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MdeModulePkg/Core: fix mem alloc issues in heap guard
[mirror_edk2.git] / MdeModulePkg / Core / PiSmmCore / HeapGuard.c
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1/** @file\r
2 UEFI Heap Guard functions.\r
3\r
8b13bca9 4Copyright (c) 2017-2018, Intel Corporation. All rights reserved.<BR>\r
e63da9f0
JW
5This program and the accompanying materials\r
6are licensed and made available under the terms and conditions of the BSD License\r
7which accompanies this distribution. The full text of the license may be found at\r
8http://opensource.org/licenses/bsd-license.php\r
9\r
10THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,\r
11WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.\r
12\r
13**/\r
14\r
15#include "HeapGuard.h"\r
16\r
17//\r
18// Global to avoid infinite reentrance of memory allocation when updating\r
19// page table attributes, which may need allocating pages for new PDE/PTE.\r
20//\r
21GLOBAL_REMOVE_IF_UNREFERENCED BOOLEAN mOnGuarding = FALSE;\r
22\r
23//\r
24// Pointer to table tracking the Guarded memory with bitmap, in which '1'\r
25// is used to indicate memory guarded. '0' might be free memory or Guard\r
26// page itself, depending on status of memory adjacent to it.\r
27//\r
28GLOBAL_REMOVE_IF_UNREFERENCED UINT64 mGuardedMemoryMap = 0;\r
29\r
30//\r
31// Current depth level of map table pointed by mGuardedMemoryMap.\r
32// mMapLevel must be initialized at least by 1. It will be automatically\r
33// updated according to the address of memory just tracked.\r
34//\r
35GLOBAL_REMOVE_IF_UNREFERENCED UINTN mMapLevel = 1;\r
36\r
37//\r
38// Shift and mask for each level of map table\r
39//\r
40GLOBAL_REMOVE_IF_UNREFERENCED UINTN mLevelShift[GUARDED_HEAP_MAP_TABLE_DEPTH]\r
41 = GUARDED_HEAP_MAP_TABLE_DEPTH_SHIFTS;\r
42GLOBAL_REMOVE_IF_UNREFERENCED UINTN mLevelMask[GUARDED_HEAP_MAP_TABLE_DEPTH]\r
43 = GUARDED_HEAP_MAP_TABLE_DEPTH_MASKS;\r
44\r
45//\r
46// SMM memory attribute protocol\r
47//\r
48EDKII_SMM_MEMORY_ATTRIBUTE_PROTOCOL *mSmmMemoryAttribute = NULL;\r
49\r
50/**\r
51 Set corresponding bits in bitmap table to 1 according to the address.\r
52\r
53 @param[in] Address Start address to set for.\r
54 @param[in] BitNumber Number of bits to set.\r
55 @param[in] BitMap Pointer to bitmap which covers the Address.\r
56\r
57 @return VOID\r
58**/\r
59STATIC\r
60VOID\r
61SetBits (\r
62 IN EFI_PHYSICAL_ADDRESS Address,\r
63 IN UINTN BitNumber,\r
64 IN UINT64 *BitMap\r
65 )\r
66{\r
67 UINTN Lsbs;\r
68 UINTN Qwords;\r
69 UINTN Msbs;\r
70 UINTN StartBit;\r
71 UINTN EndBit;\r
72\r
73 StartBit = (UINTN)GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address);\r
74 EndBit = (StartBit + BitNumber - 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
75\r
76 if ((StartBit + BitNumber) > GUARDED_HEAP_MAP_ENTRY_BITS) {\r
77 Msbs = (GUARDED_HEAP_MAP_ENTRY_BITS - StartBit) %\r
78 GUARDED_HEAP_MAP_ENTRY_BITS;\r
79 Lsbs = (EndBit + 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
80 Qwords = (BitNumber - Msbs) / GUARDED_HEAP_MAP_ENTRY_BITS;\r
81 } else {\r
82 Msbs = BitNumber;\r
83 Lsbs = 0;\r
84 Qwords = 0;\r
85 }\r
86\r
87 if (Msbs > 0) {\r
88 *BitMap |= LShiftU64 (LShiftU64 (1, Msbs) - 1, StartBit);\r
89 BitMap += 1;\r
90 }\r
91\r
92 if (Qwords > 0) {\r
93 SetMem64 ((VOID *)BitMap, Qwords * GUARDED_HEAP_MAP_ENTRY_BYTES,\r
94 (UINT64)-1);\r
95 BitMap += Qwords;\r
96 }\r
97\r
98 if (Lsbs > 0) {\r
99 *BitMap |= (LShiftU64 (1, Lsbs) - 1);\r
100 }\r
101}\r
102\r
103/**\r
104 Set corresponding bits in bitmap table to 0 according to the address.\r
105\r
106 @param[in] Address Start address to set for.\r
107 @param[in] BitNumber Number of bits to set.\r
108 @param[in] BitMap Pointer to bitmap which covers the Address.\r
109\r
110 @return VOID.\r
111**/\r
112STATIC\r
113VOID\r
114ClearBits (\r
115 IN EFI_PHYSICAL_ADDRESS Address,\r
116 IN UINTN BitNumber,\r
117 IN UINT64 *BitMap\r
118 )\r
119{\r
120 UINTN Lsbs;\r
121 UINTN Qwords;\r
122 UINTN Msbs;\r
123 UINTN StartBit;\r
124 UINTN EndBit;\r
125\r
126 StartBit = (UINTN)GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address);\r
127 EndBit = (StartBit + BitNumber - 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
128\r
129 if ((StartBit + BitNumber) > GUARDED_HEAP_MAP_ENTRY_BITS) {\r
130 Msbs = (GUARDED_HEAP_MAP_ENTRY_BITS - StartBit) %\r
131 GUARDED_HEAP_MAP_ENTRY_BITS;\r
132 Lsbs = (EndBit + 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
133 Qwords = (BitNumber - Msbs) / GUARDED_HEAP_MAP_ENTRY_BITS;\r
134 } else {\r
135 Msbs = BitNumber;\r
136 Lsbs = 0;\r
137 Qwords = 0;\r
138 }\r
139\r
140 if (Msbs > 0) {\r
141 *BitMap &= ~LShiftU64 (LShiftU64 (1, Msbs) - 1, StartBit);\r
142 BitMap += 1;\r
143 }\r
144\r
145 if (Qwords > 0) {\r
146 SetMem64 ((VOID *)BitMap, Qwords * GUARDED_HEAP_MAP_ENTRY_BYTES, 0);\r
147 BitMap += Qwords;\r
148 }\r
149\r
150 if (Lsbs > 0) {\r
151 *BitMap &= ~(LShiftU64 (1, Lsbs) - 1);\r
152 }\r
153}\r
154\r
155/**\r
156 Get corresponding bits in bitmap table according to the address.\r
157\r
158 The value of bit 0 corresponds to the status of memory at given Address.\r
159 No more than 64 bits can be retrieved in one call.\r
160\r
161 @param[in] Address Start address to retrieve bits for.\r
162 @param[in] BitNumber Number of bits to get.\r
163 @param[in] BitMap Pointer to bitmap which covers the Address.\r
164\r
165 @return An integer containing the bits information.\r
166**/\r
167STATIC\r
168UINT64\r
169GetBits (\r
170 IN EFI_PHYSICAL_ADDRESS Address,\r
171 IN UINTN BitNumber,\r
172 IN UINT64 *BitMap\r
173 )\r
174{\r
175 UINTN StartBit;\r
176 UINTN EndBit;\r
177 UINTN Lsbs;\r
178 UINTN Msbs;\r
179 UINT64 Result;\r
180\r
181 ASSERT (BitNumber <= GUARDED_HEAP_MAP_ENTRY_BITS);\r
182\r
183 StartBit = (UINTN)GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address);\r
184 EndBit = (StartBit + BitNumber - 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
185\r
186 if ((StartBit + BitNumber) > GUARDED_HEAP_MAP_ENTRY_BITS) {\r
187 Msbs = GUARDED_HEAP_MAP_ENTRY_BITS - StartBit;\r
188 Lsbs = (EndBit + 1) % GUARDED_HEAP_MAP_ENTRY_BITS;\r
189 } else {\r
190 Msbs = BitNumber;\r
191 Lsbs = 0;\r
192 }\r
193\r
194 Result = RShiftU64 ((*BitMap), StartBit) & (LShiftU64 (1, Msbs) - 1);\r
195 if (Lsbs > 0) {\r
196 BitMap += 1;\r
197 Result |= LShiftU64 ((*BitMap) & (LShiftU64 (1, Lsbs) - 1), Msbs);\r
198 }\r
199\r
200 return Result;\r
201}\r
202\r
203/**\r
204 Helper function to allocate pages without Guard for internal uses.\r
205\r
206 @param[in] Pages Page number.\r
207\r
208 @return Address of memory allocated.\r
209**/\r
210VOID *\r
211PageAlloc (\r
212 IN UINTN Pages\r
213 )\r
214{\r
215 EFI_STATUS Status;\r
216 EFI_PHYSICAL_ADDRESS Memory;\r
217\r
218 Status = SmmInternalAllocatePages (AllocateAnyPages, EfiRuntimeServicesData,\r
219 Pages, &Memory, FALSE);\r
220 if (EFI_ERROR (Status)) {\r
221 Memory = 0;\r
222 }\r
223\r
224 return (VOID *)(UINTN)Memory;\r
225}\r
226\r
227/**\r
228 Locate the pointer of bitmap from the guarded memory bitmap tables, which\r
229 covers the given Address.\r
230\r
231 @param[in] Address Start address to search the bitmap for.\r
232 @param[in] AllocMapUnit Flag to indicate memory allocation for the table.\r
233 @param[out] BitMap Pointer to bitmap which covers the Address.\r
234\r
235 @return The bit number from given Address to the end of current map table.\r
236**/\r
237UINTN\r
238FindGuardedMemoryMap (\r
239 IN EFI_PHYSICAL_ADDRESS Address,\r
240 IN BOOLEAN AllocMapUnit,\r
241 OUT UINT64 **BitMap\r
242 )\r
243{\r
244 UINTN Level;\r
245 UINT64 *GuardMap;\r
246 UINT64 MapMemory;\r
247 UINTN Index;\r
248 UINTN Size;\r
249 UINTN BitsToUnitEnd;\r
250\r
251 //\r
252 // Adjust current map table depth according to the address to access\r
253 //\r
254 while (mMapLevel < GUARDED_HEAP_MAP_TABLE_DEPTH\r
255 &&\r
256 RShiftU64 (\r
257 Address,\r
258 mLevelShift[GUARDED_HEAP_MAP_TABLE_DEPTH - mMapLevel - 1]\r
259 ) != 0) {\r
260\r
261 if (mGuardedMemoryMap != 0) {\r
262 Size = (mLevelMask[GUARDED_HEAP_MAP_TABLE_DEPTH - mMapLevel - 1] + 1)\r
263 * GUARDED_HEAP_MAP_ENTRY_BYTES;\r
264 MapMemory = (UINT64)(UINTN)PageAlloc (EFI_SIZE_TO_PAGES (Size));\r
265 ASSERT (MapMemory != 0);\r
266\r
267 SetMem ((VOID *)(UINTN)MapMemory, Size, 0);\r
268\r
269 *(UINT64 *)(UINTN)MapMemory = mGuardedMemoryMap;\r
270 mGuardedMemoryMap = MapMemory;\r
271 }\r
272\r
273 mMapLevel++;\r
274\r
275 }\r
276\r
277 GuardMap = &mGuardedMemoryMap;\r
278 for (Level = GUARDED_HEAP_MAP_TABLE_DEPTH - mMapLevel;\r
279 Level < GUARDED_HEAP_MAP_TABLE_DEPTH;\r
280 ++Level) {\r
281\r
282 if (*GuardMap == 0) {\r
283 if (!AllocMapUnit) {\r
284 GuardMap = NULL;\r
285 break;\r
286 }\r
287\r
288 Size = (mLevelMask[Level] + 1) * GUARDED_HEAP_MAP_ENTRY_BYTES;\r
289 MapMemory = (UINT64)(UINTN)PageAlloc (EFI_SIZE_TO_PAGES (Size));\r
290 ASSERT (MapMemory != 0);\r
291\r
292 SetMem ((VOID *)(UINTN)MapMemory, Size, 0);\r
293 *GuardMap = MapMemory;\r
294 }\r
295\r
296 Index = (UINTN)RShiftU64 (Address, mLevelShift[Level]);\r
297 Index &= mLevelMask[Level];\r
298 GuardMap = (UINT64 *)(UINTN)((*GuardMap) + Index * sizeof (UINT64));\r
299\r
300 }\r
301\r
302 BitsToUnitEnd = GUARDED_HEAP_MAP_BITS - GUARDED_HEAP_MAP_BIT_INDEX (Address);\r
303 *BitMap = GuardMap;\r
304\r
305 return BitsToUnitEnd;\r
306}\r
307\r
308/**\r
309 Set corresponding bits in bitmap table to 1 according to given memory range.\r
310\r
311 @param[in] Address Memory address to guard from.\r
312 @param[in] NumberOfPages Number of pages to guard.\r
313\r
314 @return VOID\r
315**/\r
316VOID\r
317EFIAPI\r
318SetGuardedMemoryBits (\r
319 IN EFI_PHYSICAL_ADDRESS Address,\r
320 IN UINTN NumberOfPages\r
321 )\r
322{\r
323 UINT64 *BitMap;\r
324 UINTN Bits;\r
325 UINTN BitsToUnitEnd;\r
326\r
327 while (NumberOfPages > 0) {\r
328 BitsToUnitEnd = FindGuardedMemoryMap (Address, TRUE, &BitMap);\r
329 ASSERT (BitMap != NULL);\r
330\r
331 if (NumberOfPages > BitsToUnitEnd) {\r
332 // Cross map unit\r
333 Bits = BitsToUnitEnd;\r
334 } else {\r
335 Bits = NumberOfPages;\r
336 }\r
337\r
338 SetBits (Address, Bits, BitMap);\r
339\r
340 NumberOfPages -= Bits;\r
341 Address += EFI_PAGES_TO_SIZE (Bits);\r
342 }\r
343}\r
344\r
345/**\r
346 Clear corresponding bits in bitmap table according to given memory range.\r
347\r
348 @param[in] Address Memory address to unset from.\r
349 @param[in] NumberOfPages Number of pages to unset guard.\r
350\r
351 @return VOID\r
352**/\r
353VOID\r
354EFIAPI\r
355ClearGuardedMemoryBits (\r
356 IN EFI_PHYSICAL_ADDRESS Address,\r
357 IN UINTN NumberOfPages\r
358 )\r
359{\r
360 UINT64 *BitMap;\r
361 UINTN Bits;\r
362 UINTN BitsToUnitEnd;\r
363\r
364 while (NumberOfPages > 0) {\r
365 BitsToUnitEnd = FindGuardedMemoryMap (Address, TRUE, &BitMap);\r
366 ASSERT (BitMap != NULL);\r
367\r
368 if (NumberOfPages > BitsToUnitEnd) {\r
369 // Cross map unit\r
370 Bits = BitsToUnitEnd;\r
371 } else {\r
372 Bits = NumberOfPages;\r
373 }\r
374\r
375 ClearBits (Address, Bits, BitMap);\r
376\r
377 NumberOfPages -= Bits;\r
378 Address += EFI_PAGES_TO_SIZE (Bits);\r
379 }\r
380}\r
381\r
382/**\r
383 Retrieve corresponding bits in bitmap table according to given memory range.\r
384\r
385 @param[in] Address Memory address to retrieve from.\r
386 @param[in] NumberOfPages Number of pages to retrieve.\r
387\r
388 @return An integer containing the guarded memory bitmap.\r
389**/\r
390UINTN\r
391GetGuardedMemoryBits (\r
392 IN EFI_PHYSICAL_ADDRESS Address,\r
393 IN UINTN NumberOfPages\r
394 )\r
395{\r
396 UINT64 *BitMap;\r
397 UINTN Bits;\r
398 UINTN Result;\r
399 UINTN Shift;\r
400 UINTN BitsToUnitEnd;\r
401\r
402 ASSERT (NumberOfPages <= GUARDED_HEAP_MAP_ENTRY_BITS);\r
403\r
404 Result = 0;\r
405 Shift = 0;\r
406 while (NumberOfPages > 0) {\r
407 BitsToUnitEnd = FindGuardedMemoryMap (Address, FALSE, &BitMap);\r
408\r
409 if (NumberOfPages > BitsToUnitEnd) {\r
410 // Cross map unit\r
411 Bits = BitsToUnitEnd;\r
412 } else {\r
413 Bits = NumberOfPages;\r
414 }\r
415\r
416 if (BitMap != NULL) {\r
417 Result |= LShiftU64 (GetBits (Address, Bits, BitMap), Shift);\r
418 }\r
419\r
420 Shift += Bits;\r
421 NumberOfPages -= Bits;\r
422 Address += EFI_PAGES_TO_SIZE (Bits);\r
423 }\r
424\r
425 return Result;\r
426}\r
427\r
428/**\r
429 Get bit value in bitmap table for the given address.\r
430\r
431 @param[in] Address The address to retrieve for.\r
432\r
433 @return 1 or 0.\r
434**/\r
435UINTN\r
436EFIAPI\r
437GetGuardMapBit (\r
438 IN EFI_PHYSICAL_ADDRESS Address\r
439 )\r
440{\r
441 UINT64 *GuardMap;\r
442\r
443 FindGuardedMemoryMap (Address, FALSE, &GuardMap);\r
444 if (GuardMap != NULL) {\r
445 if (RShiftU64 (*GuardMap,\r
446 GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address)) & 1) {\r
447 return 1;\r
448 }\r
449 }\r
450\r
451 return 0;\r
452}\r
453\r
454/**\r
455 Set the bit in bitmap table for the given address.\r
456\r
457 @param[in] Address The address to set for.\r
458\r
459 @return VOID.\r
460**/\r
461VOID\r
462EFIAPI\r
463SetGuardMapBit (\r
464 IN EFI_PHYSICAL_ADDRESS Address\r
465 )\r
466{\r
467 UINT64 *GuardMap;\r
468 UINT64 BitMask;\r
469\r
470 FindGuardedMemoryMap (Address, TRUE, &GuardMap);\r
471 if (GuardMap != NULL) {\r
472 BitMask = LShiftU64 (1, GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address));\r
473 *GuardMap |= BitMask;\r
474 }\r
475}\r
476\r
477/**\r
478 Clear the bit in bitmap table for the given address.\r
479\r
480 @param[in] Address The address to clear for.\r
481\r
482 @return VOID.\r
483**/\r
484VOID\r
485EFIAPI\r
486ClearGuardMapBit (\r
487 IN EFI_PHYSICAL_ADDRESS Address\r
488 )\r
489{\r
490 UINT64 *GuardMap;\r
491 UINT64 BitMask;\r
492\r
493 FindGuardedMemoryMap (Address, TRUE, &GuardMap);\r
494 if (GuardMap != NULL) {\r
495 BitMask = LShiftU64 (1, GUARDED_HEAP_MAP_ENTRY_BIT_INDEX (Address));\r
496 *GuardMap &= ~BitMask;\r
497 }\r
498}\r
499\r
500/**\r
501 Check to see if the page at the given address is a Guard page or not.\r
502\r
503 @param[in] Address The address to check for.\r
504\r
505 @return TRUE The page at Address is a Guard page.\r
506 @return FALSE The page at Address is not a Guard page.\r
507**/\r
508BOOLEAN\r
509EFIAPI\r
510IsGuardPage (\r
511 IN EFI_PHYSICAL_ADDRESS Address\r
512)\r
513{\r
514 UINTN BitMap;\r
515\r
516 //\r
517 // There must be at least one guarded page before and/or after given\r
518 // address if it's a Guard page. The bitmap pattern should be one of\r
519 // 001, 100 and 101\r
520 //\r
521 BitMap = GetGuardedMemoryBits (Address - EFI_PAGE_SIZE, 3);\r
522 return ((BitMap == BIT0) || (BitMap == BIT2) || (BitMap == (BIT2 | BIT0)));\r
523}\r
524\r
525/**\r
526 Check to see if the page at the given address is a head Guard page or not.\r
527\r
528 @param[in] Address The address to check for.\r
529\r
530 @return TRUE The page at Address is a head Guard page.\r
531 @return FALSE The page at Address is not a head Guard page.\r
532**/\r
533BOOLEAN\r
534EFIAPI\r
535IsHeadGuard (\r
536 IN EFI_PHYSICAL_ADDRESS Address\r
537 )\r
538{\r
539 return (GetGuardedMemoryBits (Address, 2) == BIT1);\r
540}\r
541\r
542/**\r
543 Check to see if the page at the given address is a tail Guard page or not.\r
544\r
545 @param[in] Address The address to check for.\r
546\r
547 @return TRUE The page at Address is a tail Guard page.\r
548 @return FALSE The page at Address is not a tail Guard page.\r
549**/\r
550BOOLEAN\r
551EFIAPI\r
552IsTailGuard (\r
553 IN EFI_PHYSICAL_ADDRESS Address\r
554 )\r
555{\r
556 return (GetGuardedMemoryBits (Address - EFI_PAGE_SIZE, 2) == BIT0);\r
557}\r
558\r
559/**\r
560 Check to see if the page at the given address is guarded or not.\r
561\r
562 @param[in] Address The address to check for.\r
563\r
564 @return TRUE The page at Address is guarded.\r
565 @return FALSE The page at Address is not guarded.\r
566**/\r
567BOOLEAN\r
568EFIAPI\r
569IsMemoryGuarded (\r
570 IN EFI_PHYSICAL_ADDRESS Address\r
571 )\r
572{\r
573 return (GetGuardMapBit (Address) == 1);\r
574}\r
575\r
576/**\r
577 Set the page at the given address to be a Guard page.\r
578\r
579 This is done by changing the page table attribute to be NOT PRSENT.\r
580\r
581 @param[in] BaseAddress Page address to Guard at.\r
582\r
583 @return VOID.\r
584**/\r
585VOID\r
586EFIAPI\r
587SetGuardPage (\r
588 IN EFI_PHYSICAL_ADDRESS BaseAddress\r
589 )\r
590{\r
591 if (mSmmMemoryAttribute != NULL) {\r
592 mOnGuarding = TRUE;\r
593 mSmmMemoryAttribute->SetMemoryAttributes (\r
594 mSmmMemoryAttribute,\r
595 BaseAddress,\r
596 EFI_PAGE_SIZE,\r
597 EFI_MEMORY_RP\r
598 );\r
599 mOnGuarding = FALSE;\r
600 }\r
601}\r
602\r
603/**\r
604 Unset the Guard page at the given address to the normal memory.\r
605\r
606 This is done by changing the page table attribute to be PRSENT.\r
607\r
608 @param[in] BaseAddress Page address to Guard at.\r
609\r
610 @return VOID.\r
611**/\r
612VOID\r
613EFIAPI\r
614UnsetGuardPage (\r
615 IN EFI_PHYSICAL_ADDRESS BaseAddress\r
616 )\r
617{\r
618 if (mSmmMemoryAttribute != NULL) {\r
619 mOnGuarding = TRUE;\r
620 mSmmMemoryAttribute->ClearMemoryAttributes (\r
621 mSmmMemoryAttribute,\r
622 BaseAddress,\r
623 EFI_PAGE_SIZE,\r
624 EFI_MEMORY_RP\r
625 );\r
626 mOnGuarding = FALSE;\r
627 }\r
628}\r
629\r
630/**\r
631 Check to see if the memory at the given address should be guarded or not.\r
632\r
633 @param[in] MemoryType Memory type to check.\r
634 @param[in] AllocateType Allocation type to check.\r
635 @param[in] PageOrPool Indicate a page allocation or pool allocation.\r
636\r
637\r
638 @return TRUE The given type of memory should be guarded.\r
639 @return FALSE The given type of memory should not be guarded.\r
640**/\r
641BOOLEAN\r
642IsMemoryTypeToGuard (\r
643 IN EFI_MEMORY_TYPE MemoryType,\r
644 IN EFI_ALLOCATE_TYPE AllocateType,\r
645 IN UINT8 PageOrPool\r
646 )\r
647{\r
648 UINT64 TestBit;\r
649 UINT64 ConfigBit;\r
650\r
651 if ((PcdGet8 (PcdHeapGuardPropertyMask) & PageOrPool) == 0\r
652 || mOnGuarding\r
653 || AllocateType == AllocateAddress) {\r
654 return FALSE;\r
655 }\r
656\r
657 ConfigBit = 0;\r
658 if ((PageOrPool & GUARD_HEAP_TYPE_POOL) != 0) {\r
659 ConfigBit |= PcdGet64 (PcdHeapGuardPoolType);\r
660 }\r
661\r
662 if ((PageOrPool & GUARD_HEAP_TYPE_PAGE) != 0) {\r
663 ConfigBit |= PcdGet64 (PcdHeapGuardPageType);\r
664 }\r
665\r
666 if (MemoryType == EfiRuntimeServicesData ||\r
667 MemoryType == EfiRuntimeServicesCode) {\r
668 TestBit = LShiftU64 (1, MemoryType);\r
669 } else if (MemoryType == EfiMaxMemoryType) {\r
670 TestBit = (UINT64)-1;\r
671 } else {\r
672 TestBit = 0;\r
673 }\r
674\r
675 return ((ConfigBit & TestBit) != 0);\r
676}\r
677\r
678/**\r
679 Check to see if the pool at the given address should be guarded or not.\r
680\r
681 @param[in] MemoryType Pool type to check.\r
682\r
683\r
684 @return TRUE The given type of pool should be guarded.\r
685 @return FALSE The given type of pool should not be guarded.\r
686**/\r
687BOOLEAN\r
688IsPoolTypeToGuard (\r
689 IN EFI_MEMORY_TYPE MemoryType\r
690 )\r
691{\r
692 return IsMemoryTypeToGuard (MemoryType, AllocateAnyPages,\r
693 GUARD_HEAP_TYPE_POOL);\r
694}\r
695\r
696/**\r
697 Check to see if the page at the given address should be guarded or not.\r
698\r
699 @param[in] MemoryType Page type to check.\r
700 @param[in] AllocateType Allocation type to check.\r
701\r
702 @return TRUE The given type of page should be guarded.\r
703 @return FALSE The given type of page should not be guarded.\r
704**/\r
705BOOLEAN\r
706IsPageTypeToGuard (\r
707 IN EFI_MEMORY_TYPE MemoryType,\r
708 IN EFI_ALLOCATE_TYPE AllocateType\r
709 )\r
710{\r
711 return IsMemoryTypeToGuard (MemoryType, AllocateType, GUARD_HEAP_TYPE_PAGE);\r
712}\r
713\r
714/**\r
715 Check to see if the heap guard is enabled for page and/or pool allocation.\r
716\r
717 @return TRUE/FALSE.\r
718**/\r
719BOOLEAN\r
720IsHeapGuardEnabled (\r
721 VOID\r
722 )\r
723{\r
724 return IsMemoryTypeToGuard (EfiMaxMemoryType, AllocateAnyPages,\r
725 GUARD_HEAP_TYPE_POOL|GUARD_HEAP_TYPE_PAGE);\r
726}\r
727\r
728/**\r
729 Set head Guard and tail Guard for the given memory range.\r
730\r
731 @param[in] Memory Base address of memory to set guard for.\r
732 @param[in] NumberOfPages Memory size in pages.\r
733\r
734 @return VOID.\r
735**/\r
736VOID\r
737SetGuardForMemory (\r
738 IN EFI_PHYSICAL_ADDRESS Memory,\r
739 IN UINTN NumberOfPages\r
740 )\r
741{\r
742 EFI_PHYSICAL_ADDRESS GuardPage;\r
743\r
744 //\r
745 // Set tail Guard\r
746 //\r
747 GuardPage = Memory + EFI_PAGES_TO_SIZE (NumberOfPages);\r
748 if (!IsGuardPage (GuardPage)) {\r
749 SetGuardPage (GuardPage);\r
750 }\r
751\r
752 // Set head Guard\r
753 GuardPage = Memory - EFI_PAGES_TO_SIZE (1);\r
754 if (!IsGuardPage (GuardPage)) {\r
755 SetGuardPage (GuardPage);\r
756 }\r
757\r
758 //\r
759 // Mark the memory range as Guarded\r
760 //\r
761 SetGuardedMemoryBits (Memory, NumberOfPages);\r
762}\r
763\r
764/**\r
765 Unset head Guard and tail Guard for the given memory range.\r
766\r
767 @param[in] Memory Base address of memory to unset guard for.\r
768 @param[in] NumberOfPages Memory size in pages.\r
769\r
770 @return VOID.\r
771**/\r
772VOID\r
773UnsetGuardForMemory (\r
774 IN EFI_PHYSICAL_ADDRESS Memory,\r
775 IN UINTN NumberOfPages\r
776 )\r
777{\r
778 EFI_PHYSICAL_ADDRESS GuardPage;\r
38d870fc 779 UINT64 GuardBitmap;\r
e63da9f0
JW
780\r
781 if (NumberOfPages == 0) {\r
782 return;\r
783 }\r
784\r
785 //\r
786 // Head Guard must be one page before, if any.\r
787 //\r
38d870fc
JW
788 // MSB-> 1 0 <-LSB\r
789 // -------------------\r
790 // Head Guard -> 0 1 -> Don't free Head Guard (shared Guard)\r
791 // Head Guard -> 0 0 -> Free Head Guard either (not shared Guard)\r
792 // 1 X -> Don't free first page (need a new Guard)\r
793 // (it'll be turned into a Guard page later)\r
794 // -------------------\r
795 // Start -> -1 -2\r
796 //\r
e63da9f0 797 GuardPage = Memory - EFI_PAGES_TO_SIZE (1);\r
38d870fc
JW
798 GuardBitmap = GetGuardedMemoryBits (Memory - EFI_PAGES_TO_SIZE (2), 2);\r
799 if ((GuardBitmap & BIT1) == 0) {\r
800 //\r
801 // Head Guard exists.\r
802 //\r
803 if ((GuardBitmap & BIT0) == 0) {\r
e63da9f0
JW
804 //\r
805 // If the head Guard is not a tail Guard of adjacent memory block,\r
806 // unset it.\r
807 //\r
808 UnsetGuardPage (GuardPage);\r
809 }\r
38d870fc 810 } else {\r
e63da9f0
JW
811 //\r
812 // Pages before memory to free are still in Guard. It's a partial free\r
813 // case. Turn first page of memory block to free into a new Guard.\r
814 //\r
815 SetGuardPage (Memory);\r
816 }\r
817\r
818 //\r
819 // Tail Guard must be the page after this memory block to free, if any.\r
820 //\r
38d870fc
JW
821 // MSB-> 1 0 <-LSB\r
822 // --------------------\r
823 // 1 0 <- Tail Guard -> Don't free Tail Guard (shared Guard)\r
824 // 0 0 <- Tail Guard -> Free Tail Guard either (not shared Guard)\r
825 // X 1 -> Don't free last page (need a new Guard)\r
826 // (it'll be turned into a Guard page later)\r
827 // --------------------\r
828 // +1 +0 <- End\r
829 //\r
e63da9f0 830 GuardPage = Memory + EFI_PAGES_TO_SIZE (NumberOfPages);\r
38d870fc
JW
831 GuardBitmap = GetGuardedMemoryBits (GuardPage, 2);\r
832 if ((GuardBitmap & BIT0) == 0) {\r
833 //\r
834 // Tail Guard exists.\r
835 //\r
836 if ((GuardBitmap & BIT1) == 0) {\r
e63da9f0
JW
837 //\r
838 // If the tail Guard is not a head Guard of adjacent memory block,\r
839 // free it; otherwise, keep it.\r
840 //\r
841 UnsetGuardPage (GuardPage);\r
842 }\r
38d870fc 843 } else {\r
e63da9f0
JW
844 //\r
845 // Pages after memory to free are still in Guard. It's a partial free\r
846 // case. We need to keep one page to be a head Guard.\r
847 //\r
848 SetGuardPage (GuardPage - EFI_PAGES_TO_SIZE (1));\r
849 }\r
850\r
851 //\r
852 // No matter what, we just clear the mark of the Guarded memory.\r
853 //\r
854 ClearGuardedMemoryBits(Memory, NumberOfPages);\r
855}\r
856\r
857/**\r
858 Adjust address of free memory according to existing and/or required Guard.\r
859\r
860 This function will check if there're existing Guard pages of adjacent\r
861 memory blocks, and try to use it as the Guard page of the memory to be\r
862 allocated.\r
863\r
864 @param[in] Start Start address of free memory block.\r
865 @param[in] Size Size of free memory block.\r
866 @param[in] SizeRequested Size of memory to allocate.\r
867\r
868 @return The end address of memory block found.\r
869 @return 0 if no enough space for the required size of memory and its Guard.\r
870**/\r
871UINT64\r
872AdjustMemoryS (\r
873 IN UINT64 Start,\r
874 IN UINT64 Size,\r
875 IN UINT64 SizeRequested\r
876 )\r
877{\r
878 UINT64 Target;\r
879\r
c44218e5
JW
880 //\r
881 // UEFI spec requires that allocated pool must be 8-byte aligned. If it's\r
882 // indicated to put the pool near the Tail Guard, we need extra bytes to\r
883 // make sure alignment of the returned pool address.\r
884 //\r
885 if ((PcdGet8 (PcdHeapGuardPropertyMask) & BIT7) == 0) {\r
886 SizeRequested = ALIGN_VALUE(SizeRequested, 8);\r
887 }\r
888\r
e63da9f0
JW
889 Target = Start + Size - SizeRequested;\r
890\r
e63da9f0
JW
891 if (!IsGuardPage (Start + Size)) {\r
892 // No Guard at tail to share. One more page is needed.\r
893 Target -= EFI_PAGES_TO_SIZE (1);\r
894 }\r
895\r
896 // Out of range?\r
897 if (Target < Start) {\r
898 return 0;\r
899 }\r
900\r
901 // At the edge?\r
902 if (Target == Start) {\r
903 if (!IsGuardPage (Target - EFI_PAGES_TO_SIZE (1))) {\r
904 // No enough space for a new head Guard if no Guard at head to share.\r
905 return 0;\r
906 }\r
907 }\r
908\r
909 // OK, we have enough pages for memory and its Guards. Return the End of the\r
910 // free space.\r
911 return Target + SizeRequested - 1;\r
912}\r
913\r
914/**\r
915 Adjust the start address and number of pages to free according to Guard.\r
916\r
917 The purpose of this function is to keep the shared Guard page with adjacent\r
918 memory block if it's still in guard, or free it if no more sharing. Another\r
919 is to reserve pages as Guard pages in partial page free situation.\r
920\r
921 @param[in,out] Memory Base address of memory to free.\r
922 @param[in,out] NumberOfPages Size of memory to free.\r
923\r
924 @return VOID.\r
925**/\r
926VOID\r
927AdjustMemoryF (\r
928 IN OUT EFI_PHYSICAL_ADDRESS *Memory,\r
929 IN OUT UINTN *NumberOfPages\r
930 )\r
931{\r
932 EFI_PHYSICAL_ADDRESS Start;\r
933 EFI_PHYSICAL_ADDRESS MemoryToTest;\r
934 UINTN PagesToFree;\r
38d870fc 935 UINT64 GuardBitmap;\r
e63da9f0
JW
936\r
937 if (Memory == NULL || NumberOfPages == NULL || *NumberOfPages == 0) {\r
938 return;\r
939 }\r
940\r
941 Start = *Memory;\r
942 PagesToFree = *NumberOfPages;\r
943\r
944 //\r
945 // Head Guard must be one page before, if any.\r
946 //\r
38d870fc
JW
947 // MSB-> 1 0 <-LSB\r
948 // -------------------\r
949 // Head Guard -> 0 1 -> Don't free Head Guard (shared Guard)\r
950 // Head Guard -> 0 0 -> Free Head Guard either (not shared Guard)\r
951 // 1 X -> Don't free first page (need a new Guard)\r
952 // (it'll be turned into a Guard page later)\r
953 // -------------------\r
954 // Start -> -1 -2\r
955 //\r
956 MemoryToTest = Start - EFI_PAGES_TO_SIZE (2);\r
957 GuardBitmap = GetGuardedMemoryBits (MemoryToTest, 2);\r
958 if ((GuardBitmap & BIT1) == 0) {\r
959 //\r
960 // Head Guard exists.\r
961 //\r
962 if ((GuardBitmap & BIT0) == 0) {\r
e63da9f0
JW
963 //\r
964 // If the head Guard is not a tail Guard of adjacent memory block,\r
965 // free it; otherwise, keep it.\r
966 //\r
967 Start -= EFI_PAGES_TO_SIZE (1);\r
968 PagesToFree += 1;\r
969 }\r
38d870fc 970 } else {\r
e63da9f0 971 //\r
38d870fc
JW
972 // No Head Guard, and pages before memory to free are still in Guard. It's a\r
973 // partial free case. We need to keep one page to be a tail Guard.\r
e63da9f0
JW
974 //\r
975 Start += EFI_PAGES_TO_SIZE (1);\r
976 PagesToFree -= 1;\r
977 }\r
978\r
979 //\r
980 // Tail Guard must be the page after this memory block to free, if any.\r
981 //\r
38d870fc
JW
982 // MSB-> 1 0 <-LSB\r
983 // --------------------\r
984 // 1 0 <- Tail Guard -> Don't free Tail Guard (shared Guard)\r
985 // 0 0 <- Tail Guard -> Free Tail Guard either (not shared Guard)\r
986 // X 1 -> Don't free last page (need a new Guard)\r
987 // (it'll be turned into a Guard page later)\r
988 // --------------------\r
989 // +1 +0 <- End\r
990 //\r
e63da9f0 991 MemoryToTest = Start + EFI_PAGES_TO_SIZE (PagesToFree);\r
38d870fc
JW
992 GuardBitmap = GetGuardedMemoryBits (MemoryToTest, 2);\r
993 if ((GuardBitmap & BIT0) == 0) {\r
994 //\r
995 // Tail Guard exists.\r
996 //\r
997 if ((GuardBitmap & BIT1) == 0) {\r
e63da9f0
JW
998 //\r
999 // If the tail Guard is not a head Guard of adjacent memory block,\r
1000 // free it; otherwise, keep it.\r
1001 //\r
1002 PagesToFree += 1;\r
1003 }\r
38d870fc 1004 } else if (PagesToFree > 0) {\r
e63da9f0 1005 //\r
38d870fc
JW
1006 // No Tail Guard, and pages after memory to free are still in Guard. It's a\r
1007 // partial free case. We need to keep one page to be a head Guard.\r
e63da9f0
JW
1008 //\r
1009 PagesToFree -= 1;\r
1010 }\r
1011\r
1012 *Memory = Start;\r
1013 *NumberOfPages = PagesToFree;\r
1014}\r
1015\r
1016/**\r
1017 Adjust the base and number of pages to really allocate according to Guard.\r
1018\r
1019 @param[in,out] Memory Base address of free memory.\r
1020 @param[in,out] NumberOfPages Size of memory to allocate.\r
1021\r
1022 @return VOID.\r
1023**/\r
1024VOID\r
1025AdjustMemoryA (\r
1026 IN OUT EFI_PHYSICAL_ADDRESS *Memory,\r
1027 IN OUT UINTN *NumberOfPages\r
1028 )\r
1029{\r
1030 //\r
1031 // FindFreePages() has already taken the Guard into account. It's safe to\r
1032 // adjust the start address and/or number of pages here, to make sure that\r
1033 // the Guards are also "allocated".\r
1034 //\r
1035 if (!IsGuardPage (*Memory + EFI_PAGES_TO_SIZE (*NumberOfPages))) {\r
1036 // No tail Guard, add one.\r
1037 *NumberOfPages += 1;\r
1038 }\r
1039\r
1040 if (!IsGuardPage (*Memory - EFI_PAGE_SIZE)) {\r
1041 // No head Guard, add one.\r
1042 *Memory -= EFI_PAGE_SIZE;\r
1043 *NumberOfPages += 1;\r
1044 }\r
1045}\r
1046\r
1047/**\r
1048 Adjust the pool head position to make sure the Guard page is adjavent to\r
1049 pool tail or pool head.\r
1050\r
1051 @param[in] Memory Base address of memory allocated.\r
1052 @param[in] NoPages Number of pages actually allocated.\r
1053 @param[in] Size Size of memory requested.\r
1054 (plus pool head/tail overhead)\r
1055\r
1056 @return Address of pool head\r
1057**/\r
1058VOID *\r
1059AdjustPoolHeadA (\r
1060 IN EFI_PHYSICAL_ADDRESS Memory,\r
1061 IN UINTN NoPages,\r
1062 IN UINTN Size\r
1063 )\r
1064{\r
c44218e5 1065 if (Memory == 0 || (PcdGet8 (PcdHeapGuardPropertyMask) & BIT7) != 0) {\r
e63da9f0
JW
1066 //\r
1067 // Pool head is put near the head Guard\r
1068 //\r
1069 return (VOID *)(UINTN)Memory;\r
1070 }\r
1071\r
1072 //\r
1073 // Pool head is put near the tail Guard\r
1074 //\r
c44218e5 1075 Size = ALIGN_VALUE (Size, 8);\r
e63da9f0
JW
1076 return (VOID *)(UINTN)(Memory + EFI_PAGES_TO_SIZE (NoPages) - Size);\r
1077}\r
1078\r
1079/**\r
1080 Get the page base address according to pool head address.\r
1081\r
1082 @param[in] Memory Head address of pool to free.\r
1083\r
1084 @return Address of pool head.\r
1085**/\r
1086VOID *\r
1087AdjustPoolHeadF (\r
1088 IN EFI_PHYSICAL_ADDRESS Memory\r
1089 )\r
1090{\r
c44218e5 1091 if (Memory == 0 || (PcdGet8 (PcdHeapGuardPropertyMask) & BIT7) != 0) {\r
e63da9f0
JW
1092 //\r
1093 // Pool head is put near the head Guard\r
1094 //\r
1095 return (VOID *)(UINTN)Memory;\r
1096 }\r
1097\r
1098 //\r
1099 // Pool head is put near the tail Guard\r
1100 //\r
1101 return (VOID *)(UINTN)(Memory & ~EFI_PAGE_MASK);\r
1102}\r
1103\r
1104/**\r
1105 Helper function of memory allocation with Guard pages.\r
1106\r
1107 @param FreePageList The free page node.\r
1108 @param NumberOfPages Number of pages to be allocated.\r
1109 @param MaxAddress Request to allocate memory below this address.\r
1110 @param MemoryType Type of memory requested.\r
1111\r
1112 @return Memory address of allocated pages.\r
1113**/\r
1114UINTN\r
1115InternalAllocMaxAddressWithGuard (\r
1116 IN OUT LIST_ENTRY *FreePageList,\r
1117 IN UINTN NumberOfPages,\r
1118 IN UINTN MaxAddress,\r
1119 IN EFI_MEMORY_TYPE MemoryType\r
1120\r
1121 )\r
1122{\r
1123 LIST_ENTRY *Node;\r
1124 FREE_PAGE_LIST *Pages;\r
1125 UINTN PagesToAlloc;\r
1126 UINTN HeadGuard;\r
1127 UINTN TailGuard;\r
1128 UINTN Address;\r
1129\r
1130 for (Node = FreePageList->BackLink; Node != FreePageList;\r
1131 Node = Node->BackLink) {\r
1132 Pages = BASE_CR (Node, FREE_PAGE_LIST, Link);\r
1133 if (Pages->NumberOfPages >= NumberOfPages &&\r
1134 (UINTN)Pages + EFI_PAGES_TO_SIZE (NumberOfPages) - 1 <= MaxAddress) {\r
1135\r
1136 //\r
1137 // We may need 1 or 2 more pages for Guard. Check it out.\r
1138 //\r
1139 PagesToAlloc = NumberOfPages;\r
1140 TailGuard = (UINTN)Pages + EFI_PAGES_TO_SIZE (Pages->NumberOfPages);\r
1141 if (!IsGuardPage (TailGuard)) {\r
1142 //\r
1143 // Add one if no Guard at the end of current free memory block.\r
1144 //\r
1145 PagesToAlloc += 1;\r
1146 TailGuard = 0;\r
1147 }\r
1148\r
1149 HeadGuard = (UINTN)Pages +\r
1150 EFI_PAGES_TO_SIZE (Pages->NumberOfPages - PagesToAlloc) -\r
1151 EFI_PAGE_SIZE;\r
1152 if (!IsGuardPage (HeadGuard)) {\r
1153 //\r
1154 // Add one if no Guard at the page before the address to allocate\r
1155 //\r
1156 PagesToAlloc += 1;\r
1157 HeadGuard = 0;\r
1158 }\r
1159\r
1160 if (Pages->NumberOfPages < PagesToAlloc) {\r
1161 // Not enough space to allocate memory with Guards? Try next block.\r
1162 continue;\r
1163 }\r
1164\r
1165 Address = InternalAllocPagesOnOneNode (Pages, PagesToAlloc, MaxAddress);\r
1166 ConvertSmmMemoryMapEntry(MemoryType, Address, PagesToAlloc, FALSE);\r
1167 CoreFreeMemoryMapStack();\r
1168 if (HeadGuard == 0) {\r
1169 // Don't pass the Guard page to user.\r
1170 Address += EFI_PAGE_SIZE;\r
1171 }\r
1172 SetGuardForMemory (Address, NumberOfPages);\r
1173 return Address;\r
1174 }\r
1175 }\r
1176\r
1177 return (UINTN)(-1);\r
1178}\r
1179\r
1180/**\r
1181 Helper function of memory free with Guard pages.\r
1182\r
1183 @param[in] Memory Base address of memory being freed.\r
1184 @param[in] NumberOfPages The number of pages to free.\r
1185 @param[in] AddRegion If this memory is new added region.\r
1186\r
1187 @retval EFI_NOT_FOUND Could not find the entry that covers the range.\r
1188 @retval EFI_INVALID_PARAMETER Address not aligned, Address is zero or NumberOfPages is zero.\r
1189 @return EFI_SUCCESS Pages successfully freed.\r
1190**/\r
1191EFI_STATUS\r
1192SmmInternalFreePagesExWithGuard (\r
1193 IN EFI_PHYSICAL_ADDRESS Memory,\r
1194 IN UINTN NumberOfPages,\r
1195 IN BOOLEAN AddRegion\r
1196 )\r
1197{\r
1198 EFI_PHYSICAL_ADDRESS MemoryToFree;\r
1199 UINTN PagesToFree;\r
1200\r
7823611c
JW
1201 if (((Memory & EFI_PAGE_MASK) != 0) || (Memory == 0) || (NumberOfPages == 0)) {\r
1202 return EFI_INVALID_PARAMETER;\r
1203 }\r
1204\r
e63da9f0
JW
1205 MemoryToFree = Memory;\r
1206 PagesToFree = NumberOfPages;\r
1207\r
1208 AdjustMemoryF (&MemoryToFree, &PagesToFree);\r
1209 UnsetGuardForMemory (Memory, NumberOfPages);\r
38d870fc
JW
1210 if (PagesToFree == 0) {\r
1211 return EFI_SUCCESS;\r
1212 }\r
e63da9f0
JW
1213\r
1214 return SmmInternalFreePagesEx (MemoryToFree, PagesToFree, AddRegion);\r
1215}\r
1216\r
1217/**\r
1218 Set all Guard pages which cannot be set during the non-SMM mode time.\r
1219**/\r
1220VOID\r
1221SetAllGuardPages (\r
1222 VOID\r
1223 )\r
1224{\r
1225 UINTN Entries[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1226 UINTN Shifts[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1227 UINTN Indices[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1228 UINT64 Tables[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1229 UINT64 Addresses[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1230 UINT64 TableEntry;\r
1231 UINT64 Address;\r
1232 UINT64 GuardPage;\r
1233 INTN Level;\r
1234 UINTN Index;\r
1235 BOOLEAN OnGuarding;\r
1236\r
c6c50165
JW
1237 if (mGuardedMemoryMap == 0 ||\r
1238 mMapLevel == 0 ||\r
1239 mMapLevel > GUARDED_HEAP_MAP_TABLE_DEPTH) {\r
e63da9f0
JW
1240 return;\r
1241 }\r
1242\r
1243 CopyMem (Entries, mLevelMask, sizeof (Entries));\r
1244 CopyMem (Shifts, mLevelShift, sizeof (Shifts));\r
1245\r
1246 SetMem (Tables, sizeof(Tables), 0);\r
1247 SetMem (Addresses, sizeof(Addresses), 0);\r
1248 SetMem (Indices, sizeof(Indices), 0);\r
1249\r
1250 Level = GUARDED_HEAP_MAP_TABLE_DEPTH - mMapLevel;\r
1251 Tables[Level] = mGuardedMemoryMap;\r
1252 Address = 0;\r
1253 OnGuarding = FALSE;\r
1254\r
1255 DEBUG_CODE (\r
1256 DumpGuardedMemoryBitmap ();\r
1257 );\r
1258\r
1259 while (TRUE) {\r
1260 if (Indices[Level] > Entries[Level]) {\r
1261 Tables[Level] = 0;\r
1262 Level -= 1;\r
1263 } else {\r
1264\r
1265 TableEntry = ((UINT64 *)(UINTN)(Tables[Level]))[Indices[Level]];\r
1266 Address = Addresses[Level];\r
1267\r
1268 if (TableEntry == 0) {\r
1269\r
1270 OnGuarding = FALSE;\r
1271\r
1272 } else if (Level < GUARDED_HEAP_MAP_TABLE_DEPTH - 1) {\r
1273\r
1274 Level += 1;\r
1275 Tables[Level] = TableEntry;\r
1276 Addresses[Level] = Address;\r
1277 Indices[Level] = 0;\r
1278\r
1279 continue;\r
1280\r
1281 } else {\r
1282\r
1283 Index = 0;\r
1284 while (Index < GUARDED_HEAP_MAP_ENTRY_BITS) {\r
1285 if ((TableEntry & 1) == 1) {\r
1286 if (OnGuarding) {\r
1287 GuardPage = 0;\r
1288 } else {\r
1289 GuardPage = Address - EFI_PAGE_SIZE;\r
1290 }\r
1291 OnGuarding = TRUE;\r
1292 } else {\r
1293 if (OnGuarding) {\r
1294 GuardPage = Address;\r
1295 } else {\r
1296 GuardPage = 0;\r
1297 }\r
1298 OnGuarding = FALSE;\r
1299 }\r
1300\r
1301 if (GuardPage != 0) {\r
1302 SetGuardPage (GuardPage);\r
1303 }\r
1304\r
1305 if (TableEntry == 0) {\r
1306 break;\r
1307 }\r
1308\r
1309 TableEntry = RShiftU64 (TableEntry, 1);\r
1310 Address += EFI_PAGE_SIZE;\r
1311 Index += 1;\r
1312 }\r
1313 }\r
1314 }\r
1315\r
1316 if (Level < (GUARDED_HEAP_MAP_TABLE_DEPTH - (INTN)mMapLevel)) {\r
1317 break;\r
1318 }\r
1319\r
1320 Indices[Level] += 1;\r
1321 Address = (Level == 0) ? 0 : Addresses[Level - 1];\r
1322 Addresses[Level] = Address | LShiftU64(Indices[Level], Shifts[Level]);\r
1323\r
1324 }\r
1325}\r
1326\r
1327/**\r
1328 Hook function used to set all Guard pages after entering SMM mode.\r
1329**/\r
1330VOID\r
1331SmmEntryPointMemoryManagementHook (\r
1332 VOID\r
1333 )\r
1334{\r
1335 EFI_STATUS Status;\r
1336\r
1337 if (mSmmMemoryAttribute == NULL) {\r
1338 Status = SmmLocateProtocol (\r
1339 &gEdkiiSmmMemoryAttributeProtocolGuid,\r
1340 NULL,\r
1341 (VOID **)&mSmmMemoryAttribute\r
1342 );\r
1343 if (!EFI_ERROR(Status)) {\r
1344 SetAllGuardPages ();\r
1345 }\r
1346 }\r
1347}\r
1348\r
1349/**\r
1350 Helper function to convert a UINT64 value in binary to a string.\r
1351\r
1352 @param[in] Value Value of a UINT64 integer.\r
1353 @param[out] BinString String buffer to contain the conversion result.\r
1354\r
1355 @return VOID.\r
1356**/\r
1357VOID\r
1358Uint64ToBinString (\r
1359 IN UINT64 Value,\r
1360 OUT CHAR8 *BinString\r
1361 )\r
1362{\r
1363 UINTN Index;\r
1364\r
1365 if (BinString == NULL) {\r
1366 return;\r
1367 }\r
1368\r
1369 for (Index = 64; Index > 0; --Index) {\r
1370 BinString[Index - 1] = '0' + (Value & 1);\r
1371 Value = RShiftU64 (Value, 1);\r
1372 }\r
1373 BinString[64] = '\0';\r
1374}\r
1375\r
1376/**\r
1377 Dump the guarded memory bit map.\r
1378**/\r
1379VOID\r
1380EFIAPI\r
1381DumpGuardedMemoryBitmap (\r
1382 VOID\r
1383 )\r
1384{\r
1385 UINTN Entries[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1386 UINTN Shifts[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1387 UINTN Indices[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1388 UINT64 Tables[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1389 UINT64 Addresses[GUARDED_HEAP_MAP_TABLE_DEPTH];\r
1390 UINT64 TableEntry;\r
1391 UINT64 Address;\r
1392 INTN Level;\r
1393 UINTN RepeatZero;\r
1394 CHAR8 String[GUARDED_HEAP_MAP_ENTRY_BITS + 1];\r
1395 CHAR8 *Ruler1;\r
1396 CHAR8 *Ruler2;\r
1397\r
c6c50165
JW
1398 if (mGuardedMemoryMap == 0 ||\r
1399 mMapLevel == 0 ||\r
1400 mMapLevel > GUARDED_HEAP_MAP_TABLE_DEPTH) {\r
e63da9f0
JW
1401 return;\r
1402 }\r
1403\r
1404 Ruler1 = " 3 2 1 0";\r
1405 Ruler2 = "FEDCBA9876543210FEDCBA9876543210FEDCBA9876543210FEDCBA9876543210";\r
1406\r
1407 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, "============================="\r
1408 " Guarded Memory Bitmap "\r
1409 "==============================\r\n"));\r
1410 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, " %a\r\n", Ruler1));\r
1411 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, " %a\r\n", Ruler2));\r
1412\r
1413 CopyMem (Entries, mLevelMask, sizeof (Entries));\r
1414 CopyMem (Shifts, mLevelShift, sizeof (Shifts));\r
1415\r
1416 SetMem (Indices, sizeof(Indices), 0);\r
1417 SetMem (Tables, sizeof(Tables), 0);\r
1418 SetMem (Addresses, sizeof(Addresses), 0);\r
1419\r
1420 Level = GUARDED_HEAP_MAP_TABLE_DEPTH - mMapLevel;\r
1421 Tables[Level] = mGuardedMemoryMap;\r
1422 Address = 0;\r
1423 RepeatZero = 0;\r
1424\r
1425 while (TRUE) {\r
1426 if (Indices[Level] > Entries[Level]) {\r
1427\r
1428 Tables[Level] = 0;\r
1429 Level -= 1;\r
1430 RepeatZero = 0;\r
1431\r
1432 DEBUG ((\r
1433 HEAP_GUARD_DEBUG_LEVEL,\r
1434 "========================================="\r
1435 "=========================================\r\n"\r
1436 ));\r
1437\r
1438 } else {\r
1439\r
1440 TableEntry = ((UINT64 *)(UINTN)Tables[Level])[Indices[Level]];\r
1441 Address = Addresses[Level];\r
1442\r
1443 if (TableEntry == 0) {\r
1444\r
1445 if (Level == GUARDED_HEAP_MAP_TABLE_DEPTH - 1) {\r
1446 if (RepeatZero == 0) {\r
1447 Uint64ToBinString(TableEntry, String);\r
1448 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, "%016lx: %a\r\n", Address, String));\r
1449 } else if (RepeatZero == 1) {\r
1450 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, "... : ...\r\n"));\r
1451 }\r
1452 RepeatZero += 1;\r
1453 }\r
1454\r
1455 } else if (Level < GUARDED_HEAP_MAP_TABLE_DEPTH - 1) {\r
1456\r
1457 Level += 1;\r
1458 Tables[Level] = TableEntry;\r
1459 Addresses[Level] = Address;\r
1460 Indices[Level] = 0;\r
1461 RepeatZero = 0;\r
1462\r
1463 continue;\r
1464\r
1465 } else {\r
1466\r
1467 RepeatZero = 0;\r
1468 Uint64ToBinString(TableEntry, String);\r
1469 DEBUG ((HEAP_GUARD_DEBUG_LEVEL, "%016lx: %a\r\n", Address, String));\r
1470\r
1471 }\r
1472 }\r
1473\r
1474 if (Level < (GUARDED_HEAP_MAP_TABLE_DEPTH - (INTN)mMapLevel)) {\r
1475 break;\r
1476 }\r
1477\r
1478 Indices[Level] += 1;\r
1479 Address = (Level == 0) ? 0 : Addresses[Level - 1];\r
1480 Addresses[Level] = Address | LShiftU64(Indices[Level], Shifts[Level]);\r
1481\r
1482 }\r
1483}\r
1484\r
1485/**\r
1486 Debug function used to verify if the Guard page is well set or not.\r
1487\r
1488 @param[in] BaseAddress Address of memory to check.\r
1489 @param[in] NumberOfPages Size of memory in pages.\r
1490\r
1491 @return TRUE The head Guard and tail Guard are both well set.\r
1492 @return FALSE The head Guard and/or tail Guard are not well set.\r
1493**/\r
1494BOOLEAN\r
1495VerifyMemoryGuard (\r
1496 IN EFI_PHYSICAL_ADDRESS BaseAddress,\r
1497 IN UINTN NumberOfPages\r
1498 )\r
1499{\r
1500 EFI_STATUS Status;\r
1501 UINT64 Attribute;\r
1502 EFI_PHYSICAL_ADDRESS Address;\r
1503\r
1504 if (mSmmMemoryAttribute == NULL) {\r
1505 return TRUE;\r
1506 }\r
1507\r
1508 Attribute = 0;\r
1509 Address = BaseAddress - EFI_PAGE_SIZE;\r
1510 Status = mSmmMemoryAttribute->GetMemoryAttributes (\r
1511 mSmmMemoryAttribute,\r
1512 Address,\r
1513 EFI_PAGE_SIZE,\r
1514 &Attribute\r
1515 );\r
1516 if (EFI_ERROR (Status) || (Attribute & EFI_MEMORY_RP) == 0) {\r
1517 DEBUG ((DEBUG_ERROR, "Head Guard is not set at: %016lx (%016lX)!!!\r\n",\r
1518 Address, Attribute));\r
1519 DumpGuardedMemoryBitmap ();\r
1520 return FALSE;\r
1521 }\r
1522\r
1523 Attribute = 0;\r
1524 Address = BaseAddress + EFI_PAGES_TO_SIZE (NumberOfPages);\r
1525 Status = mSmmMemoryAttribute->GetMemoryAttributes (\r
1526 mSmmMemoryAttribute,\r
1527 Address,\r
1528 EFI_PAGE_SIZE,\r
1529 &Attribute\r
1530 );\r
1531 if (EFI_ERROR (Status) || (Attribute & EFI_MEMORY_RP) == 0) {\r
1532 DEBUG ((DEBUG_ERROR, "Tail Guard is not set at: %016lx (%016lX)!!!\r\n",\r
1533 Address, Attribute));\r
1534 DumpGuardedMemoryBitmap ();\r
1535 return FALSE;\r
1536 }\r
1537\r
1538 return TRUE;\r
1539}\r
1540\r