2015-02-28 21:26:20 +01:00
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//
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// Copyright (c) 2011-2013, ARM Limited. All rights reserved.
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// Copyright (c) 2015, Linaro 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 <AsmMacroIoLibV8.h>
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#include <Base.h>
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#include <Library/PcdLib.h>
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#include <AutoGen.h>
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.text
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.align 3
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GCC_ASM_IMPORT(ArmPlatformIsPrimaryCore)
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GCC_ASM_IMPORT(ArmReadMpidr)
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GCC_ASM_IMPORT(ArmPlatformPeiBootAction)
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GCC_ASM_IMPORT(ArmPlatformStackSet)
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GCC_ASM_EXPORT(_ModuleEntryPoint)
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2015-07-07 00:09:02 +02:00
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GCC_ASM_EXPORT(mSystemMemoryEnd)
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2015-02-28 21:26:20 +01:00
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StartupAddr: .8byte ASM_PFX(CEntryPoint)
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2015-07-07 00:09:02 +02:00
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mSystemMemoryEnd: .8byte 0
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2015-02-28 21:26:20 +01:00
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ASM_PFX(_ModuleEntryPoint):
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//
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// We are built as a ET_DYN PIE executable, so we need to process all
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// relative relocations regardless of whether or not we are executing from
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// the same offset we were linked at. This is only possible if we are
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// running from RAM.
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//
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adr x8, __reloc_base
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adr x9, __reloc_start
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adr x10, __reloc_end
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.Lreloc_loop:
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cmp x9, x10
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bhs .Lreloc_done
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//
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// AArch64 uses the ELF64 RELA format, which means each entry in the
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// relocation table consists of
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//
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// UINT64 offset : the relative offset of the value that needs to
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// be relocated
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// UINT64 info : relocation type and symbol index (the latter is
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// not used for R_AARCH64_RELATIVE relocations)
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// UINT64 addend : value to be added to the value being relocated
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//
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ldp x11, x12, [x9], #24 // read offset into x11 and info into x12
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cmp x12, #0x403 // check info == R_AARCH64_RELATIVE?
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bne .Lreloc_loop // not a relative relocation? then skip
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ldr x12, [x9, #-8] // read addend into x12
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add x12, x12, x8 // add reloc base to addend to get relocated value
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str x12, [x11, x8] // write relocated value at offset
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b .Lreloc_loop
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.Lreloc_done:
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// Do early platform specific actions
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bl ASM_PFX(ArmPlatformPeiBootAction)
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// Get ID of this CPU in Multicore system
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bl ASM_PFX(ArmReadMpidr)
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// Keep a copy of the MpId register value
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mov x10, x0
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// Check if we can install the stack at the top of the System Memory or if we need
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// to install the stacks at the bottom of the Firmware Device (case the FD is located
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// at the top of the DRAM)
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_SetupStackPosition:
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// Compute Top of System Memory
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ldr x1, PcdGet64 (PcdSystemMemoryBase)
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ldr x2, PcdGet64 (PcdSystemMemorySize)
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sub x2, x2, #1
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add x1, x1, x2 // x1 = SystemMemoryTop = PcdSystemMemoryBase + PcdSystemMemorySize
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2015-07-07 00:09:02 +02:00
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adr x2, mSystemMemoryEnd
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str x1, [x2]
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2015-02-28 21:26:20 +01:00
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// Calculate Top of the Firmware Device
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ldr x2, PcdGet64 (PcdFdBaseAddress)
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ldr w3, PcdGet32 (PcdFdSize)
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sub x3, x3, #1
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add x3, x3, x2 // x3 = FdTop = PcdFdBaseAddress + PcdFdSize
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// UEFI Memory Size (stacks are allocated in this region)
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LoadConstantToReg (FixedPcdGet32(PcdSystemMemoryUefiRegionSize), x4)
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//
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// Reserve the memory for the UEFI region (contain stacks on its top)
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//
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// Calculate how much space there is between the top of the Firmware and the Top of the System Memory
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subs x0, x1, x3 // x0 = SystemMemoryTop - FdTop
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b.mi _SetupStack // Jump if negative (FdTop > SystemMemoryTop). Case when the PrePi is in XIP memory outside of the DRAM
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cmp x0, x4
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b.ge _SetupStack
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// Case the top of stacks is the FdBaseAddress
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mov x1, x2
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_SetupStack:
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// x1 contains the top of the stack (and the UEFI Memory)
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// Because the 'push' instruction is equivalent to 'stmdb' (decrement before), we need to increment
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// one to the top of the stack. We check if incrementing one does not overflow (case of DRAM at the
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// top of the memory space)
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adds x11, x1, #1
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b.cs _SetupOverflowStack
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_SetupAlignedStack:
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mov x1, x11
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b _GetBaseUefiMemory
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_SetupOverflowStack:
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// Case memory at the top of the address space. Ensure the top of the stack is EFI_PAGE_SIZE
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// aligned (4KB)
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LoadConstantToReg (EFI_PAGE_MASK, x11)
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and x11, x11, x1
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sub x1, x1, x11
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_GetBaseUefiMemory:
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// Calculate the Base of the UEFI Memory
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sub x11, x1, x4
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_GetStackBase:
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// r1 = The top of the Mpcore Stacks
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// Stack for the primary core = PrimaryCoreStack
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LoadConstantToReg (FixedPcdGet32(PcdCPUCorePrimaryStackSize), x2)
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sub x12, x1, x2
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// Stack for the secondary core = Number of Cores - 1
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LoadConstantToReg (FixedPcdGet32(PcdCoreCount), x0)
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sub x0, x0, #1
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LoadConstantToReg (FixedPcdGet32(PcdCPUCoreSecondaryStackSize), x1)
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mul x1, x1, x0
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sub x12, x12, x1
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// x12 = The base of the MpCore Stacks (primary stack & secondary stacks)
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mov x0, x12
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mov x1, x10
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//ArmPlatformStackSet(StackBase, MpId, PrimaryStackSize, SecondaryStackSize)
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LoadConstantToReg (FixedPcdGet32(PcdCPUCorePrimaryStackSize), x2)
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LoadConstantToReg (FixedPcdGet32(PcdCPUCoreSecondaryStackSize), x3)
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bl ASM_PFX(ArmPlatformStackSet)
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// Is it the Primary Core ?
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mov x0, x10
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bl ASM_PFX(ArmPlatformIsPrimaryCore)
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cmp x0, #1
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bne _PrepareArguments
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_ReserveGlobalVariable:
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LoadConstantToReg (FixedPcdGet32(PcdPeiGlobalVariableSize), x0)
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// InitializePrimaryStack($GlobalVariableSize, $Tmp1, $Tmp2)
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InitializePrimaryStack(x0, x1, x2)
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_PrepareArguments:
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mov x0, x10
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mov x1, x11
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mov x2, x12
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mov x3, sp
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// Move sec startup address into a data register
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// Ensure we're jumping to FV version of the code (not boot remapped alias)
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ldr x4, StartupAddr
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// Jump to PrePiCore C code
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// x0 = MpId
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// x1 = UefiMemoryBase
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// x2 = StacksBase
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// x3 = GlobalVariableBase
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blr x4
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_NeverReturn:
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b _NeverReturn
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