULL,
72e458df
TG
1863 .numpages = numpages,
1864 .mask_set = __pgprot(_PAGE_PRESENT | _PAGE_RW),
d75586ad
SL
1865 .mask_clr = __pgprot(0),
1866 .flags = 0};
72932c7a 1867
55121b43
SS
1868 /*
1869 * No alias checking needed for setting present flag. otherwise,
1870 * we may need to break large pages for 64-bit kernel text
1871 * mappings (this adds to complexity if we want to do this from
1872 * atomic context especially). Let's keep it simple!
1873 */
1874 return __change_page_attr_set_clr(&cpa, 0);
f62d0f00
IM
1875}
1876
1877static int __set_pages_np(struct page *page, int numpages)
1878{
d75586ad
SL
1879 unsigned long tempaddr = (unsigned long) page_address(page);
1880 struct cpa_data cpa = { .vaddr = &tempaddr,
82f0712c 1881 .pgd = NULL,
72e458df
TG
1882 .numpages = numpages,
1883 .mask_set = __pgprot(0),
d75586ad
SL
1884 .mask_clr = __pgprot(_PAGE_PRESENT | _PAGE_RW),
1885 .flags = 0};
72932c7a 1886
55121b43
SS
1887 /*
1888 * No alias checking needed for setting not present flag. otherwise,
1889 * we may need to break large pages for 64-bit kernel text
1890 * mappings (this adds to complexity if we want to do this from
1891 * atomic context especially). Let's keep it simple!
1892 */
1893 return __change_page_attr_set_clr(&cpa, 0);
f62d0f00
IM
1894}
1895
031bc574 1896void __kernel_map_pages(struct page *page, int numpages, int enable)
1da177e4
LT
1897{
1898 if (PageHighMem(page))
1899 return;
9f4c815c 1900 if (!enable) {
f9b8404c
IM
1901 debug_check_no_locks_freed(page_address(page),
1902 numpages * PAGE_SIZE);
9f4c815c 1903 }
de5097c2 1904
9f4c815c 1905 /*
f8d8406b 1906 * The return value is ignored as the calls cannot fail.
55121b43
SS
1907 * Large pages for identity mappings are not used at boot time
1908 * and hence no memory allocations during large page split.
1da177e4 1909 */
f62d0f00
IM
1910 if (enable)
1911 __set_pages_p(page, numpages);
1912 else
1913 __set_pages_np(page, numpages);
9f4c815c
IM
1914
1915 /*
e4b71dcf
IM
1916 * We should perform an IPI and flush all tlbs,
1917 * but that can deadlock->flush only current cpu:
1da177e4
LT
1918 */
1919 __flush_tlb_all();
26564600
BO
1920
1921 arch_flush_lazy_mmu_mode();
ee7ae7a1
TG
1922}
1923
8a235efa
RW
1924#ifdef CONFIG_HIBERNATION
1925
1926bool kernel_page_present(struct page *page)
1927{
1928 unsigned int level;
1929 pte_t *pte;
1930
1931 if (PageHighMem(page))
1932 return false;
1933
1934 pte = lookup_address((unsigned long)page_address(page), &level);
1935 return (pte_val(*pte) & _PAGE_PRESENT);
1936}
1937
1938#endif /* CONFIG_HIBERNATION */
1939
1940#endif /* CONFIG_DEBUG_PAGEALLOC */
d1028a15 1941
82f0712c
BP
1942int kernel_map_pages_in_pgd(pgd_t *pgd, u64 pfn, unsigned long address,
1943 unsigned numpages, unsigned long page_flags)
1944{
1945 int retval = -EINVAL;
1946
1947 struct cpa_data cpa = {
1948 .vaddr = &address,
1949 .pfn = pfn,
1950 .pgd = pgd,
1951 .numpages = numpages,
1952 .mask_set = __pgprot(0),
1953 .mask_clr = __pgprot(0),
1954 .flags = 0,
1955 };
1956
1957 if (!(__supported_pte_mask & _PAGE_NX))
1958 goto out;
1959
1960 if (!(page_flags & _PAGE_NX))
1961 cpa.mask_clr = __pgprot(_PAGE_NX);
1962
15f003d2
SP
1963 if (!(page_flags & _PAGE_RW))
1964 cpa.mask_clr = __pgprot(_PAGE_RW);
1965
82f0712c
BP
1966 cpa.mask_set = __pgprot(_PAGE_PRESENT | page_flags);
1967
1968 retval = __change_page_attr_set_clr(&cpa, 0);
1969 __flush_tlb_all();
1970
1971out:
1972 return retval;
1973}
1974
d1028a15
AV
1975/*
1976 * The testcases use internal knowledge of the implementation that shouldn't
1977 * be exposed to the rest of the kernel. Include these directly here.
1978 */
1979#ifdef CONFIG_CPA_DEBUG
1980#include "pageattr-test.c"
1981#endif
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