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1 /** @file
2 DXE Core Main Entry Point
3
4 Copyright (c) 2006 - 2016, Intel Corporation. All rights reserved.<BR>
5 This program and the accompanying materials
6 are licensed and made available under the terms and conditions of the BSD License
7 which accompanies this distribution. The full text of the license may be found at
8 http://opensource.org/licenses/bsd-license.php
9
10 THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,
11 WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.
12
13 **/
14
15 #include "DxeMain.h"
16
17 //
18 // DXE Core Global Variables for Protocols from PEI
19 //
20 EFI_HANDLE mDecompressHandle = NULL;
21
22 //
23 // DXE Core globals for Architecture Protocols
24 //
25 EFI_SECURITY_ARCH_PROTOCOL *gSecurity = NULL;
26 EFI_SECURITY2_ARCH_PROTOCOL *gSecurity2 = NULL;
27 EFI_CPU_ARCH_PROTOCOL *gCpu = NULL;
28 EFI_METRONOME_ARCH_PROTOCOL *gMetronome = NULL;
29 EFI_TIMER_ARCH_PROTOCOL *gTimer = NULL;
30 EFI_BDS_ARCH_PROTOCOL *gBds = NULL;
31 EFI_WATCHDOG_TIMER_ARCH_PROTOCOL *gWatchdogTimer = NULL;
32
33 //
34 // DXE Core globals for optional protocol dependencies
35 //
36 EFI_SMM_BASE2_PROTOCOL *gSmmBase2 = NULL;
37
38 //
39 // DXE Core Global used to update core loaded image protocol handle
40 //
41 EFI_GUID *gDxeCoreFileName;
42 EFI_LOADED_IMAGE_PROTOCOL *gDxeCoreLoadedImage;
43
44 //
45 // DXE Core Module Variables
46 //
47 EFI_BOOT_SERVICES mBootServices = {
48 {
49 EFI_BOOT_SERVICES_SIGNATURE, // Signature
50 EFI_BOOT_SERVICES_REVISION, // Revision
51 sizeof (EFI_BOOT_SERVICES), // HeaderSize
52 0, // CRC32
53 0 // Reserved
54 },
55 (EFI_RAISE_TPL) CoreRaiseTpl, // RaiseTPL
56 (EFI_RESTORE_TPL) CoreRestoreTpl, // RestoreTPL
57 (EFI_ALLOCATE_PAGES) CoreAllocatePages, // AllocatePages
58 (EFI_FREE_PAGES) CoreFreePages, // FreePages
59 (EFI_GET_MEMORY_MAP) CoreGetMemoryMap, // GetMemoryMap
60 (EFI_ALLOCATE_POOL) CoreAllocatePool, // AllocatePool
61 (EFI_FREE_POOL) CoreFreePool, // FreePool
62 (EFI_CREATE_EVENT) CoreCreateEvent, // CreateEvent
63 (EFI_SET_TIMER) CoreSetTimer, // SetTimer
64 (EFI_WAIT_FOR_EVENT) CoreWaitForEvent, // WaitForEvent
65 (EFI_SIGNAL_EVENT) CoreSignalEvent, // SignalEvent
66 (EFI_CLOSE_EVENT) CoreCloseEvent, // CloseEvent
67 (EFI_CHECK_EVENT) CoreCheckEvent, // CheckEvent
68 (EFI_INSTALL_PROTOCOL_INTERFACE) CoreInstallProtocolInterface, // InstallProtocolInterface
69 (EFI_REINSTALL_PROTOCOL_INTERFACE) CoreReinstallProtocolInterface, // ReinstallProtocolInterface
70 (EFI_UNINSTALL_PROTOCOL_INTERFACE) CoreUninstallProtocolInterface, // UninstallProtocolInterface
71 (EFI_HANDLE_PROTOCOL) CoreHandleProtocol, // HandleProtocol
72 (VOID *) NULL, // Reserved
73 (EFI_REGISTER_PROTOCOL_NOTIFY) CoreRegisterProtocolNotify, // RegisterProtocolNotify
74 (EFI_LOCATE_HANDLE) CoreLocateHandle, // LocateHandle
75 (EFI_LOCATE_DEVICE_PATH) CoreLocateDevicePath, // LocateDevicePath
76 (EFI_INSTALL_CONFIGURATION_TABLE) CoreInstallConfigurationTable, // InstallConfigurationTable
77 (EFI_IMAGE_LOAD) CoreLoadImage, // LoadImage
78 (EFI_IMAGE_START) CoreStartImage, // StartImage
79 (EFI_EXIT) CoreExit, // Exit
80 (EFI_IMAGE_UNLOAD) CoreUnloadImage, // UnloadImage
81 (EFI_EXIT_BOOT_SERVICES) CoreExitBootServices, // ExitBootServices
82 (EFI_GET_NEXT_MONOTONIC_COUNT) CoreEfiNotAvailableYetArg1, // GetNextMonotonicCount
83 (EFI_STALL) CoreStall, // Stall
84 (EFI_SET_WATCHDOG_TIMER) CoreSetWatchdogTimer, // SetWatchdogTimer
85 (EFI_CONNECT_CONTROLLER) CoreConnectController, // ConnectController
86 (EFI_DISCONNECT_CONTROLLER) CoreDisconnectController, // DisconnectController
87 (EFI_OPEN_PROTOCOL) CoreOpenProtocol, // OpenProtocol
88 (EFI_CLOSE_PROTOCOL) CoreCloseProtocol, // CloseProtocol
89 (EFI_OPEN_PROTOCOL_INFORMATION) CoreOpenProtocolInformation, // OpenProtocolInformation
90 (EFI_PROTOCOLS_PER_HANDLE) CoreProtocolsPerHandle, // ProtocolsPerHandle
91 (EFI_LOCATE_HANDLE_BUFFER) CoreLocateHandleBuffer, // LocateHandleBuffer
92 (EFI_LOCATE_PROTOCOL) CoreLocateProtocol, // LocateProtocol
93 (EFI_INSTALL_MULTIPLE_PROTOCOL_INTERFACES) CoreInstallMultipleProtocolInterfaces, // InstallMultipleProtocolInterfaces
94 (EFI_UNINSTALL_MULTIPLE_PROTOCOL_INTERFACES) CoreUninstallMultipleProtocolInterfaces, // UninstallMultipleProtocolInterfaces
95 (EFI_CALCULATE_CRC32) CoreEfiNotAvailableYetArg3, // CalculateCrc32
96 (EFI_COPY_MEM) CopyMem, // CopyMem
97 (EFI_SET_MEM) SetMem, // SetMem
98 (EFI_CREATE_EVENT_EX) CoreCreateEventEx // CreateEventEx
99 };
100
101 EFI_DXE_SERVICES mDxeServices = {
102 {
103 DXE_SERVICES_SIGNATURE, // Signature
104 DXE_SERVICES_REVISION, // Revision
105 sizeof (DXE_SERVICES), // HeaderSize
106 0, // CRC32
107 0 // Reserved
108 },
109 (EFI_ADD_MEMORY_SPACE) CoreAddMemorySpace, // AddMemorySpace
110 (EFI_ALLOCATE_MEMORY_SPACE) CoreAllocateMemorySpace, // AllocateMemorySpace
111 (EFI_FREE_MEMORY_SPACE) CoreFreeMemorySpace, // FreeMemorySpace
112 (EFI_REMOVE_MEMORY_SPACE) CoreRemoveMemorySpace, // RemoveMemorySpace
113 (EFI_GET_MEMORY_SPACE_DESCRIPTOR) CoreGetMemorySpaceDescriptor, // GetMemorySpaceDescriptor
114 (EFI_SET_MEMORY_SPACE_ATTRIBUTES) CoreSetMemorySpaceAttributes, // SetMemorySpaceAttributes
115 (EFI_GET_MEMORY_SPACE_MAP) CoreGetMemorySpaceMap, // GetMemorySpaceMap
116 (EFI_ADD_IO_SPACE) CoreAddIoSpace, // AddIoSpace
117 (EFI_ALLOCATE_IO_SPACE) CoreAllocateIoSpace, // AllocateIoSpace
118 (EFI_FREE_IO_SPACE) CoreFreeIoSpace, // FreeIoSpace
119 (EFI_REMOVE_IO_SPACE) CoreRemoveIoSpace, // RemoveIoSpace
120 (EFI_GET_IO_SPACE_DESCRIPTOR) CoreGetIoSpaceDescriptor, // GetIoSpaceDescriptor
121 (EFI_GET_IO_SPACE_MAP) CoreGetIoSpaceMap, // GetIoSpaceMap
122 (EFI_DISPATCH) CoreDispatcher, // Dispatch
123 (EFI_SCHEDULE) CoreSchedule, // Schedule
124 (EFI_TRUST) CoreTrust, // Trust
125 (EFI_PROCESS_FIRMWARE_VOLUME) CoreProcessFirmwareVolume, // ProcessFirmwareVolume
126 (EFI_SET_MEMORY_SPACE_CAPABILITIES)CoreSetMemorySpaceCapabilities, // SetMemorySpaceCapabilities
127 };
128
129 EFI_SYSTEM_TABLE mEfiSystemTableTemplate = {
130 {
131 EFI_SYSTEM_TABLE_SIGNATURE, // Signature
132 EFI_SYSTEM_TABLE_REVISION, // Revision
133 sizeof (EFI_SYSTEM_TABLE), // HeaderSize
134 0, // CRC32
135 0 // Reserved
136 },
137 NULL, // FirmwareVendor
138 0, // FirmwareRevision
139 NULL, // ConsoleInHandle
140 NULL, // ConIn
141 NULL, // ConsoleOutHandle
142 NULL, // ConOut
143 NULL, // StandardErrorHandle
144 NULL, // StdErr
145 NULL, // RuntimeServices
146 &mBootServices, // BootServices
147 0, // NumberOfConfigurationTableEntries
148 NULL // ConfigurationTable
149 };
150
151 EFI_RUNTIME_SERVICES mEfiRuntimeServicesTableTemplate = {
152 {
153 EFI_RUNTIME_SERVICES_SIGNATURE, // Signature
154 EFI_RUNTIME_SERVICES_REVISION, // Revision
155 sizeof (EFI_RUNTIME_SERVICES), // HeaderSize
156 0, // CRC32
157 0 // Reserved
158 },
159 (EFI_GET_TIME) CoreEfiNotAvailableYetArg2, // GetTime
160 (EFI_SET_TIME) CoreEfiNotAvailableYetArg1, // SetTime
161 (EFI_GET_WAKEUP_TIME) CoreEfiNotAvailableYetArg3, // GetWakeupTime
162 (EFI_SET_WAKEUP_TIME) CoreEfiNotAvailableYetArg2, // SetWakeupTime
163 (EFI_SET_VIRTUAL_ADDRESS_MAP) CoreEfiNotAvailableYetArg4, // SetVirtualAddressMap
164 (EFI_CONVERT_POINTER) CoreEfiNotAvailableYetArg2, // ConvertPointer
165 (EFI_GET_VARIABLE) CoreEfiNotAvailableYetArg5, // GetVariable
166 (EFI_GET_NEXT_VARIABLE_NAME) CoreEfiNotAvailableYetArg3, // GetNextVariableName
167 (EFI_SET_VARIABLE) CoreEfiNotAvailableYetArg5, // SetVariable
168 (EFI_GET_NEXT_HIGH_MONO_COUNT) CoreEfiNotAvailableYetArg1, // GetNextHighMonotonicCount
169 (EFI_RESET_SYSTEM) CoreEfiNotAvailableYetArg4, // ResetSystem
170 (EFI_UPDATE_CAPSULE) CoreEfiNotAvailableYetArg3, // UpdateCapsule
171 (EFI_QUERY_CAPSULE_CAPABILITIES) CoreEfiNotAvailableYetArg4, // QueryCapsuleCapabilities
172 (EFI_QUERY_VARIABLE_INFO) CoreEfiNotAvailableYetArg4 // QueryVariableInfo
173 };
174
175 EFI_RUNTIME_ARCH_PROTOCOL gRuntimeTemplate = {
176 INITIALIZE_LIST_HEAD_VARIABLE (gRuntimeTemplate.ImageHead),
177 INITIALIZE_LIST_HEAD_VARIABLE (gRuntimeTemplate.EventHead),
178
179 //
180 // Make sure Size != sizeof (EFI_MEMORY_DESCRIPTOR). This will
181 // prevent people from having pointer math bugs in their code.
182 // now you have to use *DescriptorSize to make things work.
183 //
184 sizeof (EFI_MEMORY_DESCRIPTOR) + sizeof (UINT64) - (sizeof (EFI_MEMORY_DESCRIPTOR) % sizeof (UINT64)),
185 EFI_MEMORY_DESCRIPTOR_VERSION,
186 0,
187 NULL,
188 NULL,
189 FALSE,
190 FALSE
191 };
192
193 EFI_RUNTIME_ARCH_PROTOCOL *gRuntime = &gRuntimeTemplate;
194
195 //
196 // DXE Core Global Variables for the EFI System Table, Boot Services Table,
197 // DXE Services Table, and Runtime Services Table
198 //
199 EFI_DXE_SERVICES *gDxeCoreDS = &mDxeServices;
200 EFI_SYSTEM_TABLE *gDxeCoreST = NULL;
201
202 //
203 // For debug initialize gDxeCoreRT to template. gDxeCoreRT must be allocated from RT memory
204 // but gDxeCoreRT is used for ASSERT () and DEBUG () type macros so lets give it
205 // a value that will not cause debug infrastructure to crash early on.
206 //
207 EFI_RUNTIME_SERVICES *gDxeCoreRT = &mEfiRuntimeServicesTableTemplate;
208 EFI_HANDLE gDxeCoreImageHandle = NULL;
209
210 BOOLEAN gMemoryMapTerminated = FALSE;
211
212 //
213 // EFI Decompress Protocol
214 //
215 EFI_DECOMPRESS_PROTOCOL gEfiDecompress = {
216 DxeMainUefiDecompressGetInfo,
217 DxeMainUefiDecompress
218 };
219
220 //
221 // For Loading modules at fixed address feature, the configuration table is to cache the top address below which to load
222 // Runtime code&boot time code
223 //
224 GLOBAL_REMOVE_IF_UNREFERENCED EFI_LOAD_FIXED_ADDRESS_CONFIGURATION_TABLE gLoadModuleAtFixAddressConfigurationTable = {0, 0};
225
226 // Main entry point to the DXE Core
227 //
228
229 /**
230 Main entry point to DXE Core.
231
232 @param HobStart Pointer to the beginning of the HOB List from PEI.
233
234 @return This function should never return.
235
236 **/
237 VOID
238 EFIAPI
239 DxeMain (
240 IN VOID *HobStart
241 )
242 {
243 EFI_STATUS Status;
244 EFI_PHYSICAL_ADDRESS MemoryBaseAddress;
245 UINT64 MemoryLength;
246 PE_COFF_LOADER_IMAGE_CONTEXT ImageContext;
247 UINTN Index;
248 EFI_HOB_GUID_TYPE *GuidHob;
249 EFI_VECTOR_HANDOFF_INFO *VectorInfoList;
250 EFI_VECTOR_HANDOFF_INFO *VectorInfo;
251 VOID *EntryPoint;
252
253 //
254 // Setup the default exception handlers
255 //
256 VectorInfoList = NULL;
257 GuidHob = GetNextGuidHob (&gEfiVectorHandoffInfoPpiGuid, HobStart);
258 if (GuidHob != NULL) {
259 VectorInfoList = (EFI_VECTOR_HANDOFF_INFO *) (GET_GUID_HOB_DATA(GuidHob));
260 }
261 Status = InitializeCpuExceptionHandlers (VectorInfoList);
262 ASSERT_EFI_ERROR (Status);
263
264 //
265 // Initialize Debug Agent to support source level debug in DXE phase
266 //
267 InitializeDebugAgent (DEBUG_AGENT_INIT_DXE_CORE, HobStart, NULL);
268
269 //
270 // Initialize Memory Services
271 //
272 CoreInitializeMemoryServices (&HobStart, &MemoryBaseAddress, &MemoryLength);
273
274 MemoryProfileInit (HobStart);
275
276 //
277 // Allocate the EFI System Table and EFI Runtime Service Table from EfiRuntimeServicesData
278 // Use the templates to initialize the contents of the EFI System Table and EFI Runtime Services Table
279 //
280 gDxeCoreST = AllocateRuntimeCopyPool (sizeof (EFI_SYSTEM_TABLE), &mEfiSystemTableTemplate);
281 ASSERT (gDxeCoreST != NULL);
282
283 gDxeCoreRT = AllocateRuntimeCopyPool (sizeof (EFI_RUNTIME_SERVICES), &mEfiRuntimeServicesTableTemplate);
284 ASSERT (gDxeCoreRT != NULL);
285
286 gDxeCoreST->RuntimeServices = gDxeCoreRT;
287
288 //
289 // Start the Image Services.
290 //
291 Status = CoreInitializeImageServices (HobStart);
292 ASSERT_EFI_ERROR (Status);
293
294 //
295 // Initialize the Global Coherency Domain Services
296 //
297 Status = CoreInitializeGcdServices (&HobStart, MemoryBaseAddress, MemoryLength);
298 ASSERT_EFI_ERROR (Status);
299
300 //
301 // Call constructor for all libraries
302 //
303 ProcessLibraryConstructorList (gDxeCoreImageHandle, gDxeCoreST);
304 PERF_END (NULL,"PEI", NULL, 0) ;
305 PERF_START (NULL,"DXE", NULL, 0) ;
306
307 //
308 // Report DXE Core image information to the PE/COFF Extra Action Library
309 //
310 ZeroMem (&ImageContext, sizeof (ImageContext));
311 ImageContext.ImageAddress = (EFI_PHYSICAL_ADDRESS)(UINTN)gDxeCoreLoadedImage->ImageBase;
312 ImageContext.PdbPointer = PeCoffLoaderGetPdbPointer ((VOID*)(UINTN)ImageContext.ImageAddress);
313 ImageContext.SizeOfHeaders = PeCoffGetSizeOfHeaders ((VOID*)(UINTN)ImageContext.ImageAddress);
314 Status = PeCoffLoaderGetEntryPoint ((VOID*)(UINTN)ImageContext.ImageAddress, &EntryPoint);
315 if (Status == EFI_SUCCESS) {
316 ImageContext.EntryPoint = (EFI_PHYSICAL_ADDRESS)(UINTN)EntryPoint;
317 }
318 ImageContext.Handle = (VOID *)(UINTN)gDxeCoreLoadedImage->ImageBase;
319 ImageContext.ImageRead = PeCoffLoaderImageReadFromMemory;
320 PeCoffLoaderRelocateImageExtraAction (&ImageContext);
321
322 //
323 // Install the DXE Services Table into the EFI System Tables's Configuration Table
324 //
325 Status = CoreInstallConfigurationTable (&gEfiDxeServicesTableGuid, gDxeCoreDS);
326 ASSERT_EFI_ERROR (Status);
327
328 //
329 // Install the HOB List into the EFI System Tables's Configuration Table
330 //
331 Status = CoreInstallConfigurationTable (&gEfiHobListGuid, HobStart);
332 ASSERT_EFI_ERROR (Status);
333
334 //
335 // Install Memory Type Information Table into the EFI System Tables's Configuration Table
336 //
337 Status = CoreInstallConfigurationTable (&gEfiMemoryTypeInformationGuid, &gMemoryTypeInformation);
338 ASSERT_EFI_ERROR (Status);
339
340 //
341 // If Loading modules At fixed address feature is enabled, install Load moduels at fixed address
342 // Configuration Table so that user could easily to retrieve the top address to load Dxe and PEI
343 // Code and Tseg base to load SMM driver.
344 //
345 if (PcdGet64(PcdLoadModuleAtFixAddressEnable) != 0) {
346 Status = CoreInstallConfigurationTable (&gLoadFixedAddressConfigurationTableGuid, &gLoadModuleAtFixAddressConfigurationTable);
347 ASSERT_EFI_ERROR (Status);
348 }
349 //
350 // Report Status Code here for DXE_ENTRY_POINT once it is available
351 //
352 REPORT_STATUS_CODE (
353 EFI_PROGRESS_CODE,
354 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_PC_ENTRY_POINT)
355 );
356
357 //
358 // Create the aligned system table pointer structure that is used by external
359 // debuggers to locate the system table... Also, install debug image info
360 // configuration table.
361 //
362 CoreInitializeDebugImageInfoTable ();
363 CoreNewDebugImageInfoEntry (
364 EFI_DEBUG_IMAGE_INFO_TYPE_NORMAL,
365 gDxeCoreLoadedImage,
366 gDxeCoreImageHandle
367 );
368
369 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "HOBLIST address in DXE = 0x%p\n", HobStart));
370
371 DEBUG_CODE_BEGIN ();
372 EFI_PEI_HOB_POINTERS Hob;
373
374 for (Hob.Raw = HobStart; !END_OF_HOB_LIST(Hob); Hob.Raw = GET_NEXT_HOB(Hob)) {
375 if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_MEMORY_ALLOCATION) {
376 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "Memory Allocation 0x%08x 0x%0lx - 0x%0lx\n", \
377 Hob.MemoryAllocation->AllocDescriptor.MemoryType, \
378 Hob.MemoryAllocation->AllocDescriptor.MemoryBaseAddress, \
379 Hob.MemoryAllocation->AllocDescriptor.MemoryBaseAddress + Hob.MemoryAllocation->AllocDescriptor.MemoryLength - 1));
380 }
381 }
382 for (Hob.Raw = HobStart; !END_OF_HOB_LIST(Hob); Hob.Raw = GET_NEXT_HOB(Hob)) {
383 if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_FV2) {
384 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "FV2 Hob 0x%0lx - 0x%0lx\n", Hob.FirmwareVolume2->BaseAddress, Hob.FirmwareVolume2->BaseAddress + Hob.FirmwareVolume2->Length - 1));
385 } else if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_FV) {
386 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "FV Hob 0x%0lx - 0x%0lx\n", Hob.FirmwareVolume->BaseAddress, Hob.FirmwareVolume->BaseAddress + Hob.FirmwareVolume->Length - 1));
387 }
388 }
389 DEBUG_CODE_END ();
390
391 //
392 // Initialize the Event Services
393 //
394 Status = CoreInitializeEventServices ();
395 ASSERT_EFI_ERROR (Status);
396
397 MemoryProfileInstallProtocol ();
398
399 CoreInitializePropertiesTable ();
400 CoreInitializeMemoryAttributesTable ();
401
402 //
403 // Get persisted vector hand-off info from GUIDeed HOB again due to HobStart may be updated,
404 // and install configuration table
405 //
406 GuidHob = GetNextGuidHob (&gEfiVectorHandoffInfoPpiGuid, HobStart);
407 if (GuidHob != NULL) {
408 VectorInfoList = (EFI_VECTOR_HANDOFF_INFO *) (GET_GUID_HOB_DATA(GuidHob));
409 VectorInfo = VectorInfoList;
410 Index = 1;
411 while (VectorInfo->Attribute != EFI_VECTOR_HANDOFF_LAST_ENTRY) {
412 VectorInfo ++;
413 Index ++;
414 }
415 VectorInfo = AllocateCopyPool (sizeof (EFI_VECTOR_HANDOFF_INFO) * Index, (VOID *) VectorInfoList);
416 ASSERT (VectorInfo != NULL);
417 Status = CoreInstallConfigurationTable (&gEfiVectorHandoffTableGuid, (VOID *) VectorInfo);
418 ASSERT_EFI_ERROR (Status);
419 }
420
421 //
422 // Get the Protocols that were passed in from PEI to DXE through GUIDed HOBs
423 //
424 // These Protocols are not architectural. This implementation is sharing code between
425 // PEI and DXE in order to save FLASH space. These Protocols could also be implemented
426 // as part of the DXE Core. However, that would also require the DXE Core to be ported
427 // each time a different CPU is used, a different Decompression algorithm is used, or a
428 // different Image type is used. By placing these Protocols in PEI, the DXE Core remains
429 // generic, and only PEI and the Arch Protocols need to be ported from Platform to Platform,
430 // and from CPU to CPU.
431 //
432
433 //
434 // Publish the EFI, Tiano, and Custom Decompress protocols for use by other DXE components
435 //
436 Status = CoreInstallMultipleProtocolInterfaces (
437 &mDecompressHandle,
438 &gEfiDecompressProtocolGuid, &gEfiDecompress,
439 NULL
440 );
441 ASSERT_EFI_ERROR (Status);
442
443 //
444 // Register for the GUIDs of the Architectural Protocols, so the rest of the
445 // EFI Boot Services and EFI Runtime Services tables can be filled in.
446 // Also register for the GUIDs of optional protocols.
447 //
448 CoreNotifyOnProtocolInstallation ();
449
450 //
451 // Produce Firmware Volume Protocols, one for each FV in the HOB list.
452 //
453 Status = FwVolBlockDriverInit (gDxeCoreImageHandle, gDxeCoreST);
454 ASSERT_EFI_ERROR (Status);
455
456 Status = FwVolDriverInit (gDxeCoreImageHandle, gDxeCoreST);
457 ASSERT_EFI_ERROR (Status);
458
459 //
460 // Produce the Section Extraction Protocol
461 //
462 Status = InitializeSectionExtraction (gDxeCoreImageHandle, gDxeCoreST);
463 ASSERT_EFI_ERROR (Status);
464
465 //
466 // Initialize the DXE Dispatcher
467 //
468 PERF_START (NULL,"CoreInitializeDispatcher", "DxeMain", 0) ;
469 CoreInitializeDispatcher ();
470 PERF_END (NULL,"CoreInitializeDispatcher", "DxeMain", 0) ;
471
472 //
473 // Invoke the DXE Dispatcher
474 //
475 PERF_START (NULL, "CoreDispatcher", "DxeMain", 0);
476 CoreDispatcher ();
477 PERF_END (NULL, "CoreDispatcher", "DxeMain", 0);
478
479 //
480 // Display Architectural protocols that were not loaded if this is DEBUG build
481 //
482 DEBUG_CODE_BEGIN ();
483 CoreDisplayMissingArchProtocols ();
484 DEBUG_CODE_END ();
485
486 //
487 // Display any drivers that were not dispatched because dependency expression
488 // evaluated to false if this is a debug build
489 //
490 DEBUG_CODE_BEGIN ();
491 CoreDisplayDiscoveredNotDispatched ();
492 DEBUG_CODE_END ();
493
494 //
495 // Assert if the Architectural Protocols are not present.
496 //
497 Status = CoreAllEfiServicesAvailable ();
498 if (EFI_ERROR(Status)) {
499 //
500 // Report Status code that some Architectural Protocols are not present.
501 //
502 REPORT_STATUS_CODE (
503 EFI_ERROR_CODE | EFI_ERROR_MAJOR,
504 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_EC_NO_ARCH)
505 );
506 }
507 ASSERT_EFI_ERROR (Status);
508
509 //
510 // Report Status code before transfer control to BDS
511 //
512 REPORT_STATUS_CODE (
513 EFI_PROGRESS_CODE,
514 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_PC_HANDOFF_TO_NEXT)
515 );
516
517 //
518 // Transfer control to the BDS Architectural Protocol
519 //
520 gBds->Entry (gBds);
521
522 //
523 // BDS should never return
524 //
525 ASSERT (FALSE);
526 CpuDeadLoop ();
527
528 UNREACHABLE ();
529 }
530
531
532
533 /**
534 Place holder function until all the Boot Services and Runtime Services are
535 available.
536
537 @return EFI_NOT_AVAILABLE_YET
538
539 **/
540 EFI_STATUS
541 EFIAPI
542 CoreEfiNotAvailableYetArg0 (
543 VOID
544 )
545 {
546 //
547 // This function should never be executed. If it does, then the architectural protocols
548 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
549 // DXE Core and all the Architectural Protocols are complete.
550 //
551
552 return EFI_NOT_AVAILABLE_YET;
553 }
554
555
556 /**
557 Place holder function until all the Boot Services and Runtime Services are
558 available.
559
560 @param Arg1 Undefined
561
562 @return EFI_NOT_AVAILABLE_YET
563
564 **/
565 EFI_STATUS
566 EFIAPI
567 CoreEfiNotAvailableYetArg1 (
568 UINTN Arg1
569 )
570 {
571 //
572 // This function should never be executed. If it does, then the architectural protocols
573 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
574 // DXE Core and all the Architectural Protocols are complete.
575 //
576
577 return EFI_NOT_AVAILABLE_YET;
578 }
579
580
581 /**
582 Place holder function until all the Boot Services and Runtime Services are available.
583
584 @param Arg1 Undefined
585 @param Arg2 Undefined
586
587 @return EFI_NOT_AVAILABLE_YET
588
589 **/
590 EFI_STATUS
591 EFIAPI
592 CoreEfiNotAvailableYetArg2 (
593 UINTN Arg1,
594 UINTN Arg2
595 )
596 {
597 //
598 // This function should never be executed. If it does, then the architectural protocols
599 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
600 // DXE Core and all the Architectural Protocols are complete.
601 //
602
603 return EFI_NOT_AVAILABLE_YET;
604 }
605
606
607 /**
608 Place holder function until all the Boot Services and Runtime Services are available.
609
610 @param Arg1 Undefined
611 @param Arg2 Undefined
612 @param Arg3 Undefined
613
614 @return EFI_NOT_AVAILABLE_YET
615
616 **/
617 EFI_STATUS
618 EFIAPI
619 CoreEfiNotAvailableYetArg3 (
620 UINTN Arg1,
621 UINTN Arg2,
622 UINTN Arg3
623 )
624 {
625 //
626 // This function should never be executed. If it does, then the architectural protocols
627 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
628 // DXE Core and all the Architectural Protocols are complete.
629 //
630
631 return EFI_NOT_AVAILABLE_YET;
632 }
633
634
635 /**
636 Place holder function until all the Boot Services and Runtime Services are available.
637
638 @param Arg1 Undefined
639 @param Arg2 Undefined
640 @param Arg3 Undefined
641 @param Arg4 Undefined
642
643 @return EFI_NOT_AVAILABLE_YET
644
645 **/
646 EFI_STATUS
647 EFIAPI
648 CoreEfiNotAvailableYetArg4 (
649 UINTN Arg1,
650 UINTN Arg2,
651 UINTN Arg3,
652 UINTN Arg4
653 )
654 {
655 //
656 // This function should never be executed. If it does, then the architectural protocols
657 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
658 // DXE Core and all the Architectural Protocols are complete.
659 //
660
661 return EFI_NOT_AVAILABLE_YET;
662 }
663
664
665 /**
666 Place holder function until all the Boot Services and Runtime Services are available.
667
668 @param Arg1 Undefined
669 @param Arg2 Undefined
670 @param Arg3 Undefined
671 @param Arg4 Undefined
672 @param Arg5 Undefined
673
674 @return EFI_NOT_AVAILABLE_YET
675
676 **/
677 EFI_STATUS
678 EFIAPI
679 CoreEfiNotAvailableYetArg5 (
680 UINTN Arg1,
681 UINTN Arg2,
682 UINTN Arg3,
683 UINTN Arg4,
684 UINTN Arg5
685 )
686 {
687 //
688 // This function should never be executed. If it does, then the architectural protocols
689 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the
690 // DXE Core and all the Architectural Protocols are complete.
691 //
692
693 return EFI_NOT_AVAILABLE_YET;
694 }
695
696
697 /**
698 Calcualte the 32-bit CRC in a EFI table using the service provided by the
699 gRuntime service.
700
701 @param Hdr Pointer to an EFI standard header
702
703 **/
704 VOID
705 CalculateEfiHdrCrc (
706 IN OUT EFI_TABLE_HEADER *Hdr
707 )
708 {
709 UINT32 Crc;
710
711 Hdr->CRC32 = 0;
712
713 //
714 // If gBS->CalculateCrce32 () == CoreEfiNotAvailableYet () then
715 // Crc will come back as zero if we set it to zero here
716 //
717 Crc = 0;
718 gBS->CalculateCrc32 ((UINT8 *)Hdr, Hdr->HeaderSize, &Crc);
719 Hdr->CRC32 = Crc;
720 }
721
722
723 /**
724 Terminates all boot services.
725
726 @param ImageHandle Handle that identifies the exiting image.
727 @param MapKey Key to the latest memory map.
728
729 @retval EFI_SUCCESS Boot Services terminated
730 @retval EFI_INVALID_PARAMETER MapKey is incorrect.
731
732 **/
733 EFI_STATUS
734 EFIAPI
735 CoreExitBootServices (
736 IN EFI_HANDLE ImageHandle,
737 IN UINTN MapKey
738 )
739 {
740 EFI_STATUS Status;
741
742 //
743 // Disable Timer
744 //
745 gTimer->SetTimerPeriod (gTimer, 0);
746
747 //
748 // Terminate memory services if the MapKey matches
749 //
750 Status = CoreTerminateMemoryMap (MapKey);
751 if (EFI_ERROR (Status)) {
752 //
753 // Notify other drivers that ExitBootServices fail
754 //
755 CoreNotifySignalList (&gEventExitBootServicesFailedGuid);
756 return Status;
757 }
758
759 gMemoryMapTerminated = TRUE;
760
761 //
762 // Notify other drivers that we are exiting boot services.
763 //
764 CoreNotifySignalList (&gEfiEventExitBootServicesGuid);
765
766 //
767 // Report that ExitBootServices() has been called
768 //
769 REPORT_STATUS_CODE (
770 EFI_PROGRESS_CODE,
771 (EFI_SOFTWARE_EFI_BOOT_SERVICE | EFI_SW_BS_PC_EXIT_BOOT_SERVICES)
772 );
773
774 //
775 // Disable interrupt of Debug timer.
776 //
777 SaveAndSetDebugTimerInterrupt (FALSE);
778
779 //
780 // Disable CPU Interrupts
781 //
782 gCpu->DisableInterrupt (gCpu);
783
784 //
785 // Clear the non-runtime values of the EFI System Table
786 //
787 gDxeCoreST->BootServices = NULL;
788 gDxeCoreST->ConIn = NULL;
789 gDxeCoreST->ConsoleInHandle = NULL;
790 gDxeCoreST->ConOut = NULL;
791 gDxeCoreST->ConsoleOutHandle = NULL;
792 gDxeCoreST->StdErr = NULL;
793 gDxeCoreST->StandardErrorHandle = NULL;
794
795 //
796 // Recompute the 32-bit CRC of the EFI System Table
797 //
798 CalculateEfiHdrCrc (&gDxeCoreST->Hdr);
799
800 //
801 // Zero out the Boot Service Table
802 //
803 ZeroMem (gBS, sizeof (EFI_BOOT_SERVICES));
804 gBS = NULL;
805
806 //
807 // Update the AtRuntime field in Runtiem AP.
808 //
809 gRuntime->AtRuntime = TRUE;
810
811 return Status;
812 }
813
814
815 /**
816 Given a compressed source buffer, this function retrieves the size of the
817 uncompressed buffer and the size of the scratch buffer required to decompress
818 the compressed source buffer.
819
820 The GetInfo() function retrieves the size of the uncompressed buffer and the
821 temporary scratch buffer required to decompress the buffer specified by Source
822 and SourceSize. If the size of the uncompressed buffer or the size of the
823 scratch buffer cannot be determined from the compressed data specified by
824 Source and SourceData, then EFI_INVALID_PARAMETER is returned. Otherwise, the
825 size of the uncompressed buffer is returned in DestinationSize, the size of
826 the scratch buffer is returned in ScratchSize, and EFI_SUCCESS is returned.
827 The GetInfo() function does not have scratch buffer available to perform a
828 thorough checking of the validity of the source data. It just retrieves the
829 "Original Size" field from the beginning bytes of the source data and output
830 it as DestinationSize. And ScratchSize is specific to the decompression
831 implementation.
832
833 @param This A pointer to the EFI_DECOMPRESS_PROTOCOL instance.
834 @param Source The source buffer containing the compressed data.
835 @param SourceSize The size, in bytes, of the source buffer.
836 @param DestinationSize A pointer to the size, in bytes, of the
837 uncompressed buffer that will be generated when the
838 compressed buffer specified by Source and
839 SourceSize is decompressed.
840 @param ScratchSize A pointer to the size, in bytes, of the scratch
841 buffer that is required to decompress the
842 compressed buffer specified by Source and
843 SourceSize.
844
845 @retval EFI_SUCCESS The size of the uncompressed data was returned in
846 DestinationSize and the size of the scratch buffer
847 was returned in ScratchSize.
848 @retval EFI_INVALID_PARAMETER The size of the uncompressed data or the size of
849 the scratch buffer cannot be determined from the
850 compressed data specified by Source and
851 SourceSize.
852
853 **/
854 EFI_STATUS
855 EFIAPI
856 DxeMainUefiDecompressGetInfo (
857 IN EFI_DECOMPRESS_PROTOCOL *This,
858 IN VOID *Source,
859 IN UINT32 SourceSize,
860 OUT UINT32 *DestinationSize,
861 OUT UINT32 *ScratchSize
862 )
863 {
864 if (Source == NULL || DestinationSize == NULL || ScratchSize == NULL) {
865 return EFI_INVALID_PARAMETER;
866 }
867 return UefiDecompressGetInfo (Source, SourceSize, DestinationSize, ScratchSize);
868 }
869
870
871 /**
872 Decompresses a compressed source buffer.
873
874 The Decompress() function extracts decompressed data to its original form.
875 This protocol is designed so that the decompression algorithm can be
876 implemented without using any memory services. As a result, the Decompress()
877 Function is not allowed to call AllocatePool() or AllocatePages() in its
878 implementation. It is the caller's responsibility to allocate and free the
879 Destination and Scratch buffers.
880 If the compressed source data specified by Source and SourceSize is
881 successfully decompressed into Destination, then EFI_SUCCESS is returned. If
882 the compressed source data specified by Source and SourceSize is not in a
883 valid compressed data format, then EFI_INVALID_PARAMETER is returned.
884
885 @param This A pointer to the EFI_DECOMPRESS_PROTOCOL instance.
886 @param Source The source buffer containing the compressed data.
887 @param SourceSize SourceSizeThe size of source data.
888 @param Destination On output, the destination buffer that contains
889 the uncompressed data.
890 @param DestinationSize The size of the destination buffer. The size of
891 the destination buffer needed is obtained from
892 EFI_DECOMPRESS_PROTOCOL.GetInfo().
893 @param Scratch A temporary scratch buffer that is used to perform
894 the decompression.
895 @param ScratchSize The size of scratch buffer. The size of the
896 scratch buffer needed is obtained from GetInfo().
897
898 @retval EFI_SUCCESS Decompression completed successfully, and the
899 uncompressed buffer is returned in Destination.
900 @retval EFI_INVALID_PARAMETER The source buffer specified by Source and
901 SourceSize is corrupted (not in a valid
902 compressed format).
903
904 **/
905 EFI_STATUS
906 EFIAPI
907 DxeMainUefiDecompress (
908 IN EFI_DECOMPRESS_PROTOCOL *This,
909 IN VOID *Source,
910 IN UINT32 SourceSize,
911 IN OUT VOID *Destination,
912 IN UINT32 DestinationSize,
913 IN OUT VOID *Scratch,
914 IN UINT32 ScratchSize
915 )
916 {
917 EFI_STATUS Status;
918 UINT32 TestDestinationSize;
919 UINT32 TestScratchSize;
920
921 if (Source == NULL || Destination== NULL || Scratch == NULL) {
922 return EFI_INVALID_PARAMETER;
923 }
924
925 Status = UefiDecompressGetInfo (Source, SourceSize, &TestDestinationSize, &TestScratchSize);
926 if (EFI_ERROR (Status)) {
927 return Status;
928 }
929
930 if (ScratchSize < TestScratchSize || DestinationSize < TestDestinationSize) {
931 return RETURN_INVALID_PARAMETER;
932 }
933
934 return UefiDecompress (Source, Destination, Scratch);
935 }