mirror of https://github.com/acidanthera/audk.git
416 lines
14 KiB
C
416 lines
14 KiB
C
/** @file
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Copyright (c) 2014 - 2020, Intel Corporation. All rights reserved.<BR>
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SPDX-License-Identifier: BSD-2-Clause-Patent
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**/
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#include "UefiPayloadEntry.h"
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/**
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Callback function to build resource descriptor HOB
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This function build a HOB based on the memory map entry info.
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@param MemoryMapEntry Memory map entry info got from bootloader.
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@param Params Not used for now.
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@retval RETURN_SUCCESS Successfully build a HOB.
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**/
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EFI_STATUS
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MemInfoCallback (
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IN MEMROY_MAP_ENTRY *MemoryMapEntry,
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IN VOID *Params
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)
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{
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EFI_PHYSICAL_ADDRESS Base;
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EFI_RESOURCE_TYPE Type;
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UINT64 Size;
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EFI_RESOURCE_ATTRIBUTE_TYPE Attribue;
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Type = (MemoryMapEntry->Type == 1) ? EFI_RESOURCE_SYSTEM_MEMORY : EFI_RESOURCE_MEMORY_RESERVED;
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Base = MemoryMapEntry->Base;
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Size = MemoryMapEntry->Size;
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Attribue = EFI_RESOURCE_ATTRIBUTE_PRESENT |
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EFI_RESOURCE_ATTRIBUTE_INITIALIZED |
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EFI_RESOURCE_ATTRIBUTE_TESTED |
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EFI_RESOURCE_ATTRIBUTE_UNCACHEABLE |
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EFI_RESOURCE_ATTRIBUTE_WRITE_COMBINEABLE |
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EFI_RESOURCE_ATTRIBUTE_WRITE_THROUGH_CACHEABLE |
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EFI_RESOURCE_ATTRIBUTE_WRITE_BACK_CACHEABLE;
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if (Base >= BASE_4GB ) {
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// Remove tested attribute to avoid DXE core to dispatch driver to memory above 4GB
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Attribue &= ~EFI_RESOURCE_ATTRIBUTE_TESTED;
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}
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BuildResourceDescriptorHob (Type, Attribue, (EFI_PHYSICAL_ADDRESS)Base, Size);
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DEBUG ((DEBUG_INFO , "buildhob: base = 0x%lx, size = 0x%lx, type = 0x%x\n", Base, Size, Type));
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return RETURN_SUCCESS;
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}
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/**
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Find the board related info from ACPI table
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@param AcpiTableBase ACPI table start address in memory
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@param AcpiBoardInfo Pointer to the acpi board info strucutre
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@retval RETURN_SUCCESS Successfully find out all the required information.
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@retval RETURN_NOT_FOUND Failed to find the required info.
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**/
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RETURN_STATUS
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ParseAcpiInfo (
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IN UINT64 AcpiTableBase,
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OUT ACPI_BOARD_INFO *AcpiBoardInfo
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)
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{
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EFI_ACPI_3_0_ROOT_SYSTEM_DESCRIPTION_POINTER *Rsdp;
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EFI_ACPI_DESCRIPTION_HEADER *Rsdt;
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UINT32 *Entry32;
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UINTN Entry32Num;
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EFI_ACPI_3_0_FIXED_ACPI_DESCRIPTION_TABLE *Fadt;
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EFI_ACPI_DESCRIPTION_HEADER *Xsdt;
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UINT64 *Entry64;
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UINTN Entry64Num;
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UINTN Idx;
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UINT32 *Signature;
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EFI_ACPI_MEMORY_MAPPED_CONFIGURATION_BASE_ADDRESS_TABLE_HEADER *MmCfgHdr;
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EFI_ACPI_MEMORY_MAPPED_ENHANCED_CONFIGURATION_SPACE_BASE_ADDRESS_ALLOCATION_STRUCTURE *MmCfgBase;
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Rsdp = (EFI_ACPI_3_0_ROOT_SYSTEM_DESCRIPTION_POINTER *)(UINTN)AcpiTableBase;
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DEBUG ((DEBUG_INFO, "Rsdp at 0x%p\n", Rsdp));
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DEBUG ((DEBUG_INFO, "Rsdt at 0x%x, Xsdt at 0x%lx\n", Rsdp->RsdtAddress, Rsdp->XsdtAddress));
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//
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// Search Rsdt First
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//
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Fadt = NULL;
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MmCfgHdr = NULL;
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Rsdt = (EFI_ACPI_DESCRIPTION_HEADER *)(UINTN)(Rsdp->RsdtAddress);
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if (Rsdt != NULL) {
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Entry32 = (UINT32 *)(Rsdt + 1);
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Entry32Num = (Rsdt->Length - sizeof(EFI_ACPI_DESCRIPTION_HEADER)) >> 2;
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for (Idx = 0; Idx < Entry32Num; Idx++) {
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Signature = (UINT32 *)(UINTN)Entry32[Idx];
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if (*Signature == EFI_ACPI_3_0_FIXED_ACPI_DESCRIPTION_TABLE_SIGNATURE) {
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Fadt = (EFI_ACPI_3_0_FIXED_ACPI_DESCRIPTION_TABLE *)Signature;
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DEBUG ((DEBUG_INFO, "Found Fadt in Rsdt\n"));
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}
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if (*Signature == EFI_ACPI_5_0_PCI_EXPRESS_MEMORY_MAPPED_CONFIGURATION_SPACE_BASE_ADDRESS_DESCRIPTION_TABLE_SIGNATURE) {
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MmCfgHdr = (EFI_ACPI_MEMORY_MAPPED_CONFIGURATION_BASE_ADDRESS_TABLE_HEADER *)Signature;
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DEBUG ((DEBUG_INFO, "Found MM config address in Rsdt\n"));
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}
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if ((Fadt != NULL) && (MmCfgHdr != NULL)) {
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goto Done;
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}
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}
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}
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//
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// Search Xsdt Second
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//
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Xsdt = (EFI_ACPI_DESCRIPTION_HEADER *)(UINTN)(Rsdp->XsdtAddress);
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if (Xsdt != NULL) {
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Entry64 = (UINT64 *)(Xsdt + 1);
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Entry64Num = (Xsdt->Length - sizeof(EFI_ACPI_DESCRIPTION_HEADER)) >> 3;
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for (Idx = 0; Idx < Entry64Num; Idx++) {
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Signature = (UINT32 *)(UINTN)Entry64[Idx];
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if (*Signature == EFI_ACPI_3_0_FIXED_ACPI_DESCRIPTION_TABLE_SIGNATURE) {
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Fadt = (EFI_ACPI_3_0_FIXED_ACPI_DESCRIPTION_TABLE *)Signature;
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DEBUG ((DEBUG_INFO, "Found Fadt in Xsdt\n"));
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}
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if (*Signature == EFI_ACPI_5_0_PCI_EXPRESS_MEMORY_MAPPED_CONFIGURATION_SPACE_BASE_ADDRESS_DESCRIPTION_TABLE_SIGNATURE) {
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MmCfgHdr = (EFI_ACPI_MEMORY_MAPPED_CONFIGURATION_BASE_ADDRESS_TABLE_HEADER *)Signature;
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DEBUG ((DEBUG_INFO, "Found MM config address in Xsdt\n"));
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}
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if ((Fadt != NULL) && (MmCfgHdr != NULL)) {
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goto Done;
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}
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}
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}
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if (Fadt == NULL) {
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return RETURN_NOT_FOUND;
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}
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Done:
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AcpiBoardInfo->PmCtrlRegBase = Fadt->Pm1aCntBlk;
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AcpiBoardInfo->PmTimerRegBase = Fadt->PmTmrBlk;
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AcpiBoardInfo->ResetRegAddress = Fadt->ResetReg.Address;
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AcpiBoardInfo->ResetValue = Fadt->ResetValue;
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AcpiBoardInfo->PmEvtBase = Fadt->Pm1aEvtBlk;
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AcpiBoardInfo->PmGpeEnBase = Fadt->Gpe0Blk + Fadt->Gpe0BlkLen / 2;
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if (MmCfgHdr != NULL) {
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MmCfgBase = (EFI_ACPI_MEMORY_MAPPED_ENHANCED_CONFIGURATION_SPACE_BASE_ADDRESS_ALLOCATION_STRUCTURE *)((UINT8*) MmCfgHdr + sizeof (*MmCfgHdr));
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AcpiBoardInfo->PcieBaseAddress = MmCfgBase->BaseAddress;
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AcpiBoardInfo->PcieBaseSize = (MmCfgBase->EndBusNumber + 1 - MmCfgBase->StartBusNumber) * 4096 * 32 * 8;
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} else {
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AcpiBoardInfo->PcieBaseAddress = 0;
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AcpiBoardInfo->PcieBaseSize = 0;
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}
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DEBUG ((DEBUG_INFO, "PmCtrl Reg 0x%lx\n", AcpiBoardInfo->PmCtrlRegBase));
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DEBUG ((DEBUG_INFO, "PmTimer Reg 0x%lx\n", AcpiBoardInfo->PmTimerRegBase));
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DEBUG ((DEBUG_INFO, "Reset Reg 0x%lx\n", AcpiBoardInfo->ResetRegAddress));
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DEBUG ((DEBUG_INFO, "Reset Value 0x%x\n", AcpiBoardInfo->ResetValue));
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DEBUG ((DEBUG_INFO, "PmEvt Reg 0x%lx\n", AcpiBoardInfo->PmEvtBase));
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DEBUG ((DEBUG_INFO, "PmGpeEn Reg 0x%lx\n", AcpiBoardInfo->PmGpeEnBase));
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DEBUG ((DEBUG_INFO, "PcieBaseAddr 0x%lx\n", AcpiBoardInfo->PcieBaseAddress));
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DEBUG ((DEBUG_INFO, "PcieBaseSize 0x%lx\n", AcpiBoardInfo->PcieBaseSize));
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//
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// Verify values for proper operation
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//
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ASSERT(Fadt->Pm1aCntBlk != 0);
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ASSERT(Fadt->PmTmrBlk != 0);
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ASSERT(Fadt->ResetReg.Address != 0);
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ASSERT(Fadt->Pm1aEvtBlk != 0);
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ASSERT(Fadt->Gpe0Blk != 0);
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DEBUG_CODE_BEGIN ();
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BOOLEAN SciEnabled;
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//
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// Check the consistency of SCI enabling
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//
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//
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// Get SCI_EN value
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//
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if (Fadt->Pm1CntLen == 4) {
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SciEnabled = (IoRead32 (Fadt->Pm1aCntBlk) & BIT0)? TRUE : FALSE;
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} else {
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//
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// if (Pm1CntLen == 2), use 16 bit IO read;
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// if (Pm1CntLen != 2 && Pm1CntLen != 4), use 16 bit IO read as a fallback
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//
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SciEnabled = (IoRead16 (Fadt->Pm1aCntBlk) & BIT0)? TRUE : FALSE;
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}
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if (!(Fadt->Flags & EFI_ACPI_5_0_HW_REDUCED_ACPI) &&
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(Fadt->SmiCmd == 0) &&
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!SciEnabled) {
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//
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// The ACPI enabling status is inconsistent: SCI is not enabled but ACPI
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// table does not provide a means to enable it through FADT->SmiCmd
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//
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DEBUG ((DEBUG_ERROR, "ERROR: The ACPI enabling status is inconsistent: SCI is not"
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" enabled but the ACPI table does not provide a means to enable it through FADT->SmiCmd."
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" This may cause issues in OS.\n"));
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}
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DEBUG_CODE_END ();
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return RETURN_SUCCESS;
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}
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/**
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It will build HOBs based on information from bootloaders.
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@retval EFI_SUCCESS If it completed successfully.
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@retval Others If it failed to build required HOBs.
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**/
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EFI_STATUS
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BuildHobFromBl (
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VOID
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)
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{
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EFI_STATUS Status;
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SYSTEM_TABLE_INFO SysTableInfo;
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SYSTEM_TABLE_INFO *NewSysTableInfo;
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ACPI_BOARD_INFO AcpiBoardInfo;
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ACPI_BOARD_INFO *NewAcpiBoardInfo;
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EFI_PEI_GRAPHICS_INFO_HOB GfxInfo;
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EFI_PEI_GRAPHICS_INFO_HOB *NewGfxInfo;
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EFI_PEI_GRAPHICS_DEVICE_INFO_HOB GfxDeviceInfo;
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EFI_PEI_GRAPHICS_DEVICE_INFO_HOB *NewGfxDeviceInfo;
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//
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// Parse memory info and build memory HOBs
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//
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Status = ParseMemoryInfo (MemInfoCallback, NULL);
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if (EFI_ERROR(Status)) {
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return Status;
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}
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//
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// Create guid hob for frame buffer information
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//
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Status = ParseGfxInfo (&GfxInfo);
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if (!EFI_ERROR (Status)) {
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NewGfxInfo = BuildGuidHob (&gEfiGraphicsInfoHobGuid, sizeof (GfxInfo));
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ASSERT (NewGfxInfo != NULL);
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CopyMem (NewGfxInfo, &GfxInfo, sizeof (GfxInfo));
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DEBUG ((DEBUG_INFO, "Created graphics info hob\n"));
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}
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Status = ParseGfxDeviceInfo (&GfxDeviceInfo);
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if (!EFI_ERROR (Status)) {
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NewGfxDeviceInfo = BuildGuidHob (&gEfiGraphicsDeviceInfoHobGuid, sizeof (GfxDeviceInfo));
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ASSERT (NewGfxDeviceInfo != NULL);
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CopyMem (NewGfxDeviceInfo, &GfxDeviceInfo, sizeof (GfxDeviceInfo));
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DEBUG ((DEBUG_INFO, "Created graphics device info hob\n"));
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}
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//
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// Create guid hob for system tables like acpi table and smbios table
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//
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Status = ParseSystemTable(&SysTableInfo);
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ASSERT_EFI_ERROR (Status);
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if (!EFI_ERROR (Status)) {
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NewSysTableInfo = BuildGuidHob (&gUefiSystemTableInfoGuid, sizeof (SYSTEM_TABLE_INFO));
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ASSERT (NewSysTableInfo != NULL);
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CopyMem (NewSysTableInfo, &SysTableInfo, sizeof (SYSTEM_TABLE_INFO));
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DEBUG ((DEBUG_INFO, "Detected Acpi Table at 0x%lx, length 0x%x\n", SysTableInfo.AcpiTableBase, SysTableInfo.AcpiTableSize));
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DEBUG ((DEBUG_INFO, "Detected Smbios Table at 0x%lx, length 0x%x\n", SysTableInfo.SmbiosTableBase, SysTableInfo.SmbiosTableSize));
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}
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//
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// Create guid hob for acpi board information
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//
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Status = ParseAcpiInfo (SysTableInfo.AcpiTableBase, &AcpiBoardInfo);
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ASSERT_EFI_ERROR (Status);
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if (!EFI_ERROR (Status)) {
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NewAcpiBoardInfo = BuildGuidHob (&gUefiAcpiBoardInfoGuid, sizeof (ACPI_BOARD_INFO));
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ASSERT (NewAcpiBoardInfo != NULL);
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CopyMem (NewAcpiBoardInfo, &AcpiBoardInfo, sizeof (ACPI_BOARD_INFO));
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DEBUG ((DEBUG_INFO, "Create acpi board info guid hob\n"));
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}
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//
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// Parse platform specific information.
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//
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Status = ParsePlatformInfo ();
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if (EFI_ERROR (Status)) {
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DEBUG ((DEBUG_ERROR, "Error when parsing platform info, Status = %r\n", Status));
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return Status;
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}
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return EFI_SUCCESS;
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}
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/**
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This function will build some generic HOBs that doesn't depend on information from bootloaders.
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**/
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VOID
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BuildGenericHob (
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VOID
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)
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{
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UINT32 RegEax;
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UINT8 PhysicalAddressBits;
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EFI_RESOURCE_ATTRIBUTE_TYPE ResourceAttribute;
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// The UEFI payload FV
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BuildMemoryAllocationHob (PcdGet32 (PcdPayloadFdMemBase), PcdGet32 (PcdPayloadFdMemSize), EfiBootServicesData);
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//
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// Build CPU memory space and IO space hob
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//
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AsmCpuid (0x80000000, &RegEax, NULL, NULL, NULL);
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if (RegEax >= 0x80000008) {
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AsmCpuid (0x80000008, &RegEax, NULL, NULL, NULL);
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PhysicalAddressBits = (UINT8) RegEax;
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} else {
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PhysicalAddressBits = 36;
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}
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BuildCpuHob (PhysicalAddressBits, 16);
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//
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// Report Local APIC range, cause sbl HOB to be NULL, comment now
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//
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ResourceAttribute = (
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EFI_RESOURCE_ATTRIBUTE_PRESENT |
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EFI_RESOURCE_ATTRIBUTE_INITIALIZED |
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EFI_RESOURCE_ATTRIBUTE_UNCACHEABLE |
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EFI_RESOURCE_ATTRIBUTE_TESTED
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);
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BuildResourceDescriptorHob (EFI_RESOURCE_MEMORY_MAPPED_IO, ResourceAttribute, 0xFEC80000, SIZE_512KB);
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BuildMemoryAllocationHob ( 0xFEC80000, SIZE_512KB, EfiMemoryMappedIO);
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}
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/**
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Entry point to the C language phase of UEFI payload.
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@retval It will not return if SUCCESS, and return error when passing bootloader parameter.
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**/
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EFI_STATUS
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EFIAPI
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PayloadEntry (
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IN UINTN BootloaderParameter
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)
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{
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EFI_STATUS Status;
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PHYSICAL_ADDRESS DxeCoreEntryPoint;
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EFI_HOB_HANDOFF_INFO_TABLE *HandoffHobTable;
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UINTN MemBase;
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UINTN MemSize;
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UINTN HobMemBase;
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UINTN HobMemTop;
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EFI_PEI_HOB_POINTERS Hob;
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// Call constructor for all libraries
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ProcessLibraryConstructorList ();
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DEBUG ((DEBUG_INFO, "GET_BOOTLOADER_PARAMETER() = 0x%lx\n", GET_BOOTLOADER_PARAMETER()));
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DEBUG ((DEBUG_INFO, "sizeof(UINTN) = 0x%x\n", sizeof(UINTN)));
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// Initialize floating point operating environment to be compliant with UEFI spec.
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InitializeFloatingPointUnits ();
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// HOB region is used for HOB and memory allocation for this module
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MemBase = PcdGet32 (PcdPayloadFdMemBase);
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HobMemBase = ALIGN_VALUE (MemBase + PcdGet32 (PcdPayloadFdMemSize), SIZE_1MB);
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HobMemTop = HobMemBase + FixedPcdGet32 (PcdSystemMemoryUefiRegionSize);
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// DXE core assumes the memory below HOB region could be used, so include the FV region memory into HOB range.
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MemSize = HobMemTop - MemBase;
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HandoffHobTable = HobConstructor ((VOID *)MemBase, MemSize, (VOID *)HobMemBase, (VOID *)HobMemTop);
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// Build HOB based on information from Bootloader
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Status = BuildHobFromBl ();
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if (EFI_ERROR (Status)) {
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DEBUG ((DEBUG_ERROR, "BuildHobFromBl Status = %r\n", Status));
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return Status;
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}
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// Build other HOBs required by DXE
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BuildGenericHob ();
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// Load the DXE Core
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Status = LoadDxeCore (&DxeCoreEntryPoint);
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ASSERT_EFI_ERROR (Status);
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DEBUG ((DEBUG_INFO, "DxeCoreEntryPoint = 0x%lx\n", DxeCoreEntryPoint));
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//
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// Mask off all legacy 8259 interrupt sources
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//
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IoWrite8 (LEGACY_8259_MASK_REGISTER_MASTER, 0xFF);
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IoWrite8 (LEGACY_8259_MASK_REGISTER_SLAVE, 0xFF);
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Hob.HandoffInformationTable = HandoffHobTable;
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HandOffToDxeCore (DxeCoreEntryPoint, Hob);
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// Should not get here
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CpuDeadLoop ();
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return EFI_SUCCESS;
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}
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