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MdeModulePkg: improve scalability of memory pools
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1/** @file\r
2 UEFI Memory pool management functions.\r
3\r
4Copyright (c) 2006 - 2014, Intel Corporation. All rights reserved.<BR>\r
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 "DxeMain.h"\r
16#include "Imem.h"\r
17\r
18#define POOL_FREE_SIGNATURE SIGNATURE_32('p','f','r','0')\r
19typedef struct {\r
20 UINT32 Signature;\r
21 UINT32 Index;\r
22 LIST_ENTRY Link;\r
23} POOL_FREE;\r
24\r
25\r
26#define POOL_HEAD_SIGNATURE SIGNATURE_32('p','h','d','0')\r
27typedef struct {\r
28 UINT32 Signature;\r
29 UINT32 Reserved;\r
30 EFI_MEMORY_TYPE Type;\r
31 UINTN Size;\r
32 CHAR8 Data[1];\r
33} POOL_HEAD;\r
34\r
35#define SIZE_OF_POOL_HEAD OFFSET_OF(POOL_HEAD,Data)\r
36\r
37#define POOL_TAIL_SIGNATURE SIGNATURE_32('p','t','a','l')\r
38typedef struct {\r
39 UINT32 Signature;\r
40 UINT32 Reserved;\r
41 UINTN Size;\r
42} POOL_TAIL;\r
43\r
44#define POOL_OVERHEAD (SIZE_OF_POOL_HEAD + sizeof(POOL_TAIL))\r
45\r
46#define HEAD_TO_TAIL(a) \\r
47 ((POOL_TAIL *) (((CHAR8 *) (a)) + (a)->Size - sizeof(POOL_TAIL)));\r
48\r
49//\r
50// Each element is the sum of the 2 previous ones: this allows us to migrate\r
51// blocks between bins by splitting them up, while not wasting too much memory\r
52// as we would in a strict power-of-2 sequence\r
53//\r
54STATIC CONST UINT16 mPoolSizeTable[] = {\r
55 64, 128, 192, 320, 512, 832, 1344, 2176, 3520, 5696, 9216, 14912, 24128\r
56};\r
57\r
58#define SIZE_TO_LIST(a) (GetPoolIndexFromSize (a))\r
59#define LIST_TO_SIZE(a) (mPoolSizeTable [a])\r
60\r
61#define MAX_POOL_LIST (sizeof (mPoolSizeTable) / sizeof (mPoolSizeTable[0]))\r
62\r
63#define MAX_POOL_SIZE (MAX_ADDRESS - POOL_OVERHEAD)\r
64\r
65//\r
66// Globals\r
67//\r
68\r
69#define POOL_SIGNATURE SIGNATURE_32('p','l','s','t')\r
70typedef struct {\r
71 INTN Signature;\r
72 UINTN Used;\r
73 EFI_MEMORY_TYPE MemoryType;\r
74 LIST_ENTRY FreeList[MAX_POOL_LIST];\r
75 LIST_ENTRY Link;\r
76} POOL;\r
77\r
78//\r
79// Pool header for each memory type.\r
80//\r
81POOL mPoolHead[EfiMaxMemoryType];\r
82\r
83//\r
84// List of pool header to search for the appropriate memory type.\r
85//\r
86LIST_ENTRY mPoolHeadList = INITIALIZE_LIST_HEAD_VARIABLE (mPoolHeadList);\r
87\r
88STATIC\r
89UINTN\r
90GetPoolIndexFromSize (\r
91 UINTN Size\r
92 )\r
93{\r
94 UINTN Index;\r
95\r
96 for (Index = 0; Index < MAX_POOL_LIST; Index++) {\r
97 if (mPoolSizeTable [Index] >= Size) {\r
98 return Index;\r
99 }\r
100 }\r
101 return MAX_POOL_LIST;\r
102}\r
103\r
104/**\r
105 Called to initialize the pool.\r
106\r
107**/\r
108VOID\r
109CoreInitializePool (\r
110 VOID\r
111 )\r
112{\r
113 UINTN Type;\r
114 UINTN Index;\r
115\r
116 for (Type=0; Type < EfiMaxMemoryType; Type++) {\r
117 mPoolHead[Type].Signature = 0;\r
118 mPoolHead[Type].Used = 0;\r
119 mPoolHead[Type].MemoryType = (EFI_MEMORY_TYPE) Type;\r
120 for (Index=0; Index < MAX_POOL_LIST; Index++) {\r
121 InitializeListHead (&mPoolHead[Type].FreeList[Index]);\r
122 }\r
123 }\r
124}\r
125\r
126\r
127/**\r
128 Look up pool head for specified memory type.\r
129\r
130 @param MemoryType Memory type of which pool head is looked for\r
131\r
132 @return Pointer of Corresponding pool head.\r
133\r
134**/\r
135POOL *\r
136LookupPoolHead (\r
137 IN EFI_MEMORY_TYPE MemoryType\r
138 )\r
139{\r
140 LIST_ENTRY *Link;\r
141 POOL *Pool;\r
142 UINTN Index;\r
143\r
144 if ((UINT32)MemoryType < EfiMaxMemoryType) {\r
145 return &mPoolHead[MemoryType];\r
146 }\r
147\r
148 //\r
149 // MemoryType values in the range 0x80000000..0xFFFFFFFF are reserved for use by UEFI \r
150 // OS loaders that are provided by operating system vendors\r
151 //\r
152 if ((INT32)MemoryType < 0) {\r
153\r
154 for (Link = mPoolHeadList.ForwardLink; Link != &mPoolHeadList; Link = Link->ForwardLink) {\r
155 Pool = CR(Link, POOL, Link, POOL_SIGNATURE);\r
156 if (Pool->MemoryType == MemoryType) {\r
157 return Pool;\r
158 }\r
159 }\r
160\r
161 Pool = CoreAllocatePoolI (EfiBootServicesData, sizeof (POOL));\r
162 if (Pool == NULL) {\r
163 return NULL;\r
164 }\r
165\r
166 Pool->Signature = POOL_SIGNATURE;\r
167 Pool->Used = 0;\r
168 Pool->MemoryType = MemoryType;\r
169 for (Index=0; Index < MAX_POOL_LIST; Index++) {\r
170 InitializeListHead (&Pool->FreeList[Index]);\r
171 }\r
172\r
173 InsertHeadList (&mPoolHeadList, &Pool->Link);\r
174\r
175 return Pool;\r
176 }\r
177\r
178 return NULL;\r
179}\r
180\r
181\r
182\r
183/**\r
184 Allocate pool of a particular type.\r
185\r
186 @param PoolType Type of pool to allocate\r
187 @param Size The amount of pool to allocate\r
188 @param Buffer The address to return a pointer to the allocated\r
189 pool\r
190\r
191 @retval EFI_INVALID_PARAMETER PoolType not valid or Buffer is NULL. \r
192 @retval EFI_OUT_OF_RESOURCES Size exceeds max pool size or allocation failed.\r
193 @retval EFI_SUCCESS Pool successfully allocated.\r
194\r
195**/\r
196EFI_STATUS\r
197EFIAPI\r
198CoreInternalAllocatePool (\r
199 IN EFI_MEMORY_TYPE PoolType,\r
200 IN UINTN Size,\r
201 OUT VOID **Buffer\r
202 )\r
203{\r
204 EFI_STATUS Status;\r
205\r
206 //\r
207 // If it's not a valid type, fail it\r
208 //\r
209 if ((PoolType >= EfiMaxMemoryType && PoolType <= 0x7fffffff) ||\r
210 PoolType == EfiConventionalMemory) {\r
211 return EFI_INVALID_PARAMETER;\r
212 }\r
213\r
214 if (Buffer == NULL) {\r
215 return EFI_INVALID_PARAMETER;\r
216 }\r
217\r
218 *Buffer = NULL;\r
219\r
220 //\r
221 // If size is too large, fail it\r
222 // Base on the EFI spec, return status of EFI_OUT_OF_RESOURCES\r
223 //\r
224 if (Size > MAX_POOL_SIZE) {\r
225 return EFI_OUT_OF_RESOURCES;\r
226 }\r
227\r
228 //\r
229 // Acquire the memory lock and make the allocation\r
230 //\r
231 Status = CoreAcquireLockOrFail (&gMemoryLock);\r
232 if (EFI_ERROR (Status)) {\r
233 return EFI_OUT_OF_RESOURCES;\r
234 }\r
235\r
236 *Buffer = CoreAllocatePoolI (PoolType, Size);\r
237 CoreReleaseMemoryLock ();\r
238 return (*Buffer != NULL) ? EFI_SUCCESS : EFI_OUT_OF_RESOURCES;\r
239}\r
240\r
241/**\r
242 Allocate pool of a particular type.\r
243\r
244 @param PoolType Type of pool to allocate\r
245 @param Size The amount of pool to allocate\r
246 @param Buffer The address to return a pointer to the allocated\r
247 pool\r
248\r
249 @retval EFI_INVALID_PARAMETER PoolType not valid or Buffer is NULL. \r
250 @retval EFI_OUT_OF_RESOURCES Size exceeds max pool size or allocation failed.\r
251 @retval EFI_SUCCESS Pool successfully allocated.\r
252\r
253**/\r
254EFI_STATUS\r
255EFIAPI\r
256CoreAllocatePool (\r
257 IN EFI_MEMORY_TYPE PoolType,\r
258 IN UINTN Size,\r
259 OUT VOID **Buffer\r
260 )\r
261{\r
262 EFI_STATUS Status;\r
263\r
264 Status = CoreInternalAllocatePool (PoolType, Size, Buffer);\r
265 if (!EFI_ERROR (Status)) {\r
266 CoreUpdateProfile ((EFI_PHYSICAL_ADDRESS) (UINTN) RETURN_ADDRESS (0), MemoryProfileActionAllocatePool, PoolType, Size, *Buffer);\r
267 }\r
268 return Status;\r
269}\r
270\r
271/**\r
272 Internal function to allocate pool of a particular type.\r
273 Caller must have the memory lock held\r
274\r
275 @param PoolType Type of pool to allocate\r
276 @param Size The amount of pool to allocate\r
277\r
278 @return The allocate pool, or NULL\r
279\r
280**/\r
281VOID *\r
282CoreAllocatePoolI (\r
283 IN EFI_MEMORY_TYPE PoolType,\r
284 IN UINTN Size\r
285 )\r
286{\r
287 POOL *Pool;\r
288 POOL_FREE *Free;\r
289 POOL_HEAD *Head;\r
290 POOL_TAIL *Tail;\r
291 CHAR8 *NewPage;\r
292 VOID *Buffer;\r
293 UINTN Index;\r
294 UINTN FSize;\r
295 UINTN Offset;\r
296 UINTN NoPages;\r
297 UINTN Granularity;\r
298\r
299 ASSERT_LOCKED (&gMemoryLock);\r
300\r
301 if (PoolType == EfiACPIReclaimMemory ||\r
302 PoolType == EfiACPIMemoryNVS ||\r
303 PoolType == EfiRuntimeServicesCode ||\r
304 PoolType == EfiRuntimeServicesData) {\r
305\r
306 Granularity = EFI_ACPI_RUNTIME_PAGE_ALLOCATION_ALIGNMENT;\r
307 } else {\r
308 Granularity = DEFAULT_PAGE_ALLOCATION;\r
309 }\r
310\r
311 //\r
312 // Adjust the size by the pool header & tail overhead\r
313 //\r
314\r
315 //\r
316 // Adjusting the Size to be of proper alignment so that\r
317 // we don't get an unaligned access fault later when\r
318 // pool_Tail is being initialized\r
319 //\r
320 Size = ALIGN_VARIABLE (Size);\r
321\r
322 Size += POOL_OVERHEAD;\r
323 Index = SIZE_TO_LIST(Size);\r
324 Pool = LookupPoolHead (PoolType);\r
325 if (Pool== NULL) {\r
326 return NULL;\r
327 }\r
328 Head = NULL;\r
329\r
330 //\r
331 // If allocation is over max size, just allocate pages for the request\r
332 // (slow)\r
333 //\r
334 if (Index >= SIZE_TO_LIST (Granularity)) {\r
335 NoPages = EFI_SIZE_TO_PAGES(Size) + EFI_SIZE_TO_PAGES (Granularity) - 1;\r
336 NoPages &= ~(UINTN)(EFI_SIZE_TO_PAGES (Granularity) - 1);\r
337 Head = CoreAllocatePoolPages (PoolType, NoPages, Granularity);\r
338 goto Done;\r
339 }\r
340\r
341 //\r
342 // If there's no free pool in the proper list size, go get some more pages\r
343 //\r
344 if (IsListEmpty (&Pool->FreeList[Index])) {\r
345\r
346 //\r
347 // Get another page\r
348 //\r
349 NewPage = CoreAllocatePoolPages(PoolType, EFI_SIZE_TO_PAGES (Granularity), Granularity);\r
350 if (NewPage == NULL) {\r
351 goto Done;\r
352 }\r
353\r
354 //\r
355 // Carve up new page into free pool blocks\r
356 //\r
357 Offset = 0;\r
358 while (Offset < Granularity) {\r
359 ASSERT (Index < MAX_POOL_LIST);\r
360 FSize = LIST_TO_SIZE(Index);\r
361\r
362 while (Offset + FSize <= Granularity) {\r
363 Free = (POOL_FREE *) &NewPage[Offset];\r
364 Free->Signature = POOL_FREE_SIGNATURE;\r
365 Free->Index = (UINT32)Index;\r
366 InsertHeadList (&Pool->FreeList[Index], &Free->Link);\r
367 Offset += FSize;\r
368 }\r
369\r
370 Index -= 1;\r
371 }\r
372\r
373 ASSERT (Offset == Granularity);\r
374 Index = SIZE_TO_LIST(Size);\r
375 }\r
376\r
377 //\r
378 // Remove entry from free pool list\r
379 //\r
380 Free = CR (Pool->FreeList[Index].ForwardLink, POOL_FREE, Link, POOL_FREE_SIGNATURE);\r
381 RemoveEntryList (&Free->Link);\r
382\r
383 Head = (POOL_HEAD *) Free;\r
384\r
385Done:\r
386 Buffer = NULL;\r
387\r
388 if (Head != NULL) {\r
389\r
390 //\r
391 // If we have a pool buffer, fill in the header & tail info\r
392 //\r
393 Head->Signature = POOL_HEAD_SIGNATURE;\r
394 Head->Size = Size;\r
395 Head->Type = (EFI_MEMORY_TYPE) PoolType;\r
396 Tail = HEAD_TO_TAIL (Head);\r
397 Tail->Signature = POOL_TAIL_SIGNATURE;\r
398 Tail->Size = Size;\r
399 Buffer = Head->Data;\r
400 DEBUG_CLEAR_MEMORY (Buffer, Size - POOL_OVERHEAD);\r
401\r
402 DEBUG ((\r
403 DEBUG_POOL,\r
404 "AllocatePoolI: Type %x, Addr %p (len %lx) %,ld\n", PoolType,\r
405 Buffer,\r
406 (UINT64)(Size - POOL_OVERHEAD),\r
407 (UINT64) Pool->Used\r
408 ));\r
409\r
410 //\r
411 // Account the allocation\r
412 //\r
413 Pool->Used += Size;\r
414\r
415 } else {\r
416 DEBUG ((DEBUG_ERROR | DEBUG_POOL, "AllocatePool: failed to allocate %ld bytes\n", (UINT64) Size));\r
417 }\r
418\r
419 return Buffer;\r
420}\r
421\r
422\r
423\r
424/**\r
425 Frees pool.\r
426\r
427 @param Buffer The allocated pool entry to free\r
428\r
429 @retval EFI_INVALID_PARAMETER Buffer is not a valid value.\r
430 @retval EFI_SUCCESS Pool successfully freed.\r
431\r
432**/\r
433EFI_STATUS\r
434EFIAPI\r
435CoreInternalFreePool (\r
436 IN VOID *Buffer\r
437 )\r
438{\r
439 EFI_STATUS Status;\r
440\r
441 if (Buffer == NULL) {\r
442 return EFI_INVALID_PARAMETER;\r
443 }\r
444\r
445 CoreAcquireMemoryLock ();\r
446 Status = CoreFreePoolI (Buffer);\r
447 CoreReleaseMemoryLock ();\r
448 return Status;\r
449}\r
450\r
451/**\r
452 Frees pool.\r
453\r
454 @param Buffer The allocated pool entry to free\r
455\r
456 @retval EFI_INVALID_PARAMETER Buffer is not a valid value.\r
457 @retval EFI_SUCCESS Pool successfully freed.\r
458\r
459**/\r
460EFI_STATUS\r
461EFIAPI\r
462CoreFreePool (\r
463 IN VOID *Buffer\r
464 )\r
465{\r
466 EFI_STATUS Status;\r
467\r
468 Status = CoreInternalFreePool (Buffer);\r
469 if (!EFI_ERROR (Status)) {\r
470 CoreUpdateProfile ((EFI_PHYSICAL_ADDRESS) (UINTN) RETURN_ADDRESS (0), MemoryProfileActionFreePool, (EFI_MEMORY_TYPE) 0, 0, Buffer);\r
471 }\r
472 return Status;\r
473}\r
474\r
475/**\r
476 Internal function to free a pool entry.\r
477 Caller must have the memory lock held\r
478\r
479 @param Buffer The allocated pool entry to free\r
480\r
481 @retval EFI_INVALID_PARAMETER Buffer not valid\r
482 @retval EFI_SUCCESS Buffer successfully freed.\r
483\r
484**/\r
485EFI_STATUS\r
486CoreFreePoolI (\r
487 IN VOID *Buffer\r
488 )\r
489{\r
490 POOL *Pool;\r
491 POOL_HEAD *Head;\r
492 POOL_TAIL *Tail;\r
493 POOL_FREE *Free;\r
494 UINTN Index;\r
495 UINTN NoPages;\r
496 UINTN Size;\r
497 CHAR8 *NewPage;\r
498 UINTN FSize;\r
499 UINTN Offset;\r
500 BOOLEAN AllFree;\r
501 UINTN Granularity;\r
502\r
503 ASSERT(Buffer != NULL);\r
504 //\r
505 // Get the head & tail of the pool entry\r
506 //\r
507 Head = CR (Buffer, POOL_HEAD, Data, POOL_HEAD_SIGNATURE);\r
508 ASSERT(Head != NULL);\r
509\r
510 if (Head->Signature != POOL_HEAD_SIGNATURE) {\r
511 return EFI_INVALID_PARAMETER;\r
512 }\r
513\r
514 Tail = HEAD_TO_TAIL (Head);\r
515 ASSERT(Tail != NULL);\r
516\r
517 //\r
518 // Debug\r
519 //\r
520 ASSERT (Tail->Signature == POOL_TAIL_SIGNATURE);\r
521 ASSERT (Head->Size == Tail->Size);\r
522 ASSERT_LOCKED (&gMemoryLock);\r
523\r
524 if (Tail->Signature != POOL_TAIL_SIGNATURE) {\r
525 return EFI_INVALID_PARAMETER;\r
526 }\r
527\r
528 if (Head->Size != Tail->Size) {\r
529 return EFI_INVALID_PARAMETER;\r
530 }\r
531\r
532 //\r
533 // Determine the pool type and account for it\r
534 //\r
535 Size = Head->Size;\r
536 Pool = LookupPoolHead (Head->Type);\r
537 if (Pool == NULL) {\r
538 return EFI_INVALID_PARAMETER;\r
539 }\r
540 Pool->Used -= Size;\r
541 DEBUG ((DEBUG_POOL, "FreePool: %p (len %lx) %,ld\n", Head->Data, (UINT64)(Head->Size - POOL_OVERHEAD), (UINT64) Pool->Used));\r
542\r
543 if (Head->Type == EfiACPIReclaimMemory ||\r
544 Head->Type == EfiACPIMemoryNVS ||\r
545 Head->Type == EfiRuntimeServicesCode ||\r
546 Head->Type == EfiRuntimeServicesData) {\r
547\r
548 Granularity = EFI_ACPI_RUNTIME_PAGE_ALLOCATION_ALIGNMENT;\r
549 } else {\r
550 Granularity = DEFAULT_PAGE_ALLOCATION;\r
551 }\r
552\r
553 //\r
554 // Determine the pool list\r
555 //\r
556 Index = SIZE_TO_LIST(Size);\r
557 DEBUG_CLEAR_MEMORY (Head, Size);\r
558\r
559 //\r
560 // If it's not on the list, it must be pool pages\r
561 //\r
562 if (Index >= SIZE_TO_LIST (Granularity)) {\r
563\r
564 //\r
565 // Return the memory pages back to free memory\r
566 //\r
567 NoPages = EFI_SIZE_TO_PAGES(Size) + EFI_SIZE_TO_PAGES (Granularity) - 1;\r
568 NoPages &= ~(UINTN)(EFI_SIZE_TO_PAGES (Granularity) - 1);\r
569 CoreFreePoolPages ((EFI_PHYSICAL_ADDRESS) (UINTN) Head, NoPages);\r
570\r
571 } else {\r
572\r
573 //\r
574 // Put the pool entry onto the free pool list\r
575 //\r
576 Free = (POOL_FREE *) Head;\r
577 ASSERT(Free != NULL);\r
578 Free->Signature = POOL_FREE_SIGNATURE;\r
579 Free->Index = (UINT32)Index;\r
580 InsertHeadList (&Pool->FreeList[Index], &Free->Link);\r
581\r
582 //\r
583 // See if all the pool entries in the same page as Free are freed pool\r
584 // entries\r
585 //\r
586 NewPage = (CHAR8 *)((UINTN)Free & ~(Granularity - 1));\r
587 Free = (POOL_FREE *) &NewPage[0];\r
588 ASSERT(Free != NULL);\r
589\r
590 if (Free->Signature == POOL_FREE_SIGNATURE) {\r
591\r
592 Index = Free->Index;\r
593\r
594 AllFree = TRUE;\r
595 Offset = 0;\r
596\r
597 while ((Offset < Granularity) && (AllFree)) {\r
598 FSize = LIST_TO_SIZE(Index);\r
599 while (Offset + FSize <= Granularity) {\r
600 Free = (POOL_FREE *) &NewPage[Offset];\r
601 ASSERT(Free != NULL);\r
602 if (Free->Signature != POOL_FREE_SIGNATURE) {\r
603 AllFree = FALSE;\r
604 }\r
605 Offset += FSize;\r
606 }\r
607 Index -= 1;\r
608 }\r
609\r
610 if (AllFree) {\r
611\r
612 //\r
613 // All of the pool entries in the same page as Free are free pool\r
614 // entries\r
615 // Remove all of these pool entries from the free loop lists.\r
616 //\r
617 Free = (POOL_FREE *) &NewPage[0];\r
618 ASSERT(Free != NULL);\r
619 Index = Free->Index;\r
620 Offset = 0;\r
621\r
622 while (Offset < Granularity) {\r
623 FSize = LIST_TO_SIZE(Index);\r
624 while (Offset + FSize <= Granularity) {\r
625 Free = (POOL_FREE *) &NewPage[Offset];\r
626 ASSERT(Free != NULL);\r
627 RemoveEntryList (&Free->Link);\r
628 Offset += FSize;\r
629 }\r
630 Index -= 1;\r
631 }\r
632\r
633 //\r
634 // Free the page\r
635 //\r
636 CoreFreePoolPages ((EFI_PHYSICAL_ADDRESS) (UINTN)NewPage, EFI_SIZE_TO_PAGES (Granularity));\r
637 }\r
638 }\r
639 }\r
640\r
641 //\r
642 // If this is an OS specific memory type, then check to see if the last\r
643 // portion of that memory type has been freed. If it has, then free the\r
644 // list entry for that memory type\r
645 //\r
646 if ((INT32)Pool->MemoryType < 0 && Pool->Used == 0) {\r
647 RemoveEntryList (&Pool->Link);\r
648 CoreFreePoolI (Pool);\r
649 }\r
650\r
651 return EFI_SUCCESS;\r
652}\r
653\r