Change-Id: I73020efd522489ee152af890ab5e03449bc0a900 Reviewed-on: https://gem5-review.googlesource.com/c/public/gem5/+/25415 Maintainer: Gabe Black <gabeblack@google.com> Tested-by: kokoro <noreply+kokoro@google.com> Reviewed-by: Daniel Carvalho <odanrc@yahoo.com.br>
458 lines
14 KiB
C++
458 lines
14 KiB
C++
/*
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* Copyright (c) 2011-2013, 2019 ARM Limited
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* All rights reserved
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*
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* The license below extends only to copyright in the software and shall
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* not be construed as granting a license to any other intellectual
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* property including but not limited to intellectual property relating
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* to a hardware implementation of the functionality of the software
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* licensed hereunder. You may use the software subject to the license
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* terms below provided that you ensure that this notice is replicated
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* unmodified and in its entirety in all distributions of the software,
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* modified or unmodified, in source code or in binary form.
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*
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* Copyright (c) 2003-2005 The Regents of The University of Michigan
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met: redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer;
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* redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution;
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* neither the name of the copyright holders nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "base/loader/elf_object.hh"
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#include <fcntl.h>
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#include <sys/mman.h>
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#include <sys/stat.h>
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#include <sys/types.h>
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#include <unistd.h>
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#include <cassert>
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#include <string>
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#include "base/bitfield.hh"
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#include "base/loader/symtab.hh"
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#include "base/logging.hh"
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#include "base/trace.hh"
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#include "debug/Loader.hh"
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#include "gelf.h"
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#include "sim/byteswap.hh"
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ObjectFile *
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ElfObjectFormat::load(ImageFileDataPtr ifd)
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{
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// check that header matches library version
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if (elf_version(EV_CURRENT) == EV_NONE)
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panic("wrong elf version number!");
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ObjectFile *object = nullptr;
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// get a pointer to elf structure
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// Check that we actually have a elf file
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Elf *elf =
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elf_memory((char *)const_cast<uint8_t *>(ifd->data()), ifd->len());
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assert(elf);
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GElf_Ehdr ehdr;
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if (gelf_getehdr(elf, &ehdr) == 0)
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DPRINTFR(Loader, "Not ELF\n");
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else
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object = new ElfObject(ifd);
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elf_end(elf);
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return object;
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}
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namespace
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{
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ElfObjectFormat elfObjectFormat;
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std::string interpDir;
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} // anonymous namespace
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void
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setInterpDir(const std::string &dirname)
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{
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fatal_if(!interpDir.empty(),
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"Error: setInterpDir has already been called once\n");
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interpDir = dirname;
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}
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ElfObject::ElfObject(ImageFileDataPtr ifd) : ObjectFile(ifd)
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{
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// get a pointer to elf structure
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elf = elf_memory((char *)const_cast<uint8_t *>(imageData->data()),
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imageData->len());
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assert(elf);
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gelf_getehdr(elf, &ehdr);
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determineArch();
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determineOpSys();
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entry = ehdr.e_entry;
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_programHeaderCount = ehdr.e_phnum;
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_programHeaderSize = ehdr.e_phentsize;
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// Go through all the segments in the program and record them.
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for (int i = 0; i < ehdr.e_phnum; ++i) {
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GElf_Phdr phdr;
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if (gelf_getphdr(elf, i, &phdr) == 0) {
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panic("gelf_getphdr failed for segment %d.", i);
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}
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if (phdr.p_type == PT_LOAD)
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handleLoadableSegment(phdr, i);
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if (phdr.p_type == PT_INTERP) {
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// Make sure the interpreter is an valid ELF file.
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auto interp_path = getInterpPath(phdr);
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ObjectFile *obj = createObjectFile(interp_path);
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interpreter = dynamic_cast<ElfObject *>(obj);
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assert(interpreter != nullptr);
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}
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}
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// should have found at least one loadable segment
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warn_if(image.segments().empty(),
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"No loadable segments in '%s'. ELF file corrupted?\n",
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imageData->filename());
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for (auto M5_VAR_USED &seg: image.segments())
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DPRINTFR(Loader, "%s\n", seg);
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// We will actually read the sections when we need to load them
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}
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std::string
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ElfObject::getInterpPath(const GElf_Phdr &phdr) const
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{
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// This is the interpreter path as specified in the elf file
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const std::string elf_path = (char *)imageData->data() + phdr.p_offset;
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if (!interpDir.empty())
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return interpDir + elf_path;
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else
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return elf_path;
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}
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void
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ElfObject::determineArch()
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{
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auto &emach = ehdr.e_machine;
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auto &eclass = ehdr.e_ident[EI_CLASS];
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auto &edata = ehdr.e_ident[EI_DATA];
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// Detect the architecture
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if (emach == EM_SPARC64 || (emach == EM_SPARC && eclass == ELFCLASS64) ||
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emach == EM_SPARCV9) {
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arch = SPARC64;
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} else if (emach == EM_SPARC32PLUS ||
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(emach == EM_SPARC && eclass == ELFCLASS32)) {
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arch = SPARC32;
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} else if (emach == EM_MIPS && eclass == ELFCLASS32) {
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arch = Mips;
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if (edata != ELFDATA2LSB) {
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fatal("The binary you're trying to load is compiled for big "
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"endian MIPS. gem5\nonly supports little endian MIPS. "
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"Please recompile your binary.\n");
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}
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} else if (emach == EM_X86_64 && eclass == ELFCLASS64) {
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arch = X86_64;
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} else if (emach == EM_386 && eclass == ELFCLASS32) {
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arch = I386;
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} else if (emach == EM_ARM && eclass == ELFCLASS32) {
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arch = bits(ehdr.e_entry, 0) ? Thumb : Arm;
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} else if (emach == EM_AARCH64 && eclass == ELFCLASS64) {
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arch = Arm64;
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} else if (emach == EM_RISCV) {
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arch = (eclass == ELFCLASS64) ? Riscv64 : Riscv32;
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} else if (emach == EM_PPC && eclass == ELFCLASS32) {
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arch = Power;
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if (edata != ELFDATA2MSB) {
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fatal("The binary you're trying to load is compiled for "
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"little endian Power.\ngem5 only supports big "
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"endian Power. Please recompile your binary.\n");
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}
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} else if (emach == EM_PPC64) {
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fatal("The binary you're trying to load is compiled for 64-bit "
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"Power. M5\n only supports 32-bit Power. Please "
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"recompile your binary.\n");
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} else {
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warn("Unknown architecture: %d\n", emach);
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}
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}
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void
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ElfObject::determineOpSys()
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{
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// Detect the operating system
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switch (ehdr.e_ident[EI_OSABI]) {
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case ELFOSABI_LINUX:
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opSys = Linux;
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return;
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case ELFOSABI_SOLARIS:
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opSys = Solaris;
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return;
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case ELFOSABI_TRU64:
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opSys = Tru64;
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return;
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case ELFOSABI_ARM:
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opSys = LinuxArmOABI;
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return;
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case ELFOSABI_FREEBSD:
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opSys = FreeBSD;
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return;
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default:
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opSys = UnknownOpSys;
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}
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Elf_Scn *section = elf_getscn(elf, 1);
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for (int sec_idx = 1; section; section = elf_getscn(elf, ++sec_idx)) {
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GElf_Shdr shdr;
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gelf_getshdr(section, &shdr);
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char *e_str = elf_strptr(elf, ehdr.e_shstrndx, shdr.sh_name);
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if (shdr.sh_type == SHT_NOTE && !strcmp(".note.ABI-tag", e_str)) {
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// we have found a ABI note section
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// Check the 5th 32bit word for OS 0 == linux, 1 == hurd,
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// 2 == solaris, 3 == freebsd
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Elf_Data *raw_data = elf_rawdata(section, nullptr);
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assert(raw_data && raw_data->d_buf);
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uint32_t raw_abi = ((uint32_t *)raw_data->d_buf)[4];
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bool is_le = ehdr.e_ident[EI_DATA] == ELFDATA2LSB;
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uint32_t os_abi = is_le ? htole(raw_abi) : htobe(raw_abi);
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switch (os_abi) {
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case 0:
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opSys = Linux;
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return;
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case 1:
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fatal("gem5 does not support the HURD ABI.\n");
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case 2:
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opSys = Solaris;
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return;
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case 3:
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opSys = FreeBSD;
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return;
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}
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}
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if (!strcmp(".SUNW_version", e_str) || !strcmp(".stab.index", e_str)) {
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opSys = Solaris;
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return;
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}
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}
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}
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void
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ElfObject::handleLoadableSegment(GElf_Phdr phdr, int seg_num)
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{
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auto name = std::to_string(seg_num);
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image.addSegment({ name, phdr.p_paddr, imageData,
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phdr.p_offset, phdr.p_filesz });
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Addr uninitialized = phdr.p_memsz - phdr.p_filesz;
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if (uninitialized) {
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// There may be parts of a segment which aren't included in the
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// file. In those cases, we need to create a new segment with no
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// data to take up the extra space. This should be zeroed when
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// loaded into memory.
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image.addSegment({ name + "(uninitialized)",
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phdr.p_paddr + phdr.p_filesz, uninitialized });
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}
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const Addr file_start = phdr.p_offset;
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const Addr file_end = file_start + phdr.p_filesz;
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// If there is a program header table, figure out the virtual
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// address of the header table in the final memory image. We use
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// the program headers themselves to translate from a file offset
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// to the address in the image.
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if (file_start <= ehdr.e_phoff && file_end > ehdr.e_phoff)
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_programHeaderTable = phdr.p_vaddr + (ehdr.e_phoff - file_start);
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}
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ElfObject::~ElfObject()
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{
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elf_end(elf);
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}
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bool
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ElfObject::loadSomeSymbols(SymbolTable *symtab, int binding, Addr mask,
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Addr base, Addr offset)
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{
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if (!symtab)
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return false;
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// check that header matches library version
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if (elf_version(EV_CURRENT) == EV_NONE)
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panic("wrong elf version number!");
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// get a pointer to elf structure
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Elf *elf = elf_memory((char *)const_cast<uint8_t *>(
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imageData->data()), imageData->len());
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assert(elf != NULL);
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// Get the first section
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int sec_idx = 1; // there is a 0 but it is nothing, go figure
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Elf_Scn *section = elf_getscn(elf, sec_idx);
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// While there are no more sections
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bool found = false;
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while (section != NULL) {
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GElf_Shdr shdr;
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gelf_getshdr(section, &shdr);
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if (shdr.sh_type == SHT_SYMTAB) {
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found = true;
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Elf_Data *data = elf_getdata(section, NULL);
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int count = shdr.sh_size / shdr.sh_entsize;
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DPRINTF(Loader, "Found Symbol Table, %d symbols present\n", count);
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// loop through all the symbols, only loading global ones
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for (int i = 0; i < count; ++i) {
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GElf_Sym sym;
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gelf_getsym(data, i, &sym);
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if (GELF_ST_BIND(sym.st_info) == binding) {
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char *sym_name =
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elf_strptr(elf, shdr.sh_link, sym.st_name);
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if (sym_name && sym_name[0] != '$') {
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Addr value = sym.st_value - base + offset;
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if (symtab->insert(value & mask, sym_name)) {
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DPRINTF(Loader, "Symbol: %-40s value %#x\n",
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sym_name, value);
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}
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}
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}
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}
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}
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++sec_idx;
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section = elf_getscn(elf, sec_idx);
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}
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elf_end(elf);
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return found;
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}
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bool
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ElfObject::loadAllSymbols(SymbolTable *symtab, Addr base, Addr offset,
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Addr addr_mask)
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{
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return (loadGlobalSymbols(symtab, base, offset, addr_mask) &&
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loadLocalSymbols(symtab, base, offset, addr_mask) &&
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loadWeakSymbols(symtab, base, offset, addr_mask));
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}
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bool
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ElfObject::loadGlobalSymbols(SymbolTable *symtab, Addr base, Addr offset,
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Addr addr_mask)
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{
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if (interpreter) {
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interpreter->loadSomeSymbols(symtab, STB_GLOBAL, addr_mask,
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base, offset);
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}
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return loadSomeSymbols(symtab, STB_GLOBAL, addr_mask, base, offset);
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}
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bool
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ElfObject::loadLocalSymbols(SymbolTable *symtab, Addr base, Addr offset,
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Addr addr_mask)
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{
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if (interpreter) {
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interpreter->loadSomeSymbols(symtab, STB_LOCAL, addr_mask,
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base, offset);
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}
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return loadSomeSymbols(symtab, STB_LOCAL, addr_mask, base, offset);
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}
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bool
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ElfObject::loadWeakSymbols(SymbolTable *symtab, Addr base, Addr offset,
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Addr addr_mask)
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{
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if (interpreter) {
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interpreter->loadSomeSymbols(symtab, STB_WEAK, addr_mask,
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base, offset);
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}
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return loadSomeSymbols(symtab, STB_WEAK, addr_mask, base, offset);
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}
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void
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ElfObject::getSections()
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{
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assert(!sectionNames.size());
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// check that header matches library version
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if (elf_version(EV_CURRENT) == EV_NONE)
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panic("wrong elf version number!");
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// get a pointer to elf structure
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Elf *elf =
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elf_memory((char *)const_cast<uint8_t *>(imageData->data()),
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imageData->len());
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assert(elf != NULL);
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// Check that we actually have a elf file
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GElf_Ehdr ehdr;
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if (gelf_getehdr(elf, &ehdr) ==0) {
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panic("Not ELF, shouldn't be here");
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}
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// Get the first section
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int sec_idx = 1; // there is a 0 but it is nothing, go figure
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Elf_Scn *section = elf_getscn(elf, sec_idx);
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// While there are no more sections
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while (section) {
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GElf_Shdr shdr;
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gelf_getshdr(section, &shdr);
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sectionNames.insert(elf_strptr(elf, ehdr.e_shstrndx, shdr.sh_name));
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section = elf_getscn(elf, ++sec_idx);
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} // while sections
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elf_end(elf);
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}
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bool
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ElfObject::sectionExists(std::string sec)
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{
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if (!sectionNames.size())
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getSections();
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return sectionNames.find(sec) != sectionNames.end();
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}
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void
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ElfObject::updateBias(Addr bias_addr)
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{
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// Record the bias.
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ldBias = bias_addr;
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// Patch the entry point with bias_addr.
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entry += bias_addr;
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// Patch segments with the bias_addr.
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image.offset(bias_addr);
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}
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