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1 /** @file
2 The common variable operation routines shared by DXE_RUNTIME variable
3 module and DXE_SMM variable module.
4
5 Caution: This module requires additional review when modified.
6 This driver will have external input - variable data. They may be input in SMM mode.
7 This external input must be validated carefully to avoid security issue like
8 buffer overflow, integer overflow.
9
10 VariableServiceGetNextVariableName () and VariableServiceQueryVariableInfo() are external API.
11 They need check input parameter.
12
13 VariableServiceGetVariable() and VariableServiceSetVariable() are external API
14 to receive datasize and data buffer. The size should be checked carefully.
15
16 VariableServiceSetVariable() should also check authenticate data to avoid buffer overflow,
17 integer overflow. It should also check attribute to avoid authentication bypass.
18
19 Copyright (c) 2009 - 2013, Intel Corporation. All rights reserved.<BR>
20 This program and the accompanying materials
21 are licensed and made available under the terms and conditions of the BSD License
22 which accompanies this distribution. The full text of the license may be found at
23 http://opensource.org/licenses/bsd-license.php
24
25 THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,
26 WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.
27
28 **/
29
30 #include "Variable.h"
31 #include "AuthService.h"
32
33 VARIABLE_MODULE_GLOBAL *mVariableModuleGlobal;
34
35 ///
36 /// Define a memory cache that improves the search performance for a variable.
37 ///
38 VARIABLE_STORE_HEADER *mNvVariableCache = NULL;
39
40 ///
41 /// The memory entry used for variable statistics data.
42 ///
43 VARIABLE_INFO_ENTRY *gVariableInfo = NULL;
44
45 ///
46 /// The list to store the variables which cannot be set after the EFI_END_OF_DXE_EVENT_GROUP_GUID
47 /// or EVT_GROUP_READY_TO_BOOT event.
48 ///
49 LIST_ENTRY mLockedVariableList = INITIALIZE_LIST_HEAD_VARIABLE (mLockedVariableList);
50
51 ///
52 /// The flag to indicate whether the platform has left the DXE phase of execution.
53 ///
54 BOOLEAN mEndOfDxe = FALSE;
55
56 ///
57 /// The flag to indicate whether the variable storage locking is enabled.
58 ///
59 BOOLEAN mEnableLocking = TRUE;
60
61 //
62 // To prevent name collisions with possible future globally defined variables,
63 // other internal firmware data variables that are not defined here must be
64 // saved with a unique VendorGuid other than EFI_GLOBAL_VARIABLE or
65 // any other GUID defined by the UEFI Specification. Implementations must
66 // only permit the creation of variables with a UEFI Specification-defined
67 // VendorGuid when these variables are documented in the UEFI Specification.
68 //
69 GLOBAL_VARIABLE_ENTRY mGlobalVariableList[] = {
70 {EFI_LANG_CODES_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
71 {EFI_LANG_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
72 {EFI_TIME_OUT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
73 {EFI_PLATFORM_LANG_CODES_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
74 {EFI_PLATFORM_LANG_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
75 {EFI_CON_IN_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
76 {EFI_CON_OUT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
77 {EFI_ERR_OUT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
78 {EFI_CON_IN_DEV_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
79 {EFI_CON_OUT_DEV_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
80 {EFI_ERR_OUT_DEV_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
81 {EFI_BOOT_ORDER_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
82 {EFI_BOOT_NEXT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
83 {EFI_BOOT_CURRENT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
84 {EFI_BOOT_OPTION_SUPPORT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
85 {EFI_DRIVER_ORDER_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
86 {EFI_HW_ERR_REC_SUPPORT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
87 {EFI_SETUP_MODE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
88 {EFI_KEY_EXCHANGE_KEY_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT_AT},
89 {EFI_PLATFORM_KEY_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT_AT},
90 {EFI_SIGNATURE_SUPPORT_NAME, VARIABLE_ATTRIBUTE_BS_RT},
91 {EFI_SECURE_BOOT_MODE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
92 {EFI_KEK_DEFAULT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
93 {EFI_PK_DEFAULT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
94 {EFI_DB_DEFAULT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
95 {EFI_DBX_DEFAULT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
96 {EFI_DBT_DEFAULT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
97 {EFI_OS_INDICATIONS_SUPPORT_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
98 {EFI_OS_INDICATIONS_VARIABLE_NAME, VARIABLE_ATTRIBUTE_NV_BS_RT},
99 {EFI_VENDOR_KEYS_VARIABLE_NAME, VARIABLE_ATTRIBUTE_BS_RT},
100 };
101 GLOBAL_VARIABLE_ENTRY mGlobalVariableList2[] = {
102 {L"Boot####", VARIABLE_ATTRIBUTE_NV_BS_RT},
103 {L"Driver####", VARIABLE_ATTRIBUTE_NV_BS_RT},
104 {L"Key####", VARIABLE_ATTRIBUTE_NV_BS_RT},
105 };
106
107 /**
108
109 SecureBoot Hook for auth variable update.
110
111 @param[in] VariableName Name of Variable to be found.
112 @param[in] VendorGuid Variable vendor GUID.
113 **/
114 VOID
115 EFIAPI
116 SecureBootHook (
117 IN CHAR16 *VariableName,
118 IN EFI_GUID *VendorGuid
119 );
120
121 /**
122 Routine used to track statistical information about variable usage.
123 The data is stored in the EFI system table so it can be accessed later.
124 VariableInfo.efi can dump out the table. Only Boot Services variable
125 accesses are tracked by this code. The PcdVariableCollectStatistics
126 build flag controls if this feature is enabled.
127
128 A read that hits in the cache will have Read and Cache true for
129 the transaction. Data is allocated by this routine, but never
130 freed.
131
132 @param[in] VariableName Name of the Variable to track.
133 @param[in] VendorGuid Guid of the Variable to track.
134 @param[in] Volatile TRUE if volatile FALSE if non-volatile.
135 @param[in] Read TRUE if GetVariable() was called.
136 @param[in] Write TRUE if SetVariable() was called.
137 @param[in] Delete TRUE if deleted via SetVariable().
138 @param[in] Cache TRUE for a cache hit.
139
140 **/
141 VOID
142 UpdateVariableInfo (
143 IN CHAR16 *VariableName,
144 IN EFI_GUID *VendorGuid,
145 IN BOOLEAN Volatile,
146 IN BOOLEAN Read,
147 IN BOOLEAN Write,
148 IN BOOLEAN Delete,
149 IN BOOLEAN Cache
150 )
151 {
152 VARIABLE_INFO_ENTRY *Entry;
153
154 if (FeaturePcdGet (PcdVariableCollectStatistics)) {
155
156 if (AtRuntime ()) {
157 // Don't collect statistics at runtime.
158 return;
159 }
160
161 if (gVariableInfo == NULL) {
162 //
163 // On the first call allocate a entry and place a pointer to it in
164 // the EFI System Table.
165 //
166 gVariableInfo = AllocateZeroPool (sizeof (VARIABLE_INFO_ENTRY));
167 ASSERT (gVariableInfo != NULL);
168
169 CopyGuid (&gVariableInfo->VendorGuid, VendorGuid);
170 gVariableInfo->Name = AllocatePool (StrSize (VariableName));
171 ASSERT (gVariableInfo->Name != NULL);
172 StrCpy (gVariableInfo->Name, VariableName);
173 gVariableInfo->Volatile = Volatile;
174 }
175
176
177 for (Entry = gVariableInfo; Entry != NULL; Entry = Entry->Next) {
178 if (CompareGuid (VendorGuid, &Entry->VendorGuid)) {
179 if (StrCmp (VariableName, Entry->Name) == 0) {
180 if (Read) {
181 Entry->ReadCount++;
182 }
183 if (Write) {
184 Entry->WriteCount++;
185 }
186 if (Delete) {
187 Entry->DeleteCount++;
188 }
189 if (Cache) {
190 Entry->CacheCount++;
191 }
192
193 return;
194 }
195 }
196
197 if (Entry->Next == NULL) {
198 //
199 // If the entry is not in the table add it.
200 // Next iteration of the loop will fill in the data.
201 //
202 Entry->Next = AllocateZeroPool (sizeof (VARIABLE_INFO_ENTRY));
203 ASSERT (Entry->Next != NULL);
204
205 CopyGuid (&Entry->Next->VendorGuid, VendorGuid);
206 Entry->Next->Name = AllocatePool (StrSize (VariableName));
207 ASSERT (Entry->Next->Name != NULL);
208 StrCpy (Entry->Next->Name, VariableName);
209 Entry->Next->Volatile = Volatile;
210 }
211
212 }
213 }
214 }
215
216
217 /**
218
219 This code checks if variable header is valid or not.
220
221 @param Variable Pointer to the Variable Header.
222
223 @retval TRUE Variable header is valid.
224 @retval FALSE Variable header is not valid.
225
226 **/
227 BOOLEAN
228 IsValidVariableHeader (
229 IN VARIABLE_HEADER *Variable
230 )
231 {
232 if (Variable == NULL || Variable->StartId != VARIABLE_DATA) {
233 return FALSE;
234 }
235
236 return TRUE;
237 }
238
239
240 /**
241
242 This function writes data to the FWH at the correct LBA even if the LBAs
243 are fragmented.
244
245 @param Global Pointer to VARAIBLE_GLOBAL structure.
246 @param Volatile Point out the Variable is Volatile or Non-Volatile.
247 @param SetByIndex TRUE if target pointer is given as index.
248 FALSE if target pointer is absolute.
249 @param Fvb Pointer to the writable FVB protocol.
250 @param DataPtrIndex Pointer to the Data from the end of VARIABLE_STORE_HEADER
251 structure.
252 @param DataSize Size of data to be written.
253 @param Buffer Pointer to the buffer from which data is written.
254
255 @retval EFI_INVALID_PARAMETER Parameters not valid.
256 @retval EFI_SUCCESS Variable store successfully updated.
257
258 **/
259 EFI_STATUS
260 UpdateVariableStore (
261 IN VARIABLE_GLOBAL *Global,
262 IN BOOLEAN Volatile,
263 IN BOOLEAN SetByIndex,
264 IN EFI_FIRMWARE_VOLUME_BLOCK_PROTOCOL *Fvb,
265 IN UINTN DataPtrIndex,
266 IN UINT32 DataSize,
267 IN UINT8 *Buffer
268 )
269 {
270 EFI_FV_BLOCK_MAP_ENTRY *PtrBlockMapEntry;
271 UINTN BlockIndex2;
272 UINTN LinearOffset;
273 UINTN CurrWriteSize;
274 UINTN CurrWritePtr;
275 UINT8 *CurrBuffer;
276 EFI_LBA LbaNumber;
277 UINTN Size;
278 EFI_FIRMWARE_VOLUME_HEADER *FwVolHeader;
279 VARIABLE_STORE_HEADER *VolatileBase;
280 EFI_PHYSICAL_ADDRESS FvVolHdr;
281 EFI_PHYSICAL_ADDRESS DataPtr;
282 EFI_STATUS Status;
283
284 FwVolHeader = NULL;
285 DataPtr = DataPtrIndex;
286
287 //
288 // Check if the Data is Volatile.
289 //
290 if (!Volatile) {
291 if (Fvb == NULL) {
292 return EFI_INVALID_PARAMETER;
293 }
294 Status = Fvb->GetPhysicalAddress(Fvb, &FvVolHdr);
295 ASSERT_EFI_ERROR (Status);
296
297 FwVolHeader = (EFI_FIRMWARE_VOLUME_HEADER *) ((UINTN) FvVolHdr);
298 //
299 // Data Pointer should point to the actual Address where data is to be
300 // written.
301 //
302 if (SetByIndex) {
303 DataPtr += mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase;
304 }
305
306 if ((DataPtr + DataSize) >= ((EFI_PHYSICAL_ADDRESS) (UINTN) ((UINT8 *) FwVolHeader + FwVolHeader->FvLength))) {
307 return EFI_INVALID_PARAMETER;
308 }
309 } else {
310 //
311 // Data Pointer should point to the actual Address where data is to be
312 // written.
313 //
314 VolatileBase = (VARIABLE_STORE_HEADER *) ((UINTN) mVariableModuleGlobal->VariableGlobal.VolatileVariableBase);
315 if (SetByIndex) {
316 DataPtr += mVariableModuleGlobal->VariableGlobal.VolatileVariableBase;
317 }
318
319 if ((DataPtr + DataSize) >= ((UINTN) ((UINT8 *) VolatileBase + VolatileBase->Size))) {
320 return EFI_INVALID_PARAMETER;
321 }
322
323 //
324 // If Volatile Variable just do a simple mem copy.
325 //
326 CopyMem ((UINT8 *)(UINTN)DataPtr, Buffer, DataSize);
327 return EFI_SUCCESS;
328 }
329
330 //
331 // If we are here we are dealing with Non-Volatile Variables.
332 //
333 LinearOffset = (UINTN) FwVolHeader;
334 CurrWritePtr = (UINTN) DataPtr;
335 CurrWriteSize = DataSize;
336 CurrBuffer = Buffer;
337 LbaNumber = 0;
338
339 if (CurrWritePtr < LinearOffset) {
340 return EFI_INVALID_PARAMETER;
341 }
342
343 for (PtrBlockMapEntry = FwVolHeader->BlockMap; PtrBlockMapEntry->NumBlocks != 0; PtrBlockMapEntry++) {
344 for (BlockIndex2 = 0; BlockIndex2 < PtrBlockMapEntry->NumBlocks; BlockIndex2++) {
345 //
346 // Check to see if the Variable Writes are spanning through multiple
347 // blocks.
348 //
349 if ((CurrWritePtr >= LinearOffset) && (CurrWritePtr < LinearOffset + PtrBlockMapEntry->Length)) {
350 if ((CurrWritePtr + CurrWriteSize) <= (LinearOffset + PtrBlockMapEntry->Length)) {
351 Status = Fvb->Write (
352 Fvb,
353 LbaNumber,
354 (UINTN) (CurrWritePtr - LinearOffset),
355 &CurrWriteSize,
356 CurrBuffer
357 );
358 return Status;
359 } else {
360 Size = (UINT32) (LinearOffset + PtrBlockMapEntry->Length - CurrWritePtr);
361 Status = Fvb->Write (
362 Fvb,
363 LbaNumber,
364 (UINTN) (CurrWritePtr - LinearOffset),
365 &Size,
366 CurrBuffer
367 );
368 if (EFI_ERROR (Status)) {
369 return Status;
370 }
371
372 CurrWritePtr = LinearOffset + PtrBlockMapEntry->Length;
373 CurrBuffer = CurrBuffer + Size;
374 CurrWriteSize = CurrWriteSize - Size;
375 }
376 }
377
378 LinearOffset += PtrBlockMapEntry->Length;
379 LbaNumber++;
380 }
381 }
382
383 return EFI_SUCCESS;
384 }
385
386
387 /**
388
389 This code gets the current status of Variable Store.
390
391 @param VarStoreHeader Pointer to the Variable Store Header.
392
393 @retval EfiRaw Variable store status is raw.
394 @retval EfiValid Variable store status is valid.
395 @retval EfiInvalid Variable store status is invalid.
396
397 **/
398 VARIABLE_STORE_STATUS
399 GetVariableStoreStatus (
400 IN VARIABLE_STORE_HEADER *VarStoreHeader
401 )
402 {
403 if (CompareGuid (&VarStoreHeader->Signature, &gEfiAuthenticatedVariableGuid) &&
404 VarStoreHeader->Format == VARIABLE_STORE_FORMATTED &&
405 VarStoreHeader->State == VARIABLE_STORE_HEALTHY
406 ) {
407
408 return EfiValid;
409 } else if (((UINT32 *)(&VarStoreHeader->Signature))[0] == 0xffffffff &&
410 ((UINT32 *)(&VarStoreHeader->Signature))[1] == 0xffffffff &&
411 ((UINT32 *)(&VarStoreHeader->Signature))[2] == 0xffffffff &&
412 ((UINT32 *)(&VarStoreHeader->Signature))[3] == 0xffffffff &&
413 VarStoreHeader->Size == 0xffffffff &&
414 VarStoreHeader->Format == 0xff &&
415 VarStoreHeader->State == 0xff
416 ) {
417
418 return EfiRaw;
419 } else {
420 return EfiInvalid;
421 }
422 }
423
424
425 /**
426
427 This code gets the size of name of variable.
428
429 @param Variable Pointer to the Variable Header.
430
431 @return UINTN Size of variable in bytes.
432
433 **/
434 UINTN
435 NameSizeOfVariable (
436 IN VARIABLE_HEADER *Variable
437 )
438 {
439 if (Variable->State == (UINT8) (-1) ||
440 Variable->DataSize == (UINT32) (-1) ||
441 Variable->NameSize == (UINT32) (-1) ||
442 Variable->Attributes == (UINT32) (-1)) {
443 return 0;
444 }
445 return (UINTN) Variable->NameSize;
446 }
447
448 /**
449
450 This code gets the size of variable data.
451
452 @param Variable Pointer to the Variable Header.
453
454 @return Size of variable in bytes.
455
456 **/
457 UINTN
458 DataSizeOfVariable (
459 IN VARIABLE_HEADER *Variable
460 )
461 {
462 if (Variable->State == (UINT8) (-1) ||
463 Variable->DataSize == (UINT32) (-1) ||
464 Variable->NameSize == (UINT32) (-1) ||
465 Variable->Attributes == (UINT32) (-1)) {
466 return 0;
467 }
468 return (UINTN) Variable->DataSize;
469 }
470
471 /**
472
473 This code gets the pointer to the variable name.
474
475 @param Variable Pointer to the Variable Header.
476
477 @return Pointer to Variable Name which is Unicode encoding.
478
479 **/
480 CHAR16 *
481 GetVariableNamePtr (
482 IN VARIABLE_HEADER *Variable
483 )
484 {
485
486 return (CHAR16 *) (Variable + 1);
487 }
488
489 /**
490
491 This code gets the pointer to the variable data.
492
493 @param Variable Pointer to the Variable Header.
494
495 @return Pointer to Variable Data.
496
497 **/
498 UINT8 *
499 GetVariableDataPtr (
500 IN VARIABLE_HEADER *Variable
501 )
502 {
503 UINTN Value;
504
505 //
506 // Be careful about pad size for alignment.
507 //
508 Value = (UINTN) GetVariableNamePtr (Variable);
509 Value += NameSizeOfVariable (Variable);
510 Value += GET_PAD_SIZE (NameSizeOfVariable (Variable));
511
512 return (UINT8 *) Value;
513 }
514
515
516 /**
517
518 This code gets the pointer to the next variable header.
519
520 @param Variable Pointer to the Variable Header.
521
522 @return Pointer to next variable header.
523
524 **/
525 VARIABLE_HEADER *
526 GetNextVariablePtr (
527 IN VARIABLE_HEADER *Variable
528 )
529 {
530 UINTN Value;
531
532 if (!IsValidVariableHeader (Variable)) {
533 return NULL;
534 }
535
536 Value = (UINTN) GetVariableDataPtr (Variable);
537 Value += DataSizeOfVariable (Variable);
538 Value += GET_PAD_SIZE (DataSizeOfVariable (Variable));
539
540 //
541 // Be careful about pad size for alignment.
542 //
543 return (VARIABLE_HEADER *) HEADER_ALIGN (Value);
544 }
545
546 /**
547
548 Gets the pointer to the first variable header in given variable store area.
549
550 @param VarStoreHeader Pointer to the Variable Store Header.
551
552 @return Pointer to the first variable header.
553
554 **/
555 VARIABLE_HEADER *
556 GetStartPointer (
557 IN VARIABLE_STORE_HEADER *VarStoreHeader
558 )
559 {
560 //
561 // The end of variable store.
562 //
563 return (VARIABLE_HEADER *) HEADER_ALIGN (VarStoreHeader + 1);
564 }
565
566 /**
567
568 Gets the pointer to the end of the variable storage area.
569
570 This function gets pointer to the end of the variable storage
571 area, according to the input variable store header.
572
573 @param VarStoreHeader Pointer to the Variable Store Header.
574
575 @return Pointer to the end of the variable storage area.
576
577 **/
578 VARIABLE_HEADER *
579 GetEndPointer (
580 IN VARIABLE_STORE_HEADER *VarStoreHeader
581 )
582 {
583 //
584 // The end of variable store
585 //
586 return (VARIABLE_HEADER *) HEADER_ALIGN ((UINTN) VarStoreHeader + VarStoreHeader->Size);
587 }
588
589 /**
590
591 Check the PubKeyIndex is a valid key or not.
592
593 This function will iterate the NV storage to see if this PubKeyIndex is still referenced
594 by any valid count-based auth variabe.
595
596 @param[in] PubKeyIndex Index of the public key in public key store.
597
598 @retval TRUE The PubKeyIndex is still in use.
599 @retval FALSE The PubKeyIndex is not referenced by any count-based auth variabe.
600
601 **/
602 BOOLEAN
603 IsValidPubKeyIndex (
604 IN UINT32 PubKeyIndex
605 )
606 {
607 VARIABLE_HEADER *Variable;
608
609 if (PubKeyIndex > mPubKeyNumber) {
610 return FALSE;
611 }
612
613 Variable = GetStartPointer (mNvVariableCache);
614
615 while (IsValidVariableHeader (Variable)) {
616 if ((Variable->State == VAR_ADDED || Variable->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) &&
617 Variable->PubKeyIndex == PubKeyIndex) {
618 return TRUE;
619 }
620 Variable = GetNextVariablePtr (Variable);
621 }
622
623 return FALSE;
624 }
625
626 /**
627
628 Get the number of valid public key in PubKeyStore.
629
630 @param[in] PubKeyNumber Number of the public key in public key store.
631
632 @return Number of valid public key in PubKeyStore.
633
634 **/
635 UINT32
636 GetValidPubKeyNumber (
637 IN UINT32 PubKeyNumber
638 )
639 {
640 UINT32 PubKeyIndex;
641 UINT32 Counter;
642
643 Counter = 0;
644
645 for (PubKeyIndex = 1; PubKeyIndex <= PubKeyNumber; PubKeyIndex++) {
646 if (IsValidPubKeyIndex (PubKeyIndex)) {
647 Counter++;
648 }
649 }
650
651 return Counter;
652 }
653
654 /**
655
656 Filter the useless key in public key store.
657
658 This function will find out all valid public keys in public key database, save them in new allocated
659 buffer NewPubKeyStore, and give the new PubKeyIndex. The caller is responsible for freeing buffer
660 NewPubKeyIndex and NewPubKeyStore with FreePool().
661
662 @param[in] PubKeyStore Point to the public key database.
663 @param[in] PubKeyNumber Number of the public key in PubKeyStore.
664 @param[out] NewPubKeyIndex Point to an array of new PubKeyIndex corresponds to NewPubKeyStore.
665 @param[out] NewPubKeyStore Saved all valid public keys in PubKeyStore.
666 @param[out] NewPubKeySize Buffer size of the NewPubKeyStore.
667
668 @retval EFI_SUCCESS Trim operation is complete successfully.
669 @retval EFI_OUT_OF_RESOURCES No enough memory resources, or no useless key in PubKeyStore.
670
671 **/
672 EFI_STATUS
673 PubKeyStoreFilter (
674 IN UINT8 *PubKeyStore,
675 IN UINT32 PubKeyNumber,
676 OUT UINT32 **NewPubKeyIndex,
677 OUT UINT8 **NewPubKeyStore,
678 OUT UINT32 *NewPubKeySize
679 )
680 {
681 UINT32 PubKeyIndex;
682 UINT32 CopiedKey;
683 UINT32 NewPubKeyNumber;
684
685 NewPubKeyNumber = GetValidPubKeyNumber (PubKeyNumber);
686 if (NewPubKeyNumber == PubKeyNumber) {
687 return EFI_OUT_OF_RESOURCES;
688 }
689
690 if (NewPubKeyNumber != 0) {
691 *NewPubKeySize = NewPubKeyNumber * EFI_CERT_TYPE_RSA2048_SIZE;
692 } else {
693 *NewPubKeySize = sizeof (UINT8);
694 }
695
696 *NewPubKeyStore = AllocatePool (*NewPubKeySize);
697 if (*NewPubKeyStore == NULL) {
698 return EFI_OUT_OF_RESOURCES;
699 }
700
701 *NewPubKeyIndex = AllocateZeroPool ((PubKeyNumber + 1) * sizeof (UINT32));
702 if (*NewPubKeyIndex == NULL) {
703 FreePool (*NewPubKeyStore);
704 *NewPubKeyStore = NULL;
705 return EFI_OUT_OF_RESOURCES;
706 }
707
708 CopiedKey = 0;
709 for (PubKeyIndex = 1; PubKeyIndex <= PubKeyNumber; PubKeyIndex++) {
710 if (IsValidPubKeyIndex (PubKeyIndex)) {
711 CopyMem (
712 *NewPubKeyStore + CopiedKey * EFI_CERT_TYPE_RSA2048_SIZE,
713 PubKeyStore + (PubKeyIndex - 1) * EFI_CERT_TYPE_RSA2048_SIZE,
714 EFI_CERT_TYPE_RSA2048_SIZE
715 );
716 (*NewPubKeyIndex)[PubKeyIndex] = ++CopiedKey;
717 }
718 }
719 return EFI_SUCCESS;
720 }
721
722 /**
723
724 Variable store garbage collection and reclaim operation.
725
726 If ReclaimPubKeyStore is FALSE, reclaim variable space by deleting the obsoleted varaibles.
727 If ReclaimPubKeyStore is TRUE, reclaim invalid key in public key database and update the PubKeyIndex
728 for all the count-based authenticate variable in NV storage.
729
730 @param[in] VariableBase Base address of variable store.
731 @param[out] LastVariableOffset Offset of last variable.
732 @param[in] IsVolatile The variable store is volatile or not;
733 if it is non-volatile, need FTW.
734 @param[in, out] UpdatingPtrTrack Pointer to updating variable pointer track structure.
735 @param[in] NewVariable Pointer to new variable.
736 @param[in] NewVariableSize New variable size.
737 @param[in] ReclaimPubKeyStore Reclaim for public key database or not.
738
739 @return EFI_SUCCESS Reclaim operation has finished successfully.
740 @return EFI_OUT_OF_RESOURCES No enough memory resources or variable space.
741 @return EFI_DEVICE_ERROR The public key database doesn't exist.
742 @return Others Unexpect error happened during reclaim operation.
743
744 **/
745 EFI_STATUS
746 Reclaim (
747 IN EFI_PHYSICAL_ADDRESS VariableBase,
748 OUT UINTN *LastVariableOffset,
749 IN BOOLEAN IsVolatile,
750 IN OUT VARIABLE_POINTER_TRACK *UpdatingPtrTrack,
751 IN VARIABLE_HEADER *NewVariable,
752 IN UINTN NewVariableSize,
753 IN BOOLEAN ReclaimPubKeyStore
754 )
755 {
756 VARIABLE_HEADER *Variable;
757 VARIABLE_HEADER *AddedVariable;
758 VARIABLE_HEADER *NextVariable;
759 VARIABLE_HEADER *NextAddedVariable;
760 VARIABLE_STORE_HEADER *VariableStoreHeader;
761 UINT8 *ValidBuffer;
762 UINTN MaximumBufferSize;
763 UINTN VariableSize;
764 UINTN NameSize;
765 UINT8 *CurrPtr;
766 VOID *Point0;
767 VOID *Point1;
768 BOOLEAN FoundAdded;
769 EFI_STATUS Status;
770 UINTN CommonVariableTotalSize;
771 UINTN HwErrVariableTotalSize;
772 UINT32 *NewPubKeyIndex;
773 UINT8 *NewPubKeyStore;
774 UINT32 NewPubKeySize;
775 VARIABLE_HEADER *PubKeyHeader;
776 VARIABLE_HEADER *UpdatingVariable;
777 VARIABLE_HEADER *UpdatingInDeletedTransition;
778
779 UpdatingVariable = NULL;
780 UpdatingInDeletedTransition = NULL;
781 if (UpdatingPtrTrack != NULL) {
782 UpdatingVariable = UpdatingPtrTrack->CurrPtr;
783 UpdatingInDeletedTransition = UpdatingPtrTrack->InDeletedTransitionPtr;
784 }
785
786 VariableStoreHeader = (VARIABLE_STORE_HEADER *) ((UINTN) VariableBase);
787
788 CommonVariableTotalSize = 0;
789 HwErrVariableTotalSize = 0;
790 NewPubKeyIndex = NULL;
791 NewPubKeyStore = NULL;
792 NewPubKeySize = 0;
793 PubKeyHeader = NULL;
794
795 if (IsVolatile) {
796 //
797 // Start Pointers for the variable.
798 //
799 Variable = GetStartPointer (VariableStoreHeader);
800 MaximumBufferSize = sizeof (VARIABLE_STORE_HEADER);
801
802 while (IsValidVariableHeader (Variable)) {
803 NextVariable = GetNextVariablePtr (Variable);
804 if ((Variable->State == VAR_ADDED || Variable->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) &&
805 Variable != UpdatingVariable &&
806 Variable != UpdatingInDeletedTransition
807 ) {
808 VariableSize = (UINTN) NextVariable - (UINTN) Variable;
809 MaximumBufferSize += VariableSize;
810 }
811
812 Variable = NextVariable;
813 }
814
815 if (NewVariable != NULL) {
816 //
817 // Add the new variable size.
818 //
819 MaximumBufferSize += NewVariableSize;
820 }
821
822 //
823 // Reserve the 1 Bytes with Oxff to identify the
824 // end of the variable buffer.
825 //
826 MaximumBufferSize += 1;
827 ValidBuffer = AllocatePool (MaximumBufferSize);
828 if (ValidBuffer == NULL) {
829 return EFI_OUT_OF_RESOURCES;
830 }
831 } else {
832 //
833 // For NV variable reclaim, don't allocate pool here and just use mNvVariableCache
834 // as the buffer to reduce SMRAM consumption for SMM variable driver.
835 //
836 MaximumBufferSize = mNvVariableCache->Size;
837 ValidBuffer = (UINT8 *) mNvVariableCache;
838 }
839
840 SetMem (ValidBuffer, MaximumBufferSize, 0xff);
841
842 //
843 // Copy variable store header.
844 //
845 CopyMem (ValidBuffer, VariableStoreHeader, sizeof (VARIABLE_STORE_HEADER));
846 CurrPtr = (UINT8 *) GetStartPointer ((VARIABLE_STORE_HEADER *) ValidBuffer);
847
848 if (ReclaimPubKeyStore) {
849 ASSERT (IsVolatile == FALSE);
850 //
851 // Trim the PubKeyStore and get new PubKeyIndex.
852 //
853 Status = PubKeyStoreFilter (
854 mPubKeyStore,
855 mPubKeyNumber,
856 &NewPubKeyIndex,
857 &NewPubKeyStore,
858 &NewPubKeySize
859 );
860 if (EFI_ERROR (Status)) {
861 goto Done;
862 }
863
864 //
865 // Refresh the PubKeyIndex for all valid variables (ADDED and IN_DELETED_TRANSITION).
866 //
867 Variable = GetStartPointer (VariableStoreHeader);
868 while (IsValidVariableHeader (Variable)) {
869 NextVariable = GetNextVariablePtr (Variable);
870 if (Variable->State == VAR_ADDED || Variable->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
871 if ((StrCmp (GetVariableNamePtr (Variable), AUTHVAR_KEYDB_NAME) == 0) &&
872 (CompareGuid (&Variable->VendorGuid, &gEfiAuthenticatedVariableGuid))) {
873 //
874 // Skip the public key database, it will be reinstalled later.
875 //
876 PubKeyHeader = Variable;
877 Variable = NextVariable;
878 continue;
879 }
880
881 VariableSize = (UINTN) NextVariable - (UINTN) Variable;
882 CopyMem (CurrPtr, (UINT8 *) Variable, VariableSize);
883 ((VARIABLE_HEADER*) CurrPtr)->PubKeyIndex = NewPubKeyIndex[Variable->PubKeyIndex];
884 CurrPtr += VariableSize;
885 if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
886 HwErrVariableTotalSize += VariableSize;
887 } else if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
888 CommonVariableTotalSize += VariableSize;
889 }
890 }
891 Variable = NextVariable;
892 }
893
894 //
895 // Reinstall the new public key database.
896 //
897 ASSERT (PubKeyHeader != NULL);
898 if (PubKeyHeader == NULL) {
899 Status = EFI_DEVICE_ERROR;
900 goto Done;
901 }
902 CopyMem (CurrPtr, (UINT8*) PubKeyHeader, sizeof (VARIABLE_HEADER));
903 Variable = (VARIABLE_HEADER*) CurrPtr;
904 Variable->DataSize = NewPubKeySize;
905 StrCpy (GetVariableNamePtr (Variable), GetVariableNamePtr (PubKeyHeader));
906 CopyMem (GetVariableDataPtr (Variable), NewPubKeyStore, NewPubKeySize);
907 CurrPtr = (UINT8*) GetNextVariablePtr (Variable);
908 CommonVariableTotalSize += (UINTN) CurrPtr - (UINTN) Variable;
909 } else {
910 //
911 // Reinstall all ADDED variables as long as they are not identical to Updating Variable.
912 //
913 Variable = GetStartPointer (VariableStoreHeader);
914 while (IsValidVariableHeader (Variable)) {
915 NextVariable = GetNextVariablePtr (Variable);
916 if (Variable != UpdatingVariable && Variable->State == VAR_ADDED) {
917 VariableSize = (UINTN) NextVariable - (UINTN) Variable;
918 CopyMem (CurrPtr, (UINT8 *) Variable, VariableSize);
919 CurrPtr += VariableSize;
920 if ((!IsVolatile) && ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
921 HwErrVariableTotalSize += VariableSize;
922 } else if ((!IsVolatile) && ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
923 CommonVariableTotalSize += VariableSize;
924 }
925 }
926 Variable = NextVariable;
927 }
928
929 //
930 // Reinstall all in delete transition variables.
931 //
932 Variable = GetStartPointer (VariableStoreHeader);
933 while (IsValidVariableHeader (Variable)) {
934 NextVariable = GetNextVariablePtr (Variable);
935 if (Variable != UpdatingVariable && Variable != UpdatingInDeletedTransition && Variable->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
936
937 //
938 // Buffer has cached all ADDED variable.
939 // Per IN_DELETED variable, we have to guarantee that
940 // no ADDED one in previous buffer.
941 //
942
943 FoundAdded = FALSE;
944 AddedVariable = GetStartPointer ((VARIABLE_STORE_HEADER *) ValidBuffer);
945 while (IsValidVariableHeader (AddedVariable)) {
946 NextAddedVariable = GetNextVariablePtr (AddedVariable);
947 NameSize = NameSizeOfVariable (AddedVariable);
948 if (CompareGuid (&AddedVariable->VendorGuid, &Variable->VendorGuid) &&
949 NameSize == NameSizeOfVariable (Variable)
950 ) {
951 Point0 = (VOID *) GetVariableNamePtr (AddedVariable);
952 Point1 = (VOID *) GetVariableNamePtr (Variable);
953 if (CompareMem (Point0, Point1, NameSize) == 0) {
954 FoundAdded = TRUE;
955 break;
956 }
957 }
958 AddedVariable = NextAddedVariable;
959 }
960 if (!FoundAdded) {
961 //
962 // Promote VAR_IN_DELETED_TRANSITION to VAR_ADDED.
963 //
964 VariableSize = (UINTN) NextVariable - (UINTN) Variable;
965 CopyMem (CurrPtr, (UINT8 *) Variable, VariableSize);
966 ((VARIABLE_HEADER *) CurrPtr)->State = VAR_ADDED;
967 CurrPtr += VariableSize;
968 if ((!IsVolatile) && ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
969 HwErrVariableTotalSize += VariableSize;
970 } else if ((!IsVolatile) && ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
971 CommonVariableTotalSize += VariableSize;
972 }
973 }
974 }
975
976 Variable = NextVariable;
977 }
978
979 //
980 // Install the new variable if it is not NULL.
981 //
982 if (NewVariable != NULL) {
983 if ((UINTN) (CurrPtr - ValidBuffer) + NewVariableSize > VariableStoreHeader->Size) {
984 //
985 // No enough space to store the new variable.
986 //
987 Status = EFI_OUT_OF_RESOURCES;
988 goto Done;
989 }
990 if (!IsVolatile) {
991 if ((NewVariable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
992 HwErrVariableTotalSize += NewVariableSize;
993 } else if ((NewVariable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
994 CommonVariableTotalSize += NewVariableSize;
995 }
996 if ((HwErrVariableTotalSize > PcdGet32 (PcdHwErrStorageSize)) ||
997 (CommonVariableTotalSize > VariableStoreHeader->Size - sizeof (VARIABLE_STORE_HEADER) - PcdGet32 (PcdHwErrStorageSize))) {
998 //
999 // No enough space to store the new variable by NV or NV+HR attribute.
1000 //
1001 Status = EFI_OUT_OF_RESOURCES;
1002 goto Done;
1003 }
1004 }
1005
1006 CopyMem (CurrPtr, (UINT8 *) NewVariable, NewVariableSize);
1007 ((VARIABLE_HEADER *) CurrPtr)->State = VAR_ADDED;
1008 if (UpdatingVariable != NULL) {
1009 UpdatingPtrTrack->CurrPtr = (VARIABLE_HEADER *)((UINTN)UpdatingPtrTrack->StartPtr + ((UINTN)CurrPtr - (UINTN)GetStartPointer ((VARIABLE_STORE_HEADER *) ValidBuffer)));
1010 UpdatingPtrTrack->InDeletedTransitionPtr = NULL;
1011 }
1012 CurrPtr += NewVariableSize;
1013 }
1014 }
1015
1016 if (IsVolatile) {
1017 //
1018 // If volatile variable store, just copy valid buffer.
1019 //
1020 SetMem ((UINT8 *) (UINTN) VariableBase, VariableStoreHeader->Size, 0xff);
1021 CopyMem ((UINT8 *) (UINTN) VariableBase, ValidBuffer, (UINTN) (CurrPtr - ValidBuffer));
1022 *LastVariableOffset = (UINTN) (CurrPtr - ValidBuffer);
1023 Status = EFI_SUCCESS;
1024 } else {
1025 //
1026 // If non-volatile variable store, perform FTW here.
1027 //
1028 Status = FtwVariableSpace (
1029 VariableBase,
1030 (VARIABLE_STORE_HEADER *) ValidBuffer
1031 );
1032 if (!EFI_ERROR (Status)) {
1033 *LastVariableOffset = (UINTN) (CurrPtr - ValidBuffer);
1034 mVariableModuleGlobal->HwErrVariableTotalSize = HwErrVariableTotalSize;
1035 mVariableModuleGlobal->CommonVariableTotalSize = CommonVariableTotalSize;
1036 } else {
1037 NextVariable = GetStartPointer ((VARIABLE_STORE_HEADER *)(UINTN)VariableBase);
1038 while (IsValidVariableHeader (NextVariable)) {
1039 VariableSize = NextVariable->NameSize + NextVariable->DataSize + sizeof (VARIABLE_HEADER);
1040 if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
1041 mVariableModuleGlobal->HwErrVariableTotalSize += HEADER_ALIGN (VariableSize);
1042 } else if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
1043 mVariableModuleGlobal->CommonVariableTotalSize += HEADER_ALIGN (VariableSize);
1044 }
1045
1046 NextVariable = GetNextVariablePtr (NextVariable);
1047 }
1048 *LastVariableOffset = (UINTN) NextVariable - (UINTN) VariableBase;
1049 }
1050 }
1051
1052 Done:
1053 if (IsVolatile) {
1054 FreePool (ValidBuffer);
1055 } else {
1056 //
1057 // For NV variable reclaim, we use mNvVariableCache as the buffer, so copy the data back.
1058 //
1059 CopyMem (mNvVariableCache, (UINT8 *)(UINTN)VariableBase, VariableStoreHeader->Size);
1060
1061 if (NewPubKeyStore != NULL) {
1062 FreePool (NewPubKeyStore);
1063 }
1064
1065 if (NewPubKeyIndex != NULL) {
1066 FreePool (NewPubKeyIndex);
1067 }
1068 }
1069
1070 return Status;
1071 }
1072
1073 /**
1074 Find the variable in the specified variable store.
1075
1076 @param[in] VariableName Name of the variable to be found
1077 @param[in] VendorGuid Vendor GUID to be found.
1078 @param[in] IgnoreRtCheck Ignore EFI_VARIABLE_RUNTIME_ACCESS attribute
1079 check at runtime when searching variable.
1080 @param[in, out] PtrTrack Variable Track Pointer structure that contains Variable Information.
1081
1082 @retval EFI_SUCCESS Variable found successfully
1083 @retval EFI_NOT_FOUND Variable not found
1084 **/
1085 EFI_STATUS
1086 FindVariableEx (
1087 IN CHAR16 *VariableName,
1088 IN EFI_GUID *VendorGuid,
1089 IN BOOLEAN IgnoreRtCheck,
1090 IN OUT VARIABLE_POINTER_TRACK *PtrTrack
1091 )
1092 {
1093 VARIABLE_HEADER *InDeletedVariable;
1094 VOID *Point;
1095
1096 PtrTrack->InDeletedTransitionPtr = NULL;
1097
1098 //
1099 // Find the variable by walk through HOB, volatile and non-volatile variable store.
1100 //
1101 InDeletedVariable = NULL;
1102
1103 for ( PtrTrack->CurrPtr = PtrTrack->StartPtr
1104 ; (PtrTrack->CurrPtr < PtrTrack->EndPtr) && IsValidVariableHeader (PtrTrack->CurrPtr)
1105 ; PtrTrack->CurrPtr = GetNextVariablePtr (PtrTrack->CurrPtr)
1106 ) {
1107 if (PtrTrack->CurrPtr->State == VAR_ADDED ||
1108 PtrTrack->CurrPtr->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)
1109 ) {
1110 if (IgnoreRtCheck || !AtRuntime () || ((PtrTrack->CurrPtr->Attributes & EFI_VARIABLE_RUNTIME_ACCESS) != 0)) {
1111 if (VariableName[0] == 0) {
1112 if (PtrTrack->CurrPtr->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
1113 InDeletedVariable = PtrTrack->CurrPtr;
1114 } else {
1115 PtrTrack->InDeletedTransitionPtr = InDeletedVariable;
1116 return EFI_SUCCESS;
1117 }
1118 } else {
1119 if (CompareGuid (VendorGuid, &PtrTrack->CurrPtr->VendorGuid)) {
1120 Point = (VOID *) GetVariableNamePtr (PtrTrack->CurrPtr);
1121
1122 ASSERT (NameSizeOfVariable (PtrTrack->CurrPtr) != 0);
1123 if (CompareMem (VariableName, Point, NameSizeOfVariable (PtrTrack->CurrPtr)) == 0) {
1124 if (PtrTrack->CurrPtr->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
1125 InDeletedVariable = PtrTrack->CurrPtr;
1126 } else {
1127 PtrTrack->InDeletedTransitionPtr = InDeletedVariable;
1128 return EFI_SUCCESS;
1129 }
1130 }
1131 }
1132 }
1133 }
1134 }
1135 }
1136
1137 PtrTrack->CurrPtr = InDeletedVariable;
1138 return (PtrTrack->CurrPtr == NULL) ? EFI_NOT_FOUND : EFI_SUCCESS;
1139 }
1140
1141
1142 /**
1143 Finds variable in storage blocks of volatile and non-volatile storage areas.
1144
1145 This code finds variable in storage blocks of volatile and non-volatile storage areas.
1146 If VariableName is an empty string, then we just return the first
1147 qualified variable without comparing VariableName and VendorGuid.
1148 If IgnoreRtCheck is TRUE, then we ignore the EFI_VARIABLE_RUNTIME_ACCESS attribute check
1149 at runtime when searching existing variable, only VariableName and VendorGuid are compared.
1150 Otherwise, variables without EFI_VARIABLE_RUNTIME_ACCESS are not visible at runtime.
1151
1152 @param[in] VariableName Name of the variable to be found.
1153 @param[in] VendorGuid Vendor GUID to be found.
1154 @param[out] PtrTrack VARIABLE_POINTER_TRACK structure for output,
1155 including the range searched and the target position.
1156 @param[in] Global Pointer to VARIABLE_GLOBAL structure, including
1157 base of volatile variable storage area, base of
1158 NV variable storage area, and a lock.
1159 @param[in] IgnoreRtCheck Ignore EFI_VARIABLE_RUNTIME_ACCESS attribute
1160 check at runtime when searching variable.
1161
1162 @retval EFI_INVALID_PARAMETER If VariableName is not an empty string, while
1163 VendorGuid is NULL.
1164 @retval EFI_SUCCESS Variable successfully found.
1165 @retval EFI_NOT_FOUND Variable not found
1166
1167 **/
1168 EFI_STATUS
1169 FindVariable (
1170 IN CHAR16 *VariableName,
1171 IN EFI_GUID *VendorGuid,
1172 OUT VARIABLE_POINTER_TRACK *PtrTrack,
1173 IN VARIABLE_GLOBAL *Global,
1174 IN BOOLEAN IgnoreRtCheck
1175 )
1176 {
1177 EFI_STATUS Status;
1178 VARIABLE_STORE_HEADER *VariableStoreHeader[VariableStoreTypeMax];
1179 VARIABLE_STORE_TYPE Type;
1180
1181 if (VariableName[0] != 0 && VendorGuid == NULL) {
1182 return EFI_INVALID_PARAMETER;
1183 }
1184
1185 //
1186 // 0: Volatile, 1: HOB, 2: Non-Volatile.
1187 // The index and attributes mapping must be kept in this order as RuntimeServiceGetNextVariableName
1188 // make use of this mapping to implement search algorithm.
1189 //
1190 VariableStoreHeader[VariableStoreTypeVolatile] = (VARIABLE_STORE_HEADER *) (UINTN) Global->VolatileVariableBase;
1191 VariableStoreHeader[VariableStoreTypeHob] = (VARIABLE_STORE_HEADER *) (UINTN) Global->HobVariableBase;
1192 VariableStoreHeader[VariableStoreTypeNv] = mNvVariableCache;
1193
1194 //
1195 // Find the variable by walk through HOB, volatile and non-volatile variable store.
1196 //
1197 for (Type = (VARIABLE_STORE_TYPE) 0; Type < VariableStoreTypeMax; Type++) {
1198 if (VariableStoreHeader[Type] == NULL) {
1199 continue;
1200 }
1201
1202 PtrTrack->StartPtr = GetStartPointer (VariableStoreHeader[Type]);
1203 PtrTrack->EndPtr = GetEndPointer (VariableStoreHeader[Type]);
1204 PtrTrack->Volatile = (BOOLEAN) (Type == VariableStoreTypeVolatile);
1205
1206 Status = FindVariableEx (VariableName, VendorGuid, IgnoreRtCheck, PtrTrack);
1207 if (!EFI_ERROR (Status)) {
1208 return Status;
1209 }
1210 }
1211 return EFI_NOT_FOUND;
1212 }
1213
1214 /**
1215 Get index from supported language codes according to language string.
1216
1217 This code is used to get corresponding index in supported language codes. It can handle
1218 RFC4646 and ISO639 language tags.
1219 In ISO639 language tags, take 3-characters as a delimitation to find matched string and calculate the index.
1220 In RFC4646 language tags, take semicolon as a delimitation to find matched string and calculate the index.
1221
1222 For example:
1223 SupportedLang = "engfraengfra"
1224 Lang = "eng"
1225 Iso639Language = TRUE
1226 The return value is "0".
1227 Another example:
1228 SupportedLang = "en;fr;en-US;fr-FR"
1229 Lang = "fr-FR"
1230 Iso639Language = FALSE
1231 The return value is "3".
1232
1233 @param SupportedLang Platform supported language codes.
1234 @param Lang Configured language.
1235 @param Iso639Language A bool value to signify if the handler is operated on ISO639 or RFC4646.
1236
1237 @retval The index of language in the language codes.
1238
1239 **/
1240 UINTN
1241 GetIndexFromSupportedLangCodes(
1242 IN CHAR8 *SupportedLang,
1243 IN CHAR8 *Lang,
1244 IN BOOLEAN Iso639Language
1245 )
1246 {
1247 UINTN Index;
1248 UINTN CompareLength;
1249 UINTN LanguageLength;
1250
1251 if (Iso639Language) {
1252 CompareLength = ISO_639_2_ENTRY_SIZE;
1253 for (Index = 0; Index < AsciiStrLen (SupportedLang); Index += CompareLength) {
1254 if (AsciiStrnCmp (Lang, SupportedLang + Index, CompareLength) == 0) {
1255 //
1256 // Successfully find the index of Lang string in SupportedLang string.
1257 //
1258 Index = Index / CompareLength;
1259 return Index;
1260 }
1261 }
1262 ASSERT (FALSE);
1263 return 0;
1264 } else {
1265 //
1266 // Compare RFC4646 language code
1267 //
1268 Index = 0;
1269 for (LanguageLength = 0; Lang[LanguageLength] != '\0'; LanguageLength++);
1270
1271 for (Index = 0; *SupportedLang != '\0'; Index++, SupportedLang += CompareLength) {
1272 //
1273 // Skip ';' characters in SupportedLang
1274 //
1275 for (; *SupportedLang != '\0' && *SupportedLang == ';'; SupportedLang++);
1276 //
1277 // Determine the length of the next language code in SupportedLang
1278 //
1279 for (CompareLength = 0; SupportedLang[CompareLength] != '\0' && SupportedLang[CompareLength] != ';'; CompareLength++);
1280
1281 if ((CompareLength == LanguageLength) &&
1282 (AsciiStrnCmp (Lang, SupportedLang, CompareLength) == 0)) {
1283 //
1284 // Successfully find the index of Lang string in SupportedLang string.
1285 //
1286 return Index;
1287 }
1288 }
1289 ASSERT (FALSE);
1290 return 0;
1291 }
1292 }
1293
1294 /**
1295 Get language string from supported language codes according to index.
1296
1297 This code is used to get corresponding language strings in supported language codes. It can handle
1298 RFC4646 and ISO639 language tags.
1299 In ISO639 language tags, take 3-characters as a delimitation. Find language string according to the index.
1300 In RFC4646 language tags, take semicolon as a delimitation. Find language string according to the index.
1301
1302 For example:
1303 SupportedLang = "engfraengfra"
1304 Index = "1"
1305 Iso639Language = TRUE
1306 The return value is "fra".
1307 Another example:
1308 SupportedLang = "en;fr;en-US;fr-FR"
1309 Index = "1"
1310 Iso639Language = FALSE
1311 The return value is "fr".
1312
1313 @param SupportedLang Platform supported language codes.
1314 @param Index The index in supported language codes.
1315 @param Iso639Language A bool value to signify if the handler is operated on ISO639 or RFC4646.
1316
1317 @retval The language string in the language codes.
1318
1319 **/
1320 CHAR8 *
1321 GetLangFromSupportedLangCodes (
1322 IN CHAR8 *SupportedLang,
1323 IN UINTN Index,
1324 IN BOOLEAN Iso639Language
1325 )
1326 {
1327 UINTN SubIndex;
1328 UINTN CompareLength;
1329 CHAR8 *Supported;
1330
1331 SubIndex = 0;
1332 Supported = SupportedLang;
1333 if (Iso639Language) {
1334 //
1335 // According to the index of Lang string in SupportedLang string to get the language.
1336 // This code will be invoked in RUNTIME, therefore there is not a memory allocate/free operation.
1337 // In driver entry, it pre-allocates a runtime attribute memory to accommodate this string.
1338 //
1339 CompareLength = ISO_639_2_ENTRY_SIZE;
1340 mVariableModuleGlobal->Lang[CompareLength] = '\0';
1341 return CopyMem (mVariableModuleGlobal->Lang, SupportedLang + Index * CompareLength, CompareLength);
1342
1343 } else {
1344 while (TRUE) {
1345 //
1346 // Take semicolon as delimitation, sequentially traverse supported language codes.
1347 //
1348 for (CompareLength = 0; *Supported != ';' && *Supported != '\0'; CompareLength++) {
1349 Supported++;
1350 }
1351 if ((*Supported == '\0') && (SubIndex != Index)) {
1352 //
1353 // Have completed the traverse, but not find corrsponding string.
1354 // This case is not allowed to happen.
1355 //
1356 ASSERT(FALSE);
1357 return NULL;
1358 }
1359 if (SubIndex == Index) {
1360 //
1361 // According to the index of Lang string in SupportedLang string to get the language.
1362 // As this code will be invoked in RUNTIME, therefore there is not memory allocate/free operation.
1363 // In driver entry, it pre-allocates a runtime attribute memory to accommodate this string.
1364 //
1365 mVariableModuleGlobal->PlatformLang[CompareLength] = '\0';
1366 return CopyMem (mVariableModuleGlobal->PlatformLang, Supported - CompareLength, CompareLength);
1367 }
1368 SubIndex++;
1369
1370 //
1371 // Skip ';' characters in Supported
1372 //
1373 for (; *Supported != '\0' && *Supported == ';'; Supported++);
1374 }
1375 }
1376 }
1377
1378 /**
1379 Returns a pointer to an allocated buffer that contains the best matching language
1380 from a set of supported languages.
1381
1382 This function supports both ISO 639-2 and RFC 4646 language codes, but language
1383 code types may not be mixed in a single call to this function. This function
1384 supports a variable argument list that allows the caller to pass in a prioritized
1385 list of language codes to test against all the language codes in SupportedLanguages.
1386
1387 If SupportedLanguages is NULL, then ASSERT().
1388
1389 @param[in] SupportedLanguages A pointer to a Null-terminated ASCII string that
1390 contains a set of language codes in the format
1391 specified by Iso639Language.
1392 @param[in] Iso639Language If TRUE, then all language codes are assumed to be
1393 in ISO 639-2 format. If FALSE, then all language
1394 codes are assumed to be in RFC 4646 language format
1395 @param[in] ... A variable argument list that contains pointers to
1396 Null-terminated ASCII strings that contain one or more
1397 language codes in the format specified by Iso639Language.
1398 The first language code from each of these language
1399 code lists is used to determine if it is an exact or
1400 close match to any of the language codes in
1401 SupportedLanguages. Close matches only apply to RFC 4646
1402 language codes, and the matching algorithm from RFC 4647
1403 is used to determine if a close match is present. If
1404 an exact or close match is found, then the matching
1405 language code from SupportedLanguages is returned. If
1406 no matches are found, then the next variable argument
1407 parameter is evaluated. The variable argument list
1408 is terminated by a NULL.
1409
1410 @retval NULL The best matching language could not be found in SupportedLanguages.
1411 @retval NULL There are not enough resources available to return the best matching
1412 language.
1413 @retval Other A pointer to a Null-terminated ASCII string that is the best matching
1414 language in SupportedLanguages.
1415
1416 **/
1417 CHAR8 *
1418 EFIAPI
1419 VariableGetBestLanguage (
1420 IN CONST CHAR8 *SupportedLanguages,
1421 IN BOOLEAN Iso639Language,
1422 ...
1423 )
1424 {
1425 VA_LIST Args;
1426 CHAR8 *Language;
1427 UINTN CompareLength;
1428 UINTN LanguageLength;
1429 CONST CHAR8 *Supported;
1430 CHAR8 *Buffer;
1431
1432 if (SupportedLanguages == NULL) {
1433 return NULL;
1434 }
1435
1436 VA_START (Args, Iso639Language);
1437 while ((Language = VA_ARG (Args, CHAR8 *)) != NULL) {
1438 //
1439 // Default to ISO 639-2 mode
1440 //
1441 CompareLength = 3;
1442 LanguageLength = MIN (3, AsciiStrLen (Language));
1443
1444 //
1445 // If in RFC 4646 mode, then determine the length of the first RFC 4646 language code in Language
1446 //
1447 if (!Iso639Language) {
1448 for (LanguageLength = 0; Language[LanguageLength] != 0 && Language[LanguageLength] != ';'; LanguageLength++);
1449 }
1450
1451 //
1452 // Trim back the length of Language used until it is empty
1453 //
1454 while (LanguageLength > 0) {
1455 //
1456 // Loop through all language codes in SupportedLanguages
1457 //
1458 for (Supported = SupportedLanguages; *Supported != '\0'; Supported += CompareLength) {
1459 //
1460 // In RFC 4646 mode, then Loop through all language codes in SupportedLanguages
1461 //
1462 if (!Iso639Language) {
1463 //
1464 // Skip ';' characters in Supported
1465 //
1466 for (; *Supported != '\0' && *Supported == ';'; Supported++);
1467 //
1468 // Determine the length of the next language code in Supported
1469 //
1470 for (CompareLength = 0; Supported[CompareLength] != 0 && Supported[CompareLength] != ';'; CompareLength++);
1471 //
1472 // If Language is longer than the Supported, then skip to the next language
1473 //
1474 if (LanguageLength > CompareLength) {
1475 continue;
1476 }
1477 }
1478 //
1479 // See if the first LanguageLength characters in Supported match Language
1480 //
1481 if (AsciiStrnCmp (Supported, Language, LanguageLength) == 0) {
1482 VA_END (Args);
1483
1484 Buffer = Iso639Language ? mVariableModuleGlobal->Lang : mVariableModuleGlobal->PlatformLang;
1485 Buffer[CompareLength] = '\0';
1486 return CopyMem (Buffer, Supported, CompareLength);
1487 }
1488 }
1489
1490 if (Iso639Language) {
1491 //
1492 // If ISO 639 mode, then each language can only be tested once
1493 //
1494 LanguageLength = 0;
1495 } else {
1496 //
1497 // If RFC 4646 mode, then trim Language from the right to the next '-' character
1498 //
1499 for (LanguageLength--; LanguageLength > 0 && Language[LanguageLength] != '-'; LanguageLength--);
1500 }
1501 }
1502 }
1503 VA_END (Args);
1504
1505 //
1506 // No matches were found
1507 //
1508 return NULL;
1509 }
1510
1511 /**
1512 Hook the operations in PlatformLangCodes, LangCodes, PlatformLang and Lang.
1513
1514 When setting Lang/LangCodes, simultaneously update PlatformLang/PlatformLangCodes.
1515
1516 According to UEFI spec, PlatformLangCodes/LangCodes are only set once in firmware initialization,
1517 and are read-only. Therefore, in variable driver, only store the original value for other use.
1518
1519 @param[in] VariableName Name of variable.
1520
1521 @param[in] Data Variable data.
1522
1523 @param[in] DataSize Size of data. 0 means delete.
1524
1525 **/
1526 VOID
1527 AutoUpdateLangVariable (
1528 IN CHAR16 *VariableName,
1529 IN VOID *Data,
1530 IN UINTN DataSize
1531 )
1532 {
1533 EFI_STATUS Status;
1534 CHAR8 *BestPlatformLang;
1535 CHAR8 *BestLang;
1536 UINTN Index;
1537 UINT32 Attributes;
1538 VARIABLE_POINTER_TRACK Variable;
1539 BOOLEAN SetLanguageCodes;
1540
1541 //
1542 // Don't do updates for delete operation
1543 //
1544 if (DataSize == 0) {
1545 return;
1546 }
1547
1548 SetLanguageCodes = FALSE;
1549
1550 if (StrCmp (VariableName, EFI_PLATFORM_LANG_CODES_VARIABLE_NAME) == 0) {
1551 //
1552 // PlatformLangCodes is a volatile variable, so it can not be updated at runtime.
1553 //
1554 if (AtRuntime ()) {
1555 return;
1556 }
1557
1558 SetLanguageCodes = TRUE;
1559
1560 //
1561 // According to UEFI spec, PlatformLangCodes is only set once in firmware initialization, and is read-only
1562 // Therefore, in variable driver, only store the original value for other use.
1563 //
1564 if (mVariableModuleGlobal->PlatformLangCodes != NULL) {
1565 FreePool (mVariableModuleGlobal->PlatformLangCodes);
1566 }
1567 mVariableModuleGlobal->PlatformLangCodes = AllocateRuntimeCopyPool (DataSize, Data);
1568 ASSERT (mVariableModuleGlobal->PlatformLangCodes != NULL);
1569
1570 //
1571 // PlatformLang holds a single language from PlatformLangCodes,
1572 // so the size of PlatformLangCodes is enough for the PlatformLang.
1573 //
1574 if (mVariableModuleGlobal->PlatformLang != NULL) {
1575 FreePool (mVariableModuleGlobal->PlatformLang);
1576 }
1577 mVariableModuleGlobal->PlatformLang = AllocateRuntimePool (DataSize);
1578 ASSERT (mVariableModuleGlobal->PlatformLang != NULL);
1579
1580 } else if (StrCmp (VariableName, EFI_LANG_CODES_VARIABLE_NAME) == 0) {
1581 //
1582 // LangCodes is a volatile variable, so it can not be updated at runtime.
1583 //
1584 if (AtRuntime ()) {
1585 return;
1586 }
1587
1588 SetLanguageCodes = TRUE;
1589
1590 //
1591 // According to UEFI spec, LangCodes is only set once in firmware initialization, and is read-only
1592 // Therefore, in variable driver, only store the original value for other use.
1593 //
1594 if (mVariableModuleGlobal->LangCodes != NULL) {
1595 FreePool (mVariableModuleGlobal->LangCodes);
1596 }
1597 mVariableModuleGlobal->LangCodes = AllocateRuntimeCopyPool (DataSize, Data);
1598 ASSERT (mVariableModuleGlobal->LangCodes != NULL);
1599 }
1600
1601 if (SetLanguageCodes
1602 && (mVariableModuleGlobal->PlatformLangCodes != NULL)
1603 && (mVariableModuleGlobal->LangCodes != NULL)) {
1604 //
1605 // Update Lang if PlatformLang is already set
1606 // Update PlatformLang if Lang is already set
1607 //
1608 Status = FindVariable (EFI_PLATFORM_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
1609 if (!EFI_ERROR (Status)) {
1610 //
1611 // Update Lang
1612 //
1613 VariableName = EFI_PLATFORM_LANG_VARIABLE_NAME;
1614 Data = GetVariableDataPtr (Variable.CurrPtr);
1615 DataSize = Variable.CurrPtr->DataSize;
1616 } else {
1617 Status = FindVariable (EFI_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
1618 if (!EFI_ERROR (Status)) {
1619 //
1620 // Update PlatformLang
1621 //
1622 VariableName = EFI_LANG_VARIABLE_NAME;
1623 Data = GetVariableDataPtr (Variable.CurrPtr);
1624 DataSize = Variable.CurrPtr->DataSize;
1625 } else {
1626 //
1627 // Neither PlatformLang nor Lang is set, directly return
1628 //
1629 return;
1630 }
1631 }
1632 }
1633
1634 //
1635 // According to UEFI spec, "Lang" and "PlatformLang" is NV|BS|RT attributions.
1636 //
1637 Attributes = EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_BOOTSERVICE_ACCESS | EFI_VARIABLE_RUNTIME_ACCESS;
1638
1639 if (StrCmp (VariableName, EFI_PLATFORM_LANG_VARIABLE_NAME) == 0) {
1640 //
1641 // Update Lang when PlatformLangCodes/LangCodes were set.
1642 //
1643 if ((mVariableModuleGlobal->PlatformLangCodes != NULL) && (mVariableModuleGlobal->LangCodes != NULL)) {
1644 //
1645 // When setting PlatformLang, firstly get most matched language string from supported language codes.
1646 //
1647 BestPlatformLang = VariableGetBestLanguage (mVariableModuleGlobal->PlatformLangCodes, FALSE, Data, NULL);
1648 if (BestPlatformLang != NULL) {
1649 //
1650 // Get the corresponding index in language codes.
1651 //
1652 Index = GetIndexFromSupportedLangCodes (mVariableModuleGlobal->PlatformLangCodes, BestPlatformLang, FALSE);
1653
1654 //
1655 // Get the corresponding ISO639 language tag according to RFC4646 language tag.
1656 //
1657 BestLang = GetLangFromSupportedLangCodes (mVariableModuleGlobal->LangCodes, Index, TRUE);
1658
1659 //
1660 // Successfully convert PlatformLang to Lang, and set the BestLang value into Lang variable simultaneously.
1661 //
1662 FindVariable (EFI_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
1663
1664 Status = UpdateVariable (EFI_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, BestLang,
1665 ISO_639_2_ENTRY_SIZE + 1, Attributes, 0, 0, &Variable, NULL);
1666
1667 DEBUG ((EFI_D_INFO, "Variable Driver Auto Update PlatformLang, PlatformLang:%a, Lang:%a\n", BestPlatformLang, BestLang));
1668
1669 ASSERT_EFI_ERROR(Status);
1670 }
1671 }
1672
1673 } else if (StrCmp (VariableName, EFI_LANG_VARIABLE_NAME) == 0) {
1674 //
1675 // Update PlatformLang when PlatformLangCodes/LangCodes were set.
1676 //
1677 if ((mVariableModuleGlobal->PlatformLangCodes != NULL) && (mVariableModuleGlobal->LangCodes != NULL)) {
1678 //
1679 // When setting Lang, firstly get most matched language string from supported language codes.
1680 //
1681 BestLang = VariableGetBestLanguage (mVariableModuleGlobal->LangCodes, TRUE, Data, NULL);
1682 if (BestLang != NULL) {
1683 //
1684 // Get the corresponding index in language codes.
1685 //
1686 Index = GetIndexFromSupportedLangCodes (mVariableModuleGlobal->LangCodes, BestLang, TRUE);
1687
1688 //
1689 // Get the corresponding RFC4646 language tag according to ISO639 language tag.
1690 //
1691 BestPlatformLang = GetLangFromSupportedLangCodes (mVariableModuleGlobal->PlatformLangCodes, Index, FALSE);
1692
1693 //
1694 // Successfully convert Lang to PlatformLang, and set the BestPlatformLang value into PlatformLang variable simultaneously.
1695 //
1696 FindVariable (EFI_PLATFORM_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
1697
1698 Status = UpdateVariable (EFI_PLATFORM_LANG_VARIABLE_NAME, &gEfiGlobalVariableGuid, BestPlatformLang,
1699 AsciiStrSize (BestPlatformLang), Attributes, 0, 0, &Variable, NULL);
1700
1701 DEBUG ((EFI_D_INFO, "Variable Driver Auto Update Lang, Lang:%a, PlatformLang:%a\n", BestLang, BestPlatformLang));
1702 ASSERT_EFI_ERROR (Status);
1703 }
1704 }
1705 }
1706 }
1707
1708 /**
1709 Update the variable region with Variable information. If EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS is set,
1710 index of associated public key is needed.
1711
1712 @param[in] VariableName Name of variable.
1713 @param[in] VendorGuid Guid of variable.
1714 @param[in] Data Variable data.
1715 @param[in] DataSize Size of data. 0 means delete.
1716 @param[in] Attributes Attributes of the variable.
1717 @param[in] KeyIndex Index of associated public key.
1718 @param[in] MonotonicCount Value of associated monotonic count.
1719 @param[in, out] CacheVariable The variable information which is used to keep track of variable usage.
1720 @param[in] TimeStamp Value of associated TimeStamp.
1721
1722 @retval EFI_SUCCESS The update operation is success.
1723 @retval EFI_OUT_OF_RESOURCES Variable region is full, can not write other data into this region.
1724
1725 **/
1726 EFI_STATUS
1727 UpdateVariable (
1728 IN CHAR16 *VariableName,
1729 IN EFI_GUID *VendorGuid,
1730 IN VOID *Data,
1731 IN UINTN DataSize,
1732 IN UINT32 Attributes OPTIONAL,
1733 IN UINT32 KeyIndex OPTIONAL,
1734 IN UINT64 MonotonicCount OPTIONAL,
1735 IN OUT VARIABLE_POINTER_TRACK *CacheVariable,
1736 IN EFI_TIME *TimeStamp OPTIONAL
1737 )
1738 {
1739 EFI_STATUS Status;
1740 VARIABLE_HEADER *NextVariable;
1741 UINTN ScratchSize;
1742 UINTN MaxDataSize;
1743 UINTN NonVolatileVarableStoreSize;
1744 UINTN VarNameOffset;
1745 UINTN VarDataOffset;
1746 UINTN VarNameSize;
1747 UINTN VarSize;
1748 BOOLEAN Volatile;
1749 EFI_FIRMWARE_VOLUME_BLOCK_PROTOCOL *Fvb;
1750 UINT8 State;
1751 VARIABLE_POINTER_TRACK *Variable;
1752 VARIABLE_POINTER_TRACK NvVariable;
1753 VARIABLE_STORE_HEADER *VariableStoreHeader;
1754 UINTN CacheOffset;
1755 UINTN BufSize;
1756 UINTN DataOffset;
1757
1758 if (mVariableModuleGlobal->FvbInstance == NULL) {
1759 //
1760 // The FVB protocol is not installed, so the EFI_VARIABLE_WRITE_ARCH_PROTOCOL is not installed.
1761 //
1762 if ((Attributes & EFI_VARIABLE_NON_VOLATILE) != 0) {
1763 //
1764 // Trying to update NV variable prior to the installation of EFI_VARIABLE_WRITE_ARCH_PROTOCOL
1765 //
1766 return EFI_NOT_AVAILABLE_YET;
1767 } else if ((Attributes & EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS) != 0) {
1768 //
1769 // Trying to update volatile authenticated variable prior to the installation of EFI_VARIABLE_WRITE_ARCH_PROTOCOL
1770 // The authenticated variable perhaps is not initialized, just return here.
1771 //
1772 return EFI_NOT_AVAILABLE_YET;
1773 }
1774 }
1775
1776 if ((CacheVariable->CurrPtr == NULL) || CacheVariable->Volatile) {
1777 Variable = CacheVariable;
1778 } else {
1779 //
1780 // Update/Delete existing NV variable.
1781 // CacheVariable points to the variable in the memory copy of Flash area
1782 // Now let Variable points to the same variable in Flash area.
1783 //
1784 VariableStoreHeader = (VARIABLE_STORE_HEADER *) ((UINTN) mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase);
1785 Variable = &NvVariable;
1786 Variable->StartPtr = GetStartPointer (VariableStoreHeader);
1787 Variable->EndPtr = GetEndPointer (VariableStoreHeader);
1788 Variable->CurrPtr = (VARIABLE_HEADER *)((UINTN)Variable->StartPtr + ((UINTN)CacheVariable->CurrPtr - (UINTN)CacheVariable->StartPtr));
1789 if (CacheVariable->InDeletedTransitionPtr != NULL) {
1790 Variable->InDeletedTransitionPtr = (VARIABLE_HEADER *)((UINTN)Variable->StartPtr + ((UINTN)CacheVariable->InDeletedTransitionPtr - (UINTN)CacheVariable->StartPtr));
1791 } else {
1792 Variable->InDeletedTransitionPtr = NULL;
1793 }
1794 Variable->Volatile = FALSE;
1795 }
1796
1797 Fvb = mVariableModuleGlobal->FvbInstance;
1798
1799 //
1800 // Tricky part: Use scratch data area at the end of volatile variable store
1801 // as a temporary storage.
1802 //
1803 NextVariable = GetEndPointer ((VARIABLE_STORE_HEADER *) ((UINTN) mVariableModuleGlobal->VariableGlobal.VolatileVariableBase));
1804 ScratchSize = MAX (PcdGet32 (PcdMaxVariableSize), PcdGet32 (PcdMaxHardwareErrorVariableSize));
1805
1806
1807 if (Variable->CurrPtr != NULL) {
1808 //
1809 // Update/Delete existing variable.
1810 //
1811 if (AtRuntime ()) {
1812 //
1813 // If AtRuntime and the variable is Volatile and Runtime Access,
1814 // the volatile is ReadOnly, and SetVariable should be aborted and
1815 // return EFI_WRITE_PROTECTED.
1816 //
1817 if (Variable->Volatile) {
1818 Status = EFI_WRITE_PROTECTED;
1819 goto Done;
1820 }
1821 //
1822 // Only variable that have NV attributes can be updated/deleted in Runtime.
1823 //
1824 if ((Variable->CurrPtr->Attributes & EFI_VARIABLE_NON_VOLATILE) == 0) {
1825 Status = EFI_INVALID_PARAMETER;
1826 goto Done;
1827 }
1828
1829 //
1830 // Only variable that have RT attributes can be updated/deleted in Runtime.
1831 //
1832 if ((Variable->CurrPtr->Attributes & EFI_VARIABLE_RUNTIME_ACCESS) == 0) {
1833 Status = EFI_INVALID_PARAMETER;
1834 goto Done;
1835 }
1836 }
1837
1838 //
1839 // Setting a data variable with no access, or zero DataSize attributes
1840 // causes it to be deleted.
1841 // When the EFI_VARIABLE_APPEND_WRITE attribute is set, DataSize of zero will
1842 // not delete the variable.
1843 //
1844 if ((((Attributes & EFI_VARIABLE_APPEND_WRITE) == 0) && (DataSize == 0))|| ((Attributes & (EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_BOOTSERVICE_ACCESS)) == 0)) {
1845 if (Variable->InDeletedTransitionPtr != NULL) {
1846 //
1847 // Both ADDED and IN_DELETED_TRANSITION variable are present,
1848 // set IN_DELETED_TRANSITION one to DELETED state first.
1849 //
1850 State = Variable->InDeletedTransitionPtr->State;
1851 State &= VAR_DELETED;
1852 Status = UpdateVariableStore (
1853 &mVariableModuleGlobal->VariableGlobal,
1854 Variable->Volatile,
1855 FALSE,
1856 Fvb,
1857 (UINTN) &Variable->InDeletedTransitionPtr->State,
1858 sizeof (UINT8),
1859 &State
1860 );
1861 if (!EFI_ERROR (Status)) {
1862 if (!Variable->Volatile) {
1863 ASSERT (CacheVariable->InDeletedTransitionPtr != NULL);
1864 CacheVariable->InDeletedTransitionPtr->State = State;
1865 }
1866 } else {
1867 goto Done;
1868 }
1869 }
1870
1871 State = Variable->CurrPtr->State;
1872 State &= VAR_DELETED;
1873
1874 Status = UpdateVariableStore (
1875 &mVariableModuleGlobal->VariableGlobal,
1876 Variable->Volatile,
1877 FALSE,
1878 Fvb,
1879 (UINTN) &Variable->CurrPtr->State,
1880 sizeof (UINT8),
1881 &State
1882 );
1883 if (!EFI_ERROR (Status)) {
1884 UpdateVariableInfo (VariableName, VendorGuid, Variable->Volatile, FALSE, FALSE, TRUE, FALSE);
1885 if (!Variable->Volatile) {
1886 CacheVariable->CurrPtr->State = State;
1887 FlushHobVariableToFlash (VariableName, VendorGuid);
1888 }
1889 }
1890 goto Done;
1891 }
1892 //
1893 // If the variable is marked valid, and the same data has been passed in,
1894 // then return to the caller immediately.
1895 //
1896 if (DataSizeOfVariable (Variable->CurrPtr) == DataSize &&
1897 (CompareMem (Data, GetVariableDataPtr (Variable->CurrPtr), DataSize) == 0) &&
1898 ((Attributes & EFI_VARIABLE_APPEND_WRITE) == 0) &&
1899 (TimeStamp == NULL)) {
1900 //
1901 // Variable content unchanged and no need to update timestamp, just return.
1902 //
1903 UpdateVariableInfo (VariableName, VendorGuid, Variable->Volatile, FALSE, TRUE, FALSE, FALSE);
1904 Status = EFI_SUCCESS;
1905 goto Done;
1906 } else if ((Variable->CurrPtr->State == VAR_ADDED) ||
1907 (Variable->CurrPtr->State == (VAR_ADDED & VAR_IN_DELETED_TRANSITION))) {
1908
1909 //
1910 // EFI_VARIABLE_APPEND_WRITE attribute only effects for existing variable
1911 //
1912 if ((Attributes & EFI_VARIABLE_APPEND_WRITE) != 0) {
1913 //
1914 // Cache the previous variable data into StorageArea.
1915 //
1916 DataOffset = sizeof (VARIABLE_HEADER) + Variable->CurrPtr->NameSize + GET_PAD_SIZE (Variable->CurrPtr->NameSize);
1917 CopyMem (mStorageArea, (UINT8*)((UINTN) Variable->CurrPtr + DataOffset), Variable->CurrPtr->DataSize);
1918
1919 //
1920 // Set Max Common Variable Data Size as default MaxDataSize
1921 //
1922 MaxDataSize = PcdGet32 (PcdMaxVariableSize) - sizeof (VARIABLE_HEADER) - StrSize (VariableName) - GET_PAD_SIZE (StrSize (VariableName));
1923
1924
1925 if ((CompareGuid (VendorGuid, &gEfiImageSecurityDatabaseGuid) &&
1926 ((StrCmp (VariableName, EFI_IMAGE_SECURITY_DATABASE) == 0) || (StrCmp (VariableName, EFI_IMAGE_SECURITY_DATABASE1) == 0))) ||
1927 (CompareGuid (VendorGuid, &gEfiGlobalVariableGuid) && (StrCmp (VariableName, EFI_KEY_EXCHANGE_KEY_NAME) == 0))) {
1928
1929 //
1930 // For variables with formatted as EFI_SIGNATURE_LIST, the driver shall not perform an append of
1931 // EFI_SIGNATURE_DATA values that are already part of the existing variable value.
1932 //
1933 Status = AppendSignatureList (
1934 mStorageArea,
1935 Variable->CurrPtr->DataSize,
1936 MaxDataSize - Variable->CurrPtr->DataSize,
1937 Data,
1938 DataSize,
1939 &BufSize
1940 );
1941 if (Status == EFI_BUFFER_TOO_SMALL) {
1942 //
1943 // Signture List is too long, Failed to Append
1944 //
1945 Status = EFI_INVALID_PARAMETER;
1946 goto Done;
1947 }
1948
1949 if (BufSize == Variable->CurrPtr->DataSize) {
1950 if ((TimeStamp == NULL) || CompareTimeStamp (TimeStamp, &Variable->CurrPtr->TimeStamp)) {
1951 //
1952 // New EFI_SIGNATURE_DATA is not found and timestamp is not later
1953 // than current timestamp, return EFI_SUCCESS directly.
1954 //
1955 UpdateVariableInfo (VariableName, VendorGuid, Variable->Volatile, FALSE, TRUE, FALSE, FALSE);
1956 Status = EFI_SUCCESS;
1957 goto Done;
1958 }
1959 }
1960 } else {
1961 //
1962 // For other Variables, append the new data to the end of previous data.
1963 // Max Harware error record variable data size is different from common variable
1964 //
1965 if ((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
1966 MaxDataSize = PcdGet32 (PcdMaxHardwareErrorVariableSize) - sizeof (VARIABLE_HEADER) - StrSize (VariableName) - GET_PAD_SIZE (StrSize (VariableName));
1967 }
1968
1969 if (Variable->CurrPtr->DataSize + DataSize > MaxDataSize) {
1970 //
1971 // Exsiting data + Appended data exceed maximum variable size limitation
1972 //
1973 Status = EFI_INVALID_PARAMETER;
1974 goto Done;
1975 }
1976 CopyMem ((UINT8*)((UINTN) mStorageArea + Variable->CurrPtr->DataSize), Data, DataSize);
1977 BufSize = Variable->CurrPtr->DataSize + DataSize;
1978 }
1979
1980 //
1981 // Override Data and DataSize which are used for combined data area including previous and new data.
1982 //
1983 Data = mStorageArea;
1984 DataSize = BufSize;
1985 }
1986
1987 //
1988 // Mark the old variable as in delete transition.
1989 //
1990 State = Variable->CurrPtr->State;
1991 State &= VAR_IN_DELETED_TRANSITION;
1992
1993 Status = UpdateVariableStore (
1994 &mVariableModuleGlobal->VariableGlobal,
1995 Variable->Volatile,
1996 FALSE,
1997 Fvb,
1998 (UINTN) &Variable->CurrPtr->State,
1999 sizeof (UINT8),
2000 &State
2001 );
2002 if (EFI_ERROR (Status)) {
2003 goto Done;
2004 }
2005 if (!Variable->Volatile) {
2006 CacheVariable->CurrPtr->State = State;
2007 }
2008 }
2009 } else {
2010 //
2011 // Not found existing variable. Create a new variable.
2012 //
2013
2014 if ((DataSize == 0) && ((Attributes & EFI_VARIABLE_APPEND_WRITE) != 0)) {
2015 Status = EFI_SUCCESS;
2016 goto Done;
2017 }
2018
2019 //
2020 // Make sure we are trying to create a new variable.
2021 // Setting a data variable with zero DataSize or no access attributes means to delete it.
2022 //
2023 if (DataSize == 0 || (Attributes & (EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_BOOTSERVICE_ACCESS)) == 0) {
2024 Status = EFI_NOT_FOUND;
2025 goto Done;
2026 }
2027
2028 //
2029 // Only variable have NV|RT attribute can be created in Runtime.
2030 //
2031 if (AtRuntime () &&
2032 (((Attributes & EFI_VARIABLE_RUNTIME_ACCESS) == 0) || ((Attributes & EFI_VARIABLE_NON_VOLATILE) == 0))) {
2033 Status = EFI_INVALID_PARAMETER;
2034 goto Done;
2035 }
2036 }
2037
2038 //
2039 // Function part - create a new variable and copy the data.
2040 // Both update a variable and create a variable will come here.
2041
2042 SetMem (NextVariable, ScratchSize, 0xff);
2043
2044 NextVariable->StartId = VARIABLE_DATA;
2045 //
2046 // NextVariable->State = VAR_ADDED;
2047 //
2048 NextVariable->Reserved = 0;
2049 NextVariable->PubKeyIndex = KeyIndex;
2050 NextVariable->MonotonicCount = MonotonicCount;
2051 ZeroMem (&NextVariable->TimeStamp, sizeof (EFI_TIME));
2052
2053 if (((Attributes & EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS) != 0) &&
2054 (TimeStamp != NULL)) {
2055 if ((Attributes & EFI_VARIABLE_APPEND_WRITE) == 0) {
2056 CopyMem (&NextVariable->TimeStamp, TimeStamp, sizeof (EFI_TIME));
2057 } else {
2058 //
2059 // In the case when the EFI_VARIABLE_APPEND_WRITE attribute is set, only
2060 // when the new TimeStamp value is later than the current timestamp associated
2061 // with the variable, we need associate the new timestamp with the updated value.
2062 //
2063 if (Variable->CurrPtr != NULL) {
2064 if (CompareTimeStamp (&Variable->CurrPtr->TimeStamp, TimeStamp)) {
2065 CopyMem (&NextVariable->TimeStamp, TimeStamp, sizeof (EFI_TIME));
2066 }
2067 }
2068 }
2069 }
2070
2071 //
2072 // The EFI_VARIABLE_APPEND_WRITE attribute will never be set in the returned
2073 // Attributes bitmask parameter of a GetVariable() call.
2074 //
2075 NextVariable->Attributes = Attributes & (~EFI_VARIABLE_APPEND_WRITE);
2076
2077 VarNameOffset = sizeof (VARIABLE_HEADER);
2078 VarNameSize = StrSize (VariableName);
2079 CopyMem (
2080 (UINT8 *) ((UINTN) NextVariable + VarNameOffset),
2081 VariableName,
2082 VarNameSize
2083 );
2084 VarDataOffset = VarNameOffset + VarNameSize + GET_PAD_SIZE (VarNameSize);
2085 CopyMem (
2086 (UINT8 *) ((UINTN) NextVariable + VarDataOffset),
2087 Data,
2088 DataSize
2089 );
2090 CopyMem (&NextVariable->VendorGuid, VendorGuid, sizeof (EFI_GUID));
2091 //
2092 // There will be pad bytes after Data, the NextVariable->NameSize and
2093 // NextVariable->DataSize should not include pad size so that variable
2094 // service can get actual size in GetVariable.
2095 //
2096 NextVariable->NameSize = (UINT32)VarNameSize;
2097 NextVariable->DataSize = (UINT32)DataSize;
2098
2099 //
2100 // The actual size of the variable that stores in storage should
2101 // include pad size.
2102 //
2103 VarSize = VarDataOffset + DataSize + GET_PAD_SIZE (DataSize);
2104 if ((Attributes & EFI_VARIABLE_NON_VOLATILE) != 0) {
2105 //
2106 // Create a nonvolatile variable.
2107 //
2108 Volatile = FALSE;
2109 NonVolatileVarableStoreSize = ((VARIABLE_STORE_HEADER *)(UINTN)(mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase))->Size;
2110 if ((((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != 0)
2111 && ((VarSize + mVariableModuleGlobal->HwErrVariableTotalSize) > PcdGet32 (PcdHwErrStorageSize)))
2112 || (((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == 0)
2113 && ((VarSize + mVariableModuleGlobal->CommonVariableTotalSize) > NonVolatileVarableStoreSize - sizeof (VARIABLE_STORE_HEADER) - PcdGet32 (PcdHwErrStorageSize)))) {
2114 if (AtRuntime ()) {
2115 Status = EFI_OUT_OF_RESOURCES;
2116 goto Done;
2117 }
2118 //
2119 // Perform garbage collection & reclaim operation, and integrate the new variable at the same time.
2120 //
2121 Status = Reclaim (
2122 mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase,
2123 &mVariableModuleGlobal->NonVolatileLastVariableOffset,
2124 FALSE,
2125 Variable,
2126 NextVariable,
2127 HEADER_ALIGN (VarSize),
2128 FALSE
2129 );
2130 if (!EFI_ERROR (Status)) {
2131 //
2132 // The new variable has been integrated successfully during reclaiming.
2133 //
2134 if (Variable->CurrPtr != NULL) {
2135 CacheVariable->CurrPtr = (VARIABLE_HEADER *)((UINTN) CacheVariable->StartPtr + ((UINTN) Variable->CurrPtr - (UINTN) Variable->StartPtr));
2136 CacheVariable->InDeletedTransitionPtr = NULL;
2137 }
2138 UpdateVariableInfo (VariableName, VendorGuid, FALSE, FALSE, TRUE, FALSE, FALSE);
2139 FlushHobVariableToFlash (VariableName, VendorGuid);
2140 }
2141 goto Done;
2142 }
2143 //
2144 // Four steps
2145 // 1. Write variable header
2146 // 2. Set variable state to header valid
2147 // 3. Write variable data
2148 // 4. Set variable state to valid
2149 //
2150 //
2151 // Step 1:
2152 //
2153 CacheOffset = mVariableModuleGlobal->NonVolatileLastVariableOffset;
2154 Status = UpdateVariableStore (
2155 &mVariableModuleGlobal->VariableGlobal,
2156 FALSE,
2157 TRUE,
2158 Fvb,
2159 mVariableModuleGlobal->NonVolatileLastVariableOffset,
2160 sizeof (VARIABLE_HEADER),
2161 (UINT8 *) NextVariable
2162 );
2163
2164 if (EFI_ERROR (Status)) {
2165 goto Done;
2166 }
2167
2168 //
2169 // Step 2:
2170 //
2171 NextVariable->State = VAR_HEADER_VALID_ONLY;
2172 Status = UpdateVariableStore (
2173 &mVariableModuleGlobal->VariableGlobal,
2174 FALSE,
2175 TRUE,
2176 Fvb,
2177 mVariableModuleGlobal->NonVolatileLastVariableOffset + OFFSET_OF (VARIABLE_HEADER, State),
2178 sizeof (UINT8),
2179 &NextVariable->State
2180 );
2181
2182 if (EFI_ERROR (Status)) {
2183 goto Done;
2184 }
2185 //
2186 // Step 3:
2187 //
2188 Status = UpdateVariableStore (
2189 &mVariableModuleGlobal->VariableGlobal,
2190 FALSE,
2191 TRUE,
2192 Fvb,
2193 mVariableModuleGlobal->NonVolatileLastVariableOffset + sizeof (VARIABLE_HEADER),
2194 (UINT32) VarSize - sizeof (VARIABLE_HEADER),
2195 (UINT8 *) NextVariable + sizeof (VARIABLE_HEADER)
2196 );
2197
2198 if (EFI_ERROR (Status)) {
2199 goto Done;
2200 }
2201 //
2202 // Step 4:
2203 //
2204 NextVariable->State = VAR_ADDED;
2205 Status = UpdateVariableStore (
2206 &mVariableModuleGlobal->VariableGlobal,
2207 FALSE,
2208 TRUE,
2209 Fvb,
2210 mVariableModuleGlobal->NonVolatileLastVariableOffset + OFFSET_OF (VARIABLE_HEADER, State),
2211 sizeof (UINT8),
2212 &NextVariable->State
2213 );
2214
2215 if (EFI_ERROR (Status)) {
2216 goto Done;
2217 }
2218
2219 mVariableModuleGlobal->NonVolatileLastVariableOffset += HEADER_ALIGN (VarSize);
2220
2221 if ((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) != 0) {
2222 mVariableModuleGlobal->HwErrVariableTotalSize += HEADER_ALIGN (VarSize);
2223 } else {
2224 mVariableModuleGlobal->CommonVariableTotalSize += HEADER_ALIGN (VarSize);
2225 }
2226 //
2227 // update the memory copy of Flash region.
2228 //
2229 CopyMem ((UINT8 *)mNvVariableCache + CacheOffset, (UINT8 *)NextVariable, VarSize);
2230 } else {
2231 //
2232 // Create a volatile variable.
2233 //
2234 Volatile = TRUE;
2235
2236 if ((UINT32) (VarSize + mVariableModuleGlobal->VolatileLastVariableOffset) >
2237 ((VARIABLE_STORE_HEADER *) ((UINTN) (mVariableModuleGlobal->VariableGlobal.VolatileVariableBase)))->Size) {
2238 //
2239 // Perform garbage collection & reclaim operation, and integrate the new variable at the same time.
2240 //
2241 Status = Reclaim (
2242 mVariableModuleGlobal->VariableGlobal.VolatileVariableBase,
2243 &mVariableModuleGlobal->VolatileLastVariableOffset,
2244 TRUE,
2245 Variable,
2246 NextVariable,
2247 HEADER_ALIGN (VarSize),
2248 FALSE
2249 );
2250 if (!EFI_ERROR (Status)) {
2251 //
2252 // The new variable has been integrated successfully during reclaiming.
2253 //
2254 if (Variable->CurrPtr != NULL) {
2255 CacheVariable->CurrPtr = (VARIABLE_HEADER *)((UINTN) CacheVariable->StartPtr + ((UINTN) Variable->CurrPtr - (UINTN) Variable->StartPtr));
2256 CacheVariable->InDeletedTransitionPtr = NULL;
2257 }
2258 UpdateVariableInfo (VariableName, VendorGuid, TRUE, FALSE, TRUE, FALSE, FALSE);
2259 }
2260 goto Done;
2261 }
2262
2263 NextVariable->State = VAR_ADDED;
2264 Status = UpdateVariableStore (
2265 &mVariableModuleGlobal->VariableGlobal,
2266 TRUE,
2267 TRUE,
2268 Fvb,
2269 mVariableModuleGlobal->VolatileLastVariableOffset,
2270 (UINT32) VarSize,
2271 (UINT8 *) NextVariable
2272 );
2273
2274 if (EFI_ERROR (Status)) {
2275 goto Done;
2276 }
2277
2278 mVariableModuleGlobal->VolatileLastVariableOffset += HEADER_ALIGN (VarSize);
2279 }
2280
2281 //
2282 // Mark the old variable as deleted.
2283 //
2284 if (!EFI_ERROR (Status) && Variable->CurrPtr != NULL) {
2285 if (Variable->InDeletedTransitionPtr != NULL) {
2286 //
2287 // Both ADDED and IN_DELETED_TRANSITION old variable are present,
2288 // set IN_DELETED_TRANSITION one to DELETED state first.
2289 //
2290 State = Variable->InDeletedTransitionPtr->State;
2291 State &= VAR_DELETED;
2292 Status = UpdateVariableStore (
2293 &mVariableModuleGlobal->VariableGlobal,
2294 Variable->Volatile,
2295 FALSE,
2296 Fvb,
2297 (UINTN) &Variable->InDeletedTransitionPtr->State,
2298 sizeof (UINT8),
2299 &State
2300 );
2301 if (!EFI_ERROR (Status)) {
2302 if (!Variable->Volatile) {
2303 ASSERT (CacheVariable->InDeletedTransitionPtr != NULL);
2304 CacheVariable->InDeletedTransitionPtr->State = State;
2305 }
2306 } else {
2307 goto Done;
2308 }
2309 }
2310
2311 State = Variable->CurrPtr->State;
2312 State &= VAR_DELETED;
2313
2314 Status = UpdateVariableStore (
2315 &mVariableModuleGlobal->VariableGlobal,
2316 Variable->Volatile,
2317 FALSE,
2318 Fvb,
2319 (UINTN) &Variable->CurrPtr->State,
2320 sizeof (UINT8),
2321 &State
2322 );
2323 if (!EFI_ERROR (Status) && !Variable->Volatile) {
2324 CacheVariable->CurrPtr->State = State;
2325 }
2326 }
2327
2328 if (!EFI_ERROR (Status)) {
2329 UpdateVariableInfo (VariableName, VendorGuid, Volatile, FALSE, TRUE, FALSE, FALSE);
2330 if (!Volatile) {
2331 FlushHobVariableToFlash (VariableName, VendorGuid);
2332 }
2333 }
2334
2335 Done:
2336 return Status;
2337 }
2338
2339 /**
2340 Check if a Unicode character is a hexadecimal character.
2341
2342 This function checks if a Unicode character is a
2343 hexadecimal character. The valid hexadecimal character is
2344 L'0' to L'9', L'a' to L'f', or L'A' to L'F'.
2345
2346
2347 @param Char The character to check against.
2348
2349 @retval TRUE If the Char is a hexadecmial character.
2350 @retval FALSE If the Char is not a hexadecmial character.
2351
2352 **/
2353 BOOLEAN
2354 EFIAPI
2355 IsHexaDecimalDigitCharacter (
2356 IN CHAR16 Char
2357 )
2358 {
2359 return (BOOLEAN) ((Char >= L'0' && Char <= L'9') || (Char >= L'A' && Char <= L'F') || (Char >= L'a' && Char <= L'f'));
2360 }
2361
2362 /**
2363
2364 This code checks if variable is hardware error record variable or not.
2365
2366 According to UEFI spec, hardware error record variable should use the EFI_HARDWARE_ERROR_VARIABLE VendorGuid
2367 and have the L"HwErrRec####" name convention, #### is a printed hex value and no 0x or h is included in the hex value.
2368
2369 @param VariableName Pointer to variable name.
2370 @param VendorGuid Variable Vendor Guid.
2371
2372 @retval TRUE Variable is hardware error record variable.
2373 @retval FALSE Variable is not hardware error record variable.
2374
2375 **/
2376 BOOLEAN
2377 EFIAPI
2378 IsHwErrRecVariable (
2379 IN CHAR16 *VariableName,
2380 IN EFI_GUID *VendorGuid
2381 )
2382 {
2383 if (!CompareGuid (VendorGuid, &gEfiHardwareErrorVariableGuid) ||
2384 (StrLen (VariableName) != StrLen (L"HwErrRec####")) ||
2385 (StrnCmp(VariableName, L"HwErrRec", StrLen (L"HwErrRec")) != 0) ||
2386 !IsHexaDecimalDigitCharacter (VariableName[0x8]) ||
2387 !IsHexaDecimalDigitCharacter (VariableName[0x9]) ||
2388 !IsHexaDecimalDigitCharacter (VariableName[0xA]) ||
2389 !IsHexaDecimalDigitCharacter (VariableName[0xB])) {
2390 return FALSE;
2391 }
2392
2393 return TRUE;
2394 }
2395
2396 /**
2397 This code checks if variable guid is global variable guid first.
2398 If yes, further check if variable name is in mGlobalVariableList or mGlobalVariableList2 and attributes matched.
2399
2400 @param[in] VariableName Pointer to variable name.
2401 @param[in] VendorGuid Variable Vendor Guid.
2402 @param[in] Attributes Attributes of the variable.
2403
2404 @retval EFI_SUCCESS Variable is not global variable, or Variable is global variable, variable name is in the lists and attributes matched.
2405 @retval EFI_INVALID_PARAMETER Variable is global variable, but variable name is not in the lists or attributes unmatched.
2406
2407 **/
2408 EFI_STATUS
2409 EFIAPI
2410 CheckEfiGlobalVariable (
2411 IN CHAR16 *VariableName,
2412 IN EFI_GUID *VendorGuid,
2413 IN UINT32 Attributes
2414 )
2415 {
2416 UINTN Index;
2417 UINTN NameLength;
2418
2419 if (CompareGuid (VendorGuid, &gEfiGlobalVariableGuid)){
2420 //
2421 // Try list 1, exactly match.
2422 //
2423 for (Index = 0; Index < sizeof (mGlobalVariableList)/sizeof (mGlobalVariableList[0]); Index++) {
2424 if ((StrCmp (mGlobalVariableList[Index].Name, VariableName) == 0) &&
2425 (Attributes == 0 || (Attributes & (~EFI_VARIABLE_APPEND_WRITE)) == mGlobalVariableList[Index].Attributes)) {
2426 return EFI_SUCCESS;
2427 }
2428 }
2429
2430 //
2431 // Try list 2.
2432 //
2433 NameLength = StrLen (VariableName) - 4;
2434 for (Index = 0; Index < sizeof (mGlobalVariableList2)/sizeof (mGlobalVariableList2[0]); Index++) {
2435 if ((StrLen (VariableName) == StrLen (mGlobalVariableList2[Index].Name)) &&
2436 (StrnCmp (mGlobalVariableList2[Index].Name, VariableName, NameLength) == 0) &&
2437 IsHexaDecimalDigitCharacter (VariableName[NameLength]) &&
2438 IsHexaDecimalDigitCharacter (VariableName[NameLength + 1]) &&
2439 IsHexaDecimalDigitCharacter (VariableName[NameLength + 2]) &&
2440 IsHexaDecimalDigitCharacter (VariableName[NameLength + 3]) &&
2441 (Attributes == 0 || (Attributes & (~EFI_VARIABLE_APPEND_WRITE)) == mGlobalVariableList2[Index].Attributes)) {
2442 return EFI_SUCCESS;
2443 }
2444 }
2445
2446 DEBUG ((EFI_D_INFO, "[Variable]: set global variable with invalid variable name or attributes - %g:%s:%x\n", VendorGuid, VariableName, Attributes));
2447 return EFI_INVALID_PARAMETER;
2448 }
2449
2450 return EFI_SUCCESS;
2451 }
2452
2453 /**
2454 Mark a variable that will become read-only after leaving the DXE phase of execution.
2455
2456 @param[in] This The VARIABLE_LOCK_PROTOCOL instance.
2457 @param[in] VariableName A pointer to the variable name that will be made read-only subsequently.
2458 @param[in] VendorGuid A pointer to the vendor GUID that will be made read-only subsequently.
2459
2460 @retval EFI_SUCCESS The variable specified by the VariableName and the VendorGuid was marked
2461 as pending to be read-only.
2462 @retval EFI_INVALID_PARAMETER VariableName or VendorGuid is NULL.
2463 Or VariableName is an empty string.
2464 @retval EFI_ACCESS_DENIED EFI_END_OF_DXE_EVENT_GROUP_GUID or EFI_EVENT_GROUP_READY_TO_BOOT has
2465 already been signaled.
2466 @retval EFI_OUT_OF_RESOURCES There is not enough resource to hold the lock request.
2467 **/
2468 EFI_STATUS
2469 EFIAPI
2470 VariableLockRequestToLock (
2471 IN CONST EDKII_VARIABLE_LOCK_PROTOCOL *This,
2472 IN CHAR16 *VariableName,
2473 IN EFI_GUID *VendorGuid
2474 )
2475 {
2476 VARIABLE_ENTRY *Entry;
2477
2478 if (VariableName == NULL || VariableName[0] == 0 || VendorGuid == NULL) {
2479 return EFI_INVALID_PARAMETER;
2480 }
2481
2482 if (mEndOfDxe) {
2483 return EFI_ACCESS_DENIED;
2484 }
2485
2486 Entry = AllocateRuntimePool (sizeof (*Entry) + StrSize (VariableName));
2487 if (Entry == NULL) {
2488 return EFI_OUT_OF_RESOURCES;
2489 }
2490
2491 DEBUG ((EFI_D_INFO, "[Variable] Lock: %g:%s\n", VendorGuid, VariableName));
2492
2493 AcquireLockOnlyAtBootTime(&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2494
2495 Entry->Name = (CHAR16 *) (Entry + 1);
2496 StrCpy (Entry->Name, VariableName);
2497 CopyGuid (&Entry->Guid, VendorGuid);
2498 InsertTailList (&mLockedVariableList, &Entry->Link);
2499
2500 ReleaseLockOnlyAtBootTime (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2501
2502 return EFI_SUCCESS;
2503 }
2504
2505 /**
2506 This code checks if variable should be treated as read-only variable.
2507
2508 @param[in] VariableName Name of the Variable.
2509 @param[in] VendorGuid GUID of the Variable.
2510
2511 @retval TRUE This variable is read-only variable.
2512 @retval FALSE This variable is NOT read-only variable.
2513
2514 **/
2515 BOOLEAN
2516 IsReadOnlyVariable (
2517 IN CHAR16 *VariableName,
2518 IN EFI_GUID *VendorGuid
2519 )
2520 {
2521 if (CompareGuid (VendorGuid, &gEfiGlobalVariableGuid)) {
2522 if ((StrCmp (VariableName, EFI_SETUP_MODE_NAME) == 0) ||
2523 (StrCmp (VariableName, EFI_SIGNATURE_SUPPORT_NAME) == 0) ||
2524 (StrCmp (VariableName, EFI_SECURE_BOOT_MODE_NAME) == 0) ||
2525 (StrCmp (VariableName, EFI_VENDOR_KEYS_VARIABLE_NAME) == 0) ||
2526 (StrCmp (VariableName, EFI_KEK_DEFAULT_VARIABLE_NAME) == 0) ||
2527 (StrCmp (VariableName, EFI_PK_DEFAULT_VARIABLE_NAME) == 0) ||
2528 (StrCmp (VariableName, EFI_DB_DEFAULT_VARIABLE_NAME) == 0) ||
2529 (StrCmp (VariableName, EFI_DBX_DEFAULT_VARIABLE_NAME) == 0) ||
2530 (StrCmp (VariableName, EFI_DBT_DEFAULT_VARIABLE_NAME) == 0)) {
2531 return TRUE;
2532 }
2533 }
2534
2535 return FALSE;
2536 }
2537
2538 /**
2539
2540 This code finds variable in storage blocks (Volatile or Non-Volatile).
2541
2542 Caution: This function may receive untrusted input.
2543 This function may be invoked in SMM mode, and datasize is external input.
2544 This function will do basic validation, before parse the data.
2545
2546 @param VariableName Name of Variable to be found.
2547 @param VendorGuid Variable vendor GUID.
2548 @param Attributes Attribute value of the variable found.
2549 @param DataSize Size of Data found. If size is less than the
2550 data, this value contains the required size.
2551 @param Data Data pointer.
2552
2553 @return EFI_INVALID_PARAMETER Invalid parameter.
2554 @return EFI_SUCCESS Find the specified variable.
2555 @return EFI_NOT_FOUND Not found.
2556 @return EFI_BUFFER_TO_SMALL DataSize is too small for the result.
2557
2558 **/
2559 EFI_STATUS
2560 EFIAPI
2561 VariableServiceGetVariable (
2562 IN CHAR16 *VariableName,
2563 IN EFI_GUID *VendorGuid,
2564 OUT UINT32 *Attributes OPTIONAL,
2565 IN OUT UINTN *DataSize,
2566 OUT VOID *Data
2567 )
2568 {
2569 EFI_STATUS Status;
2570 VARIABLE_POINTER_TRACK Variable;
2571 UINTN VarDataSize;
2572
2573 if (VariableName == NULL || VendorGuid == NULL || DataSize == NULL) {
2574 return EFI_INVALID_PARAMETER;
2575 }
2576
2577 AcquireLockOnlyAtBootTime(&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2578
2579 Status = FindVariable (VariableName, VendorGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
2580 if (Variable.CurrPtr == NULL || EFI_ERROR (Status)) {
2581 goto Done;
2582 }
2583
2584 //
2585 // Get data size
2586 //
2587 VarDataSize = DataSizeOfVariable (Variable.CurrPtr);
2588 ASSERT (VarDataSize != 0);
2589
2590 if (*DataSize >= VarDataSize) {
2591 if (Data == NULL) {
2592 Status = EFI_INVALID_PARAMETER;
2593 goto Done;
2594 }
2595
2596 CopyMem (Data, GetVariableDataPtr (Variable.CurrPtr), VarDataSize);
2597 if (Attributes != NULL) {
2598 *Attributes = Variable.CurrPtr->Attributes;
2599 }
2600
2601 *DataSize = VarDataSize;
2602 UpdateVariableInfo (VariableName, VendorGuid, Variable.Volatile, TRUE, FALSE, FALSE, FALSE);
2603
2604 Status = EFI_SUCCESS;
2605 goto Done;
2606 } else {
2607 *DataSize = VarDataSize;
2608 Status = EFI_BUFFER_TOO_SMALL;
2609 goto Done;
2610 }
2611
2612 Done:
2613 ReleaseLockOnlyAtBootTime (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2614 return Status;
2615 }
2616
2617
2618
2619 /**
2620
2621 This code Finds the Next available variable.
2622
2623 Caution: This function may receive untrusted input.
2624 This function may be invoked in SMM mode. This function will do basic validation, before parse the data.
2625
2626 @param VariableNameSize Size of the variable name.
2627 @param VariableName Pointer to variable name.
2628 @param VendorGuid Variable Vendor Guid.
2629
2630 @return EFI_INVALID_PARAMETER Invalid parameter.
2631 @return EFI_SUCCESS Find the specified variable.
2632 @return EFI_NOT_FOUND Not found.
2633 @return EFI_BUFFER_TO_SMALL DataSize is too small for the result.
2634
2635 **/
2636 EFI_STATUS
2637 EFIAPI
2638 VariableServiceGetNextVariableName (
2639 IN OUT UINTN *VariableNameSize,
2640 IN OUT CHAR16 *VariableName,
2641 IN OUT EFI_GUID *VendorGuid
2642 )
2643 {
2644 VARIABLE_STORE_TYPE Type;
2645 VARIABLE_POINTER_TRACK Variable;
2646 VARIABLE_POINTER_TRACK VariableInHob;
2647 VARIABLE_POINTER_TRACK VariablePtrTrack;
2648 UINTN VarNameSize;
2649 EFI_STATUS Status;
2650 VARIABLE_STORE_HEADER *VariableStoreHeader[VariableStoreTypeMax];
2651
2652 if (VariableNameSize == NULL || VariableName == NULL || VendorGuid == NULL) {
2653 return EFI_INVALID_PARAMETER;
2654 }
2655
2656 AcquireLockOnlyAtBootTime(&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2657
2658 Status = FindVariable (VariableName, VendorGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, FALSE);
2659 if (Variable.CurrPtr == NULL || EFI_ERROR (Status)) {
2660 goto Done;
2661 }
2662
2663 if (VariableName[0] != 0) {
2664 //
2665 // If variable name is not NULL, get next variable.
2666 //
2667 Variable.CurrPtr = GetNextVariablePtr (Variable.CurrPtr);
2668 }
2669
2670 //
2671 // 0: Volatile, 1: HOB, 2: Non-Volatile.
2672 // The index and attributes mapping must be kept in this order as FindVariable
2673 // makes use of this mapping to implement search algorithm.
2674 //
2675 VariableStoreHeader[VariableStoreTypeVolatile] = (VARIABLE_STORE_HEADER *) (UINTN) mVariableModuleGlobal->VariableGlobal.VolatileVariableBase;
2676 VariableStoreHeader[VariableStoreTypeHob] = (VARIABLE_STORE_HEADER *) (UINTN) mVariableModuleGlobal->VariableGlobal.HobVariableBase;
2677 VariableStoreHeader[VariableStoreTypeNv] = mNvVariableCache;
2678
2679 while (TRUE) {
2680 //
2681 // Switch from Volatile to HOB, to Non-Volatile.
2682 //
2683 while ((Variable.CurrPtr >= Variable.EndPtr) ||
2684 (Variable.CurrPtr == NULL) ||
2685 !IsValidVariableHeader (Variable.CurrPtr)
2686 ) {
2687 //
2688 // Find current storage index
2689 //
2690 for (Type = (VARIABLE_STORE_TYPE) 0; Type < VariableStoreTypeMax; Type++) {
2691 if ((VariableStoreHeader[Type] != NULL) && (Variable.StartPtr == GetStartPointer (VariableStoreHeader[Type]))) {
2692 break;
2693 }
2694 }
2695 ASSERT (Type < VariableStoreTypeMax);
2696 //
2697 // Switch to next storage
2698 //
2699 for (Type++; Type < VariableStoreTypeMax; Type++) {
2700 if (VariableStoreHeader[Type] != NULL) {
2701 break;
2702 }
2703 }
2704 //
2705 // Capture the case that
2706 // 1. current storage is the last one, or
2707 // 2. no further storage
2708 //
2709 if (Type == VariableStoreTypeMax) {
2710 Status = EFI_NOT_FOUND;
2711 goto Done;
2712 }
2713 Variable.StartPtr = GetStartPointer (VariableStoreHeader[Type]);
2714 Variable.EndPtr = GetEndPointer (VariableStoreHeader[Type]);
2715 Variable.CurrPtr = Variable.StartPtr;
2716 }
2717
2718 //
2719 // Variable is found
2720 //
2721 if (Variable.CurrPtr->State == VAR_ADDED || Variable.CurrPtr->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
2722 if (!AtRuntime () || ((Variable.CurrPtr->Attributes & EFI_VARIABLE_RUNTIME_ACCESS) != 0)) {
2723 if (Variable.CurrPtr->State == (VAR_IN_DELETED_TRANSITION & VAR_ADDED)) {
2724 //
2725 // If it is a IN_DELETED_TRANSITION variable,
2726 // and there is also a same ADDED one at the same time,
2727 // don't return it.
2728 //
2729 VariablePtrTrack.StartPtr = Variable.StartPtr;
2730 VariablePtrTrack.EndPtr = Variable.EndPtr;
2731 Status = FindVariableEx (
2732 GetVariableNamePtr (Variable.CurrPtr),
2733 &Variable.CurrPtr->VendorGuid,
2734 FALSE,
2735 &VariablePtrTrack
2736 );
2737 if (!EFI_ERROR (Status) && VariablePtrTrack.CurrPtr->State == VAR_ADDED) {
2738 Variable.CurrPtr = GetNextVariablePtr (Variable.CurrPtr);
2739 continue;
2740 }
2741 }
2742
2743 //
2744 // Don't return NV variable when HOB overrides it
2745 //
2746 if ((VariableStoreHeader[VariableStoreTypeHob] != NULL) && (VariableStoreHeader[VariableStoreTypeNv] != NULL) &&
2747 (Variable.StartPtr == GetStartPointer (VariableStoreHeader[VariableStoreTypeNv]))
2748 ) {
2749 VariableInHob.StartPtr = GetStartPointer (VariableStoreHeader[VariableStoreTypeHob]);
2750 VariableInHob.EndPtr = GetEndPointer (VariableStoreHeader[VariableStoreTypeHob]);
2751 Status = FindVariableEx (
2752 GetVariableNamePtr (Variable.CurrPtr),
2753 &Variable.CurrPtr->VendorGuid,
2754 FALSE,
2755 &VariableInHob
2756 );
2757 if (!EFI_ERROR (Status)) {
2758 Variable.CurrPtr = GetNextVariablePtr (Variable.CurrPtr);
2759 continue;
2760 }
2761 }
2762
2763 VarNameSize = NameSizeOfVariable (Variable.CurrPtr);
2764 ASSERT (VarNameSize != 0);
2765
2766 if (VarNameSize <= *VariableNameSize) {
2767 CopyMem (VariableName, GetVariableNamePtr (Variable.CurrPtr), VarNameSize);
2768 CopyMem (VendorGuid, &Variable.CurrPtr->VendorGuid, sizeof (EFI_GUID));
2769 Status = EFI_SUCCESS;
2770 } else {
2771 Status = EFI_BUFFER_TOO_SMALL;
2772 }
2773
2774 *VariableNameSize = VarNameSize;
2775 goto Done;
2776 }
2777 }
2778
2779 Variable.CurrPtr = GetNextVariablePtr (Variable.CurrPtr);
2780 }
2781
2782 Done:
2783 ReleaseLockOnlyAtBootTime (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2784 return Status;
2785 }
2786
2787 /**
2788
2789 This code sets variable in storage blocks (Volatile or Non-Volatile).
2790
2791 Caution: This function may receive untrusted input.
2792 This function may be invoked in SMM mode, and datasize and data are external input.
2793 This function will do basic validation, before parse the data.
2794 This function will parse the authentication carefully to avoid security issues, like
2795 buffer overflow, integer overflow.
2796 This function will check attribute carefully to avoid authentication bypass.
2797
2798 @param VariableName Name of Variable to be found.
2799 @param VendorGuid Variable vendor GUID.
2800 @param Attributes Attribute value of the variable found
2801 @param DataSize Size of Data found. If size is less than the
2802 data, this value contains the required size.
2803 @param Data Data pointer.
2804
2805 @return EFI_INVALID_PARAMETER Invalid parameter.
2806 @return EFI_SUCCESS Set successfully.
2807 @return EFI_OUT_OF_RESOURCES Resource not enough to set variable.
2808 @return EFI_NOT_FOUND Not found.
2809 @return EFI_WRITE_PROTECTED Variable is read-only.
2810
2811 **/
2812 EFI_STATUS
2813 EFIAPI
2814 VariableServiceSetVariable (
2815 IN CHAR16 *VariableName,
2816 IN EFI_GUID *VendorGuid,
2817 IN UINT32 Attributes,
2818 IN UINTN DataSize,
2819 IN VOID *Data
2820 )
2821 {
2822 VARIABLE_POINTER_TRACK Variable;
2823 EFI_STATUS Status;
2824 VARIABLE_HEADER *NextVariable;
2825 EFI_PHYSICAL_ADDRESS Point;
2826 UINTN PayloadSize;
2827 LIST_ENTRY *Link;
2828 VARIABLE_ENTRY *Entry;
2829
2830 //
2831 // Check input parameters.
2832 //
2833 if (VariableName == NULL || VariableName[0] == 0 || VendorGuid == NULL) {
2834 return EFI_INVALID_PARAMETER;
2835 }
2836
2837 if (IsReadOnlyVariable (VariableName, VendorGuid)) {
2838 return EFI_WRITE_PROTECTED;
2839 }
2840
2841 if (DataSize != 0 && Data == NULL) {
2842 return EFI_INVALID_PARAMETER;
2843 }
2844
2845 //
2846 // Check for reserverd bit in variable attribute.
2847 //
2848 if ((Attributes & (~EFI_VARIABLE_ATTRIBUTES_MASK)) != 0) {
2849 return EFI_INVALID_PARAMETER;
2850 }
2851
2852 //
2853 // Make sure if runtime bit is set, boot service bit is set also.
2854 //
2855 if ((Attributes & (EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_BOOTSERVICE_ACCESS)) == EFI_VARIABLE_RUNTIME_ACCESS) {
2856 return EFI_INVALID_PARAMETER;
2857 }
2858
2859 //
2860 // EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS and EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS attribute
2861 // cannot be set both.
2862 //
2863 if (((Attributes & EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS) == EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS)
2864 && ((Attributes & EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS) == EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS)) {
2865 return EFI_INVALID_PARAMETER;
2866 }
2867
2868 if ((Attributes & EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS) == EFI_VARIABLE_AUTHENTICATED_WRITE_ACCESS) {
2869 if (DataSize < AUTHINFO_SIZE) {
2870 //
2871 // Try to write Authenticated Variable without AuthInfo.
2872 //
2873 return EFI_SECURITY_VIOLATION;
2874 }
2875 PayloadSize = DataSize - AUTHINFO_SIZE;
2876 } else if ((Attributes & EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS) == EFI_VARIABLE_TIME_BASED_AUTHENTICATED_WRITE_ACCESS) {
2877 //
2878 // Sanity check for EFI_VARIABLE_AUTHENTICATION_2 descriptor.
2879 //
2880 if (DataSize < OFFSET_OF_AUTHINFO2_CERT_DATA ||
2881 ((EFI_VARIABLE_AUTHENTICATION_2 *) Data)->AuthInfo.Hdr.dwLength > DataSize - (OFFSET_OF (EFI_VARIABLE_AUTHENTICATION_2, AuthInfo)) ||
2882 ((EFI_VARIABLE_AUTHENTICATION_2 *) Data)->AuthInfo.Hdr.dwLength < OFFSET_OF (WIN_CERTIFICATE_UEFI_GUID, CertData)) {
2883 return EFI_SECURITY_VIOLATION;
2884 }
2885 PayloadSize = DataSize - AUTHINFO2_SIZE (Data);
2886 } else {
2887 PayloadSize = DataSize;
2888 }
2889
2890 if ((UINTN)(~0) - PayloadSize < StrSize(VariableName)){
2891 //
2892 // Prevent whole variable size overflow
2893 //
2894 return EFI_INVALID_PARAMETER;
2895 }
2896
2897 //
2898 // The size of the VariableName, including the Unicode Null in bytes plus
2899 // the DataSize is limited to maximum size of PcdGet32 (PcdMaxHardwareErrorVariableSize)
2900 // bytes for HwErrRec, and PcdGet32 (PcdMaxVariableSize) bytes for the others.
2901 //
2902 if ((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
2903 if (StrSize (VariableName) + PayloadSize > PcdGet32 (PcdMaxHardwareErrorVariableSize) - sizeof (VARIABLE_HEADER)) {
2904 return EFI_INVALID_PARAMETER;
2905 }
2906 if (!IsHwErrRecVariable(VariableName, VendorGuid)) {
2907 return EFI_INVALID_PARAMETER;
2908 }
2909 } else {
2910 //
2911 // The size of the VariableName, including the Unicode Null in bytes plus
2912 // the DataSize is limited to maximum size of PcdGet32 (PcdMaxVariableSize) bytes.
2913 //
2914 if (StrSize (VariableName) + PayloadSize > PcdGet32 (PcdMaxVariableSize) - sizeof (VARIABLE_HEADER)) {
2915 return EFI_INVALID_PARAMETER;
2916 }
2917 }
2918
2919 Status = CheckEfiGlobalVariable (VariableName, VendorGuid, Attributes);
2920 if (EFI_ERROR (Status)) {
2921 return Status;
2922 }
2923
2924 AcquireLockOnlyAtBootTime(&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
2925
2926 //
2927 // Consider reentrant in MCA/INIT/NMI. It needs be reupdated.
2928 //
2929 if (1 < InterlockedIncrement (&mVariableModuleGlobal->VariableGlobal.ReentrantState)) {
2930 Point = mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase;
2931 //
2932 // Parse non-volatile variable data and get last variable offset.
2933 //
2934 NextVariable = GetStartPointer ((VARIABLE_STORE_HEADER *) (UINTN) Point);
2935 while ((NextVariable < GetEndPointer ((VARIABLE_STORE_HEADER *) (UINTN) Point))
2936 && IsValidVariableHeader (NextVariable)) {
2937 NextVariable = GetNextVariablePtr (NextVariable);
2938 }
2939 mVariableModuleGlobal->NonVolatileLastVariableOffset = (UINTN) NextVariable - (UINTN) Point;
2940 }
2941
2942 if (mEndOfDxe && mEnableLocking) {
2943 //
2944 // Treat the variables listed in the forbidden variable list as read-only after leaving DXE phase.
2945 //
2946 for ( Link = GetFirstNode (&mLockedVariableList)
2947 ; !IsNull (&mLockedVariableList, Link)
2948 ; Link = GetNextNode (&mLockedVariableList, Link)
2949 ) {
2950 Entry = BASE_CR (Link, VARIABLE_ENTRY, Link);
2951 if (CompareGuid (&Entry->Guid, VendorGuid) && (StrCmp (Entry->Name, VariableName) == 0)) {
2952 Status = EFI_WRITE_PROTECTED;
2953 DEBUG ((EFI_D_INFO, "[Variable]: Changing readonly variable after leaving DXE phase - %g:%s\n", VendorGuid, VariableName));
2954 goto Done;
2955 }
2956 }
2957 }
2958
2959 //
2960 // Check whether the input variable is already existed.
2961 //
2962 Status = FindVariable (VariableName, VendorGuid, &Variable, &mVariableModuleGlobal->VariableGlobal, TRUE);
2963 if (!EFI_ERROR (Status)) {
2964 if (((Variable.CurrPtr->Attributes & EFI_VARIABLE_RUNTIME_ACCESS) == 0) && AtRuntime ()) {
2965 Status = EFI_WRITE_PROTECTED;
2966 goto Done;
2967 }
2968 if (Attributes != 0 && (Attributes & (~EFI_VARIABLE_APPEND_WRITE)) != Variable.CurrPtr->Attributes) {
2969 //
2970 // If a preexisting variable is rewritten with different attributes, SetVariable() shall not
2971 // modify the variable and shall return EFI_INVALID_PARAMETER. Two exceptions to this rule:
2972 // 1. No access attributes specified
2973 // 2. The only attribute differing is EFI_VARIABLE_APPEND_WRITE
2974 //
2975 Status = EFI_INVALID_PARAMETER;
2976 goto Done;
2977 }
2978 }
2979
2980 //
2981 // Hook the operation of setting PlatformLangCodes/PlatformLang and LangCodes/Lang.
2982 //
2983 AutoUpdateLangVariable (VariableName, Data, DataSize);
2984 //
2985 // Process PK, KEK, Sigdb seperately.
2986 //
2987 if (CompareGuid (VendorGuid, &gEfiGlobalVariableGuid) && (StrCmp (VariableName, EFI_PLATFORM_KEY_NAME) == 0)){
2988 Status = ProcessVarWithPk (VariableName, VendorGuid, Data, DataSize, &Variable, Attributes, TRUE);
2989 } else if (CompareGuid (VendorGuid, &gEfiGlobalVariableGuid) && (StrCmp (VariableName, EFI_KEY_EXCHANGE_KEY_NAME) == 0)) {
2990 Status = ProcessVarWithPk (VariableName, VendorGuid, Data, DataSize, &Variable, Attributes, FALSE);
2991 } else if (CompareGuid (VendorGuid, &gEfiImageSecurityDatabaseGuid) &&
2992 ((StrCmp (VariableName, EFI_IMAGE_SECURITY_DATABASE) == 0) || (StrCmp (VariableName, EFI_IMAGE_SECURITY_DATABASE1) == 0))) {
2993 Status = ProcessVarWithPk (VariableName, VendorGuid, Data, DataSize, &Variable, Attributes, FALSE);
2994 if (EFI_ERROR (Status)) {
2995 Status = ProcessVarWithKek (VariableName, VendorGuid, Data, DataSize, &Variable, Attributes);
2996 }
2997 } else {
2998 Status = ProcessVariable (VariableName, VendorGuid, Data, DataSize, &Variable, Attributes);
2999 }
3000
3001 Done:
3002 InterlockedDecrement (&mVariableModuleGlobal->VariableGlobal.ReentrantState);
3003 ReleaseLockOnlyAtBootTime (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
3004
3005 if (!AtRuntime ()) {
3006 if (!EFI_ERROR (Status)) {
3007 SecureBootHook (
3008 VariableName,
3009 VendorGuid
3010 );
3011 }
3012 }
3013
3014 return Status;
3015 }
3016
3017 /**
3018
3019 This code returns information about the EFI variables.
3020
3021 Caution: This function may receive untrusted input.
3022 This function may be invoked in SMM mode. This function will do basic validation, before parse the data.
3023
3024 @param Attributes Attributes bitmask to specify the type of variables
3025 on which to return information.
3026 @param MaximumVariableStorageSize Pointer to the maximum size of the storage space available
3027 for the EFI variables associated with the attributes specified.
3028 @param RemainingVariableStorageSize Pointer to the remaining size of the storage space available
3029 for EFI variables associated with the attributes specified.
3030 @param MaximumVariableSize Pointer to the maximum size of an individual EFI variables
3031 associated with the attributes specified.
3032
3033 @return EFI_INVALID_PARAMETER An invalid combination of attribute bits was supplied.
3034 @return EFI_SUCCESS Query successfully.
3035 @return EFI_UNSUPPORTED The attribute is not supported on this platform.
3036
3037 **/
3038 EFI_STATUS
3039 EFIAPI
3040 VariableServiceQueryVariableInfo (
3041 IN UINT32 Attributes,
3042 OUT UINT64 *MaximumVariableStorageSize,
3043 OUT UINT64 *RemainingVariableStorageSize,
3044 OUT UINT64 *MaximumVariableSize
3045 )
3046 {
3047 VARIABLE_HEADER *Variable;
3048 VARIABLE_HEADER *NextVariable;
3049 UINT64 VariableSize;
3050 VARIABLE_STORE_HEADER *VariableStoreHeader;
3051 UINT64 CommonVariableTotalSize;
3052 UINT64 HwErrVariableTotalSize;
3053
3054 CommonVariableTotalSize = 0;
3055 HwErrVariableTotalSize = 0;
3056
3057 if(MaximumVariableStorageSize == NULL || RemainingVariableStorageSize == NULL || MaximumVariableSize == NULL || Attributes == 0) {
3058 return EFI_INVALID_PARAMETER;
3059 }
3060
3061 if((Attributes & (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_BOOTSERVICE_ACCESS | EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) == 0) {
3062 //
3063 // Make sure the Attributes combination is supported by the platform.
3064 //
3065 return EFI_UNSUPPORTED;
3066 } else if ((Attributes & (EFI_VARIABLE_RUNTIME_ACCESS | EFI_VARIABLE_BOOTSERVICE_ACCESS)) == EFI_VARIABLE_RUNTIME_ACCESS) {
3067 //
3068 // Make sure if runtime bit is set, boot service bit is set also.
3069 //
3070 return EFI_INVALID_PARAMETER;
3071 } else if (AtRuntime () && ((Attributes & EFI_VARIABLE_RUNTIME_ACCESS) == 0)) {
3072 //
3073 // Make sure RT Attribute is set if we are in Runtime phase.
3074 //
3075 return EFI_INVALID_PARAMETER;
3076 } else if ((Attributes & (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
3077 //
3078 // Make sure Hw Attribute is set with NV.
3079 //
3080 return EFI_INVALID_PARAMETER;
3081 }
3082
3083 AcquireLockOnlyAtBootTime(&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
3084
3085 if((Attributes & EFI_VARIABLE_NON_VOLATILE) == 0) {
3086 //
3087 // Query is Volatile related.
3088 //
3089 VariableStoreHeader = (VARIABLE_STORE_HEADER *) ((UINTN) mVariableModuleGlobal->VariableGlobal.VolatileVariableBase);
3090 } else {
3091 //
3092 // Query is Non-Volatile related.
3093 //
3094 VariableStoreHeader = mNvVariableCache;
3095 }
3096
3097 //
3098 // Now let's fill *MaximumVariableStorageSize *RemainingVariableStorageSize
3099 // with the storage size (excluding the storage header size).
3100 //
3101 *MaximumVariableStorageSize = VariableStoreHeader->Size - sizeof (VARIABLE_STORE_HEADER);
3102
3103 //
3104 // Harware error record variable needs larger size.
3105 //
3106 if ((Attributes & (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) == (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
3107 *MaximumVariableStorageSize = PcdGet32 (PcdHwErrStorageSize);
3108 *MaximumVariableSize = PcdGet32 (PcdMaxHardwareErrorVariableSize) - sizeof (VARIABLE_HEADER);
3109 } else {
3110 if ((Attributes & EFI_VARIABLE_NON_VOLATILE) != 0) {
3111 ASSERT (PcdGet32 (PcdHwErrStorageSize) < VariableStoreHeader->Size);
3112 *MaximumVariableStorageSize = VariableStoreHeader->Size - sizeof (VARIABLE_STORE_HEADER) - PcdGet32 (PcdHwErrStorageSize);
3113 }
3114
3115 //
3116 // Let *MaximumVariableSize be PcdGet32 (PcdMaxVariableSize) with the exception of the variable header size.
3117 //
3118 *MaximumVariableSize = PcdGet32 (PcdMaxVariableSize) - sizeof (VARIABLE_HEADER);
3119 }
3120
3121 //
3122 // Point to the starting address of the variables.
3123 //
3124 Variable = GetStartPointer (VariableStoreHeader);
3125
3126 //
3127 // Now walk through the related variable store.
3128 //
3129 while ((Variable < GetEndPointer (VariableStoreHeader)) && IsValidVariableHeader (Variable)) {
3130 NextVariable = GetNextVariablePtr (Variable);
3131 VariableSize = (UINT64) (UINTN) NextVariable - (UINT64) (UINTN) Variable;
3132
3133 if (AtRuntime ()) {
3134 //
3135 // We don't take the state of the variables in mind
3136 // when calculating RemainingVariableStorageSize,
3137 // since the space occupied by variables not marked with
3138 // VAR_ADDED is not allowed to be reclaimed in Runtime.
3139 //
3140 if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
3141 HwErrVariableTotalSize += VariableSize;
3142 } else {
3143 CommonVariableTotalSize += VariableSize;
3144 }
3145 } else {
3146 //
3147 // Only care about Variables with State VAR_ADDED, because
3148 // the space not marked as VAR_ADDED is reclaimable now.
3149 //
3150 if (Variable->State == VAR_ADDED) {
3151 if ((Variable->Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD) {
3152 HwErrVariableTotalSize += VariableSize;
3153 } else {
3154 CommonVariableTotalSize += VariableSize;
3155 }
3156 }
3157 }
3158
3159 //
3160 // Go to the next one.
3161 //
3162 Variable = NextVariable;
3163 }
3164
3165 if ((Attributes & EFI_VARIABLE_HARDWARE_ERROR_RECORD) == EFI_VARIABLE_HARDWARE_ERROR_RECORD){
3166 *RemainingVariableStorageSize = *MaximumVariableStorageSize - HwErrVariableTotalSize;
3167 }else {
3168 *RemainingVariableStorageSize = *MaximumVariableStorageSize - CommonVariableTotalSize;
3169 }
3170
3171 if (*RemainingVariableStorageSize < sizeof (VARIABLE_HEADER)) {
3172 *MaximumVariableSize = 0;
3173 } else if ((*RemainingVariableStorageSize - sizeof (VARIABLE_HEADER)) < *MaximumVariableSize) {
3174 *MaximumVariableSize = *RemainingVariableStorageSize - sizeof (VARIABLE_HEADER);
3175 }
3176
3177 ReleaseLockOnlyAtBootTime (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock);
3178 return EFI_SUCCESS;
3179 }
3180
3181
3182 /**
3183 This function reclaims variable storage if free size is below the threshold.
3184
3185 Caution: This function may be invoked at SMM mode.
3186 Care must be taken to make sure not security issue.
3187
3188 **/
3189 VOID
3190 ReclaimForOS(
3191 VOID
3192 )
3193 {
3194 EFI_STATUS Status;
3195 UINTN CommonVariableSpace;
3196 UINTN RemainingCommonVariableSpace;
3197 UINTN RemainingHwErrVariableSpace;
3198
3199 Status = EFI_SUCCESS;
3200
3201 CommonVariableSpace = ((VARIABLE_STORE_HEADER *) ((UINTN) (mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase)))->Size - sizeof (VARIABLE_STORE_HEADER) - PcdGet32(PcdHwErrStorageSize); //Allowable max size of common variable storage space
3202
3203 RemainingCommonVariableSpace = CommonVariableSpace - mVariableModuleGlobal->CommonVariableTotalSize;
3204
3205 RemainingHwErrVariableSpace = PcdGet32 (PcdHwErrStorageSize) - mVariableModuleGlobal->HwErrVariableTotalSize;
3206 //
3207 // Check if the free area is blow a threshold.
3208 //
3209 if ((RemainingCommonVariableSpace < PcdGet32 (PcdMaxVariableSize))
3210 || ((PcdGet32 (PcdHwErrStorageSize) != 0) &&
3211 (RemainingHwErrVariableSpace < PcdGet32 (PcdMaxHardwareErrorVariableSize)))){
3212 Status = Reclaim (
3213 mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase,
3214 &mVariableModuleGlobal->NonVolatileLastVariableOffset,
3215 FALSE,
3216 NULL,
3217 NULL,
3218 0,
3219 FALSE
3220 );
3221 ASSERT_EFI_ERROR (Status);
3222 }
3223 }
3224
3225 /**
3226 Init non-volatile variable store.
3227
3228 @retval EFI_SUCCESS Function successfully executed.
3229 @retval EFI_OUT_OF_RESOURCES Fail to allocate enough memory resource.
3230 @retval EFI_VOLUME_CORRUPTED Variable Store or Firmware Volume for Variable Store is corrupted.
3231
3232 **/
3233 EFI_STATUS
3234 InitNonVolatileVariableStore (
3235 VOID
3236 )
3237 {
3238 EFI_FIRMWARE_VOLUME_HEADER *FvHeader;
3239 VARIABLE_HEADER *NextVariable;
3240 EFI_PHYSICAL_ADDRESS VariableStoreBase;
3241 UINT64 VariableStoreLength;
3242 UINTN VariableSize;
3243 EFI_HOB_GUID_TYPE *GuidHob;
3244 EFI_PHYSICAL_ADDRESS NvStorageBase;
3245 UINT8 *NvStorageData;
3246 UINT32 NvStorageSize;
3247 FAULT_TOLERANT_WRITE_LAST_WRITE_DATA *FtwLastWriteData;
3248 UINT32 BackUpOffset;
3249 UINT32 BackUpSize;
3250
3251 mVariableModuleGlobal->FvbInstance = NULL;
3252
3253 //
3254 // Note that in EdkII variable driver implementation, Hardware Error Record type variable
3255 // is stored with common variable in the same NV region. So the platform integrator should
3256 // ensure that the value of PcdHwErrStorageSize is less than or equal to the value of
3257 // PcdFlashNvStorageVariableSize.
3258 //
3259 ASSERT (PcdGet32 (PcdHwErrStorageSize) <= PcdGet32 (PcdFlashNvStorageVariableSize));
3260
3261 //
3262 // Allocate runtime memory used for a memory copy of the FLASH region.
3263 // Keep the memory and the FLASH in sync as updates occur.
3264 //
3265 NvStorageSize = PcdGet32 (PcdFlashNvStorageVariableSize);
3266 NvStorageData = AllocateRuntimeZeroPool (NvStorageSize);
3267 if (NvStorageData == NULL) {
3268 return EFI_OUT_OF_RESOURCES;
3269 }
3270
3271 NvStorageBase = (EFI_PHYSICAL_ADDRESS) PcdGet64 (PcdFlashNvStorageVariableBase64);
3272 if (NvStorageBase == 0) {
3273 NvStorageBase = (EFI_PHYSICAL_ADDRESS) PcdGet32 (PcdFlashNvStorageVariableBase);
3274 }
3275 //
3276 // Copy NV storage data to the memory buffer.
3277 //
3278 CopyMem (NvStorageData, (UINT8 *) (UINTN) NvStorageBase, NvStorageSize);
3279
3280 //
3281 // Check the FTW last write data hob.
3282 //
3283 GuidHob = GetFirstGuidHob (&gEdkiiFaultTolerantWriteGuid);
3284 if (GuidHob != NULL) {
3285 FtwLastWriteData = (FAULT_TOLERANT_WRITE_LAST_WRITE_DATA *) GET_GUID_HOB_DATA (GuidHob);
3286 if (FtwLastWriteData->TargetAddress == NvStorageBase) {
3287 DEBUG ((EFI_D_INFO, "Variable: NV storage is backed up in spare block: 0x%x\n", (UINTN) FtwLastWriteData->SpareAddress));
3288 //
3289 // Copy the backed up NV storage data to the memory buffer from spare block.
3290 //
3291 CopyMem (NvStorageData, (UINT8 *) (UINTN) (FtwLastWriteData->SpareAddress), NvStorageSize);
3292 } else if ((FtwLastWriteData->TargetAddress > NvStorageBase) &&
3293 (FtwLastWriteData->TargetAddress < (NvStorageBase + NvStorageSize))) {
3294 //
3295 // Flash NV storage from the Offset is backed up in spare block.
3296 //
3297 BackUpOffset = (UINT32) (FtwLastWriteData->TargetAddress - NvStorageBase);
3298 BackUpSize = NvStorageSize - BackUpOffset;
3299 DEBUG ((EFI_D_INFO, "Variable: High partial NV storage from offset: %x is backed up in spare block: 0x%x\n", BackUpOffset, (UINTN) FtwLastWriteData->SpareAddress));
3300 //
3301 // Copy the partial backed up NV storage data to the memory buffer from spare block.
3302 //
3303 CopyMem (NvStorageData + BackUpOffset, (UINT8 *) (UINTN) FtwLastWriteData->SpareAddress, BackUpSize);
3304 }
3305 }
3306
3307 FvHeader = (EFI_FIRMWARE_VOLUME_HEADER *) NvStorageData;
3308
3309 //
3310 // Check if the Firmware Volume is not corrupted
3311 //
3312 if ((FvHeader->Signature != EFI_FVH_SIGNATURE) || (!CompareGuid (&gEfiSystemNvDataFvGuid, &FvHeader->FileSystemGuid))) {
3313 FreePool (NvStorageData);
3314 DEBUG ((EFI_D_ERROR, "Firmware Volume for Variable Store is corrupted\n"));
3315 return EFI_VOLUME_CORRUPTED;
3316 }
3317
3318 VariableStoreBase = (EFI_PHYSICAL_ADDRESS) ((UINTN) FvHeader + FvHeader->HeaderLength);
3319 VariableStoreLength = (UINT64) (NvStorageSize - FvHeader->HeaderLength);
3320
3321 mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase = VariableStoreBase;
3322 mNvVariableCache = (VARIABLE_STORE_HEADER *) (UINTN) VariableStoreBase;
3323 if (GetVariableStoreStatus (mNvVariableCache) != EfiValid) {
3324 FreePool (NvStorageData);
3325 DEBUG((EFI_D_ERROR, "Variable Store header is corrupted\n"));
3326 return EFI_VOLUME_CORRUPTED;
3327 }
3328 ASSERT(mNvVariableCache->Size == VariableStoreLength);
3329
3330 //
3331 // The max variable or hardware error variable size should be < variable store size.
3332 //
3333 ASSERT(MAX (PcdGet32 (PcdMaxVariableSize), PcdGet32 (PcdMaxHardwareErrorVariableSize)) < VariableStoreLength);
3334
3335 //
3336 // Parse non-volatile variable data and get last variable offset.
3337 //
3338 NextVariable = GetStartPointer ((VARIABLE_STORE_HEADER *)(UINTN)VariableStoreBase);
3339 while (IsValidVariableHeader (NextVariable)) {
3340 VariableSize = NextVariable->NameSize + NextVariable->DataSize + sizeof (VARIABLE_HEADER);
3341 if ((NextVariable->Attributes & (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) == (EFI_VARIABLE_NON_VOLATILE | EFI_VARIABLE_HARDWARE_ERROR_RECORD)) {
3342 mVariableModuleGlobal->HwErrVariableTotalSize += HEADER_ALIGN (VariableSize);
3343 } else {
3344 mVariableModuleGlobal->CommonVariableTotalSize += HEADER_ALIGN (VariableSize);
3345 }
3346
3347 NextVariable = GetNextVariablePtr (NextVariable);
3348 }
3349 mVariableModuleGlobal->NonVolatileLastVariableOffset = (UINTN) NextVariable - (UINTN) VariableStoreBase;
3350
3351 return EFI_SUCCESS;
3352 }
3353
3354 /**
3355 Flush the HOB variable to flash.
3356
3357 @param[in] VariableName Name of variable has been updated or deleted.
3358 @param[in] VendorGuid Guid of variable has been updated or deleted.
3359
3360 **/
3361 VOID
3362 FlushHobVariableToFlash (
3363 IN CHAR16 *VariableName,
3364 IN EFI_GUID *VendorGuid
3365 )
3366 {
3367 EFI_STATUS Status;
3368 VARIABLE_STORE_HEADER *VariableStoreHeader;
3369 VARIABLE_HEADER *Variable;
3370 VOID *VariableData;
3371 BOOLEAN ErrorFlag;
3372
3373 ErrorFlag = FALSE;
3374
3375 //
3376 // Flush the HOB variable to flash.
3377 //
3378 if (mVariableModuleGlobal->VariableGlobal.HobVariableBase != 0) {
3379 VariableStoreHeader = (VARIABLE_STORE_HEADER *) (UINTN) mVariableModuleGlobal->VariableGlobal.HobVariableBase;
3380 //
3381 // Set HobVariableBase to 0, it can avoid SetVariable to call back.
3382 //
3383 mVariableModuleGlobal->VariableGlobal.HobVariableBase = 0;
3384 for ( Variable = GetStartPointer (VariableStoreHeader)
3385 ; (Variable < GetEndPointer (VariableStoreHeader) && IsValidVariableHeader (Variable))
3386 ; Variable = GetNextVariablePtr (Variable)
3387 ) {
3388 if (Variable->State != VAR_ADDED) {
3389 //
3390 // The HOB variable has been set to DELETED state in local.
3391 //
3392 continue;
3393 }
3394 ASSERT ((Variable->Attributes & EFI_VARIABLE_NON_VOLATILE) != 0);
3395 if (VendorGuid == NULL || VariableName == NULL ||
3396 !CompareGuid (VendorGuid, &Variable->VendorGuid) ||
3397 StrCmp (VariableName, GetVariableNamePtr (Variable)) != 0) {
3398 VariableData = GetVariableDataPtr (Variable);
3399 Status = VariableServiceSetVariable (
3400 GetVariableNamePtr (Variable),
3401 &Variable->VendorGuid,
3402 Variable->Attributes,
3403 Variable->DataSize,
3404 VariableData
3405 );
3406 DEBUG ((EFI_D_INFO, "Variable driver flush the HOB variable to flash: %g %s %r\n", &Variable->VendorGuid, GetVariableNamePtr (Variable), Status));
3407 } else {
3408 //
3409 // The updated or deleted variable is matched with the HOB variable.
3410 // Don't break here because we will try to set other HOB variables
3411 // since this variable could be set successfully.
3412 //
3413 Status = EFI_SUCCESS;
3414 }
3415 if (!EFI_ERROR (Status)) {
3416 //
3417 // If set variable successful, or the updated or deleted variable is matched with the HOB variable,
3418 // set the HOB variable to DELETED state in local.
3419 //
3420 DEBUG ((EFI_D_INFO, "Variable driver set the HOB variable to DELETED state in local: %g %s\n", &Variable->VendorGuid, GetVariableNamePtr (Variable)));
3421 Variable->State &= VAR_DELETED;
3422 } else {
3423 ErrorFlag = TRUE;
3424 }
3425 }
3426 if (ErrorFlag) {
3427 //
3428 // We still have HOB variable(s) not flushed in flash.
3429 //
3430 mVariableModuleGlobal->VariableGlobal.HobVariableBase = (EFI_PHYSICAL_ADDRESS) (UINTN) VariableStoreHeader;
3431 } else {
3432 //
3433 // All HOB variables have been flushed in flash.
3434 //
3435 DEBUG ((EFI_D_INFO, "Variable driver: all HOB variables have been flushed in flash.\n"));
3436 if (!AtRuntime ()) {
3437 FreePool ((VOID *) VariableStoreHeader);
3438 }
3439 }
3440 }
3441
3442 }
3443
3444 /**
3445 Initializes variable write service after FTW was ready.
3446
3447 @retval EFI_SUCCESS Function successfully executed.
3448 @retval Others Fail to initialize the variable service.
3449
3450 **/
3451 EFI_STATUS
3452 VariableWriteServiceInitialize (
3453 VOID
3454 )
3455 {
3456 EFI_STATUS Status;
3457 VARIABLE_STORE_HEADER *VariableStoreHeader;
3458 UINTN Index;
3459 UINT8 Data;
3460 EFI_PHYSICAL_ADDRESS VariableStoreBase;
3461 EFI_PHYSICAL_ADDRESS NvStorageBase;
3462
3463 NvStorageBase = (EFI_PHYSICAL_ADDRESS) PcdGet64 (PcdFlashNvStorageVariableBase64);
3464 if (NvStorageBase == 0) {
3465 NvStorageBase = (EFI_PHYSICAL_ADDRESS) PcdGet32 (PcdFlashNvStorageVariableBase);
3466 }
3467 VariableStoreBase = NvStorageBase + (((EFI_FIRMWARE_VOLUME_HEADER *)(UINTN)(NvStorageBase))->HeaderLength);
3468
3469 //
3470 // Let NonVolatileVariableBase point to flash variable store base directly after FTW ready.
3471 //
3472 mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase = VariableStoreBase;
3473 VariableStoreHeader = (VARIABLE_STORE_HEADER *)(UINTN)VariableStoreBase;
3474
3475 //
3476 // Check if the free area is really free.
3477 //
3478 for (Index = mVariableModuleGlobal->NonVolatileLastVariableOffset; Index < VariableStoreHeader->Size; Index++) {
3479 Data = ((UINT8 *) mNvVariableCache)[Index];
3480 if (Data != 0xff) {
3481 //
3482 // There must be something wrong in variable store, do reclaim operation.
3483 //
3484 Status = Reclaim (
3485 mVariableModuleGlobal->VariableGlobal.NonVolatileVariableBase,
3486 &mVariableModuleGlobal->NonVolatileLastVariableOffset,
3487 FALSE,
3488 NULL,
3489 NULL,
3490 0,
3491 FALSE
3492 );
3493 if (EFI_ERROR (Status)) {
3494 return Status;
3495 }
3496 break;
3497 }
3498 }
3499
3500 FlushHobVariableToFlash (NULL, NULL);
3501
3502 //
3503 // Authenticated variable initialize.
3504 //
3505 Status = AutenticatedVariableServiceInitialize ();
3506
3507 return Status;
3508 }
3509
3510
3511 /**
3512 Initializes variable store area for non-volatile and volatile variable.
3513
3514 @retval EFI_SUCCESS Function successfully executed.
3515 @retval EFI_OUT_OF_RESOURCES Fail to allocate enough memory resource.
3516
3517 **/
3518 EFI_STATUS
3519 VariableCommonInitialize (
3520 VOID
3521 )
3522 {
3523 EFI_STATUS Status;
3524 VARIABLE_STORE_HEADER *VolatileVariableStore;
3525 VARIABLE_STORE_HEADER *VariableStoreHeader;
3526 UINT64 VariableStoreLength;
3527 UINTN ScratchSize;
3528 EFI_HOB_GUID_TYPE *GuidHob;
3529
3530 //
3531 // Allocate runtime memory for variable driver global structure.
3532 //
3533 mVariableModuleGlobal = AllocateRuntimeZeroPool (sizeof (VARIABLE_MODULE_GLOBAL));
3534 if (mVariableModuleGlobal == NULL) {
3535 return EFI_OUT_OF_RESOURCES;
3536 }
3537
3538 InitializeLock (&mVariableModuleGlobal->VariableGlobal.VariableServicesLock, TPL_NOTIFY);
3539
3540 //
3541 // Get HOB variable store.
3542 //
3543 GuidHob = GetFirstGuidHob (&gEfiAuthenticatedVariableGuid);
3544 if (GuidHob != NULL) {
3545 VariableStoreHeader = GET_GUID_HOB_DATA (GuidHob);
3546 VariableStoreLength = (UINT64) (GuidHob->Header.HobLength - sizeof (EFI_HOB_GUID_TYPE));
3547 if (GetVariableStoreStatus (VariableStoreHeader) == EfiValid) {
3548 mVariableModuleGlobal->VariableGlobal.HobVariableBase = (EFI_PHYSICAL_ADDRESS) (UINTN) AllocateRuntimeCopyPool ((UINTN) VariableStoreLength, (VOID *) VariableStoreHeader);
3549 if (mVariableModuleGlobal->VariableGlobal.HobVariableBase == 0) {
3550 FreePool (mVariableModuleGlobal);
3551 return EFI_OUT_OF_RESOURCES;
3552 }
3553 } else {
3554 DEBUG ((EFI_D_ERROR, "HOB Variable Store header is corrupted!\n"));
3555 }
3556 }
3557
3558 //
3559 // Allocate memory for volatile variable store, note that there is a scratch space to store scratch data.
3560 //
3561 ScratchSize = MAX (PcdGet32 (PcdMaxVariableSize), PcdGet32 (PcdMaxHardwareErrorVariableSize));
3562 VolatileVariableStore = AllocateRuntimePool (PcdGet32 (PcdVariableStoreSize) + ScratchSize);
3563 if (VolatileVariableStore == NULL) {
3564 if (mVariableModuleGlobal->VariableGlobal.HobVariableBase != 0) {
3565 FreePool ((VOID *) (UINTN) mVariableModuleGlobal->VariableGlobal.HobVariableBase);
3566 }
3567 FreePool (mVariableModuleGlobal);
3568 return EFI_OUT_OF_RESOURCES;
3569 }
3570
3571 SetMem (VolatileVariableStore, PcdGet32 (PcdVariableStoreSize) + ScratchSize, 0xff);
3572
3573 //
3574 // Initialize Variable Specific Data.
3575 //
3576 mVariableModuleGlobal->VariableGlobal.VolatileVariableBase = (EFI_PHYSICAL_ADDRESS) (UINTN) VolatileVariableStore;
3577 mVariableModuleGlobal->VolatileLastVariableOffset = (UINTN) GetStartPointer (VolatileVariableStore) - (UINTN) VolatileVariableStore;
3578
3579 CopyGuid (&VolatileVariableStore->Signature, &gEfiAuthenticatedVariableGuid);
3580 VolatileVariableStore->Size = PcdGet32 (PcdVariableStoreSize);
3581 VolatileVariableStore->Format = VARIABLE_STORE_FORMATTED;
3582 VolatileVariableStore->State = VARIABLE_STORE_HEALTHY;
3583 VolatileVariableStore->Reserved = 0;
3584 VolatileVariableStore->Reserved1 = 0;
3585
3586 //
3587 // Init non-volatile variable store.
3588 //
3589 Status = InitNonVolatileVariableStore ();
3590 if (EFI_ERROR (Status)) {
3591 if (mVariableModuleGlobal->VariableGlobal.HobVariableBase != 0) {
3592 FreePool ((VOID *) (UINTN) mVariableModuleGlobal->VariableGlobal.HobVariableBase);
3593 }
3594 FreePool (mVariableModuleGlobal);
3595 FreePool (VolatileVariableStore);
3596 }
3597
3598 return Status;
3599 }
3600
3601
3602 /**
3603 Get the proper fvb handle and/or fvb protocol by the given Flash address.
3604
3605 @param[in] Address The Flash address.
3606 @param[out] FvbHandle In output, if it is not NULL, it points to the proper FVB handle.
3607 @param[out] FvbProtocol In output, if it is not NULL, it points to the proper FVB protocol.
3608
3609 **/
3610 EFI_STATUS
3611 GetFvbInfoByAddress (
3612 IN EFI_PHYSICAL_ADDRESS Address,
3613 OUT EFI_HANDLE *FvbHandle OPTIONAL,
3614 OUT EFI_FIRMWARE_VOLUME_BLOCK_PROTOCOL **FvbProtocol OPTIONAL
3615 )
3616 {
3617 EFI_STATUS Status;
3618 EFI_HANDLE *HandleBuffer;
3619 UINTN HandleCount;
3620 UINTN Index;
3621 EFI_PHYSICAL_ADDRESS FvbBaseAddress;
3622 EFI_FIRMWARE_VOLUME_BLOCK_PROTOCOL *Fvb;
3623 EFI_FIRMWARE_VOLUME_HEADER *FwVolHeader;
3624 EFI_FVB_ATTRIBUTES_2 Attributes;
3625
3626 //
3627 // Get all FVB handles.
3628 //
3629 Status = GetFvbCountAndBuffer (&HandleCount, &HandleBuffer);
3630 if (EFI_ERROR (Status)) {
3631 return EFI_NOT_FOUND;
3632 }
3633
3634 //
3635 // Get the FVB to access variable store.
3636 //
3637 Fvb = NULL;
3638 for (Index = 0; Index < HandleCount; Index += 1, Status = EFI_NOT_FOUND, Fvb = NULL) {
3639 Status = GetFvbByHandle (HandleBuffer[Index], &Fvb);
3640 if (EFI_ERROR (Status)) {
3641 Status = EFI_NOT_FOUND;
3642 break;
3643 }
3644
3645 //
3646 // Ensure this FVB protocol supported Write operation.
3647 //
3648 Status = Fvb->GetAttributes (Fvb, &Attributes);
3649 if (EFI_ERROR (Status) || ((Attributes & EFI_FVB2_WRITE_STATUS) == 0)) {
3650 continue;
3651 }
3652
3653 //
3654 // Compare the address and select the right one.
3655 //
3656 Status = Fvb->GetPhysicalAddress (Fvb, &FvbBaseAddress);
3657 if (EFI_ERROR (Status)) {
3658 continue;
3659 }
3660
3661 FwVolHeader = (EFI_FIRMWARE_VOLUME_HEADER *) ((UINTN) FvbBaseAddress);
3662 if ((Address >= FvbBaseAddress) && (Address < (FvbBaseAddress + FwVolHeader->FvLength))) {
3663 if (FvbHandle != NULL) {
3664 *FvbHandle = HandleBuffer[Index];
3665 }
3666 if (FvbProtocol != NULL) {
3667 *FvbProtocol = Fvb;
3668 }
3669 Status = EFI_SUCCESS;
3670 break;
3671 }
3672 }
3673 FreePool (HandleBuffer);
3674
3675 if (Fvb == NULL) {
3676 Status = EFI_NOT_FOUND;
3677 }
3678
3679 return Status;
3680 }
3681