157 lines
4.7 KiB
C++
157 lines
4.7 KiB
C++
/**
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******************************************************************************
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* Xenia : Xbox 360 Emulator Research Project *
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******************************************************************************
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* Copyright 2015 Ben Vanik. All rights reserved. *
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* Released under the BSD license - see LICENSE in the root for more details. *
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******************************************************************************
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*/
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#include "xenia/cpu/elf_module.h"
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#include <algorithm>
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#include <memory>
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#include "xenia/base/byte_order.h"
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#include "xenia/base/logging.h"
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#include "xenia/cpu/processor.h"
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namespace xe {
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namespace cpu {
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ElfModule::ElfModule(Processor* processor, kernel::KernelState* kernel_state)
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: Module(processor), kernel_state_(kernel_state) {}
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ElfModule::~ElfModule() = default;
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// ELF structures
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struct elf32_ehdr {
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uint8_t e_ident[16];
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xe::be<uint16_t> e_type;
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xe::be<uint16_t> e_machine;
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xe::be<uint32_t> e_version;
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xe::be<uint32_t> e_entry;
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xe::be<uint32_t> e_phoff;
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xe::be<uint32_t> e_shoff;
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xe::be<uint32_t> e_flags;
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xe::be<uint16_t> e_ehsize;
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xe::be<uint16_t> e_phentsize;
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xe::be<uint16_t> e_phnum;
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xe::be<uint16_t> e_shentsize;
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xe::be<uint16_t> e_shnum;
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xe::be<uint16_t> e_shtrndx;
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};
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struct elf32_phdr {
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xe::be<uint32_t> p_type;
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xe::be<uint32_t> p_offset;
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xe::be<uint32_t> p_vaddr;
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xe::be<uint32_t> p_paddr;
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xe::be<uint32_t> p_filesz;
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xe::be<uint32_t> p_memsz;
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xe::be<uint32_t> p_flags;
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xe::be<uint32_t> p_align;
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};
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bool ElfModule::is_executable() const {
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auto hdr = reinterpret_cast<const elf32_ehdr*>(elf_header_mem_.data());
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return hdr->e_entry != 0;
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}
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bool ElfModule::Load(const std::string& name, const std::string& path,
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const void* elf_addr, size_t elf_length) {
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name_ = name;
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path_ = path;
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uint8_t* pelf = (uint8_t*)elf_addr;
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elf32_ehdr* hdr = (elf32_ehdr*)(pelf + 0x0);
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if (hdr->e_ident[0] != 0x7F || hdr->e_ident[1] != 'E' ||
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hdr->e_ident[2] != 'L' || hdr->e_ident[3] != 'F') {
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// Not an ELF file!
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return false;
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}
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assert_true(hdr->e_ident[4] == 1); // 32bit
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if (hdr->e_type != 2 /* ET_EXEC */) {
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// Not executable (shared objects not supported yet)
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XELOGE("ELF: Could not load ELF because it isn't executable!");
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return false;
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}
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if (hdr->e_machine != 20 /* EM_PPC */) {
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// Not a PPC ELF!
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XELOGE(
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"ELF: Could not load ELF because target machine is not PPC! (target: "
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"%d)",
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uint32_t(hdr->e_machine));
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return false;
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}
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// Parse LOAD program headers and load into memory.
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if (!hdr->e_phoff) {
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XELOGE("ELF: File doesn't have a program header!");
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return false;
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}
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if (!hdr->e_entry) {
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XELOGE("ELF: Executable has no entry point!");
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return false;
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}
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// Entry point virtual address
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entry_point_ = hdr->e_entry;
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// Copy the ELF header
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elf_header_mem_.resize(hdr->e_ehsize);
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std::memcpy(elf_header_mem_.data(), hdr, hdr->e_ehsize);
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assert_true(hdr->e_phentsize == sizeof(elf32_phdr));
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elf32_phdr* phdr = (elf32_phdr*)(pelf + hdr->e_phoff);
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for (uint32_t i = 0; i < hdr->e_phnum; i++) {
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if (phdr[i].p_type == 1 /* PT_LOAD */ ||
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phdr[i].p_type == 2 /* PT_DYNAMIC */) {
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// Allocate and copy into memory.
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// Base address @ 0x80000000
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if (phdr[i].p_vaddr < 0x80000000 || phdr[i].p_vaddr > 0x9FFFFFFF) {
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XELOGE("ELF: Could not allocate memory for section @ address 0x%.8X",
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uint32_t(phdr[i].p_vaddr));
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return false;
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}
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uint32_t virtual_addr = phdr[i].p_vaddr & ~(phdr[i].p_align - 1);
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uint32_t virtual_size = xe::round_up(phdr[i].p_vaddr + phdr[i].p_memsz,
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uint32_t(phdr[i].p_align)) -
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virtual_addr;
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if (!memory()
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->LookupHeap(virtual_addr)
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->AllocFixed(
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virtual_addr, virtual_size, phdr[i].p_align,
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xe::kMemoryAllocationReserve | xe::kMemoryAllocationCommit,
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xe::kMemoryProtectRead | xe::kMemoryProtectWrite)) {
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XELOGE("ELF: Could not allocate memory!");
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}
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auto p = memory()->TranslateVirtual(phdr[i].p_vaddr);
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std::memset(p, 0, phdr[i].p_memsz);
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std::memcpy(p, pelf + phdr[i].p_offset, phdr[i].p_filesz);
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// Notify backend about executable code.
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if (phdr[i].p_flags & 0x1 /* PF_X */) {
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processor_->backend()->CommitExecutableRange(
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virtual_addr, virtual_addr + virtual_size);
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}
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}
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}
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return true;
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}
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std::unique_ptr<Function> ElfModule::CreateFunction(uint32_t address) {
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return std::unique_ptr<Function>(
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processor_->backend()->CreateGuestFunction(this, address));
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}
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} // namespace cpu
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} // namespace xe
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