Changes for V4 ============== 1) Move delete of QuarkSocPkg\QuarkNorthCluster\Binary\QuarkMicrocode from QuarkPlatformPkg commit to QuarkSocPkg commit 2) Fix incorrect license header in PlatformSecLibModStrs.uni Changes for V3 ============== 1) Set PcdResetOnMemoryTypeInformationChange FALSE in QuarkMin.dsc This is required because QuarkMin.dsc uses the emulated variable driver that does not preserve any non-volatile UEFI variables across reset. If the condition is met where the memory type information variable needs to be updated, then the system will reset every time the UEFI Shell is run. By setting this PCD to FALSE, then reset action is disabled. 2) Move one binary file to QuarkSocBinPkg 3) Change RMU.bin FILE statements to INF statement in DSC FD region to be compatible with PACKAGES_PATH search for QuarkSocBinPkg Changes for V2 ============== 1) Use new generic PCI serial driver PciSioSerialDxe in MdeModulePkg 2) Configure PcdPciSerialParameters for PCI serial driver for Quark 3) Use new MtrrLib API to reduce time to set MTRRs for all DRAM 4) Convert all UNI files to utf-8 5) Replace tabs with spaces and remove trailing spaces 6) Add License.txt Contributed-under: TianoCore Contribution Agreement 1.0 Signed-off-by: Michael Kinney <michael.d.kinney@intel.com> Acked-by: Jordan Justen <jordan.l.justen@intel.com> git-svn-id: https://svn.code.sf.net/p/edk2/code/trunk/edk2@19287 6f19259b-4bc3-4df7-8a09-765794883524
339 lines
10 KiB
C
339 lines
10 KiB
C
/** @file
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Defines data structure that is the volume header found.These data is intent
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to decouple FVB driver with FV header.
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Copyright (c) 2013 Intel Corporation.
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This program and the accompanying materials
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are licensed and made available under the terms and conditions of the BSD License
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which accompanies this distribution. The full text of the license may be found at
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http://opensource.org/licenses/bsd-license.php
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THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,
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WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.
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**/
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#include <PiDxe.h>
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#include "FwBlockService.h"
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//#define FVB_MEDIA_BLOCK_SIZE PcdGet32(PcdFlashMinEraseSize)
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#define FVB_MEDIA_BLOCK_SIZE 0x1000
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typedef struct {
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EFI_PHYSICAL_ADDRESS BaseAddress;
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EFI_FIRMWARE_VOLUME_HEADER FvbInfo;
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//
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//EFI_FV_BLOCK_MAP_ENTRY ExtraBlockMap[n];//n=0
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//
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EFI_FV_BLOCK_MAP_ENTRY End[1];
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} EFI_FVB2_MEDIA_INFO;
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//
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// This data structure contains a template of all correct FV headers, which is used to restore
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// Fv header if it's corrupted.
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//
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EFI_FVB2_MEDIA_INFO mPlatformFvbMediaInfo[] = {
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//
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// Main BIOS FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_FIRMWARE_FILE_SYSTEM2_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum, check the FD for the value.
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0, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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},
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//
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// Systen NvStorage FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_SYSTEM_NV_DATA_FV_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum which will be calucated dynamically.
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0, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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},
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//
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// Recovery BIOS FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_FIRMWARE_FILE_SYSTEM2_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum which will be calucated dynamically.
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0, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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},
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//
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// Payload FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_FIRMWARE_FILE_SYSTEM2_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum which will be calucated dynamically.
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0x60, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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}
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};
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//
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// FTW working space and FTW spare space don't have FV header.
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// We need create one for them and use it for FVB protocol.
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//
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EFI_FVB2_MEDIA_INFO mPlatformFtwFvbInfo[] = {
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//
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// System variable FTW working FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_SYSTEM_NV_DATA_FV_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum which will be calucated dynamically.
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0, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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},
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//
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// Systen NV variable FTW spare FVB
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//
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{
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0,
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{
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{0,}, //ZeroVector[16]
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EFI_SYSTEM_NV_DATA_FV_GUID,
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0,
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EFI_FVH_SIGNATURE,
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0x0004feff, // check MdePkg/Include/Pi/PiFirmwareVolume.h for details on EFI_FVB_ATTRIBUTES_2
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sizeof (EFI_FIRMWARE_VOLUME_HEADER) + sizeof (EFI_FV_BLOCK_MAP_ENTRY),
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0, //CheckSum which will be calucated dynamically.
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0, //ExtHeaderOffset
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{0,}, //Reserved[1]
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2, //Revision
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{
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{
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0,
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0,
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}
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}
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},
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{
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{
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0,
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0
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}
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}
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}
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};
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EFI_STATUS
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GetFtwFvbInfo (
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IN EFI_PHYSICAL_ADDRESS FvBaseAddress,
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OUT EFI_FIRMWARE_VOLUME_HEADER **FvbInfo
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)
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{
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UINTN Index;
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EFI_FIRMWARE_VOLUME_HEADER *FvHeader;
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//
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// Init Fvb data
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//
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mPlatformFtwFvbInfo[0].BaseAddress = PcdGet32 (PcdFlashNvStorageFtwWorkingBase);
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mPlatformFtwFvbInfo[0].FvbInfo.FvLength = PcdGet32 (PcdFlashNvStorageFtwWorkingSize);
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mPlatformFtwFvbInfo[0].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashNvStorageFtwWorkingSize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFtwFvbInfo[0].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashNvStorageFtwWorkingSize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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mPlatformFtwFvbInfo[1].BaseAddress = PcdGet32 (PcdFlashNvStorageFtwSpareBase);
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mPlatformFtwFvbInfo[1].FvbInfo.FvLength = PcdGet32 (PcdFlashNvStorageFtwSpareSize);
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mPlatformFtwFvbInfo[1].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashNvStorageFtwSpareSize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFtwFvbInfo[1].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashNvStorageFtwSpareSize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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for (Index=0; Index < sizeof (mPlatformFtwFvbInfo)/sizeof (mPlatformFtwFvbInfo[0]); Index += 1) {
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if (mPlatformFtwFvbInfo[Index].BaseAddress == FvBaseAddress) {
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FvHeader = &mPlatformFtwFvbInfo[Index].FvbInfo;
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//
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// Update the checksum value of FV header.
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//
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FvHeader->Checksum = CalculateCheckSum16 ((UINT16 *) FvHeader, FvHeader->HeaderLength / sizeof (UINT16));
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*FvbInfo = FvHeader;
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DEBUG ((EFI_D_INFO, "\nFTW BaseAddr: 0x%lx \n", FvBaseAddress));
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DEBUG ((EFI_D_INFO, "FvLength: 0x%lx \n", (*FvbInfo)->FvLength));
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DEBUG ((EFI_D_INFO, "HeaderLength: 0x%x \n", (*FvbInfo)->HeaderLength));
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DEBUG ((EFI_D_INFO, "FvBlockMap[0].NumBlocks: 0x%x \n", (*FvbInfo)->BlockMap[0].NumBlocks));
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DEBUG ((EFI_D_INFO, "FvBlockMap[0].BlockLength: 0x%x \n", (*FvbInfo)->BlockMap[0].Length));
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DEBUG ((EFI_D_INFO, "FvBlockMap[1].NumBlocks: 0x%x \n", (*FvbInfo)->BlockMap[1].NumBlocks));
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DEBUG ((EFI_D_INFO, "FvBlockMap[1].BlockLength: 0x%x \n\n", (*FvbInfo)->BlockMap[1].Length));
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return EFI_SUCCESS;
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}
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}
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return EFI_NOT_FOUND;
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}
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EFI_STATUS
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GetFvbInfo (
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IN EFI_PHYSICAL_ADDRESS FvBaseAddress,
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OUT EFI_FIRMWARE_VOLUME_HEADER **FvbInfo
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)
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{
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UINTN Index;
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EFI_FIRMWARE_VOLUME_HEADER *FvHeader;
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//
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// Init Fvb data
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//
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mPlatformFvbMediaInfo[0].BaseAddress = PcdGet32 (PcdFlashFvMainBase);
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mPlatformFvbMediaInfo[0].FvbInfo.FvLength = PcdGet32 (PcdFlashFvMainSize);
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mPlatformFvbMediaInfo[0].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashFvMainSize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFvbMediaInfo[0].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashFvMainSize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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mPlatformFvbMediaInfo[1].BaseAddress = PcdGet32 (PcdFlashNvStorageVariableBase);
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mPlatformFvbMediaInfo[1].FvbInfo.FvLength = PcdGet32 (PcdFlashNvStorageVariableSize);
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mPlatformFvbMediaInfo[1].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashNvStorageVariableSize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFvbMediaInfo[1].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashNvStorageVariableSize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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mPlatformFvbMediaInfo[2].BaseAddress = PcdGet32 (PcdFlashFvRecoveryBase);
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mPlatformFvbMediaInfo[2].FvbInfo.FvLength = PcdGet32 (PcdFlashFvRecoverySize);
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mPlatformFvbMediaInfo[2].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashFvRecoverySize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFvbMediaInfo[2].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashFvRecoverySize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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mPlatformFvbMediaInfo[3].BaseAddress = PcdGet32 (PcdFlashFvPayloadBase);
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mPlatformFvbMediaInfo[3].FvbInfo.FvLength = PcdGet32 (PcdFlashFvPayloadSize);
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mPlatformFvbMediaInfo[3].FvbInfo.BlockMap[0].NumBlocks = PcdGet32 (PcdFlashFvPayloadSize) / FVB_MEDIA_BLOCK_SIZE;
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mPlatformFvbMediaInfo[3].FvbInfo.BlockMap[0].Length = FVB_MEDIA_BLOCK_SIZE;
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ASSERT ((PcdGet32 (PcdFlashFvPayloadSize) % FVB_MEDIA_BLOCK_SIZE) == 0);
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for (Index=0; Index < sizeof (mPlatformFvbMediaInfo)/sizeof (mPlatformFvbMediaInfo[0]); Index += 1) {
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if (mPlatformFvbMediaInfo[Index].BaseAddress == FvBaseAddress) {
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FvHeader = &mPlatformFvbMediaInfo[Index].FvbInfo;
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//
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// Update the checksum value of FV header.
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//
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FvHeader->Checksum = CalculateCheckSum16 ((UINT16 *) FvHeader, FvHeader->HeaderLength / sizeof (UINT16));
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*FvbInfo = FvHeader;
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DEBUG ((EFI_D_INFO, "\nBaseAddr: 0x%lx \n", FvBaseAddress));
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DEBUG ((EFI_D_INFO, "FvLength: 0x%lx \n", (*FvbInfo)->FvLength));
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DEBUG ((EFI_D_INFO, "HeaderLength: 0x%x \n", (*FvbInfo)->HeaderLength));
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DEBUG ((EFI_D_INFO, "FvBlockMap[0].NumBlocks: 0x%x \n", (*FvbInfo)->BlockMap[0].NumBlocks));
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DEBUG ((EFI_D_INFO, "FvBlockMap[0].BlockLength: 0x%x \n", (*FvbInfo)->BlockMap[0].Length));
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DEBUG ((EFI_D_INFO, "FvBlockMap[1].NumBlocks: 0x%x \n", (*FvbInfo)->BlockMap[1].NumBlocks));
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DEBUG ((EFI_D_INFO, "FvBlockMap[1].BlockLength: 0x%x \n\n", (*FvbInfo)->BlockMap[1].Length));
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return EFI_SUCCESS;
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}
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}
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return EFI_NOT_FOUND;
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}
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