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1/** @file\r
2 DXE Core Main Entry Point\r
3\r
4Copyright (c) 2006 - 2014, Intel Corporation. All rights reserved.<BR>\r
5This program and the accompanying materials\r
6are licensed and made available under the terms and conditions of the BSD License\r
7which accompanies this distribution. The full text of the license may be found at\r
8http://opensource.org/licenses/bsd-license.php\r
9\r
10THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,\r
11WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.\r
12\r
13**/\r
14\r
15#include "DxeMain.h"\r
16\r
17//\r
18// DXE Core Global Variables for Protocols from PEI\r
19//\r
20EFI_HANDLE mDecompressHandle = NULL;\r
21\r
22//\r
23// DXE Core globals for Architecture Protocols\r
24//\r
25EFI_SECURITY_ARCH_PROTOCOL *gSecurity = NULL;\r
26EFI_SECURITY2_ARCH_PROTOCOL *gSecurity2 = NULL;\r
27EFI_CPU_ARCH_PROTOCOL *gCpu = NULL;\r
28EFI_METRONOME_ARCH_PROTOCOL *gMetronome = NULL;\r
29EFI_TIMER_ARCH_PROTOCOL *gTimer = NULL;\r
30EFI_BDS_ARCH_PROTOCOL *gBds = NULL;\r
31EFI_WATCHDOG_TIMER_ARCH_PROTOCOL *gWatchdogTimer = NULL;\r
32\r
33//\r
34// DXE Core globals for optional protocol dependencies\r
35//\r
36EFI_SMM_BASE2_PROTOCOL *gSmmBase2 = NULL;\r
37\r
38//\r
39// DXE Core Global used to update core loaded image protocol handle\r
40//\r
41EFI_GUID *gDxeCoreFileName;\r
42EFI_LOADED_IMAGE_PROTOCOL *gDxeCoreLoadedImage;\r
43\r
44//\r
45// DXE Core Module Variables\r
46//\r
47EFI_BOOT_SERVICES mBootServices = {\r
48 {\r
49 EFI_BOOT_SERVICES_SIGNATURE, // Signature\r
50 EFI_BOOT_SERVICES_REVISION, // Revision\r
51 sizeof (EFI_BOOT_SERVICES), // HeaderSize\r
52 0, // CRC32\r
53 0 // Reserved\r
54 },\r
55 (EFI_RAISE_TPL) CoreRaiseTpl, // RaiseTPL\r
56 (EFI_RESTORE_TPL) CoreRestoreTpl, // RestoreTPL\r
57 (EFI_ALLOCATE_PAGES) CoreAllocatePages, // AllocatePages\r
58 (EFI_FREE_PAGES) CoreFreePages, // FreePages\r
59 (EFI_GET_MEMORY_MAP) CoreGetMemoryMap, // GetMemoryMap\r
60 (EFI_ALLOCATE_POOL) CoreAllocatePool, // AllocatePool\r
61 (EFI_FREE_POOL) CoreFreePool, // FreePool\r
62 (EFI_CREATE_EVENT) CoreCreateEvent, // CreateEvent\r
63 (EFI_SET_TIMER) CoreSetTimer, // SetTimer\r
64 (EFI_WAIT_FOR_EVENT) CoreWaitForEvent, // WaitForEvent\r
65 (EFI_SIGNAL_EVENT) CoreSignalEvent, // SignalEvent\r
66 (EFI_CLOSE_EVENT) CoreCloseEvent, // CloseEvent\r
67 (EFI_CHECK_EVENT) CoreCheckEvent, // CheckEvent\r
68 (EFI_INSTALL_PROTOCOL_INTERFACE) CoreInstallProtocolInterface, // InstallProtocolInterface\r
69 (EFI_REINSTALL_PROTOCOL_INTERFACE) CoreReinstallProtocolInterface, // ReinstallProtocolInterface\r
70 (EFI_UNINSTALL_PROTOCOL_INTERFACE) CoreUninstallProtocolInterface, // UninstallProtocolInterface\r
71 (EFI_HANDLE_PROTOCOL) CoreHandleProtocol, // HandleProtocol\r
72 (VOID *) NULL, // Reserved\r
73 (EFI_REGISTER_PROTOCOL_NOTIFY) CoreRegisterProtocolNotify, // RegisterProtocolNotify\r
74 (EFI_LOCATE_HANDLE) CoreLocateHandle, // LocateHandle\r
75 (EFI_LOCATE_DEVICE_PATH) CoreLocateDevicePath, // LocateDevicePath\r
76 (EFI_INSTALL_CONFIGURATION_TABLE) CoreInstallConfigurationTable, // InstallConfigurationTable\r
77 (EFI_IMAGE_LOAD) CoreLoadImage, // LoadImage\r
78 (EFI_IMAGE_START) CoreStartImage, // StartImage\r
79 (EFI_EXIT) CoreExit, // Exit\r
80 (EFI_IMAGE_UNLOAD) CoreUnloadImage, // UnloadImage\r
81 (EFI_EXIT_BOOT_SERVICES) CoreExitBootServices, // ExitBootServices\r
82 (EFI_GET_NEXT_MONOTONIC_COUNT) CoreEfiNotAvailableYetArg1, // GetNextMonotonicCount\r
83 (EFI_STALL) CoreStall, // Stall\r
84 (EFI_SET_WATCHDOG_TIMER) CoreSetWatchdogTimer, // SetWatchdogTimer\r
85 (EFI_CONNECT_CONTROLLER) CoreConnectController, // ConnectController\r
86 (EFI_DISCONNECT_CONTROLLER) CoreDisconnectController, // DisconnectController\r
87 (EFI_OPEN_PROTOCOL) CoreOpenProtocol, // OpenProtocol\r
88 (EFI_CLOSE_PROTOCOL) CoreCloseProtocol, // CloseProtocol\r
89 (EFI_OPEN_PROTOCOL_INFORMATION) CoreOpenProtocolInformation, // OpenProtocolInformation\r
90 (EFI_PROTOCOLS_PER_HANDLE) CoreProtocolsPerHandle, // ProtocolsPerHandle\r
91 (EFI_LOCATE_HANDLE_BUFFER) CoreLocateHandleBuffer, // LocateHandleBuffer\r
92 (EFI_LOCATE_PROTOCOL) CoreLocateProtocol, // LocateProtocol\r
93 (EFI_INSTALL_MULTIPLE_PROTOCOL_INTERFACES) CoreInstallMultipleProtocolInterfaces, // InstallMultipleProtocolInterfaces\r
94 (EFI_UNINSTALL_MULTIPLE_PROTOCOL_INTERFACES) CoreUninstallMultipleProtocolInterfaces, // UninstallMultipleProtocolInterfaces\r
95 (EFI_CALCULATE_CRC32) CoreEfiNotAvailableYetArg3, // CalculateCrc32\r
96 (EFI_COPY_MEM) CopyMem, // CopyMem\r
97 (EFI_SET_MEM) SetMem, // SetMem\r
98 (EFI_CREATE_EVENT_EX) CoreCreateEventEx // CreateEventEx\r
99};\r
100\r
101EFI_DXE_SERVICES mDxeServices = {\r
102 {\r
103 DXE_SERVICES_SIGNATURE, // Signature\r
104 DXE_SERVICES_REVISION, // Revision\r
105 sizeof (DXE_SERVICES), // HeaderSize\r
106 0, // CRC32\r
107 0 // Reserved\r
108 },\r
109 (EFI_ADD_MEMORY_SPACE) CoreAddMemorySpace, // AddMemorySpace\r
110 (EFI_ALLOCATE_MEMORY_SPACE) CoreAllocateMemorySpace, // AllocateMemorySpace\r
111 (EFI_FREE_MEMORY_SPACE) CoreFreeMemorySpace, // FreeMemorySpace\r
112 (EFI_REMOVE_MEMORY_SPACE) CoreRemoveMemorySpace, // RemoveMemorySpace\r
113 (EFI_GET_MEMORY_SPACE_DESCRIPTOR) CoreGetMemorySpaceDescriptor, // GetMemorySpaceDescriptor\r
114 (EFI_SET_MEMORY_SPACE_ATTRIBUTES) CoreSetMemorySpaceAttributes, // SetMemorySpaceAttributes\r
115 (EFI_GET_MEMORY_SPACE_MAP) CoreGetMemorySpaceMap, // GetMemorySpaceMap\r
116 (EFI_ADD_IO_SPACE) CoreAddIoSpace, // AddIoSpace\r
117 (EFI_ALLOCATE_IO_SPACE) CoreAllocateIoSpace, // AllocateIoSpace\r
118 (EFI_FREE_IO_SPACE) CoreFreeIoSpace, // FreeIoSpace\r
119 (EFI_REMOVE_IO_SPACE) CoreRemoveIoSpace, // RemoveIoSpace\r
120 (EFI_GET_IO_SPACE_DESCRIPTOR) CoreGetIoSpaceDescriptor, // GetIoSpaceDescriptor\r
121 (EFI_GET_IO_SPACE_MAP) CoreGetIoSpaceMap, // GetIoSpaceMap\r
122 (EFI_DISPATCH) CoreDispatcher, // Dispatch\r
123 (EFI_SCHEDULE) CoreSchedule, // Schedule\r
124 (EFI_TRUST) CoreTrust, // Trust\r
125 (EFI_PROCESS_FIRMWARE_VOLUME) CoreProcessFirmwareVolume, // ProcessFirmwareVolume\r
126};\r
127\r
128EFI_SYSTEM_TABLE mEfiSystemTableTemplate = {\r
129 {\r
130 EFI_SYSTEM_TABLE_SIGNATURE, // Signature\r
131 EFI_SYSTEM_TABLE_REVISION, // Revision\r
132 sizeof (EFI_SYSTEM_TABLE), // HeaderSize\r
133 0, // CRC32\r
134 0 // Reserved\r
135 },\r
136 NULL, // FirmwareVendor\r
137 0, // FirmwareRevision\r
138 NULL, // ConsoleInHandle\r
139 NULL, // ConIn\r
140 NULL, // ConsoleOutHandle\r
141 NULL, // ConOut\r
142 NULL, // StandardErrorHandle\r
143 NULL, // StdErr\r
144 NULL, // RuntimeServices\r
145 &mBootServices, // BootServices\r
146 0, // NumberOfConfigurationTableEntries\r
147 NULL // ConfigurationTable\r
148};\r
149\r
150EFI_RUNTIME_SERVICES mEfiRuntimeServicesTableTemplate = {\r
151 {\r
152 EFI_RUNTIME_SERVICES_SIGNATURE, // Signature\r
153 EFI_RUNTIME_SERVICES_REVISION, // Revision\r
154 sizeof (EFI_RUNTIME_SERVICES), // HeaderSize\r
155 0, // CRC32\r
156 0 // Reserved\r
157 },\r
158 (EFI_GET_TIME) CoreEfiNotAvailableYetArg2, // GetTime\r
159 (EFI_SET_TIME) CoreEfiNotAvailableYetArg1, // SetTime\r
160 (EFI_GET_WAKEUP_TIME) CoreEfiNotAvailableYetArg3, // GetWakeupTime\r
161 (EFI_SET_WAKEUP_TIME) CoreEfiNotAvailableYetArg2, // SetWakeupTime\r
162 (EFI_SET_VIRTUAL_ADDRESS_MAP) CoreEfiNotAvailableYetArg4, // SetVirtualAddressMap\r
163 (EFI_CONVERT_POINTER) CoreEfiNotAvailableYetArg2, // ConvertPointer\r
164 (EFI_GET_VARIABLE) CoreEfiNotAvailableYetArg5, // GetVariable\r
165 (EFI_GET_NEXT_VARIABLE_NAME) CoreEfiNotAvailableYetArg3, // GetNextVariableName\r
166 (EFI_SET_VARIABLE) CoreEfiNotAvailableYetArg5, // SetVariable\r
167 (EFI_GET_NEXT_HIGH_MONO_COUNT) CoreEfiNotAvailableYetArg1, // GetNextHighMonotonicCount\r
168 (EFI_RESET_SYSTEM) CoreEfiNotAvailableYetArg4, // ResetSystem\r
169 (EFI_UPDATE_CAPSULE) CoreEfiNotAvailableYetArg3, // UpdateCapsule\r
170 (EFI_QUERY_CAPSULE_CAPABILITIES) CoreEfiNotAvailableYetArg4, // QueryCapsuleCapabilities\r
171 (EFI_QUERY_VARIABLE_INFO) CoreEfiNotAvailableYetArg4 // QueryVariableInfo\r
172};\r
173\r
174EFI_RUNTIME_ARCH_PROTOCOL gRuntimeTemplate = {\r
175 INITIALIZE_LIST_HEAD_VARIABLE (gRuntimeTemplate.ImageHead),\r
176 INITIALIZE_LIST_HEAD_VARIABLE (gRuntimeTemplate.EventHead),\r
177\r
178 //\r
179 // Make sure Size != sizeof (EFI_MEMORY_DESCRIPTOR). This will\r
180 // prevent people from having pointer math bugs in their code.\r
181 // now you have to use *DescriptorSize to make things work.\r
182 //\r
183 sizeof (EFI_MEMORY_DESCRIPTOR) + sizeof (UINT64) - (sizeof (EFI_MEMORY_DESCRIPTOR) % sizeof (UINT64)),\r
184 EFI_MEMORY_DESCRIPTOR_VERSION,\r
185 0,\r
186 NULL,\r
187 NULL,\r
188 FALSE,\r
189 FALSE\r
190};\r
191\r
192EFI_RUNTIME_ARCH_PROTOCOL *gRuntime = &gRuntimeTemplate;\r
193\r
194//\r
195// DXE Core Global Variables for the EFI System Table, Boot Services Table,\r
196// DXE Services Table, and Runtime Services Table\r
197//\r
198EFI_DXE_SERVICES *gDxeCoreDS = &mDxeServices;\r
199EFI_SYSTEM_TABLE *gDxeCoreST = NULL;\r
200\r
201//\r
202// For debug initialize gDxeCoreRT to template. gDxeCoreRT must be allocated from RT memory\r
203// but gDxeCoreRT is used for ASSERT () and DEBUG () type macros so lets give it\r
204// a value that will not cause debug infrastructure to crash early on.\r
205//\r
206EFI_RUNTIME_SERVICES *gDxeCoreRT = &mEfiRuntimeServicesTableTemplate;\r
207EFI_HANDLE gDxeCoreImageHandle = NULL;\r
208\r
209\r
210//\r
211// EFI Decompress Protocol\r
212//\r
213EFI_DECOMPRESS_PROTOCOL gEfiDecompress = {\r
214 DxeMainUefiDecompressGetInfo,\r
215 DxeMainUefiDecompress\r
216};\r
217\r
218//\r
219// For Loading modules at fixed address feature, the configuration table is to cache the top address below which to load\r
220// Runtime code&boot time code\r
221//\r
222GLOBAL_REMOVE_IF_UNREFERENCED EFI_LOAD_FIXED_ADDRESS_CONFIGURATION_TABLE gLoadModuleAtFixAddressConfigurationTable = {0, 0};\r
223\r
224// Main entry point to the DXE Core\r
225//\r
226\r
227/**\r
228 Main entry point to DXE Core.\r
229\r
230 @param HobStart Pointer to the beginning of the HOB List from PEI.\r
231\r
232 @return This function should never return.\r
233\r
234**/\r
235VOID\r
236EFIAPI\r
237DxeMain (\r
238 IN VOID *HobStart\r
239 )\r
240{\r
241 EFI_STATUS Status;\r
242 EFI_PHYSICAL_ADDRESS MemoryBaseAddress;\r
243 UINT64 MemoryLength;\r
244 PE_COFF_LOADER_IMAGE_CONTEXT ImageContext;\r
245 UINTN Index;\r
246 EFI_HOB_GUID_TYPE *GuidHob;\r
247 EFI_VECTOR_HANDOFF_INFO *VectorInfoList;\r
248 EFI_VECTOR_HANDOFF_INFO *VectorInfo;\r
249\r
250 //\r
251 // Setup the default exception handlers\r
252 //\r
253 VectorInfoList = NULL;\r
254 GuidHob = GetNextGuidHob (&gEfiVectorHandoffInfoPpiGuid, HobStart);\r
255 if (GuidHob != NULL) {\r
256 VectorInfoList = (EFI_VECTOR_HANDOFF_INFO *) (GET_GUID_HOB_DATA(GuidHob));\r
257 }\r
258 Status = InitializeCpuExceptionHandlers (VectorInfoList);\r
259 ASSERT_EFI_ERROR (Status);\r
260 \r
261 //\r
262 // Initialize Debug Agent to support source level debug in DXE phase\r
263 //\r
264 InitializeDebugAgent (DEBUG_AGENT_INIT_DXE_CORE, HobStart, NULL);\r
265\r
266 //\r
267 // Initialize Memory Services\r
268 //\r
269 CoreInitializeMemoryServices (&HobStart, &MemoryBaseAddress, &MemoryLength);\r
270\r
271 //\r
272 // Allocate the EFI System Table and EFI Runtime Service Table from EfiRuntimeServicesData\r
273 // Use the templates to initialize the contents of the EFI System Table and EFI Runtime Services Table\r
274 //\r
275 gDxeCoreST = AllocateRuntimeCopyPool (sizeof (EFI_SYSTEM_TABLE), &mEfiSystemTableTemplate);\r
276 ASSERT (gDxeCoreST != NULL);\r
277\r
278 gDxeCoreRT = AllocateRuntimeCopyPool (sizeof (EFI_RUNTIME_SERVICES), &mEfiRuntimeServicesTableTemplate);\r
279 ASSERT (gDxeCoreRT != NULL);\r
280\r
281 gDxeCoreST->RuntimeServices = gDxeCoreRT;\r
282\r
283 //\r
284 // Start the Image Services.\r
285 //\r
286 Status = CoreInitializeImageServices (HobStart);\r
287 ASSERT_EFI_ERROR (Status);\r
288\r
289 //\r
290 // Call constructor for all libraries\r
291 //\r
292 ProcessLibraryConstructorList (gDxeCoreImageHandle, gDxeCoreST);\r
293 PERF_END (NULL,"PEI", NULL, 0) ;\r
294 PERF_START (NULL,"DXE", NULL, 0) ;\r
295\r
296 //\r
297 // Report DXE Core image information to the PE/COFF Extra Action Library\r
298 //\r
299 ZeroMem (&ImageContext, sizeof (ImageContext));\r
300 ImageContext.ImageAddress = (EFI_PHYSICAL_ADDRESS)(UINTN)gDxeCoreLoadedImage->ImageBase;\r
301 ImageContext.PdbPointer = PeCoffLoaderGetPdbPointer ((VOID*) (UINTN) ImageContext.ImageAddress);\r
302 PeCoffLoaderRelocateImageExtraAction (&ImageContext);\r
303\r
304 //\r
305 // Initialize the Global Coherency Domain Services\r
306 //\r
307 Status = CoreInitializeGcdServices (&HobStart, MemoryBaseAddress, MemoryLength);\r
308 ASSERT_EFI_ERROR (Status);\r
309\r
310 //\r
311 // Install the DXE Services Table into the EFI System Tables's Configuration Table\r
312 //\r
313 Status = CoreInstallConfigurationTable (&gEfiDxeServicesTableGuid, gDxeCoreDS);\r
314 ASSERT_EFI_ERROR (Status);\r
315\r
316 //\r
317 // Install the HOB List into the EFI System Tables's Configuration Table\r
318 //\r
319 Status = CoreInstallConfigurationTable (&gEfiHobListGuid, HobStart);\r
320 ASSERT_EFI_ERROR (Status);\r
321\r
322 //\r
323 // Install Memory Type Information Table into the EFI System Tables's Configuration Table\r
324 //\r
325 Status = CoreInstallConfigurationTable (&gEfiMemoryTypeInformationGuid, &gMemoryTypeInformation);\r
326 ASSERT_EFI_ERROR (Status);\r
327\r
328 //\r
329 // If Loading modules At fixed address feature is enabled, install Load moduels at fixed address\r
330 // Configuration Table so that user could easily to retrieve the top address to load Dxe and PEI\r
331 // Code and Tseg base to load SMM driver.\r
332 //\r
333 if (PcdGet64(PcdLoadModuleAtFixAddressEnable) != 0) {\r
334 Status = CoreInstallConfigurationTable (&gLoadFixedAddressConfigurationTableGuid, &gLoadModuleAtFixAddressConfigurationTable);\r
335 ASSERT_EFI_ERROR (Status);\r
336 }\r
337 //\r
338 // Report Status Code here for DXE_ENTRY_POINT once it is available\r
339 //\r
340 REPORT_STATUS_CODE (\r
341 EFI_PROGRESS_CODE,\r
342 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_PC_ENTRY_POINT)\r
343 );\r
344\r
345 //\r
346 // Create the aligned system table pointer structure that is used by external\r
347 // debuggers to locate the system table... Also, install debug image info\r
348 // configuration table.\r
349 //\r
350 CoreInitializeDebugImageInfoTable ();\r
351 CoreNewDebugImageInfoEntry (\r
352 EFI_DEBUG_IMAGE_INFO_TYPE_NORMAL,\r
353 gDxeCoreLoadedImage,\r
354 gDxeCoreImageHandle\r
355 );\r
356\r
357 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "HOBLIST address in DXE = 0x%p\n", HobStart));\r
358\r
359 DEBUG_CODE_BEGIN ();\r
360 EFI_PEI_HOB_POINTERS Hob;\r
361\r
362 for (Hob.Raw = HobStart; !END_OF_HOB_LIST(Hob); Hob.Raw = GET_NEXT_HOB(Hob)) {\r
363 if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_MEMORY_ALLOCATION) {\r
364 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "Memory Allocation 0x%08x 0x%0lx - 0x%0lx\n", \\r
365 Hob.MemoryAllocation->AllocDescriptor.MemoryType, \\r
366 Hob.MemoryAllocation->AllocDescriptor.MemoryBaseAddress, \\r
367 Hob.MemoryAllocation->AllocDescriptor.MemoryBaseAddress + Hob.MemoryAllocation->AllocDescriptor.MemoryLength - 1));\r
368 }\r
369 }\r
370 for (Hob.Raw = HobStart; !END_OF_HOB_LIST(Hob); Hob.Raw = GET_NEXT_HOB(Hob)) {\r
371 if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_FV2) {\r
372 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "FV2 Hob 0x%0lx - 0x%0lx\n", Hob.FirmwareVolume2->BaseAddress, Hob.FirmwareVolume2->BaseAddress + Hob.FirmwareVolume2->Length - 1));\r
373 } else if (GET_HOB_TYPE (Hob) == EFI_HOB_TYPE_FV) {\r
374 DEBUG ((DEBUG_INFO | DEBUG_LOAD, "FV Hob 0x%0lx - 0x%0lx\n", Hob.FirmwareVolume->BaseAddress, Hob.FirmwareVolume->BaseAddress + Hob.FirmwareVolume2->Length - 1));\r
375 }\r
376 }\r
377 DEBUG_CODE_END ();\r
378\r
379 //\r
380 // Initialize the Event Services\r
381 //\r
382 Status = CoreInitializeEventServices ();\r
383 ASSERT_EFI_ERROR (Status);\r
384\r
385 //\r
386 // Get persisted vector hand-off info from GUIDeed HOB again due to HobStart may be updated,\r
387 // and install configuration table\r
388 //\r
389 GuidHob = GetNextGuidHob (&gEfiVectorHandoffInfoPpiGuid, HobStart);\r
390 if (GuidHob != NULL) {\r
391 VectorInfoList = (EFI_VECTOR_HANDOFF_INFO *) (GET_GUID_HOB_DATA(GuidHob));\r
392 VectorInfo = VectorInfoList;\r
393 Index = 1;\r
394 while (VectorInfo->Attribute != EFI_VECTOR_HANDOFF_LAST_ENTRY) {\r
395 VectorInfo ++;\r
396 Index ++;\r
397 }\r
398 VectorInfo = AllocateCopyPool (sizeof (EFI_VECTOR_HANDOFF_INFO) * Index, (VOID *) VectorInfoList);\r
399 ASSERT (VectorInfo != NULL);\r
400 Status = CoreInstallConfigurationTable (&gEfiVectorHandoffTableGuid, (VOID *) VectorInfo);\r
401 ASSERT_EFI_ERROR (Status);\r
402 }\r
403\r
404 //\r
405 // Get the Protocols that were passed in from PEI to DXE through GUIDed HOBs\r
406 //\r
407 // These Protocols are not architectural. This implementation is sharing code between\r
408 // PEI and DXE in order to save FLASH space. These Protocols could also be implemented\r
409 // as part of the DXE Core. However, that would also require the DXE Core to be ported\r
410 // each time a different CPU is used, a different Decompression algorithm is used, or a\r
411 // different Image type is used. By placing these Protocols in PEI, the DXE Core remains\r
412 // generic, and only PEI and the Arch Protocols need to be ported from Platform to Platform,\r
413 // and from CPU to CPU.\r
414 //\r
415\r
416 //\r
417 // Publish the EFI, Tiano, and Custom Decompress protocols for use by other DXE components\r
418 //\r
419 Status = CoreInstallMultipleProtocolInterfaces (\r
420 &mDecompressHandle,\r
421 &gEfiDecompressProtocolGuid, &gEfiDecompress,\r
422 NULL\r
423 );\r
424 ASSERT_EFI_ERROR (Status);\r
425\r
426 //\r
427 // Register for the GUIDs of the Architectural Protocols, so the rest of the\r
428 // EFI Boot Services and EFI Runtime Services tables can be filled in.\r
429 // Also register for the GUIDs of optional protocols.\r
430 //\r
431 CoreNotifyOnProtocolInstallation ();\r
432\r
433 //\r
434 // Produce Firmware Volume Protocols, one for each FV in the HOB list.\r
435 //\r
436 Status = FwVolBlockDriverInit (gDxeCoreImageHandle, gDxeCoreST);\r
437 ASSERT_EFI_ERROR (Status);\r
438\r
439 Status = FwVolDriverInit (gDxeCoreImageHandle, gDxeCoreST);\r
440 ASSERT_EFI_ERROR (Status);\r
441\r
442 //\r
443 // Produce the Section Extraction Protocol\r
444 //\r
445 Status = InitializeSectionExtraction (gDxeCoreImageHandle, gDxeCoreST);\r
446 ASSERT_EFI_ERROR (Status);\r
447\r
448 //\r
449 // Initialize the DXE Dispatcher\r
450 //\r
451 PERF_START (NULL,"CoreInitializeDispatcher", "DxeMain", 0) ;\r
452 CoreInitializeDispatcher ();\r
453 PERF_END (NULL,"CoreInitializeDispatcher", "DxeMain", 0) ;\r
454\r
455 //\r
456 // Invoke the DXE Dispatcher\r
457 //\r
458 PERF_START (NULL, "CoreDispatcher", "DxeMain", 0);\r
459 CoreDispatcher ();\r
460 PERF_END (NULL, "CoreDispatcher", "DxeMain", 0);\r
461\r
462 //\r
463 // Display Architectural protocols that were not loaded if this is DEBUG build\r
464 //\r
465 DEBUG_CODE_BEGIN ();\r
466 CoreDisplayMissingArchProtocols ();\r
467 DEBUG_CODE_END ();\r
468\r
469 //\r
470 // Display any drivers that were not dispatched because dependency expression\r
471 // evaluated to false if this is a debug build\r
472 //\r
473 DEBUG_CODE_BEGIN ();\r
474 CoreDisplayDiscoveredNotDispatched ();\r
475 DEBUG_CODE_END ();\r
476\r
477 //\r
478 // Assert if the Architectural Protocols are not present.\r
479 //\r
480 Status = CoreAllEfiServicesAvailable ();\r
481 if (EFI_ERROR(Status)) {\r
482 //\r
483 // Report Status code that some Architectural Protocols are not present.\r
484 //\r
485 REPORT_STATUS_CODE (\r
486 EFI_ERROR_CODE | EFI_ERROR_MAJOR,\r
487 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_EC_NO_ARCH)\r
488 ); \r
489 }\r
490 ASSERT_EFI_ERROR (Status);\r
491\r
492 //\r
493 // Report Status code before transfer control to BDS\r
494 //\r
495 REPORT_STATUS_CODE (\r
496 EFI_PROGRESS_CODE,\r
497 (EFI_SOFTWARE_DXE_CORE | EFI_SW_DXE_CORE_PC_HANDOFF_TO_NEXT)\r
498 );\r
499\r
500 //\r
501 // Transfer control to the BDS Architectural Protocol\r
502 //\r
503 gBds->Entry (gBds);\r
504\r
505 //\r
506 // BDS should never return\r
507 //\r
508 ASSERT (FALSE);\r
509 CpuDeadLoop ();\r
510}\r
511\r
512\r
513\r
514/**\r
515 Place holder function until all the Boot Services and Runtime Services are\r
516 available.\r
517\r
518 @return EFI_NOT_AVAILABLE_YET\r
519\r
520**/\r
521EFI_STATUS\r
522EFIAPI\r
523CoreEfiNotAvailableYetArg0 (\r
524 VOID\r
525 )\r
526{\r
527 //\r
528 // This function should never be executed. If it does, then the architectural protocols\r
529 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
530 // DXE Core and all the Architectural Protocols are complete.\r
531 //\r
532\r
533 return EFI_NOT_AVAILABLE_YET;\r
534}\r
535\r
536\r
537/**\r
538 Place holder function until all the Boot Services and Runtime Services are\r
539 available.\r
540\r
541 @param Arg1 Undefined\r
542\r
543 @return EFI_NOT_AVAILABLE_YET\r
544\r
545**/\r
546EFI_STATUS\r
547EFIAPI\r
548CoreEfiNotAvailableYetArg1 (\r
549 UINTN Arg1\r
550 )\r
551{\r
552 //\r
553 // This function should never be executed. If it does, then the architectural protocols\r
554 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
555 // DXE Core and all the Architectural Protocols are complete.\r
556 //\r
557\r
558 return EFI_NOT_AVAILABLE_YET;\r
559}\r
560\r
561\r
562/**\r
563 Place holder function until all the Boot Services and Runtime Services are available.\r
564\r
565 @param Arg1 Undefined\r
566 @param Arg2 Undefined\r
567\r
568 @return EFI_NOT_AVAILABLE_YET\r
569\r
570**/\r
571EFI_STATUS\r
572EFIAPI\r
573CoreEfiNotAvailableYetArg2 (\r
574 UINTN Arg1,\r
575 UINTN Arg2\r
576 )\r
577{\r
578 //\r
579 // This function should never be executed. If it does, then the architectural protocols\r
580 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
581 // DXE Core and all the Architectural Protocols are complete.\r
582 //\r
583\r
584 return EFI_NOT_AVAILABLE_YET;\r
585}\r
586\r
587\r
588/**\r
589 Place holder function until all the Boot Services and Runtime Services are available.\r
590\r
591 @param Arg1 Undefined\r
592 @param Arg2 Undefined\r
593 @param Arg3 Undefined\r
594\r
595 @return EFI_NOT_AVAILABLE_YET\r
596\r
597**/\r
598EFI_STATUS\r
599EFIAPI\r
600CoreEfiNotAvailableYetArg3 (\r
601 UINTN Arg1,\r
602 UINTN Arg2,\r
603 UINTN Arg3\r
604 )\r
605{\r
606 //\r
607 // This function should never be executed. If it does, then the architectural protocols\r
608 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
609 // DXE Core and all the Architectural Protocols are complete.\r
610 //\r
611\r
612 return EFI_NOT_AVAILABLE_YET;\r
613}\r
614\r
615\r
616/**\r
617 Place holder function until all the Boot Services and Runtime Services are available.\r
618\r
619 @param Arg1 Undefined\r
620 @param Arg2 Undefined\r
621 @param Arg3 Undefined\r
622 @param Arg4 Undefined\r
623\r
624 @return EFI_NOT_AVAILABLE_YET\r
625\r
626**/\r
627EFI_STATUS\r
628EFIAPI\r
629CoreEfiNotAvailableYetArg4 (\r
630 UINTN Arg1,\r
631 UINTN Arg2,\r
632 UINTN Arg3,\r
633 UINTN Arg4\r
634 )\r
635{\r
636 //\r
637 // This function should never be executed. If it does, then the architectural protocols\r
638 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
639 // DXE Core and all the Architectural Protocols are complete.\r
640 //\r
641\r
642 return EFI_NOT_AVAILABLE_YET;\r
643}\r
644\r
645\r
646/**\r
647 Place holder function until all the Boot Services and Runtime Services are available.\r
648\r
649 @param Arg1 Undefined\r
650 @param Arg2 Undefined\r
651 @param Arg3 Undefined\r
652 @param Arg4 Undefined\r
653 @param Arg5 Undefined\r
654\r
655 @return EFI_NOT_AVAILABLE_YET\r
656\r
657**/\r
658EFI_STATUS\r
659EFIAPI\r
660CoreEfiNotAvailableYetArg5 (\r
661 UINTN Arg1,\r
662 UINTN Arg2,\r
663 UINTN Arg3,\r
664 UINTN Arg4,\r
665 UINTN Arg5\r
666 )\r
667{\r
668 //\r
669 // This function should never be executed. If it does, then the architectural protocols\r
670 // have not been designed correctly. The CpuBreakpoint () is commented out for now until the\r
671 // DXE Core and all the Architectural Protocols are complete.\r
672 //\r
673\r
674 return EFI_NOT_AVAILABLE_YET;\r
675}\r
676\r
677\r
678/**\r
679 Calcualte the 32-bit CRC in a EFI table using the service provided by the\r
680 gRuntime service.\r
681\r
682 @param Hdr Pointer to an EFI standard header\r
683\r
684**/\r
685VOID\r
686CalculateEfiHdrCrc (\r
687 IN OUT EFI_TABLE_HEADER *Hdr\r
688 )\r
689{\r
690 UINT32 Crc;\r
691\r
692 Hdr->CRC32 = 0;\r
693\r
694 //\r
695 // If gBS->CalculateCrce32 () == CoreEfiNotAvailableYet () then\r
696 // Crc will come back as zero if we set it to zero here\r
697 //\r
698 Crc = 0;\r
699 gBS->CalculateCrc32 ((UINT8 *)Hdr, Hdr->HeaderSize, &Crc);\r
700 Hdr->CRC32 = Crc;\r
701}\r
702\r
703\r
704/**\r
705 Terminates all boot services.\r
706\r
707 @param ImageHandle Handle that identifies the exiting image.\r
708 @param MapKey Key to the latest memory map.\r
709\r
710 @retval EFI_SUCCESS Boot Services terminated\r
711 @retval EFI_INVALID_PARAMETER MapKey is incorrect.\r
712\r
713**/\r
714EFI_STATUS\r
715EFIAPI\r
716CoreExitBootServices (\r
717 IN EFI_HANDLE ImageHandle,\r
718 IN UINTN MapKey\r
719 )\r
720{\r
721 EFI_STATUS Status;\r
722\r
723 //\r
724 // Disable Timer\r
725 //\r
726 gTimer->SetTimerPeriod (gTimer, 0);\r
727\r
728 //\r
729 // Terminate memory services if the MapKey matches\r
730 //\r
731 Status = CoreTerminateMemoryMap (MapKey);\r
732 if (EFI_ERROR (Status)) {\r
733 //\r
734 // Notify other drivers that ExitBootServices fail \r
735 //\r
736 CoreNotifySignalList (&gEventExitBootServicesFailedGuid);\r
737 return Status;\r
738 }\r
739\r
740 //\r
741 // Notify other drivers that we are exiting boot services.\r
742 //\r
743 CoreNotifySignalList (&gEfiEventExitBootServicesGuid);\r
744\r
745 //\r
746 // Report that ExitBootServices() has been called\r
747 //\r
748 REPORT_STATUS_CODE (\r
749 EFI_PROGRESS_CODE,\r
750 (EFI_SOFTWARE_EFI_BOOT_SERVICE | EFI_SW_BS_PC_EXIT_BOOT_SERVICES)\r
751 );\r
752\r
753 //\r
754 // Disable interrupt of Debug timer.\r
755 //\r
756 SaveAndSetDebugTimerInterrupt (FALSE);\r
757\r
758 //\r
759 // Disable CPU Interrupts\r
760 //\r
761 gCpu->DisableInterrupt (gCpu);\r
762\r
763 //\r
764 // Clear the non-runtime values of the EFI System Table\r
765 //\r
766 gDxeCoreST->BootServices = NULL;\r
767 gDxeCoreST->ConIn = NULL;\r
768 gDxeCoreST->ConsoleInHandle = NULL;\r
769 gDxeCoreST->ConOut = NULL;\r
770 gDxeCoreST->ConsoleOutHandle = NULL;\r
771 gDxeCoreST->StdErr = NULL;\r
772 gDxeCoreST->StandardErrorHandle = NULL;\r
773\r
774 //\r
775 // Recompute the 32-bit CRC of the EFI System Table\r
776 //\r
777 CalculateEfiHdrCrc (&gDxeCoreST->Hdr);\r
778\r
779 //\r
780 // Zero out the Boot Service Table\r
781 //\r
782 ZeroMem (gBS, sizeof (EFI_BOOT_SERVICES));\r
783 gBS = NULL;\r
784\r
785 //\r
786 // Update the AtRuntime field in Runtiem AP.\r
787 //\r
788 gRuntime->AtRuntime = TRUE;\r
789\r
790 return Status;\r
791}\r
792\r
793\r
794/**\r
795 Given a compressed source buffer, this function retrieves the size of the\r
796 uncompressed buffer and the size of the scratch buffer required to decompress\r
797 the compressed source buffer.\r
798\r
799 The GetInfo() function retrieves the size of the uncompressed buffer and the\r
800 temporary scratch buffer required to decompress the buffer specified by Source\r
801 and SourceSize. If the size of the uncompressed buffer or the size of the\r
802 scratch buffer cannot be determined from the compressed data specified by\r
803 Source and SourceData, then EFI_INVALID_PARAMETER is returned. Otherwise, the\r
804 size of the uncompressed buffer is returned in DestinationSize, the size of\r
805 the scratch buffer is returned in ScratchSize, and EFI_SUCCESS is returned.\r
806 The GetInfo() function does not have scratch buffer available to perform a\r
807 thorough checking of the validity of the source data. It just retrieves the\r
808 "Original Size" field from the beginning bytes of the source data and output\r
809 it as DestinationSize. And ScratchSize is specific to the decompression\r
810 implementation.\r
811\r
812 @param This A pointer to the EFI_DECOMPRESS_PROTOCOL instance.\r
813 @param Source The source buffer containing the compressed data.\r
814 @param SourceSize The size, in bytes, of the source buffer.\r
815 @param DestinationSize A pointer to the size, in bytes, of the\r
816 uncompressed buffer that will be generated when the\r
817 compressed buffer specified by Source and\r
818 SourceSize is decompressed.\r
819 @param ScratchSize A pointer to the size, in bytes, of the scratch\r
820 buffer that is required to decompress the\r
821 compressed buffer specified by Source and\r
822 SourceSize.\r
823\r
824 @retval EFI_SUCCESS The size of the uncompressed data was returned in\r
825 DestinationSize and the size of the scratch buffer\r
826 was returned in ScratchSize.\r
827 @retval EFI_INVALID_PARAMETER The size of the uncompressed data or the size of\r
828 the scratch buffer cannot be determined from the\r
829 compressed data specified by Source and\r
830 SourceSize.\r
831\r
832**/\r
833EFI_STATUS\r
834EFIAPI\r
835DxeMainUefiDecompressGetInfo (\r
836 IN EFI_DECOMPRESS_PROTOCOL *This,\r
837 IN VOID *Source,\r
838 IN UINT32 SourceSize,\r
839 OUT UINT32 *DestinationSize,\r
840 OUT UINT32 *ScratchSize\r
841 )\r
842{\r
843 if (Source == NULL || DestinationSize == NULL || ScratchSize == NULL) {\r
844 return EFI_INVALID_PARAMETER;\r
845 }\r
846 return UefiDecompressGetInfo (Source, SourceSize, DestinationSize, ScratchSize);\r
847}\r
848\r
849\r
850/**\r
851 Decompresses a compressed source buffer.\r
852\r
853 The Decompress() function extracts decompressed data to its original form.\r
854 This protocol is designed so that the decompression algorithm can be\r
855 implemented without using any memory services. As a result, the Decompress()\r
856 Function is not allowed to call AllocatePool() or AllocatePages() in its\r
857 implementation. It is the caller's responsibility to allocate and free the\r
858 Destination and Scratch buffers.\r
859 If the compressed source data specified by Source and SourceSize is\r
860 successfully decompressed into Destination, then EFI_SUCCESS is returned. If\r
861 the compressed source data specified by Source and SourceSize is not in a\r
862 valid compressed data format, then EFI_INVALID_PARAMETER is returned.\r
863\r
864 @param This A pointer to the EFI_DECOMPRESS_PROTOCOL instance.\r
865 @param Source The source buffer containing the compressed data.\r
866 @param SourceSize SourceSizeThe size of source data.\r
867 @param Destination On output, the destination buffer that contains\r
868 the uncompressed data.\r
869 @param DestinationSize The size of the destination buffer. The size of\r
870 the destination buffer needed is obtained from\r
871 EFI_DECOMPRESS_PROTOCOL.GetInfo().\r
872 @param Scratch A temporary scratch buffer that is used to perform\r
873 the decompression.\r
874 @param ScratchSize The size of scratch buffer. The size of the\r
875 scratch buffer needed is obtained from GetInfo().\r
876\r
877 @retval EFI_SUCCESS Decompression completed successfully, and the\r
878 uncompressed buffer is returned in Destination.\r
879 @retval EFI_INVALID_PARAMETER The source buffer specified by Source and\r
880 SourceSize is corrupted (not in a valid\r
881 compressed format).\r
882\r
883**/\r
884EFI_STATUS\r
885EFIAPI\r
886DxeMainUefiDecompress (\r
887 IN EFI_DECOMPRESS_PROTOCOL *This,\r
888 IN VOID *Source,\r
889 IN UINT32 SourceSize,\r
890 IN OUT VOID *Destination,\r
891 IN UINT32 DestinationSize,\r
892 IN OUT VOID *Scratch,\r
893 IN UINT32 ScratchSize\r
894 )\r
895{\r
896 EFI_STATUS Status;\r
897 UINT32 TestDestinationSize;\r
898 UINT32 TestScratchSize;\r
899\r
900 if (Source == NULL || Destination== NULL || Scratch == NULL) {\r
901 return EFI_INVALID_PARAMETER;\r
902 }\r
903\r
904 Status = UefiDecompressGetInfo (Source, SourceSize, &TestDestinationSize, &TestScratchSize);\r
905 if (EFI_ERROR (Status)) {\r
906 return Status;\r
907 }\r
908\r
909 if (ScratchSize < TestScratchSize || DestinationSize < TestDestinationSize) {\r
910 return RETURN_INVALID_PARAMETER;\r
911 }\r
912\r
913 return UefiDecompress (Source, Destination, Scratch);\r
914}\r