ARM Packages: Removed trailing spaces
Trailing spaces create issue/warning when generating/applying patches. Contributed-under: TianoCore Contribution Agreement 1.0 Signed-off-by: Ronald Cron <ronald.cron@arm.com> Reviewed-By: Olivier Martin <olivier.martin@arm.com> git-svn-id: https://svn.code.sf.net/p/edk2/code/trunk/edk2@15833 6f19259b-4bc3-4df7-8a09-765794883524
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oliviermartin
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@@ -1,18 +1,18 @@
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#/** @file
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#
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#
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# Component description file for Bds module
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#
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#
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# Copyright (c) 2009, Apple Inc. All rights reserved.<BR>
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#
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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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#
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#
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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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#
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#**/
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[Defines]
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@@ -49,13 +49,13 @@
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UefiDriverEntryPoint
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[Guids]
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[Protocols]
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gEfiBdsArchProtocolGuid
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gEfiSimpleTextInProtocolGuid
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gEfiSimpleTextOutProtocolGuid
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gEfiSerialIoProtocolGuid
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gEfiBdsArchProtocolGuid
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gEfiSimpleTextInProtocolGuid
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gEfiSimpleTextOutProtocolGuid
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gEfiSerialIoProtocolGuid
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gEfiDevicePathProtocolGuid
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gEfiSimpleFileSystemProtocolGuid
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gEfiUsbIoProtocolGuid
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@@ -1,13 +1,13 @@
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/** @file
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The entry of the embedded BDS. This BDS does not follow the Boot Manager requirements
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of the UEFI specification as it is designed to implement an embedded systmes
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The entry of the embedded BDS. This BDS does not follow the Boot Manager requirements
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of the UEFI specification as it is designed to implement an embedded systmes
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propriatary boot scheme.
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This template assume a DXE driver produces a SerialIo protocol not using the EFI
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This template assume a DXE driver produces a SerialIo protocol not using the EFI
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driver module and it will attempt to connect a console on top of this.
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Copyright (c) 2008 - 2009, Apple Inc. All rights reserved.<BR>
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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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@@ -28,22 +28,22 @@ EFI_BDS_ARCH_PROTOCOL gBdsProtocol = {
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};
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/**
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This function uses policy data from the platform to determine what operating
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system or system utility should be loaded and invoked. This function call
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also optionally make the use of user input to determine the operating system
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or system utility to be loaded and invoked. When the DXE Core has dispatched
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all the drivers on the dispatch queue, this function is called. This
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function will attempt to connect the boot devices required to load and invoke
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the selected operating system or system utility. During this process,
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additional firmware volumes may be discovered that may contain addition DXE
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drivers that can be dispatched by the DXE Core. If a boot device cannot be
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fully connected, this function calls the DXE Service Dispatch() to allow the
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DXE drivers from any newly discovered firmware volumes to be dispatched.
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Then the boot device connection can be attempted again. If the same boot
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device connection operation fails twice in a row, then that boot device has
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This function uses policy data from the platform to determine what operating
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system or system utility should be loaded and invoked. This function call
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also optionally make the use of user input to determine the operating system
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or system utility to be loaded and invoked. When the DXE Core has dispatched
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all the drivers on the dispatch queue, this function is called. This
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function will attempt to connect the boot devices required to load and invoke
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the selected operating system or system utility. During this process,
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additional firmware volumes may be discovered that may contain addition DXE
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drivers that can be dispatched by the DXE Core. If a boot device cannot be
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fully connected, this function calls the DXE Service Dispatch() to allow the
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DXE drivers from any newly discovered firmware volumes to be dispatched.
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Then the boot device connection can be attempted again. If the same boot
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device connection operation fails twice in a row, then that boot device has
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failed, and should be skipped. This function should never return.
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@param This The EFI_BDS_ARCH_PROTOCOL instance.
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@@ -71,7 +71,7 @@ BdsEntry (
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UINTN Index;
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EFI_DEVICE_PATH_PROTOCOL *LoadImageDevicePath;
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EFI_DEVICE_PATH_PROTOCOL *FileSystemDevicePath;
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PERF_END (NULL, "DXE", NULL, 0);
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PERF_START (NULL, "BDS", NULL, 0);
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@@ -82,12 +82,12 @@ BdsEntry (
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Size = 0x100;
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gST->FirmwareVendor = AllocateRuntimePool (Size);
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ASSERT (gST->FirmwareVendor != NULL);
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UnicodeSPrint (gST->FirmwareVendor, Size, L"BeagleBoard EFI %a %a", __DATE__, __TIME__);
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//
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// Now we need to setup the EFI System Table with information about the console devices.
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// This code is normally in the console spliter driver on platforms that support multiple
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// This code is normally in the console spliter driver on platforms that support multiple
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// consoles at the same time
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//
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Status = gBS->LocateHandleBuffer (ByProtocol, &gEfiSimpleTextOutProtocolGuid, NULL, &NoHandles, &Buffer);
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@@ -97,15 +97,15 @@ BdsEntry (
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gST->StandardErrorHandle = Buffer[0];
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Status = gBS->HandleProtocol (Buffer[0], &gEfiSimpleTextOutProtocolGuid, (VOID **)&gST->ConOut);
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ASSERT_EFI_ERROR (Status);
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gST->StdErr = gST->ConOut;
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gST->ConOut->OutputString (gST->ConOut, L"BDS: Console Started!!!!\n\r");
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FreePool (Buffer);
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gConsolePresent = TRUE;
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}
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}
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Status = gBS->LocateHandleBuffer (ByProtocol, &gEfiSimpleTextInProtocolGuid, NULL, &NoHandles, &Buffer);
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if (!EFI_ERROR (Status)) {
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@@ -113,12 +113,12 @@ BdsEntry (
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gST->ConsoleInHandle = Buffer[0];
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Status = gBS->HandleProtocol (Buffer[0], &gEfiSimpleTextInProtocolGuid, (VOID **)&gST->ConIn);
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ASSERT_EFI_ERROR (Status);
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FreePool (Buffer);
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}
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//
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// We now have EFI Consoles up and running. Print () will work now. DEBUG () and ASSERT () worked
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// We now have EFI Consoles up and running. Print () will work now. DEBUG () and ASSERT () worked
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// prior to this point as they were configured to use a more primative output scheme.
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//
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@@ -138,7 +138,7 @@ BdsEntry (
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if (EFI_ERROR (Status)) {
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break;
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}
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if (HandleCount == OldHandleCount) {
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break;
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}
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@@ -186,9 +186,9 @@ BdsEntry (
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}
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}
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}
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//
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// Normal UEFI behavior is to process Globally Defined Variables as defined in Chapter 3
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// Normal UEFI behavior is to process Globally Defined Variables as defined in Chapter 3
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// (Boot Manager) of the UEFI specification. For this embedded system we don't do this.
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//
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@@ -208,7 +208,7 @@ BdsEntry (
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}
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//
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// EFI does not define the behaviour if all boot attemps fail and the last one returns.
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// EFI does not define the behaviour if all boot attemps fail and the last one returns.
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// So we make a policy choice to reset the system since this BDS does not have a UI.
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//
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gRT->ResetSystem (EfiResetShutdown, Status, 0, NULL);
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@@ -45,7 +45,7 @@
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EFI_STATUS
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LoadPeCoffSectionFromFv (
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IN EFI_HANDLE FvHandle,
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IN EFI_HANDLE FvHandle,
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IN EFI_GUID *NameGuid
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);
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@@ -1,14 +1,14 @@
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/** @file
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The entry of the embedded BDS. This BDS does not follow the Boot Manager requirements
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of the UEFI specification as it is designed to implement an embedded systmes
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The entry of the embedded BDS. This BDS does not follow the Boot Manager requirements
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of the UEFI specification as it is designed to implement an embedded systmes
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propriatary boot scheme.
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This template assume a DXE driver produces a SerialIo protocol not using the EFI
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This template assume a DXE driver produces a SerialIo protocol not using the EFI
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driver module and it will attempt to connect a console on top of this.
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Copyright (c) 2009, Apple Inc. All rights reserved.<BR>
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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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@@ -42,14 +42,14 @@ FindApplicationMatchingUiSection (
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UINTN UiStringLen;
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CHAR16 *UiSection;
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UINT32 Authentication;
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UiStringLen = 0;
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if (UiString != NULL) {
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DEBUG ((DEBUG_ERROR, "UiString %s\n", UiString));
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UiStringLen = StrLen (UiString);
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}
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Status = gBS->LocateHandleBuffer (ByProtocol, &gEfiFirmwareVolume2ProtocolGuid, NULL, &NoHandles, &Buffer);
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if (!EFI_ERROR (Status)) {
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for (Index = 0; Index < NoHandles; Index++) {
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@@ -58,9 +58,9 @@ FindApplicationMatchingUiSection (
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Key = AllocatePool (Fv->KeySize);
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ASSERT (Key != NULL);
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ZeroMem (Key, Fv->KeySize);
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FileType = EFI_FV_FILETYPE_APPLICATION;
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do {
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NextStatus = Fv->GetNextFile (Fv, Key, &FileType, NameGuid, &Attributes, &Size);
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if (!EFI_ERROR (NextStatus)) {
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@@ -72,12 +72,12 @@ FindApplicationMatchingUiSection (
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FreePool (Key);
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return Status;
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}
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UiSection = NULL;
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Status = Fv->ReadSection (
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Fv,
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NameGuid,
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EFI_SECTION_USER_INTERFACE,
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Fv,
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NameGuid,
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EFI_SECTION_USER_INTERFACE,
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0,
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(VOID **)&UiSection,
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&Size,
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@@ -86,7 +86,7 @@ FindApplicationMatchingUiSection (
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if (!EFI_ERROR (Status)) {
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if (StrnCmp (UiString, UiSection, UiStringLen) == 0) {
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//
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// We found a UiString match.
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// We found a UiString match.
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//
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*FvHandle = Buffer[Index];
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FreePool (Key);
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@@ -97,11 +97,11 @@ FindApplicationMatchingUiSection (
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}
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}
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} while (!EFI_ERROR (NextStatus));
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FreePool (Key);
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}
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}
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FreePool (Buffer);
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}
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@@ -114,14 +114,14 @@ FvFileDevicePath (
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IN EFI_HANDLE FvHandle,
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IN EFI_GUID *NameGuid
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)
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{
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{
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EFI_DEVICE_PATH_PROTOCOL *DevicePath;
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MEDIA_FW_VOL_FILEPATH_DEVICE_PATH NewNode;
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DevicePath = DevicePathFromHandle (FvHandle);
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EfiInitializeFwVolDevicepathNode (&NewNode, NameGuid);
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return AppendDevicePathNode (DevicePath, (EFI_DEVICE_PATH_PROTOCOL *)&NewNode);
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}
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@@ -129,7 +129,7 @@ FvFileDevicePath (
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EFI_STATUS
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LoadPeCoffSectionFromFv (
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IN EFI_HANDLE FvHandle,
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IN EFI_HANDLE FvHandle,
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IN EFI_GUID *NameGuid
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)
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{
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@@ -138,13 +138,13 @@ LoadPeCoffSectionFromFv (
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EFI_HANDLE ImageHandle;
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DevicePath = FvFileDevicePath (FvHandle, NameGuid);
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Status = gBS->LoadImage (TRUE, gImageHandle, DevicePath, NULL, 0, &ImageHandle);
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if (!EFI_ERROR (Status)) {
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PERF_END (NULL, "BDS", NULL, 0);
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Status = gBS->StartImage (ImageHandle, NULL, NULL);
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}
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return Status;
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}
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