mirror of
https://gitlab.com/BinaryHardening/cfgrip
synced 2026-07-26 12:41:08 +00:00
6c2dca78ab
- Extended prolog patterns: MSVC x64 callee-saves, sub rsp >= 0x20, enter - Tail-call detection: jmp to prolog candidates seeds new functions - endbr64/endbr32 CET skipping at function starts - PE .pdata exception table parsing for precise start/end boundaries - Data-section function pointer scanning (vtables, callbacks) - PLT stub detection with is_thunk tag - end_address and is_thunk fields in Function struct and JSON output - getDataRanges() and getRuntimeFunctions() in Binary interface - README docs for all new features + research paper reference
426 lines
13 KiB
C++
426 lines
13 KiB
C++
#include "loader/elf.hpp"
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#include <fstream>
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#include <algorithm>
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static const uint64_t EI_NIDENT = 16;
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static const uint32_t PT_LOAD = 1;
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static const uint32_t PT_DYNAMIC = 2;
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static const uint32_t DT_NULL = 0;
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static const uint32_t DT_NEEDED = 1;
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static const uint32_t DT_INIT = 12;
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static const uint32_t DT_FINI = 13;
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static const uint32_t DT_INIT_ARRAY = 25;
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static const uint32_t DT_FINI_ARRAY = 26;
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static const uint32_t DT_INIT_ARRAYSZ = 27;
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static const uint32_t DT_FINI_ARRAYSZ = 28;
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static const uint32_t DT_STRTAB = 5;
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static const uint32_t DT_SYMTAB = 6;
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static const uint32_t DT_STRSZ = 10;
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static const uint32_t SHT_SYMTAB = 2;
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static const uint32_t SHT_DYNSYM = 11;
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static const uint32_t SHT_RELA = 4;
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static const uint32_t SHT_REL = 9;
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ELFLoader::ELFLoader()
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: m_arch(Arch::X64), m_entry(0),
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m_init_array(0), m_init_array_size(0),
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m_fini_array(0), m_fini_array_size(0),
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m_init(0), m_fini(0) {}
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ELFLoader::~ELFLoader() {}
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bool ELFLoader::load(const string& path)
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{
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m_path = path;
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ifstream f(path, ios::binary);
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if (!f) return false;
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f.seekg(0, ios::end);
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size_t sz = f.tellg();
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f.seekg(0, ios::beg);
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m_data.resize(sz);
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f.read((char*)m_data.data(), sz);
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f.close();
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if (m_data.size() < EI_NIDENT) return false;
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if (m_data[0] != 0x7F || m_data[1] != 'E' || m_data[2] != 'L' || m_data[3] != 'F')
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return false;
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return parseHeader();
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}
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static uint16_t r16(const vector<uint8_t>& d, size_t off)
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{
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if (off + 2 > d.size()) return 0;
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return d[off] | (d[off+1] << 8);
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}
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static uint32_t r32(const vector<uint8_t>& d, size_t off)
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{
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if (off + 4 > d.size()) return 0;
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return d[off] | (d[off+1] << 8) | (d[off+2] << 16) | (d[off+3] << 24);
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}
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static uint64_t r64(const vector<uint8_t>& d, size_t off)
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{
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if (off + 8 > d.size()) return 0;
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return (uint64_t)d[off] | ((uint64_t)d[off+1] << 8) |
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((uint64_t)d[off+2] << 16) | ((uint64_t)d[off+3] << 24) |
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((uint64_t)d[off+4] << 32) | ((uint64_t)d[off+5] << 40) |
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((uint64_t)d[off+6] << 48) | ((uint64_t)d[off+7] << 56);
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}
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struct Elf64_Ehdr
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{
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uint8_t ident[16];
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uint16_t type;
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uint16_t machine;
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uint32_t version;
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uint64_t entry;
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uint64_t phoff;
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uint64_t shoff;
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uint32_t flags;
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uint16_t ehsize;
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uint16_t phentsize;
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uint16_t phnum;
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uint16_t shentsize;
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uint16_t shnum;
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uint16_t shstrndx;
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};
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struct Elf64_Phdr
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{
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uint32_t type;
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uint32_t flags;
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uint64_t offset;
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uint64_t vaddr;
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uint64_t paddr;
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uint64_t filesz;
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uint64_t memsz;
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uint64_t align;
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};
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struct Elf64_Shdr
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{
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uint32_t name;
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uint32_t type;
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uint64_t flags;
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uint64_t addr;
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uint64_t offset;
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uint64_t size;
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uint32_t link;
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uint32_t info;
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uint64_t addralign;
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uint64_t entsize;
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};
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struct Elf64_Dyn
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{
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int64_t d_tag;
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uint64_t d_val;
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};
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bool ELFLoader::parseHeader()
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{
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if (m_data.size() < 64) return false;
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uint8_t cls = m_data[4];
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bool is_64 = (cls == 2);
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if (is_64)
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{
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m_arch = Arch::X64;
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if (m_data.size() < 64) return false;
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uint16_t type = r16(m_data, 16);
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m_entry = r64(m_data, 24);
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uint64_t phoff = r64(m_data, 32);
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uint64_t shoff = r64(m_data, 40);
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uint16_t phnum = r16(m_data, 56);
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uint16_t shnum = r16(m_data, 60);
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uint16_t shstrndx = r16(m_data, 62);
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for (uint16_t i = 0; i < phnum; i++)
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{
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size_t off = phoff + i * 56;
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if (off + 56 > m_data.size()) break;
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uint32_t ptype = r32(m_data, off);
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uint32_t pflags = r32(m_data, off + 4);
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uint64_t poffset = r64(m_data, off + 8);
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uint64_t pvaddr = r64(m_data, off + 16);
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uint64_t pfilesz = r64(m_data, off + 32);
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uint64_t pmemsz = r64(m_data, off + 40);
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if (ptype == PT_LOAD)
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{
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m_file_map.push_back({poffset, pvaddr, pmemsz});
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if (pflags & 1)
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m_exec_ranges.push_back({pvaddr, pvaddr + pmemsz});
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}
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if (ptype == PT_DYNAMIC)
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{
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addr_t dyn_va = pvaddr;
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size_t dyn_sz = pmemsz;
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size_t dyn_off = poffset;
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size_t end = dyn_off + dyn_sz;
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for (size_t j = dyn_off; j + 16 <= end; j += 16)
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{
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int64_t tag = (int64_t)r64(m_data, j);
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uint64_t val = r64(m_data, j + 8);
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if (tag == DT_NULL) break;
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if (tag == DT_NEEDED && val && m_needed_libs.empty())
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{
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uint64_t strtab = 0;
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for (size_t k = dyn_off; k + 16 <= end; k += 16)
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{
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int64_t t2 = (int64_t)r64(m_data, k);
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uint64_t v2 = r64(m_data, k + 8);
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if (t2 == DT_STRTAB) { strtab = v2; break; }
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}
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if (strtab)
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{
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size_t name_off = strtab + val;
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if (name_off < m_data.size())
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{
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for (size_t c = name_off; c < m_data.size() && m_data[c]; c++)
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m_needed_libs += (char)m_data[c];
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}
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}
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}
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if (tag == DT_INIT) m_init = val;
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if (tag == DT_FINI) m_fini = val;
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if (tag == DT_INIT_ARRAY) m_init_array = val;
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if (tag == DT_INIT_ARRAYSZ) m_init_array_size = val;
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if (tag == DT_FINI_ARRAY) m_fini_array = val;
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if (tag == DT_FINI_ARRAYSZ) m_fini_array_size = val;
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}
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}
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}
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struct SectionInfo {
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uint32_t type;
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uint64_t addr;
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uint64_t offset;
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uint64_t size;
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uint32_t link;
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uint64_t entsize;
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uint32_t name_idx;
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};
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vector<SectionInfo> sections(shnum);
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uint64_t shstrtab_off = 0;
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for (uint16_t i = 0; i < shnum; i++)
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{
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size_t off = shoff + i * 64;
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if (off + 64 > m_data.size()) break;
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sections[i].type = r32(m_data, off + 4);
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sections[i].addr = r64(m_data, off + 16);
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sections[i].offset = r64(m_data, off + 24);
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sections[i].size = r64(m_data, off + 32);
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sections[i].link = r32(m_data, off + 40);
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sections[i].entsize = r64(m_data, off + 56);
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sections[i].name_idx = r32(m_data, off);
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if (i == shstrndx) shstrtab_off = sections[i].offset;
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}
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auto sectionName = [&](uint32_t idx) -> string {
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if (!shstrtab_off) return "";
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size_t pos = shstrtab_off + idx;
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string s;
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for (; pos < m_data.size() && m_data[pos]; pos++)
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s += (char)m_data[pos];
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return s;
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};
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vector<uint64_t> strtab_offsets(shnum, 0);
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for (uint16_t i = 0; i < shnum; i++)
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{
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if (sections[i].type == SHT_SYMTAB || sections[i].type == SHT_DYNSYM)
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{
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uint32_t link = sections[i].link;
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if (link < shnum)
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strtab_offsets[i] = sections[link].offset;
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}
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}
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for (uint16_t i = 0; i < shnum; i++)
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{
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if (sections[i].type != SHT_SYMTAB && sections[i].type != SHT_DYNSYM)
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continue;
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uint64_t sym_off = sections[i].offset;
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uint64_t sym_sz = sections[i].size;
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uint64_t entsize = sections[i].entsize ? sections[i].entsize : 24;
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uint64_t str_off = strtab_offsets[i];
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size_t nsym = sym_sz / entsize;
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for (size_t j = 0; j < nsym; j++)
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{
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size_t ent = sym_off + j * entsize;
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if (ent + 24 > m_data.size()) break;
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uint32_t sym_name_off = r32(m_data, ent);
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uint8_t sym_info = m_data[ent + 4];
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uint8_t sym_other = m_data[ent + 5];
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uint16_t sym_shndx = r16(m_data, ent + 6);
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uint64_t sym_val = r64(m_data, ent + 8);
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uint64_t sym_size = r64(m_data, ent + 16);
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uint8_t sym_type = sym_info & 0xF;
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uint8_t sym_bind = sym_info >> 4;
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if (sym_type != 2) continue;
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if (!sym_name_off || !str_off) continue;
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size_t name_pos = str_off + sym_name_off;
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if (name_pos >= m_data.size()) continue;
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string sym_name;
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for (size_t c = name_pos; c < m_data.size() && m_data[c]; c++)
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sym_name += (char)m_data[c];
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if (sym_name.empty()) continue;
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if (sym_shndx != 0 && sym_val)
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{
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m_symbols[sym_val] = sym_name;
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if (sym_bind == 1)
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m_exports.push_back({sym_val, sym_name});
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}
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}
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}
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// Collect data section ranges (allocatable, non-executable)
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for (uint16_t i = 0; i < shnum; i++)
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{
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uint64_t sh_flags = 0;
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size_t so = shoff + i * 64;
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if (so + 64 > m_data.size()) continue;
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sh_flags = r64(m_data, so + 8);
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bool is_exec = (sh_flags & 0x4) != 0;
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bool is_alloc = (sh_flags & 0x2) != 0;
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if (is_alloc && !is_exec && sections[i].addr && sections[i].size)
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m_data_ranges.push_back({sections[i].addr, sections[i].addr + sections[i].size});
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}
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for (uint16_t i = 0; i < shnum; i++)
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{
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string sname = sectionName(sections[i].name_idx);
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if (sections[i].type != SHT_RELA && sname != ".rela.plt" && sname != ".rela.dyn")
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continue;
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uint64_t rela_off = sections[i].offset;
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uint64_t rela_sz = sections[i].size;
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size_t nrela = rela_sz / 24;
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if (nrela == 0) continue;
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uint32_t symtab_link = sections[i].link;
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if (symtab_link >= shnum) continue;
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uint64_t sym_off = sections[symtab_link].offset;
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uint64_t sym_sz = sections[symtab_link].size;
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uint64_t str_off2 = 0;
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uint32_t str_link = sections[symtab_link].link;
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if (str_link < shnum) str_off2 = sections[str_link].offset;
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uint64_t sym_entsize = sections[symtab_link].entsize ? sections[symtab_link].entsize : 24;
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string lib_name = m_needed_libs;
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for (size_t j = 0; j < nrela; j++)
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{
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size_t ent = rela_off + j * 24;
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if (ent + 24 > m_data.size()) break;
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uint64_t r_offset = r64(m_data, ent);
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uint64_t r_info = r64(m_data, ent + 8);
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uint32_t sym_idx = (uint32_t)(r_info >> 32);
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if (!sym_idx) continue;
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size_t sym_ent = sym_off + sym_idx * sym_entsize;
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if (sym_ent + 24 > m_data.size()) continue;
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uint32_t func_name_off = r32(m_data, sym_ent);
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if (!func_name_off || !str_off2) continue;
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size_t fn_pos = str_off2 + func_name_off;
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if (fn_pos >= m_data.size()) continue;
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string func_name;
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for (size_t c = fn_pos; c < m_data.size() && m_data[c]; c++)
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func_name += (char)m_data[c];
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if (func_name.empty()) continue;
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bool dup = false;
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for (const auto& imp : m_imports)
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if (imp.address == r_offset) { dup = true; break; }
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if (dup) continue;
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ImportEntry e;
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e.address = r_offset;
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e.name = func_name;
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e.library = lib_name;
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m_imports.push_back(e);
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}
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}
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}
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else
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{
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m_arch = Arch::X86;
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}
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return true;
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}
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bool ELFLoader::parseDynamic()
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{
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return true;
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}
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bool ELFLoader::parseSections()
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{
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return true;
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}
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bool ELFLoader::parseSymbols()
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{
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return true;
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}
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vector<uint8_t> ELFLoader::readBytes(addr_t vaddr, size_t size) const
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{
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for (const auto& fmap : m_file_map)
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{
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addr_t seg_vaddr = get<1>(fmap);
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uint64_t seg_size = get<2>(fmap);
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if (vaddr >= seg_vaddr && vaddr < seg_vaddr + seg_size)
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{
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uint64_t file_off = get<0>(fmap) + (vaddr - seg_vaddr);
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size_t avail = min(size, (size_t)(seg_vaddr + seg_size - vaddr));
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if (file_off + avail > m_data.size())
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avail = m_data.size() - file_off;
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vector<uint8_t> result(m_data.begin() + file_off, m_data.begin() + file_off + avail);
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return result;
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}
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}
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return {};
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}
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vector<pair<addr_t, addr_t>> ELFLoader::getDataRanges() const
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{
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return m_data_ranges;
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}
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vector<pair<addr_t, addr_t>> ELFLoader::getExecutableRanges() const
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{
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return m_exec_ranges;
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}
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vector<pair<addr_t, string>> ELFLoader::getExportedFunctions() const
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{
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return m_exports;
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}
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vector<ImportEntry> ELFLoader::getImportedFunctions() const
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{
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return m_imports;
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}
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