mirror of https://github.com/acidanthera/audk.git
338 lines
11 KiB
C
338 lines
11 KiB
C
/** @file
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*
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* Copyright (c) 2011, ARM Limited. All rights reserved.
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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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* 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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#include "BdsInternal.h"
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#include "BdsLinuxLoader.h"
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#include <Library/PcdLib.h>
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#include <Library/ArmLib.h>
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#include <Library/HobLib.h>
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STATIC
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EFI_STATUS
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GetARMLinuxMachineType (
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IN BOOLEAN FdtSupported,
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OUT UINT32 *MachineType
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) {
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if (FdtSupported)
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{
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// FDT requires that the machine type is set to the maximum 32-bit number.
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*MachineType = 0xFFFFFFFF;
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}
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else
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{
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// Non-FDT requires a specific machine type.
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// This OS Boot loader supports just one machine type,
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// but that could change in the future.
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*MachineType = PcdGet32(PcdArmMachineType);
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}
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return EFI_SUCCESS;
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}
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STATIC
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VOID
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SetupCoreTag( IN UINT32 PageSize )
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{
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Params->header.size = tag_size(atag_core);
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Params->header.type = ATAG_CORE;
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Params->body.core_tag.flags = 1; /* ensure read-only */
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Params->body.core_tag.pagesize = PageSize; /* systems PageSize (4k) */
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Params->body.core_tag.rootdev = 0; /* zero root device (typically overridden from kernel command line )*/
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Params = next_tag_address(Params); /* move pointer to next tag */
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}
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STATIC
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VOID
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SetupMemTag( IN UINTN StartAddress, IN UINT32 Size )
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{
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Params->header.size = tag_size(atag_mem);
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Params->header.type = ATAG_MEM;
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Params->body.mem_tag.start = StartAddress; /* Start of memory chunk for AtagMem */
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Params->body.mem_tag.size = Size; /* Size of memory chunk for AtagMem */
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Params = next_tag_address(Params); /* move pointer to next tag */
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}
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STATIC
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VOID
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SetupCmdlineTag( IN CONST CHAR8 *CmdLine )
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{
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UINT32 LineLength;
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// Increment the line length by 1 to account for the null string terminator character
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LineLength = AsciiStrLen(CmdLine) + 1;
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/* Check for NULL strings.
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* Do not insert a tag for an empty CommandLine, don't even modify the tag address pointer.
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* Remember, you have at least one null string terminator character.
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*/
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if( LineLength > 1 )
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{
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Params->header.size = ((UINT32)sizeof(struct atag_header) + LineLength + (UINT32)3) >> 2;
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Params->header.type = ATAG_CMDLINE;
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/* place CommandLine into tag */
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AsciiStrCpy(Params->body.cmdline_tag.cmdline, CmdLine);
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Params = next_tag_address(Params); /* move pointer to next tag */
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}
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}
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STATIC
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VOID
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SetupEndTag( VOID )
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{
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// Empty tag ends list; this has zero length and no body
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Params->header.type = ATAG_NONE;
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Params->header.size = 0;
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/* We can not calculate the next address by using the standard macro:
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* Params = next_tag_address(Params);
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* because it relies on the header.size, which here it is 0 (zero).
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* The easiest way is to add the sizeof(Params->header).
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*/
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Params = (struct atag *)((UINT32)Params + sizeof(Params->header));
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}
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STATIC
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EFI_STATUS
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PrepareAtagList(
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IN OUT struct atag **AtagStartAddress,
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IN CONST CHAR8* CommandLineString,
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OUT UINT32 *AtagSize
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) {
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LIST_ENTRY *ResourceLink;
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LIST_ENTRY ResourceList;
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BDS_SYSTEM_MEMORY_RESOURCE *Resource;
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// If no address supplied then this function will decide where to put it
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if( *AtagStartAddress == 0 )
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{
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/* WARNING: At the time of writing (2010-July-30) the linux kernel expects
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* the atag list it in the first 1MB of memory and preferably at address 0x100.
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* This has a very high risk of overwriting UEFI code, but as
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* the linux kernel does not expect any runtime services from uefi
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* and there is no afterlife section following the linux kernel termination,
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* it does not matter if we stamp over that memory area.
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*
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* The proposed workaround is to create the atag list somewhere in boot services memory
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* and then transfer it to address 0x100 (or to runtime services memory) immediately
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* before starting the kernel.
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* An additional benefit of this is that when we copy the ATAG list to it's final place,
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* we can trim down the memory allocation size. Before we create the list we don't know
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* how much space it is going to take, so we are over-allocating space.
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*/
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*AtagStartAddress = (struct atag *) AllocatePool(ATAG_MAX_SIZE);
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}
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// Ensure the pointer is not NULL.
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ASSERT( *AtagStartAddress != (struct atag *)NULL );
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// Ready to setup the atag list
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Params = *AtagStartAddress;
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// Standard core tag 4k PageSize
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SetupCoreTag( (UINT32)SIZE_4KB );
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// Physical memory setup
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GetSystemMemoryResources(&ResourceList);
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ResourceLink = ResourceList.ForwardLink;
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while (ResourceLink != NULL && ResourceLink != &ResourceList) {
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Resource = (BDS_SYSTEM_MEMORY_RESOURCE*)ResourceList.ForwardLink;
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SetupMemTag( (UINT32)Resource->PhysicalStart, (UINT32)Resource->ResourceLength );
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ResourceLink = ResourceLink->ForwardLink;
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}
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// CommandLine setting root device
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SetupCmdlineTag( CommandLineString );
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// end of tags
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SetupEndTag();
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// Calculate atag list size
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*AtagSize = (UINT32)Params - (UINT32)*AtagStartAddress + 1;
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return EFI_SUCCESS;
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}
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STATIC
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EFI_STATUS
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PreparePlatformHardware( VOID )
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{
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//Note: Interrupts will be disabled by the GIC driver when ExitBootServices() will be called.
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// clean, invalidate, disable data cache
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ArmCleanInvalidateDataCache();
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ArmDisableDataCache();
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// Invalidate and disable the Instruction cache
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ArmInvalidateInstructionCache ();
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ArmDisableInstructionCache ();
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// turn off MMU
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ArmInvalidateTlb();
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ArmDisableMmu();
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return EFI_SUCCESS;
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}
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/*************************************************
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* R0, R1, R2 correspond to registers R0, R1, R2
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*************************************************/
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//STATIC
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EFI_STATUS
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StartLinuxKernel( IN VOID* KernelAddress, IN UINTN R0, IN UINTN R1, IN UINTN R2 )
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{
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VOID (*Kernel)(UINT32 Zero, UINT32 Arch, UINTN AtagListParams);
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// set the kernel address
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Kernel = (VOID (*)(UINT32, UINT32, UINTN)) KernelAddress;
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// Outside BootServices, so can't use Print();
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DEBUG((EFI_D_ERROR, "\nStarting the kernel:\n\n"));
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// jump to kernel with register set
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Kernel( R0, R1, R2 );
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// Kernel should never exit
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// After Life services are not provided
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ASSERT( FALSE );
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return EFI_SUCCESS;
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}
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EFI_STATUS BdsBootLinux(
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IN CONST CHAR16* LinuxKernel,
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IN CONST CHAR8* ATag,
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IN CONST CHAR16* Fdt
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) {
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BDS_FILE LinuxKernelFile;
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BDS_FILE FdtFile;
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EFI_STATUS Status;
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VOID* LinuxImage;
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UINT32 KernelParamsSize;
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VOID* KernelParamsAddress = NULL;
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UINTN KernelParamsNewAddress;
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UINTN *AtagAddress;
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UINT32 MachineType;
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BOOLEAN FdtSupported = FALSE;
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EFI_HOB_RESOURCE_DESCRIPTOR *ResHob;
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// Load the Linux kernel from a device path
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Status = BdsLoadFilePath(LinuxKernel, &LinuxKernelFile);
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if (EFI_ERROR(Status)) {
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DEBUG ((EFI_D_ERROR, "ERROR: Do not find Linux kernel %s\n",LinuxKernel));
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return Status;
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}
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// Copy the Linux Kernel from the raw file to Runtime memory
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Status = BdsCopyRawFileToRuntimeMemory(&LinuxKernelFile,&LinuxImage,NULL);
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if (EFI_ERROR(Status)) {
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goto Exit;
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}
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// Load the FDT binary from a device path
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Status = BdsLoadFilePath(Fdt, &FdtFile);
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if (!EFI_ERROR(Status)) {
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// Copy the FDT binary from the raw file to Runtime memory
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Status = BdsCopyRawFileToRuntimeMemory(&FdtFile,&KernelParamsAddress,&KernelParamsSize);
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if (EFI_ERROR(Status)) {
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goto Exit;
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} else {
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FdtSupported = TRUE;
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}
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}
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/**********************************************************
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* Setup the platform type
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**********************************************************/
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Status = GetARMLinuxMachineType(FdtSupported, &MachineType);
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if(EFI_ERROR(Status))
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{
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Print(L"ERROR : Can not prepare ARM Linux machine type. Status=0x%X\n", Status);
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goto Exit;
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}
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if (!FdtSupported) {
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/**********************************************************
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* Setup the ATAG list
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**********************************************************/
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// By setting address=0 we leave the memory allocation to the function
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AtagAddress = 0;
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Status = PrepareAtagList( (struct atag **)&AtagAddress, ATag, &KernelParamsSize );
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KernelParamsAddress = (VOID*)AtagAddress;
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if(EFI_ERROR(Status))
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{
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Print(L"ERROR : Can not prepare ATAG list. Status=0x%X\n", Status);
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goto Exit;
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}
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}
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/**********************************************************
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* Switch off interrupts, caches, mmu, etc
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**********************************************************/
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Status = PreparePlatformHardware();
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if(EFI_ERROR(Status))
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{
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Print(L"ERROR : Can not prepare platform hardware. Status=0x%X\n", Status);
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goto Exit;
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}
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// Initialize the ATag destination
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KernelParamsNewAddress = 0x100;
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// Update the ATag destination by finding the start address of the first System Memory Resource Descriptor Hob
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ResHob = (EFI_HOB_RESOURCE_DESCRIPTOR *)GetFirstHob (EFI_HOB_TYPE_RESOURCE_DESCRIPTOR);
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while (ResHob != NULL) {
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if (ResHob->ResourceType == EFI_RESOURCE_SYSTEM_MEMORY) {
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KernelParamsNewAddress = (UINTN)ResHob->PhysicalStart + 0x100;
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break;
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}
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ResHob = (EFI_HOB_RESOURCE_DESCRIPTOR *)GetNextHob (EFI_HOB_TYPE_RESOURCE_DESCRIPTOR, (VOID *)((UINTN)ResHob + ResHob->Header.HobLength));
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}
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// Shut down UEFI boot services. ExitBootServices() will notify every driver that created an event on
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// ExitBootServices event. Example the Interrupt DXE driver will disable the interrupts on this event.
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Status = ShutdownUefiBootServices();
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if(EFI_ERROR(Status))
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{
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Print(L"ERROR : Can not shutdown UEFI boot services. Status=0x%X\n", Status);
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goto Exit;
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}
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// Move the kernel parameters to any address inside the first 1MB.
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// This is necessary because the ARM Linux kernel requires
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// the FTD / ATAG List to reside entirely inside the first 1MB of
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// physical memory.
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CopyMem((VOID*)KernelParamsNewAddress, KernelParamsAddress, KernelParamsSize);
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//**********************************************************
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// * Start the Linux Kernel
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// **********************************************************
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// Lift off ...
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Status = StartLinuxKernel(LinuxImage, (UINTN)0, (UINTN)MachineType, KernelParamsNewAddress );
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// Only be here if we fail to start Linux
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DEBUG((EFI_D_ERROR, "ERROR : Can not start the kernel. Status=0x%X\n", Status));
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Exit:
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// Free Runtimee Memory (kernel and FDT)
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return Status;
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}
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