x86 PAT: change track_pfn_vma_new to take pgprot_t pointer param
[deliverable/linux.git] / arch / x86 / mm / pat.c
CommitLineData
2e5d9c85 1/*
2 * Handle caching attributes in page tables (PAT)
3 *
4 * Authors: Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
5 * Suresh B Siddha <suresh.b.siddha@intel.com>
6 *
7 * Loosely based on earlier PAT patchset from Eric Biederman and Andi Kleen.
8 */
9
ad2cde16
IM
10#include <linux/seq_file.h>
11#include <linux/bootmem.h>
12#include <linux/debugfs.h>
2e5d9c85 13#include <linux/kernel.h>
14#include <linux/gfp.h>
ad2cde16 15#include <linux/mm.h>
2e5d9c85 16#include <linux/fs.h>
17
ad2cde16 18#include <asm/cacheflush.h>
2e5d9c85 19#include <asm/processor.h>
ad2cde16 20#include <asm/tlbflush.h>
2e5d9c85 21#include <asm/pgtable.h>
2e5d9c85 22#include <asm/fcntl.h>
ad2cde16 23#include <asm/e820.h>
2e5d9c85 24#include <asm/mtrr.h>
ad2cde16
IM
25#include <asm/page.h>
26#include <asm/msr.h>
27#include <asm/pat.h>
e7f260a2 28#include <asm/io.h>
2e5d9c85 29
8d4a4300 30#ifdef CONFIG_X86_PAT
499f8f84 31int __read_mostly pat_enabled = 1;
2e5d9c85 32
31f4d870 33void __cpuinit pat_disable(char *reason)
2e5d9c85 34{
499f8f84 35 pat_enabled = 0;
8d4a4300 36 printk(KERN_INFO "%s\n", reason);
2e5d9c85 37}
2e5d9c85 38
be524fb9 39static int __init nopat(char *str)
2e5d9c85 40{
8d4a4300 41 pat_disable("PAT support disabled.");
2e5d9c85 42 return 0;
43}
8d4a4300
TG
44early_param("nopat", nopat);
45#endif
46
77b52b4c
VP
47
48static int debug_enable;
ad2cde16 49
77b52b4c
VP
50static int __init pat_debug_setup(char *str)
51{
52 debug_enable = 1;
53 return 0;
54}
55__setup("debugpat", pat_debug_setup);
56
57#define dprintk(fmt, arg...) \
58 do { if (debug_enable) printk(KERN_INFO fmt, ##arg); } while (0)
59
60
8d4a4300 61static u64 __read_mostly boot_pat_state;
2e5d9c85 62
63enum {
64 PAT_UC = 0, /* uncached */
65 PAT_WC = 1, /* Write combining */
66 PAT_WT = 4, /* Write Through */
67 PAT_WP = 5, /* Write Protected */
68 PAT_WB = 6, /* Write Back (default) */
69 PAT_UC_MINUS = 7, /* UC, but can be overriden by MTRR */
70};
71
cd7a4e93 72#define PAT(x, y) ((u64)PAT_ ## y << ((x)*8))
2e5d9c85 73
74void pat_init(void)
75{
76 u64 pat;
77
499f8f84 78 if (!pat_enabled)
2e5d9c85 79 return;
80
8d4a4300 81 /* Paranoia check. */
97cfab6a 82 if (!cpu_has_pat && boot_pat_state) {
8d4a4300 83 /*
97cfab6a 84 * If this happens we are on a secondary CPU, but
8d4a4300
TG
85 * switched to PAT on the boot CPU. We have no way to
86 * undo PAT.
97cfab6a
AH
87 */
88 printk(KERN_ERR "PAT enabled, "
89 "but not supported by secondary CPU\n");
90 BUG();
8d4a4300 91 }
2e5d9c85 92
93 /* Set PWT to Write-Combining. All other bits stay the same */
94 /*
95 * PTE encoding used in Linux:
96 * PAT
97 * |PCD
98 * ||PWT
99 * |||
100 * 000 WB _PAGE_CACHE_WB
101 * 001 WC _PAGE_CACHE_WC
102 * 010 UC- _PAGE_CACHE_UC_MINUS
103 * 011 UC _PAGE_CACHE_UC
104 * PAT bit unused
105 */
cd7a4e93
AH
106 pat = PAT(0, WB) | PAT(1, WC) | PAT(2, UC_MINUS) | PAT(3, UC) |
107 PAT(4, WB) | PAT(5, WC) | PAT(6, UC_MINUS) | PAT(7, UC);
2e5d9c85 108
109 /* Boot CPU check */
8d4a4300 110 if (!boot_pat_state)
2e5d9c85 111 rdmsrl(MSR_IA32_CR_PAT, boot_pat_state);
2e5d9c85 112
113 wrmsrl(MSR_IA32_CR_PAT, pat);
114 printk(KERN_INFO "x86 PAT enabled: cpu %d, old 0x%Lx, new 0x%Lx\n",
115 smp_processor_id(), boot_pat_state, pat);
116}
117
118#undef PAT
119
120static char *cattr_name(unsigned long flags)
121{
122 switch (flags & _PAGE_CACHE_MASK) {
cd7a4e93
AH
123 case _PAGE_CACHE_UC: return "uncached";
124 case _PAGE_CACHE_UC_MINUS: return "uncached-minus";
125 case _PAGE_CACHE_WB: return "write-back";
126 case _PAGE_CACHE_WC: return "write-combining";
127 default: return "broken";
2e5d9c85 128 }
129}
130
131/*
132 * The global memtype list keeps track of memory type for specific
133 * physical memory areas. Conflicting memory types in different
134 * mappings can cause CPU cache corruption. To avoid this we keep track.
135 *
136 * The list is sorted based on starting address and can contain multiple
137 * entries for each address (this allows reference counting for overlapping
138 * areas). All the aliases have the same cache attributes of course.
139 * Zero attributes are represented as holes.
140 *
141 * Currently the data structure is a list because the number of mappings
142 * are expected to be relatively small. If this should be a problem
143 * it could be changed to a rbtree or similar.
144 *
145 * memtype_lock protects the whole list.
146 */
147
148struct memtype {
ad2cde16
IM
149 u64 start;
150 u64 end;
151 unsigned long type;
152 struct list_head nd;
2e5d9c85 153};
154
155static LIST_HEAD(memtype_list);
ad2cde16 156static DEFINE_SPINLOCK(memtype_lock); /* protects memtype list */
2e5d9c85 157
158/*
159 * Does intersection of PAT memory type and MTRR memory type and returns
160 * the resulting memory type as PAT understands it.
161 * (Type in pat and mtrr will not have same value)
162 * The intersection is based on "Effective Memory Type" tables in IA-32
163 * SDM vol 3a
164 */
6cf514fc 165static unsigned long pat_x_mtrr_type(u64 start, u64 end, unsigned long req_type)
2e5d9c85 166{
c26421d0
VP
167 /*
168 * Look for MTRR hint to get the effective type in case where PAT
169 * request is for WB.
170 */
dd0c7c49
AH
171 if (req_type == _PAGE_CACHE_WB) {
172 u8 mtrr_type;
173
174 mtrr_type = mtrr_type_lookup(start, end);
175 if (mtrr_type == MTRR_TYPE_UNCACHABLE)
176 return _PAGE_CACHE_UC;
177 if (mtrr_type == MTRR_TYPE_WRCOMB)
178 return _PAGE_CACHE_WC;
179 }
180
181 return req_type;
2e5d9c85 182}
183
ad2cde16
IM
184static int
185chk_conflict(struct memtype *new, struct memtype *entry, unsigned long *type)
64fe44c3
AH
186{
187 if (new->type != entry->type) {
188 if (type) {
189 new->type = entry->type;
190 *type = entry->type;
191 } else
192 goto conflict;
193 }
194
195 /* check overlaps with more than one entry in the list */
196 list_for_each_entry_continue(entry, &memtype_list, nd) {
197 if (new->end <= entry->start)
198 break;
199 else if (new->type != entry->type)
200 goto conflict;
201 }
202 return 0;
203
204 conflict:
205 printk(KERN_INFO "%s:%d conflicting memory types "
206 "%Lx-%Lx %s<->%s\n", current->comm, current->pid, new->start,
207 new->end, cattr_name(new->type), cattr_name(entry->type));
208 return -EBUSY;
209}
210
80c5e73d
VP
211static struct memtype *cached_entry;
212static u64 cached_start;
213
9542ada8
SS
214/*
215 * For RAM pages, mark the pages as non WB memory type using
216 * PageNonWB (PG_arch_1). We allow only one set_memory_uc() or
217 * set_memory_wc() on a RAM page at a time before marking it as WB again.
218 * This is ok, because only one driver will be owning the page and
219 * doing set_memory_*() calls.
220 *
221 * For now, we use PageNonWB to track that the RAM page is being mapped
222 * as non WB. In future, we will have to use one more flag
223 * (or some other mechanism in page_struct) to distinguish between
224 * UC and WC mapping.
225 */
226static int reserve_ram_pages_type(u64 start, u64 end, unsigned long req_type,
ad2cde16 227 unsigned long *new_type)
9542ada8
SS
228{
229 struct page *page;
230 u64 pfn, end_pfn;
231
232 for (pfn = (start >> PAGE_SHIFT); pfn < (end >> PAGE_SHIFT); ++pfn) {
233 page = pfn_to_page(pfn);
234 if (page_mapped(page) || PageNonWB(page))
235 goto out;
236
237 SetPageNonWB(page);
238 }
239 return 0;
240
241out:
242 end_pfn = pfn;
243 for (pfn = (start >> PAGE_SHIFT); pfn < end_pfn; ++pfn) {
244 page = pfn_to_page(pfn);
245 ClearPageNonWB(page);
246 }
247
248 return -EINVAL;
249}
250
251static int free_ram_pages_type(u64 start, u64 end)
252{
253 struct page *page;
254 u64 pfn, end_pfn;
255
256 for (pfn = (start >> PAGE_SHIFT); pfn < (end >> PAGE_SHIFT); ++pfn) {
257 page = pfn_to_page(pfn);
258 if (page_mapped(page) || !PageNonWB(page))
259 goto out;
260
261 ClearPageNonWB(page);
262 }
263 return 0;
264
265out:
266 end_pfn = pfn;
267 for (pfn = (start >> PAGE_SHIFT); pfn < end_pfn; ++pfn) {
268 page = pfn_to_page(pfn);
269 SetPageNonWB(page);
270 }
271 return -EINVAL;
272}
273
e7f260a2 274/*
275 * req_type typically has one of the:
276 * - _PAGE_CACHE_WB
277 * - _PAGE_CACHE_WC
278 * - _PAGE_CACHE_UC_MINUS
279 * - _PAGE_CACHE_UC
280 *
281 * req_type will have a special case value '-1', when requester want to inherit
282 * the memory type from mtrr (if WB), existing PAT, defaulting to UC_MINUS.
283 *
ac97991e
AH
284 * If new_type is NULL, function will return an error if it cannot reserve the
285 * region with req_type. If new_type is non-NULL, function will return
286 * available type in new_type in case of no error. In case of any error
e7f260a2 287 * it will return a negative return value.
288 */
2e5d9c85 289int reserve_memtype(u64 start, u64 end, unsigned long req_type,
ad2cde16 290 unsigned long *new_type)
2e5d9c85 291{
ac97991e 292 struct memtype *new, *entry;
2e5d9c85 293 unsigned long actual_type;
f6887264 294 struct list_head *where;
9542ada8 295 int is_range_ram;
ad2cde16 296 int err = 0;
2e5d9c85 297
ad2cde16 298 BUG_ON(start >= end); /* end is exclusive */
69e26be9 299
499f8f84 300 if (!pat_enabled) {
e7f260a2 301 /* This is identical to page table setting without PAT */
ac97991e
AH
302 if (new_type) {
303 if (req_type == -1)
304 *new_type = _PAGE_CACHE_WB;
305 else
306 *new_type = req_type & _PAGE_CACHE_MASK;
e7f260a2 307 }
2e5d9c85 308 return 0;
309 }
310
311 /* Low ISA region is always mapped WB in page table. No need to track */
bcc643dc 312 if (is_ISA_range(start, end - 1)) {
ac97991e
AH
313 if (new_type)
314 *new_type = _PAGE_CACHE_WB;
2e5d9c85 315 return 0;
316 }
317
e7f260a2 318 if (req_type == -1) {
319 /*
c26421d0
VP
320 * Call mtrr_lookup to get the type hint. This is an
321 * optimization for /dev/mem mmap'ers into WB memory (BIOS
322 * tools and ACPI tools). Use WB request for WB memory and use
323 * UC_MINUS otherwise.
e7f260a2 324 */
325 u8 mtrr_type = mtrr_type_lookup(start, end);
e7f260a2 326
69e26be9 327 if (mtrr_type == MTRR_TYPE_WRBACK)
e7f260a2 328 actual_type = _PAGE_CACHE_WB;
69e26be9 329 else
e7f260a2 330 actual_type = _PAGE_CACHE_UC_MINUS;
ad2cde16 331 } else {
69e26be9
AH
332 actual_type = pat_x_mtrr_type(start, end,
333 req_type & _PAGE_CACHE_MASK);
ad2cde16 334 }
2e5d9c85 335
9542ada8
SS
336 is_range_ram = pagerange_is_ram(start, end);
337 if (is_range_ram == 1)
338 return reserve_ram_pages_type(start, end, req_type, new_type);
339 else if (is_range_ram < 0)
340 return -EINVAL;
341
ac97991e
AH
342 new = kmalloc(sizeof(struct memtype), GFP_KERNEL);
343 if (!new)
2e5d9c85 344 return -ENOMEM;
345
ad2cde16
IM
346 new->start = start;
347 new->end = end;
348 new->type = actual_type;
2e5d9c85 349
ac97991e
AH
350 if (new_type)
351 *new_type = actual_type;
2e5d9c85 352
353 spin_lock(&memtype_lock);
354
80c5e73d
VP
355 if (cached_entry && start >= cached_start)
356 entry = cached_entry;
357 else
358 entry = list_entry(&memtype_list, struct memtype, nd);
359
2e5d9c85 360 /* Search for existing mapping that overlaps the current range */
f6887264 361 where = NULL;
80c5e73d 362 list_for_each_entry_continue(entry, &memtype_list, nd) {
33af9039 363 if (end <= entry->start) {
f6887264 364 where = entry->nd.prev;
80c5e73d 365 cached_entry = list_entry(where, struct memtype, nd);
2e5d9c85 366 break;
33af9039 367 } else if (start <= entry->start) { /* end > entry->start */
64fe44c3 368 err = chk_conflict(new, entry, new_type);
33af9039
AH
369 if (!err) {
370 dprintk("Overlap at 0x%Lx-0x%Lx\n",
371 entry->start, entry->end);
372 where = entry->nd.prev;
80c5e73d
VP
373 cached_entry = list_entry(where,
374 struct memtype, nd);
2e5d9c85 375 }
2e5d9c85 376 break;
33af9039 377 } else if (start < entry->end) { /* start > entry->start */
64fe44c3 378 err = chk_conflict(new, entry, new_type);
33af9039
AH
379 if (!err) {
380 dprintk("Overlap at 0x%Lx-0x%Lx\n",
381 entry->start, entry->end);
80c5e73d
VP
382 cached_entry = list_entry(entry->nd.prev,
383 struct memtype, nd);
384
385 /*
386 * Move to right position in the linked
387 * list to add this new entry
388 */
389 list_for_each_entry_continue(entry,
390 &memtype_list, nd) {
391 if (start <= entry->start) {
392 where = entry->nd.prev;
393 break;
394 }
395 }
2e5d9c85 396 }
2e5d9c85 397 break;
398 }
399 }
400
401 if (err) {
3e9c83b3
AH
402 printk(KERN_INFO "reserve_memtype failed 0x%Lx-0x%Lx, "
403 "track %s, req %s\n",
404 start, end, cattr_name(new->type), cattr_name(req_type));
ac97991e 405 kfree(new);
2e5d9c85 406 spin_unlock(&memtype_lock);
ad2cde16 407
2e5d9c85 408 return err;
409 }
410
80c5e73d
VP
411 cached_start = start;
412
f6887264
AH
413 if (where)
414 list_add(&new->nd, where);
415 else
ac97991e 416 list_add_tail(&new->nd, &memtype_list);
6997ab49 417
2e5d9c85 418 spin_unlock(&memtype_lock);
3e9c83b3
AH
419
420 dprintk("reserve_memtype added 0x%Lx-0x%Lx, track %s, req %s, ret %s\n",
421 start, end, cattr_name(new->type), cattr_name(req_type),
422 new_type ? cattr_name(*new_type) : "-");
423
2e5d9c85 424 return err;
425}
426
427int free_memtype(u64 start, u64 end)
428{
ac97991e 429 struct memtype *entry;
2e5d9c85 430 int err = -EINVAL;
9542ada8 431 int is_range_ram;
2e5d9c85 432
69e26be9 433 if (!pat_enabled)
2e5d9c85 434 return 0;
2e5d9c85 435
436 /* Low ISA region is always mapped WB. No need to track */
bcc643dc 437 if (is_ISA_range(start, end - 1))
2e5d9c85 438 return 0;
2e5d9c85 439
9542ada8
SS
440 is_range_ram = pagerange_is_ram(start, end);
441 if (is_range_ram == 1)
442 return free_ram_pages_type(start, end);
443 else if (is_range_ram < 0)
444 return -EINVAL;
445
2e5d9c85 446 spin_lock(&memtype_lock);
ac97991e
AH
447 list_for_each_entry(entry, &memtype_list, nd) {
448 if (entry->start == start && entry->end == end) {
80c5e73d
VP
449 if (cached_entry == entry || cached_start == start)
450 cached_entry = NULL;
451
ac97991e
AH
452 list_del(&entry->nd);
453 kfree(entry);
2e5d9c85 454 err = 0;
455 break;
456 }
457 }
458 spin_unlock(&memtype_lock);
459
460 if (err) {
28eb559b 461 printk(KERN_INFO "%s:%d freeing invalid memtype %Lx-%Lx\n",
2e5d9c85 462 current->comm, current->pid, start, end);
463 }
6997ab49 464
77b52b4c 465 dprintk("free_memtype request 0x%Lx-0x%Lx\n", start, end);
ad2cde16 466
2e5d9c85 467 return err;
468}
469
f0970c13 470
f0970c13 471pgprot_t phys_mem_access_prot(struct file *file, unsigned long pfn,
472 unsigned long size, pgprot_t vma_prot)
473{
474 return vma_prot;
475}
476
d092633b
IM
477#ifdef CONFIG_STRICT_DEVMEM
478/* This check is done in drivers/char/mem.c in case of STRICT_DEVMEM*/
0124cecf
VP
479static inline int range_is_allowed(unsigned long pfn, unsigned long size)
480{
481 return 1;
482}
483#else
9e41bff2 484/* This check is needed to avoid cache aliasing when PAT is enabled */
0124cecf
VP
485static inline int range_is_allowed(unsigned long pfn, unsigned long size)
486{
487 u64 from = ((u64)pfn) << PAGE_SHIFT;
488 u64 to = from + size;
489 u64 cursor = from;
490
9e41bff2
RT
491 if (!pat_enabled)
492 return 1;
493
0124cecf
VP
494 while (cursor < to) {
495 if (!devmem_is_allowed(pfn)) {
496 printk(KERN_INFO
497 "Program %s tried to access /dev/mem between %Lx->%Lx.\n",
498 current->comm, from, to);
499 return 0;
500 }
501 cursor += PAGE_SIZE;
502 pfn++;
503 }
504 return 1;
505}
d092633b 506#endif /* CONFIG_STRICT_DEVMEM */
0124cecf 507
f0970c13 508int phys_mem_access_prot_allowed(struct file *file, unsigned long pfn,
509 unsigned long size, pgprot_t *vma_prot)
510{
e7f260a2 511 u64 offset = ((u64) pfn) << PAGE_SHIFT;
28df82eb 512 unsigned long flags = -1;
e7f260a2 513 int retval;
f0970c13 514
0124cecf
VP
515 if (!range_is_allowed(pfn, size))
516 return 0;
517
f0970c13 518 if (file->f_flags & O_SYNC) {
28df82eb 519 flags = _PAGE_CACHE_UC_MINUS;
f0970c13 520 }
521
522#ifdef CONFIG_X86_32
523 /*
524 * On the PPro and successors, the MTRRs are used to set
525 * memory types for physical addresses outside main memory,
526 * so blindly setting UC or PWT on those pages is wrong.
527 * For Pentiums and earlier, the surround logic should disable
528 * caching for the high addresses through the KEN pin, but
529 * we maintain the tradition of paranoia in this code.
530 */
499f8f84 531 if (!pat_enabled &&
cd7a4e93
AH
532 !(boot_cpu_has(X86_FEATURE_MTRR) ||
533 boot_cpu_has(X86_FEATURE_K6_MTRR) ||
534 boot_cpu_has(X86_FEATURE_CYRIX_ARR) ||
535 boot_cpu_has(X86_FEATURE_CENTAUR_MCR)) &&
536 (pfn << PAGE_SHIFT) >= __pa(high_memory)) {
e7f260a2 537 flags = _PAGE_CACHE_UC;
f0970c13 538 }
539#endif
540
e7f260a2 541 /*
28df82eb 542 * With O_SYNC, we can only take UC_MINUS mapping. Fail if we cannot.
543 *
e7f260a2 544 * Without O_SYNC, we want to get
545 * - WB for WB-able memory and no other conflicting mappings
546 * - UC_MINUS for non-WB-able memory with no other conflicting mappings
547 * - Inherit from confliting mappings otherwise
548 */
28df82eb 549 if (flags != -1) {
e7f260a2 550 retval = reserve_memtype(offset, offset + size, flags, NULL);
551 } else {
f022bfd5 552 retval = reserve_memtype(offset, offset + size, -1, &flags);
e7f260a2 553 }
554
555 if (retval < 0)
556 return 0;
557
965194c1
YL
558 if (((pfn < max_low_pfn_mapped) ||
559 (pfn >= (1UL<<(32 - PAGE_SHIFT)) && pfn < max_pfn_mapped)) &&
cd7a4e93 560 ioremap_change_attr((unsigned long)__va(offset), size, flags) < 0) {
e7f260a2 561 free_memtype(offset, offset + size);
28eb559b 562 printk(KERN_INFO
e7f260a2 563 "%s:%d /dev/mem ioremap_change_attr failed %s for %Lx-%Lx\n",
564 current->comm, current->pid,
565 cattr_name(flags),
afc85343 566 offset, (unsigned long long)(offset + size));
e7f260a2 567 return 0;
568 }
569
570 *vma_prot = __pgprot((pgprot_val(*vma_prot) & ~_PAGE_CACHE_MASK) |
571 flags);
f0970c13 572 return 1;
573}
e7f260a2 574
575void map_devmem(unsigned long pfn, unsigned long size, pgprot_t vma_prot)
576{
ad2cde16 577 unsigned long want_flags = (pgprot_val(vma_prot) & _PAGE_CACHE_MASK);
e7f260a2 578 u64 addr = (u64)pfn << PAGE_SHIFT;
579 unsigned long flags;
e7f260a2 580
581 reserve_memtype(addr, addr + size, want_flags, &flags);
582 if (flags != want_flags) {
28eb559b 583 printk(KERN_INFO
e7f260a2 584 "%s:%d /dev/mem expected mapping type %s for %Lx-%Lx, got %s\n",
585 current->comm, current->pid,
586 cattr_name(want_flags),
afc85343 587 addr, (unsigned long long)(addr + size),
e7f260a2 588 cattr_name(flags));
589 }
590}
591
592void unmap_devmem(unsigned long pfn, unsigned long size, pgprot_t vma_prot)
593{
594 u64 addr = (u64)pfn << PAGE_SHIFT;
595
596 free_memtype(addr, addr + size);
597}
598
5899329b 599/*
600 * Internal interface to reserve a range of physical memory with prot.
601 * Reserved non RAM regions only and after successful reserve_memtype,
602 * this func also keeps identity mapping (if any) in sync with this new prot.
603 */
604static int reserve_pfn_range(u64 paddr, unsigned long size, pgprot_t vma_prot)
605{
606 int is_ram = 0;
607 int id_sz, ret;
608 unsigned long flags;
609 unsigned long want_flags = (pgprot_val(vma_prot) & _PAGE_CACHE_MASK);
610
611 is_ram = pagerange_is_ram(paddr, paddr + size);
612
613 if (is_ram != 0) {
614 /*
615 * For mapping RAM pages, drivers need to call
616 * set_memory_[uc|wc|wb] directly, for reserve and free, before
617 * setting up the PTE.
618 */
619 WARN_ON_ONCE(1);
620 return 0;
621 }
622
623 ret = reserve_memtype(paddr, paddr + size, want_flags, &flags);
624 if (ret)
625 return ret;
626
627 if (flags != want_flags) {
628 free_memtype(paddr, paddr + size);
629 printk(KERN_ERR
630 "%s:%d map pfn expected mapping type %s for %Lx-%Lx, got %s\n",
631 current->comm, current->pid,
632 cattr_name(want_flags),
633 (unsigned long long)paddr,
634 (unsigned long long)(paddr + size),
635 cattr_name(flags));
636 return -EINVAL;
637 }
638
639 /* Need to keep identity mapping in sync */
640 if (paddr >= __pa(high_memory))
641 return 0;
642
643 id_sz = (__pa(high_memory) < paddr + size) ?
644 __pa(high_memory) - paddr :
645 size;
646
647 if (ioremap_change_attr((unsigned long)__va(paddr), id_sz, flags) < 0) {
648 free_memtype(paddr, paddr + size);
649 printk(KERN_ERR
650 "%s:%d reserve_pfn_range ioremap_change_attr failed %s "
651 "for %Lx-%Lx\n",
652 current->comm, current->pid,
653 cattr_name(flags),
654 (unsigned long long)paddr,
655 (unsigned long long)(paddr + size));
656 return -EINVAL;
657 }
658 return 0;
659}
660
661/*
662 * Internal interface to free a range of physical memory.
663 * Frees non RAM regions only.
664 */
665static void free_pfn_range(u64 paddr, unsigned long size)
666{
667 int is_ram;
668
669 is_ram = pagerange_is_ram(paddr, paddr + size);
670 if (is_ram == 0)
671 free_memtype(paddr, paddr + size);
672}
673
674/*
675 * track_pfn_vma_copy is called when vma that is covering the pfnmap gets
676 * copied through copy_page_range().
677 *
678 * If the vma has a linear pfn mapping for the entire range, we get the prot
679 * from pte and reserve the entire vma range with single reserve_pfn_range call.
680 * Otherwise, we reserve the entire vma range, my ging through the PTEs page
681 * by page to get physical address and protection.
682 */
683int track_pfn_vma_copy(struct vm_area_struct *vma)
684{
685 int retval = 0;
686 unsigned long i, j;
c1c15b65 687 resource_size_t paddr;
982d789a 688 unsigned long prot;
5899329b 689 unsigned long vma_start = vma->vm_start;
690 unsigned long vma_end = vma->vm_end;
691 unsigned long vma_size = vma_end - vma_start;
692
693 if (!pat_enabled)
694 return 0;
695
696 if (is_linear_pfn_mapping(vma)) {
697 /*
982d789a 698 * reserve the whole chunk covered by vma. We need the
699 * starting address and protection from pte.
5899329b 700 */
982d789a 701 if (follow_phys(vma, vma_start, 0, &prot, &paddr)) {
5899329b 702 WARN_ON_ONCE(1);
982d789a 703 return -EINVAL;
5899329b 704 }
982d789a 705 return reserve_pfn_range(paddr, vma_size, __pgprot(prot));
5899329b 706 }
707
708 /* reserve entire vma page by page, using pfn and prot from pte */
709 for (i = 0; i < vma_size; i += PAGE_SIZE) {
982d789a 710 if (follow_phys(vma, vma_start + i, 0, &prot, &paddr))
5899329b 711 continue;
712
982d789a 713 retval = reserve_pfn_range(paddr, PAGE_SIZE, __pgprot(prot));
5899329b 714 if (retval)
715 goto cleanup_ret;
716 }
717 return 0;
718
719cleanup_ret:
720 /* Reserve error: Cleanup partial reservation and return error */
721 for (j = 0; j < i; j += PAGE_SIZE) {
982d789a 722 if (follow_phys(vma, vma_start + j, 0, &prot, &paddr))
5899329b 723 continue;
724
5899329b 725 free_pfn_range(paddr, PAGE_SIZE);
726 }
727
728 return retval;
729}
730
731/*
732 * track_pfn_vma_new is called when a _new_ pfn mapping is being established
733 * for physical range indicated by pfn and size.
734 *
735 * prot is passed in as a parameter for the new mapping. If the vma has a
736 * linear pfn mapping for the entire range reserve the entire vma range with
737 * single reserve_pfn_range call.
738 * Otherwise, we look t the pfn and size and reserve only the specified range
739 * page by page.
740 *
741 * Note that this function can be called with caller trying to map only a
742 * subrange/page inside the vma.
743 */
e4b866ed 744int track_pfn_vma_new(struct vm_area_struct *vma, pgprot_t *prot,
5899329b 745 unsigned long pfn, unsigned long size)
746{
747 int retval = 0;
748 unsigned long i, j;
c1c15b65
PA
749 resource_size_t base_paddr;
750 resource_size_t paddr;
5899329b 751 unsigned long vma_start = vma->vm_start;
752 unsigned long vma_end = vma->vm_end;
753 unsigned long vma_size = vma_end - vma_start;
754
755 if (!pat_enabled)
756 return 0;
757
758 if (is_linear_pfn_mapping(vma)) {
759 /* reserve the whole chunk starting from vm_pgoff */
c1c15b65 760 paddr = (resource_size_t)vma->vm_pgoff << PAGE_SHIFT;
e4b866ed 761 return reserve_pfn_range(paddr, vma_size, *prot);
5899329b 762 }
763
764 /* reserve page by page using pfn and size */
c1c15b65 765 base_paddr = (resource_size_t)pfn << PAGE_SHIFT;
5899329b 766 for (i = 0; i < size; i += PAGE_SIZE) {
767 paddr = base_paddr + i;
e4b866ed 768 retval = reserve_pfn_range(paddr, PAGE_SIZE, *prot);
5899329b 769 if (retval)
770 goto cleanup_ret;
771 }
772 return 0;
773
774cleanup_ret:
775 /* Reserve error: Cleanup partial reservation and return error */
776 for (j = 0; j < i; j += PAGE_SIZE) {
777 paddr = base_paddr + j;
778 free_pfn_range(paddr, PAGE_SIZE);
779 }
780
781 return retval;
782}
783
784/*
785 * untrack_pfn_vma is called while unmapping a pfnmap for a region.
786 * untrack can be called for a specific region indicated by pfn and size or
787 * can be for the entire vma (in which case size can be zero).
788 */
789void untrack_pfn_vma(struct vm_area_struct *vma, unsigned long pfn,
790 unsigned long size)
791{
792 unsigned long i;
c1c15b65 793 resource_size_t paddr;
982d789a 794 unsigned long prot;
5899329b 795 unsigned long vma_start = vma->vm_start;
796 unsigned long vma_end = vma->vm_end;
797 unsigned long vma_size = vma_end - vma_start;
798
799 if (!pat_enabled)
800 return;
801
802 if (is_linear_pfn_mapping(vma)) {
803 /* free the whole chunk starting from vm_pgoff */
c1c15b65 804 paddr = (resource_size_t)vma->vm_pgoff << PAGE_SHIFT;
5899329b 805 free_pfn_range(paddr, vma_size);
806 return;
807 }
808
809 if (size != 0 && size != vma_size) {
810 /* free page by page, using pfn and size */
c1c15b65 811 paddr = (resource_size_t)pfn << PAGE_SHIFT;
5899329b 812 for (i = 0; i < size; i += PAGE_SIZE) {
813 paddr = paddr + i;
814 free_pfn_range(paddr, PAGE_SIZE);
815 }
816 } else {
817 /* free entire vma, page by page, using the pfn from pte */
818 for (i = 0; i < vma_size; i += PAGE_SIZE) {
982d789a 819 if (follow_phys(vma, vma_start + i, 0, &prot, &paddr))
5899329b 820 continue;
821
5899329b 822 free_pfn_range(paddr, PAGE_SIZE);
823 }
824 }
825}
826
2520bd31 827pgprot_t pgprot_writecombine(pgprot_t prot)
828{
829 if (pat_enabled)
830 return __pgprot(pgprot_val(prot) | _PAGE_CACHE_WC);
831 else
832 return pgprot_noncached(prot);
833}
834
012f09e7 835#if defined(CONFIG_DEBUG_FS) && defined(CONFIG_X86_PAT)
fec0962e 836
837/* get Nth element of the linked list */
838static struct memtype *memtype_get_idx(loff_t pos)
839{
840 struct memtype *list_node, *print_entry;
841 int i = 1;
842
843 print_entry = kmalloc(sizeof(struct memtype), GFP_KERNEL);
844 if (!print_entry)
845 return NULL;
846
847 spin_lock(&memtype_lock);
848 list_for_each_entry(list_node, &memtype_list, nd) {
849 if (pos == i) {
850 *print_entry = *list_node;
851 spin_unlock(&memtype_lock);
852 return print_entry;
853 }
854 ++i;
855 }
856 spin_unlock(&memtype_lock);
857 kfree(print_entry);
ad2cde16 858
fec0962e 859 return NULL;
860}
861
862static void *memtype_seq_start(struct seq_file *seq, loff_t *pos)
863{
864 if (*pos == 0) {
865 ++*pos;
866 seq_printf(seq, "PAT memtype list:\n");
867 }
868
869 return memtype_get_idx(*pos);
870}
871
872static void *memtype_seq_next(struct seq_file *seq, void *v, loff_t *pos)
873{
874 ++*pos;
875 return memtype_get_idx(*pos);
876}
877
878static void memtype_seq_stop(struct seq_file *seq, void *v)
879{
880}
881
882static int memtype_seq_show(struct seq_file *seq, void *v)
883{
884 struct memtype *print_entry = (struct memtype *)v;
885
886 seq_printf(seq, "%s @ 0x%Lx-0x%Lx\n", cattr_name(print_entry->type),
887 print_entry->start, print_entry->end);
888 kfree(print_entry);
ad2cde16 889
fec0962e 890 return 0;
891}
892
893static struct seq_operations memtype_seq_ops = {
894 .start = memtype_seq_start,
895 .next = memtype_seq_next,
896 .stop = memtype_seq_stop,
897 .show = memtype_seq_show,
898};
899
900static int memtype_seq_open(struct inode *inode, struct file *file)
901{
902 return seq_open(file, &memtype_seq_ops);
903}
904
905static const struct file_operations memtype_fops = {
906 .open = memtype_seq_open,
907 .read = seq_read,
908 .llseek = seq_lseek,
909 .release = seq_release,
910};
911
912static int __init pat_memtype_list_init(void)
913{
914 debugfs_create_file("pat_memtype_list", S_IRUSR, arch_debugfs_dir,
915 NULL, &memtype_fops);
916 return 0;
917}
918
919late_initcall(pat_memtype_list_init);
920
012f09e7 921#endif /* CONFIG_DEBUG_FS && CONFIG_X86_PAT */
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