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/* radare - LGPL - Copyright 2008-2026 - nibble, pancake, alvaro_fe */
// R2R db/formats/elf/versioninfo
// R2R db/formats/elf/reloc
#define R_LOG_ORIGIN "elf"
#include <r_types.h>
#include <r_util.h>
#include "elf.h"
#include "../../i/private.h"
/// XXX this should be a runtime option
#define PERMIT_UNNAMED_SYMBOLS 0
#define DT_AARCH64_PAC_PLT (DT_LOPROC + 3)
#define ELF_PAGE_MASK 0xFFFFFFFFFFFFF000LL
#define ELF_PAGE_SIZE 4096
#define R_ELF_NO_RELRO 0
#define R_ELF_PART_RELRO 1
#define R_ELF_FULL_RELRO 2
#define MAX_REL_RELA_SZ (sizeof (Elf_(Rel)) > sizeof (Elf_(Rela))? sizeof (Elf_(Rel)): sizeof (Elf_(Rela)))
#define READ8(x, i) r_read_ble8((x) + (i)); (i) += 1
#define READ16(x, i) r_read_ble16((x) + (i), eo->endian); (i) += 2
#define READ32(x, i) r_read_ble32((x) + (i), eo->endian); (i) += 4
#define READ64(x, i) r_read_ble64((x) + (i), eo->endian); (i) += 8
#define BREAD8(x, i) r_buf_read_ble8_at (x, i); (i) += 1
#define BREAD16(x, i) r_buf_read_ble16_at (x, i, eo->endian); (i) += 2
#define BREAD32(x, i) r_buf_read_ble32_at (x, i, eo->endian); (i) += 4
#define BREAD64(x, i) r_buf_read_ble64_at (x, i, eo->endian); (i) += 8
#define NUMENTRIES_ROUNDUP(sectionsize, entrysize) (((sectionsize) + (entrysize) - 1) / (entrysize))
#define round_up(a) ((((a) + (4) - (1)) / (4)) * (4))
#define EF_MIPS_ABI_O32 0x00001000 /* O32 ABI. */
#define EF_MIPS_ABI_O64 0x00002000 /* O32 extended for 64 bit. */
#define EF_MIPS_ABI 0x0000f000
/* ARCH_ASE */
#define EF_MIPS_MICROMIPS 0x02000000 /* microMIPS */
#define EF_MIPS_ARCH_ASE_M16 0x04000000 /* Has Mips-16 ISA extensions */
#define EF_MIPS_ARCH_ASE_MDMX 0x08000000 /* Has MDMX multimedia extensions */
#define EF_MIPS_ARCH_ASE 0x0f000000 /* Mask for EF_MIPS_ARCH_ASE_xxx flags */
static bool reloc_fill_local_address(ELFOBJ *eo);
static bool compute_has_nx(ELFOBJ *eo);
static inline bool is_elfclass64(Elf_(Ehdr) * h) {
return h->e_ident[EI_CLASS] == ELFCLASS64;
}
static bool is_intel(const ELFOBJ *eo) {
switch (eo->ehdr.e_machine) {
case EM_386:
case EM_X86_64:
case EM_IAMCU:
return true;
}
return false;
}
static bool is_mips_o32(Elf_(Ehdr) *h) {
if (h->e_ident[EI_CLASS] != ELFCLASS32) {
return false;
}
if ((h->e_flags & EF_MIPS_ABI2) != 0) {
return false;
}
if ((h->e_flags & EF_MIPS_ABI) != 0 && (h->e_flags & EF_MIPS_ABI) != EF_MIPS_ABI_O32) {
return false;
}
return true;
}
static bool is_mips_micro(Elf_(Ehdr) *h) {
if (h->e_ident[EI_CLASS] != ELFCLASS32) {
return false;
}
if ((h->e_flags & EF_MIPS_MICROMIPS) != 0) {
return true;
}
return false;
}
static bool is_mips_n32(Elf_(Ehdr) *h) {
if (h->e_ident[EI_CLASS] != ELFCLASS32) {
return false;
}
if ((h->e_flags & EF_MIPS_ABI2) == 0 || (h->e_flags & EF_MIPS_ABI) != 0) {
return false;
}
return true;
}
enum {
X86,
X86_64,
ARM,
AARCH64,
RCE,
ARCH_LEN
};
typedef struct reginfo {
ut32 regsize;
ut32 regdelta;
} reginfo_t;
static const reginfo_t reginf[ARCH_LEN] = {
{ 160, 0x5c },
{ 216, 0x84 },
{ 72, 0x5c },
{ 272, 0x84 },
{ 272, 0x84 }
};
static bool is_bin_etrel(ELFOBJ *eo) {
return eo->ehdr.e_type == ET_REL;
}
static bool __is_valid_ident(ut8 *e_ident) {
return !strncmp ((char*)e_ident, ELFMAG, SELFMAG) ||
!strncmp ((char*)e_ident, CGCMAG, SCGCMAG);
}
static bool init_ehdr(ELFOBJ *eo) {
ut8 ehdr[sizeof (Elf_(Ehdr))] = {0};
int i;
ut8 *e_ident = (ut8*)&eo->ehdr.e_ident;
if (r_buf_read_at (eo->b, 0, e_ident, EI_NIDENT) != EI_NIDENT) {
R_LOG_DEBUG ("read (magic)");
return false;
}
if (!__is_valid_ident (e_ident)) {
return false;
}
eo->endian = (e_ident[EI_DATA] == ELFDATA2MSB)? 1: 0;
int len = r_buf_read_at (eo->b, 0, ehdr, sizeof (ehdr));
if (len < 32) { // tinyelf != sizeof (Elf_(Ehdr))) {
R_LOG_DEBUG ("read (ehdr)");
return false;
}
sdb_num_set (eo->kv, "elf_header.offset", 0, 0);
sdb_num_set (eo->kv, "elf_header.size", sizeof (Elf_(Ehdr)), 0);
i = 16;
eo->ehdr.e_type = READ16 (ehdr, i);
eo->ehdr.e_machine = READ16 (ehdr, i);
eo->ehdr.e_version = READ32 (ehdr, i);
#if R_BIN_ELF64
eo->ehdr.e_entry = READ64 (ehdr, i);
eo->ehdr.e_phoff = READ64 (ehdr, i);
eo->ehdr.e_shoff = READ64 (ehdr, i);
#else
eo->ehdr.e_entry = READ32 (ehdr, i);
eo->ehdr.e_phoff = READ32 (ehdr, i);
eo->ehdr.e_shoff = READ32 (ehdr, i);
#endif
eo->ehdr.e_flags = READ32 (ehdr, i);
eo->ehdr.e_ehsize = READ16 (ehdr, i);
eo->ehdr.e_phentsize = READ16 (ehdr, i);
eo->ehdr.e_phnum = READ16 (ehdr, i);
eo->ehdr.e_shentsize = READ16 (ehdr, i);
eo->ehdr.e_shnum = READ16 (ehdr, i);
eo->ehdr.e_shstrndx = READ16 (ehdr, i);
return true;
// [Outdated] Usage example:
// > td `k bin/cur/info/elf_type.cparse`; td `k bin/cur/info/elf_machine.cparse`
// > pf `k bin/cur/info/elf_header.format` @ `k bin/cur/info/elf_header.offset`
}
ut64 Elf_(get_phnum)(ELFOBJ *eo) {
R_RETURN_VAL_IF_FAIL (eo, 0);
if (eo->ehdr.e_phnum == UT16_MAX) {
// sh_info member of the initial entry in section header table.
if (eo->ehdr.e_shnum > 0) {
if (eo->ehdr.e_shoff > eo->size || sizeof (Elf_(Shdr)) > eo->size - eo->ehdr.e_shoff) {
return 0;
}
ut8 shdr[sizeof (Elf_(Shdr))] = {0};
int r = r_buf_read_at (eo->b, eo->ehdr.e_shoff, shdr, sizeof (shdr));
if (r != sizeof (shdr)) {
return 0;
}
int i = 0;
(void)READ32 (shdr, i);
(void)READ32 (shdr, i);
(void)R_BIN_ELF_READWORD (shdr, i);
(void)R_BIN_ELF_READWORD (shdr, i);
(void)R_BIN_ELF_READWORD (shdr, i);
(void)R_BIN_ELF_READWORD (shdr, i);
(void)READ32 (shdr, i);
ut64 num = READ32 (shdr, i);
if (!num) {
return UT16_MAX;
}
return num;
}
}
return eo->ehdr.e_phnum & UT16_MAX;
}
static bool read_phdr(ELFOBJ *eo) {
const ut64 phnum = eo->phnum;
/*
* Here is the where all the fun starts.
* Linux kernel during 2005-2022 calculates phdr offset wrongly
* adding it to the load address (va of the LOAD0).
* See `fs/binfmt_elf.c` file, search for this line:
* NEW_AUX_ENT(AT_PHDR, load_addr + exec->e_phoff);
*
* We solve this by first looking up one of the PT_LOAD segments.
* If we can't find it, we need to fix the phdr offset.
*/
const size_t _128K = 1024 * 128;
// Enable this hack only for the X86 64bit ELFs
const bool linux_kern_hack = r_buf_size (eo->b) > _128K &&
(eo->ehdr.e_machine == EM_X86_64 || eo->ehdr.e_machine == EM_386 || eo->ehdr.e_machine == EM_IAMCU);
if (linux_kern_hack) {
bool load_header_found = false;
int i;
#if 0
if (phnum > UT16_MAX) {
return false;
}
#endif
for (i = 0; i < phnum; i++) {
ut8 phdr[sizeof (Elf_(Phdr))] = {0};
const size_t rsize = eo->ehdr.e_phoff + i * sizeof (phdr);
int len = r_buf_read_at (eo->b, rsize, phdr, sizeof (phdr));
if (len != sizeof (phdr)) {
R_LOG_DEBUG ("read (phdr)");
return false;
}
int j = 0;
Elf_(Word) p_type = READ32 (phdr, j);
if (p_type == PT_LOAD) {
load_header_found = true;
break;
}
}
if (!load_header_found) {
const ut64 load_addr = Elf_(get_baddr) (eo);
ut64 phoff = Elf_(v2p) (eo, load_addr + eo->ehdr.e_phoff);
if (phoff != UT64_MAX) {
eo->ehdr.e_phoff = phoff;
}
}
}
#if R_BIN_ELF64
const bool is_elf64 = true;
#else
const bool is_elf64 = false;
#endif
int i;
for (i = 0; i < phnum; i++) {
ut8 phdr[sizeof (Elf_(Phdr))] = {0};
const size_t rsize = eo->ehdr.e_phoff + i * sizeof (Elf_(Phdr));
int len = r_buf_read_at (eo->b, rsize, phdr, sizeof (phdr));
if (len != sizeof (phdr)) {
R_LOG_DEBUG ("read (phdr)");
return false;
}
int j = 0;
Elf_(Phdr) *p = &eo->phdr[i];
p->p_type = READ32 (phdr, j);
if (is_elf64) {
p->p_flags = READ32 (phdr, j);
}
p->p_offset = R_BIN_ELF_READWORD (phdr, j);
p->p_vaddr = R_BIN_ELF_READWORD (phdr, j);
p->p_paddr = R_BIN_ELF_READWORD (phdr, j);
p->p_filesz = R_BIN_ELF_READWORD (phdr, j);
p->p_memsz = R_BIN_ELF_READWORD (phdr, j);
if (!is_elf64) {
p->p_flags = READ32 (phdr, j);
// p->p_flags |= 1; tiny.elf needs this somehow :? LOAD0 is always +x for linux?
}
p->p_align = R_BIN_ELF_READWORD (phdr, j);
}
return true;
}
static int init_phdr(ELFOBJ *eo) {
R_RETURN_VAL_IF_FAIL (eo && !eo->phdr, false);
if (!eo->ehdr.e_phnum) {
return false;
}
eo->phnum = Elf_(get_phnum) (eo);
ut64 phdr_size;
if (!UT64_MUL (&phdr_size, eo->phnum, sizeof (Elf_(Phdr)))) {
return false;
}
if (!phdr_size || phdr_size > eo->size) {
return false;
}
if (eo->phnum > SIZE_MAX / sizeof (Elf_(Phdr))) {
return false;
}
if (eo->ehdr.e_phoff > eo->size || phdr_size > eo->size - eo->ehdr.e_phoff) {
return false;
}
if (!(eo->phdr = R_NEWS0 (Elf_(Phdr), eo->phnum))) {
r_sys_perror ("malloc (phdr)");
return false;
}
if (!read_phdr (eo)) {
R_FREE (eo->phdr);
return false;
}
sdb_num_set (eo->kv, "elf_phdr.offset", eo->ehdr.e_phoff, 0);
sdb_num_set (eo->kv, "elf_phdr.size", sizeof (Elf_(Phdr)), 0);
sdb_set (eo->kv, "elf_p_type.cparse", "enum elf_p_type {PT_NULL=0,PT_LOAD=1,PT_DYNAMIC=2,"
"PT_INTERP=3,PT_NOTE=4,PT_SHLIB=5,PT_PHDR=6,PT_LOOS=0x60000000,"
"PT_HIOS=0x6fffffff,PT_LOPROC=0x70000000,PT_HIPROC=0x7fffffff};",
0);
sdb_set (eo->kv, "elf_p_flags.cparse", "enum elf_p_flags {PF_None=0,PF_Exec=1,"
"PF_Write=2,PF_Write_Exec=3,PF_Read=4,PF_Read_Exec=5,PF_Read_Write=6,"
"PF_Read_Write_Exec=7};", 0);
#if R_BIN_ELF64
sdb_set (eo->kv, "elf_phdr.format", "[4]E[4]Eqqqqqq (elf_p_type)type (elf_p_flags)flags"
" offset vaddr paddr filesz memsz align", 0);
#else
sdb_set (eo->kv, "elf_phdr.format", "[4]Exxxxx[4]Ex (elf_p_type)type offset vaddr paddr"
" filesz memsz (elf_p_flags)flags align", 0);
#endif
return true;
// Usage example:
// > td `k bin/cur/info/elf_p_type.cparse`; td `k bin/cur/info/elf_p_flags.cparse`
// > pf `k bin/cur/info/elf_phdr.format` @ `k bin/cur/info/elf_phdr.offset`
}
static int init_shdr(ELFOBJ *eo) {
R_RETURN_VAL_IF_FAIL (eo && !eo->shdr, false);
ut32 shdr_size;
if (!UT32_MUL (&shdr_size, eo->ehdr.e_shnum, sizeof (Elf_(Shdr)))) {
return false;
}
if (shdr_size < 1 || shdr_size > eo->size) {
return false;
}
if (eo->ehdr.e_shoff > eo->size || eo->ehdr.e_shoff + shdr_size > eo->size) {
return false;
}
if (!(eo->shdr = R_NEWS0 (Elf_(Shdr), eo->ehdr.e_shnum))) {
r_sys_perror ("malloc (shdr)");
return false;
}
sdb_num_set (eo->kv, "elf_shdr.offset", eo->ehdr.e_shoff, 0);
sdb_num_set (eo->kv, "elf_shdr.size", sizeof (Elf_(Shdr)), 0);
sdb_set (eo->kv, "elf_s_type.cparse", "enum elf_s_type {SHT_NULL=0,SHT_PROGBITS=1,"
"SHT_SYMTAB=2,SHT_STRTAB=3,SHT_RELA=4,SHT_HASH=5,SHT_DYNAMIC=6,SHT_NOTE=7,"
"SHT_NOBITS=8,SHT_REL=9,SHT_SHLIB=10,SHT_DYNSYM=11,SHT_LOOS=0x60000000,"
"SHT_HIOS=0x6fffffff,SHT_LOPROC=0x70000000,SHT_HIPROC=0x7fffffff};", 0);
ut8 shdr[sizeof (Elf_(Shdr))] = {0};
size_t i;
for (i = 0; i < eo->ehdr.e_shnum; i++) {
size_t j = 0;
size_t len = r_buf_read_at (eo->b, eo->ehdr.e_shoff + i * sizeof (Elf_(Shdr)), shdr, sizeof (Elf_(Shdr)));
if (len != sizeof (Elf_(Shdr))) {
R_LOG_DEBUG ("read (shdr) at 0x%" PFMT64x, (ut64) eo->ehdr.e_shoff);
R_FREE (eo->shdr);
return false;
}
Elf_(Shdr) *sh = &eo->shdr[i];
sh->sh_name = READ32 (shdr, j);
sh->sh_type = READ32 (shdr, j);
sh->sh_flags = R_BIN_ELF_READWORD (shdr, j);
sh->sh_addr = R_BIN_ELF_READWORD (shdr, j);
sh->sh_offset = R_BIN_ELF_READWORD (shdr, j);
sh->sh_size = R_BIN_ELF_READWORD (shdr, j);
if (sh->sh_size > ST32_MAX) {
sh->sh_size = 0;
}
sh->sh_link = READ32 (shdr, j);
sh->sh_info = READ32 (shdr, j);
sh->sh_addralign = R_BIN_ELF_READWORD (shdr, j);
sh->sh_entsize = R_BIN_ELF_READWORD (shdr, j);
}
#if R_BIN_ELF64
sdb_set (eo->kv, "elf_s_flags_64.cparse", "enum elf_s_flags_64 {SF64_None=0,SF64_Exec=1,"
"SF64_Alloc=2,SF64_Alloc_Exec=3,SF64_Write=4,SF64_Write_Exec=5,"
"SF64_Write_Alloc=6,SF64_Write_Alloc_Exec=7};", 0);
sdb_set (eo->kv, "elf_shdr.format", "x[4]E[8]Eqqqxxqq name (elf_s_type)type"
" (elf_s_flags_64)flags addr offset size link info addralign entsize", 0);
#else
sdb_set (eo->kv, "elf_s_flags_32.cparse", "enum elf_s_flags_32 {SF32_None=0,SF32_Exec=1,"
"SF32_Alloc=2,SF32_Alloc_Exec=3,SF32_Write=4,SF32_Write_Exec=5,"
"SF32_Write_Alloc=6,SF32_Write_Alloc_Exec=7};", 0);
sdb_set (eo->kv, "elf_shdr.format", "x[4]E[4]Exxxxxxx name (elf_s_type)type"
" (elf_s_flags_32)flags addr offset size link info addralign entsize", 0);
#endif
return true;
// Usage example:
// > td `k bin/cur/info/elf_s_type.cparse`; td `k bin/cur/info/elf_s_flags_64.cparse`
// > pf `k bin/cur/info/elf_shdr.format` @ `k bin/cur/info/elf_shdr.offset`
}
static bool is_shidx_valid(ELFOBJ *eo, Elf_(Half) value) {
return value < eo->ehdr.e_shnum && !R_BETWEEN (SHN_LORESERVE, value, SHN_HIRESERVE);
}
static bool init_strtab(ELFOBJ *eo) {
R_RETURN_VAL_IF_FAIL (!eo->strtab, false);
if (!eo->shdr) {
return false;
}
Elf_(Half) shstrndx = eo->ehdr.e_shstrndx;
if (shstrndx != SHN_UNDEF && !is_shidx_valid (eo, shstrndx)) {
R_LOG_DEBUG ("invalid section header index");
return false;
}
Elf_(Shdr) *sh = &eo->shdr[shstrndx];
// sh_size must not be zero, to avoid bugs with malloc()
if (!sh->sh_size) {
R_LOG_DEBUG ("empty section header size cant be zero");
return false;
}
eo->shstrtab_section = eo->strtab_section = sh;
eo->shstrtab_size = sh->sh_size;
if (eo->shstrtab_size > eo->size) {
R_LOG_DEBUG ("sh string tab section is larger than the whole file");
return false;
}
if (eo->shstrtab_section->sh_offset > eo->size) {
R_LOG_DEBUG ("sh string tab section is larger than the whole file");
return false;
}
if (eo->shstrtab_section->sh_offset + eo->shstrtab_section->sh_size > eo->size) {
return false;
}
R_FREE (eo->shstrtab);
if (!(eo->shstrtab = calloc (1, eo->shstrtab_size + 1))) {
r_sys_perror ("malloc");
return false;
}
int res = r_buf_read_at (eo->b, eo->shstrtab_section->sh_offset, (ut8*)eo->shstrtab,
eo->shstrtab_section->sh_size);
if (res != eo->shstrtab_section->sh_size) {
R_LOG_DEBUG ("read (shstrtab) at 0x%" PFMT64x, (ut64) eo->shstrtab_section->sh_offset);
R_FREE (eo->shstrtab);
return false;
}
eo->shstrtab[eo->shstrtab_section->sh_size] = '\0';
sdb_num_set (eo->kv, "elf_shstrtab.offset", eo->shstrtab_section->sh_offset, 0);
sdb_num_set (eo->kv, "elf_shstrtab.size", eo->shstrtab_section->sh_size, 0);
return true;
}
static Elf_(Phdr) *get_dynamic_segment(ELFOBJ *eo) {
size_t i;
for (i = 0; i < eo->phnum; i++) {
Elf_(Phdr) *p = &eo->phdr[i];
if (p->p_type != PT_DYNAMIC) {
continue;
}
if (p->p_filesz > eo->size || p->p_offset > eo->size
|| p->p_offset + sizeof (Elf_(Dyn)) > eo->size) {
return NULL;
}
return p;
}
return NULL;
}
static void set_default_value_dynamic_info(ELFOBJ *eo) {
RBinElfDynamicInfo *di = &eo->dyn_info;
di->dt_pltrelsz = 0;
di->dt_hash = R_BIN_ELF_ADDR_MAX;
di->dt_strtab = R_BIN_ELF_ADDR_MAX;
di->dt_symtab = R_BIN_ELF_ADDR_MAX;
di->dt_rela = R_BIN_ELF_ADDR_MAX;
di->dt_relr = R_BIN_ELF_ADDR_MAX;
di->dt_relasz = 0;
di->dt_relaent = 0;
di->dt_relrsz = 0;
di->dt_relrent = 0;
di->dt_strsz = 0;
di->dt_syment = 0;
di->dt_rel = R_BIN_ELF_ADDR_MAX;
di->dt_relsz = 0;
di->dt_relent = 0;
di->dt_pltrel = R_BIN_ELF_XWORD_MAX;
di->dt_jmprel = R_BIN_ELF_ADDR_MAX;
di->dt_pltgot = R_BIN_ELF_ADDR_MAX;
di->dt_mips_pltgot = R_BIN_ELF_ADDR_MAX;
di->dt_mips_local_gotno = 0;
di->dt_mips_gotsym = R_BIN_ELF_XWORD_MAX;
di->dt_mips_symtabno = 0;
di->dt_ppc64_glink = R_BIN_ELF_ADDR_MAX;
di->dt_aarch64_pac_plt = false;
di->dt_crel = R_BIN_ELF_ADDR_MAX;
di->dt_bind_now = false;
di->dt_flags = R_BIN_ELF_XWORD_MAX;
di->dt_flags_1 = R_BIN_ELF_XWORD_MAX;
di->dt_rpath = R_BIN_ELF_XWORD_MAX;
di->dt_runpath = R_BIN_ELF_XWORD_MAX;
RVecElfOff_init (&di->dt_needed);
}
static inline size_t get_maximum_number_of_dynamic_entries(ut64 dyn_size) {
return dyn_size / sizeof (Elf_(Dyn));
}
static bool fill_dynamic_entry(ELFOBJ *eo, ut64 entry_offset, Elf_(Dyn) *d) {
ut8 sdyn[sizeof (Elf_(Dyn))] = {0};
int len = r_buf_read_at (eo->b, entry_offset, sdyn, sizeof (sdyn));
if (len != sizeof (sdyn)) {
return false;
}
int j = 0; // required because its used in a macro
d->d_tag = R_BIN_ELF_READWORD (sdyn, j);
d->d_un.d_ptr = R_BIN_ELF_READWORD (sdyn, j);
return true;
}
static void fill_dynamic_entries(ELFOBJ *eo, ut64 loaded_offset, ut64 dyn_size) {
Elf_(Dyn) d = {0};
size_t i;
size_t number_of_entries = get_maximum_number_of_dynamic_entries(dyn_size);
RBinElfDynamicInfo *di = &eo->dyn_info;
for (i = 0; i < number_of_entries; i++) {
ut64 entry_offset = loaded_offset + i * sizeof (Elf_(Dyn));
if (!fill_dynamic_entry (eo, entry_offset, &d)) {
break;
}
switch (d.d_tag) {
case DT_NULL:
break;
case DT_PLTRELSZ:
di->dt_pltrelsz = d.d_un.d_val;
break;
case DT_PLTGOT:
di->dt_pltgot = d.d_un.d_ptr;
break;
case DT_HASH:
di->dt_hash = d.d_un.d_ptr;
break;
case DT_STRTAB:
di->dt_strtab = d.d_un.d_ptr;
break;
case DT_SYMTAB:
di->dt_symtab = d.d_un.d_ptr;
break;
case DT_RELA:
di->dt_rela = d.d_un.d_ptr;
break;
case DT_RELR:
di->dt_relr = d.d_un.d_ptr;
break;
case DT_RELRSZ:
di->dt_relrsz = d.d_un.d_val;
break;
case DT_RELRENT:
di->dt_relrent = d.d_un.d_val;
break;
case DT_RELASZ:
di->dt_relasz = d.d_un.d_val;
break;
case DT_RELAENT:
di->dt_relaent = d.d_un.d_val;
break;
case DT_STRSZ:
di->dt_strsz = d.d_un.d_val;
break;
case DT_SYMENT:
di->dt_syment = d.d_un.d_val;
break;
case DT_REL:
di->dt_rel = d.d_un.d_ptr;
break;
case DT_RELSZ:
di->dt_relsz = d.d_un.d_val;
break;
case DT_RELENT:
di->dt_relent = d.d_un.d_val;
break;
case DT_PLTREL:
di->dt_pltrel = d.d_un.d_val;
break;
case DT_JMPREL:
di->dt_jmprel = d.d_un.d_ptr;
break;
case DT_MIPS_PLTGOT:
di->dt_mips_pltgot = d.d_un.d_ptr;
break;
case DT_MIPS_LOCAL_GOTNO:
di->dt_mips_local_gotno = d.d_un.d_val;
break;
case DT_MIPS_GOTSYM:
di->dt_mips_gotsym = d.d_un.d_val;
break;
case DT_MIPS_SYMTABNO:
di->dt_mips_symtabno = d.d_un.d_val;
break;
case DT_PPC64_GLINK:
di->dt_ppc64_glink = d.d_un.d_ptr;
break;
case DT_AARCH64_PAC_PLT:
// shares its value with DT_PPC64_OPT and DT_MIPS_ICHECKSUM, so gate by machine
if (eo->ehdr.e_machine == EM_AARCH64) {
di->dt_aarch64_pac_plt = true;
}
break;
case DT_CREL:
di->dt_crel = d.d_un.d_ptr;
break;
case DT_BIND_NOW:
di->dt_bind_now = true;
break;
case DT_FLAGS:
di->dt_flags = d.d_un.d_val;
break;
case DT_FLAGS_1:
di->dt_flags_1 = d.d_un.d_val;
break;
case DT_RPATH:
di->dt_rpath = d.d_un.d_val;
break;
case DT_RUNPATH:
di->dt_runpath = d.d_un.d_val;
break;
case DT_NEEDED:
RVecElfOff_push_back (&di->dt_needed, &d.d_un.d_val);
break;
case DT_INIT:
case DT_FINI:
case DT_DEBUG:
case DT_INIT_ARRAY:
case DT_FINI_ARRAY:
case DT_INIT_ARRAYSZ:
case DT_FINI_ARRAYSZ:
case DT_PREINIT_ARRAY:
case DT_PREINIT_ARRAYSZ:
case DT_SONAME:
case DT_GNU_HASH:
// common dynamic entries in ELF, but we don't need to
// do anything with them.
break;
default:
if (d.d_tag >= DT_VERSYM && d.d_tag <= DT_VERNEEDNUM) {
eo->version_info[DT_VERSIONTAGIDX (d.d_tag)] = d.d_un.d_val;
} else {
R_LOG_DEBUG ("Dynamic tag %" PFMT64d " not handled", (ut64) d.d_tag);
}
break;
}
if (d.d_tag == DT_NULL) {
break;
}
}
}
static int init_dynamic_section(ELFOBJ *eo) {
R_RETURN_VAL_IF_FAIL (eo, false);
set_default_value_dynamic_info (eo);
if (!eo->phdr || !eo->phnum) {
return false;
}
Elf_(Phdr) *dyn_phdr = get_dynamic_segment (eo);
if (!dyn_phdr) {
return false;
}
ut64 loaded_offset = Elf_(v2p) (eo, dyn_phdr->p_vaddr);
if (loaded_offset == UT64_MAX) {
return false;
}
ut64 dyn_size = dyn_phdr->p_filesz;
if (!dyn_size || loaded_offset + dyn_size > eo->size) {
return false;
}
fill_dynamic_entries (eo, loaded_offset, dyn_size);
RBinElfDynamicInfo *di = &eo->dyn_info;
ut64 strtabaddr = 0;
if (di->dt_strtab != R_BIN_ELF_ADDR_MAX) {
strtabaddr = Elf_(v2p) (eo, di->dt_strtab);
}
size_t strsize = (di->dt_strsz > 0)? di->dt_strsz: 0;
if (strtabaddr == UT64_MAX || strtabaddr > eo->size || strsize > ST32_MAX ||
!strsize || strsize > eo->size || strtabaddr + strsize > eo->size) {
if (!strtabaddr) {
R_LOG_DEBUG ("DT_STRTAB not found or invalid");
}
return false;
}
char *strtab = calloc (1, strsize + 1);
if (!strtab) {
return false;
}
int r = r_buf_read_at (eo->b, strtabaddr, (ut8 *)strtab, strsize);
if (r != strsize) {
free (strtab);
return false;
}
eo->strtab = strtab;
eo->strtab_size = strsize;
sdb_num_set (eo->kv, "elf_strtab.offset", strtabaddr, 0);
sdb_num_set (eo->kv, "elf_strtab.size", strsize, 0);
return true;
}
// TODO: a hashtable is slower than a vector, using memoization is faster and takes less memory
static RBinElfSection* get_section_by_name(ELFOBJ *eo, const char *name) {
if (eo->sections_loaded) {
if (eo->last_section && !strcmp (name, eo->last_section->name)) {
return eo->last_section;
}
RBinElfSection *sec;
R_VEC_FOREACH (&eo->g_sections, sec) {
if (!strcmp (sec->name, name)) {
eo->last_section = sec;
return sec;
}
}
}
return NULL;
}
static char *get_ver_flags(ut32 flags) {
if (flags == 0) {
return strdup ("none");
}
RStrBuf *sb = r_strbuf_new (flags & VER_FLG_BASE ? "BASE" : "");
if (flags & VER_FLG_WEAK) {
r_strbuf_appendf (sb, "%sWEAK", r_strbuf_length (sb) > 0?" | ": "" );
}
if (flags & ~(VER_FLG_BASE | VER_FLG_WEAK)) {
r_strbuf_appendf (sb, "%s<unknown>", r_strbuf_length (sb) > 0?" | ": "" );
}
return r_strbuf_drain (sb);
}
typedef struct e_data_state_t {
Sdb *sdb;
Elf_(Shdr) *shdr;
const ut64 num_entries;
} EDataState;
static inline ut16 *_parse_edata(ELFOBJ *eo, EDataState *edata_state) {
Sdb *sdb = edata_state->sdb;
Elf_(Shdr) *shdr = edata_state->shdr;
const ut64 num_entries = edata_state->num_entries;
ut8 *edata = calloc (R_MAX (1, num_entries), 2 * sizeof (ut8));
if (!edata) {
return NULL;
}
ut16 *data = calloc (R_MAX (1, num_entries), sizeof (ut16));
if (!data) {
free (edata);
return NULL;
}
ut64 off = Elf_(v2p) (eo, eo->version_info[DT_VERSIONTAGIDX (DT_VERSYM)]);
if (off == UT64_MAX) {
free (data);
free (edata);
return NULL;
}
const char *section_name = "";
if (eo->shstrtab && shdr->sh_name < eo->shstrtab_size) {
section_name = &eo->shstrtab[shdr->sh_name];
}
Elf_(Shdr) *link_shdr = &eo->shdr[shdr->sh_link];
const char *link_section_name = "";
if (eo->shstrtab && link_shdr->sh_name < eo->shstrtab_size) {
link_section_name = &eo->shstrtab[link_shdr->sh_name];
}
edata[0] = 0;
(void)r_buf_read_at (eo->b, off, edata, sizeof (ut16) * num_entries);
sdb_set (sdb, "section_name", section_name, 0);
sdb_num_set (sdb, "num_entries", num_entries, 0);
sdb_num_set (sdb, "addr", shdr->sh_addr, 0);
sdb_num_set (sdb, "offset", shdr->sh_offset, 0);
sdb_num_set (sdb, "link", shdr->sh_link, 0);
sdb_set (sdb, "link_section_name", link_section_name, 0);
size_t i = num_entries;
while (i--) {
data[i] = r_read_ble16 (&edata[i * sizeof (ut16)], eo->endian);
}
free (edata);
return data;
}
typedef struct parse_vernaux_state_t {
int i;
int j;
Sdb *sdb;
ut16 *data;
const char *tmp_val;
const char *key;
bool check_def; // used as output parameter
} ParseVernauxState;
static inline bool _maybe_parse_aux_ver_needed_info(ELFOBJ *eo, ParseVernauxState *state) {
if (!eo->version_info[DT_VERSIONTAGIDX (DT_VERNEED)]) {
return true;
}
Elf_(Verneed) vn;
ut64 offset = Elf_(v2p) (eo, eo->version_info[DT_VERSIONTAGIDX (DT_VERNEED)]);
if (offset == UT64_MAX) {
return false;
}
do {
if (offset > eo->size || offset + sizeof (vn) > eo->size) {
return false;
}
ut8 svn[sizeof (Elf_(Verneed))] = {0};
if (r_buf_read_at (eo->b, offset, svn, sizeof (svn)) != sizeof (svn)) {
R_LOG_DEBUG ("Cannot read Verneed for Versym");
return false;
}
int k = 0;
vn.vn_version = READ16 (svn, k);
vn.vn_cnt = READ16 (svn, k);
vn.vn_file = READ32 (svn, k);
vn.vn_aux = READ32 (svn, k);
vn.vn_next = READ32 (svn, k);
const int i = state->i;
const int j = state->j;
const ut16 *data = state->data;
Elf_(Vernaux) vna;
ut64 a_off = offset + vn.vn_aux;
do {
if (a_off > eo->size || a_off + sizeof (vna) > eo->size) {
return false;
}
ut8 svna[sizeof (Elf_(Vernaux))] = {0};
if (r_buf_read_at (eo->b, a_off, svna, sizeof (svna)) != sizeof (svna)) {
R_LOG_DEBUG ("Cannot read Vernaux for Versym");
return false;
}
k = 0;
vna.vna_hash = READ32 (svna, k);
vna.vna_flags = READ16 (svna, k);
vna.vna_other = READ16 (svna, k);
vna.vna_name = READ32 (svna, k);
vna.vna_next = READ32 (svna, k);
a_off += vna.vna_next;
} while (vna.vna_other != data[i + j] && vna.vna_next != 0);
if (vna.vna_other == data[i + j]) {
if (vna.vna_name > eo->strtab_size) {
return false;
}
char *val = r_str_newf ("%s(%s)", state->tmp_val, eo->strtab + vna.vna_name);
sdb_set (state->sdb, state->key, val, 0);
free (val);
state->check_def = false;
return true;
}
offset += vn.vn_next;
} while (vn.vn_next);
return true;
}
typedef struct parse_ver_def_state_t {
int i;
int j;
Sdb *sdb;
const char *key;
const char *tmp_val;
ut16 *data;
} ParseVerDefState;
static inline bool _maybe_parse_version_definition_info(ELFOBJ *eo, ParseVerDefState *state) {
const int i = state->i;
const int j = state->j;
const ut16 *data = state->data;
const ut64 vinfoaddr = eo->version_info[DT_VERSIONTAGIDX (DT_VERDEF)];
if (!(data[i + j] != 0x8001 && vinfoaddr)) {
return true;
}
Elf_(Verdef) vd;
ut8 svd[sizeof (Elf_(Verdef))] = {0};
ut64 offset = Elf_(v2p) (eo, vinfoaddr);
if (offset == UT64_MAX || offset > eo->size || offset + sizeof (vd) > eo->size) {
return false;
}
do {
if (r_buf_read_at (eo->b, offset, svd, sizeof (svd)) != sizeof (svd)) {
R_LOG_DEBUG ("Cannot read Verdef for Versym");
return false;
}
int k = 0;
vd.vd_version = READ16 (svd, k);
vd.vd_flags = READ16 (svd, k);
vd.vd_ndx = READ16 (svd, k);
vd.vd_cnt = READ16 (svd, k);
vd.vd_hash = READ32 (svd, k);
vd.vd_aux = READ32 (svd, k);
vd.vd_next = READ32 (svd, k);
offset += vd.vd_next;
} while (vd.vd_ndx != (data[i + j] & 0x7FFF) && vd.vd_next != 0);
if (vd.vd_ndx == (data[i + j] & 0x7FFF)) {
Elf_(Verdaux) vda;
ut8 svda[sizeof (Elf_(Verdaux))] = {0};
ut64 off_vda = offset - vd.vd_next + vd.vd_aux;
if (off_vda > eo->size || off_vda + sizeof (vda) > eo->size) {
return false;
}
if (r_buf_read_at (eo->b, off_vda, svda, sizeof (svda)) != sizeof (svda)) {
R_LOG_DEBUG ("Cannot read Verdaux for Versym");
return false;
}
int k = 0;
vda.vda_name = READ32 (svda, k);
vda.vda_next = READ32 (svda, k);
if (vda.vda_name > eo->strtab_size) {
return false;
}
const char *name = eo->strtab + vda.vda_name;
if (name) {
char *fname = r_str_newf ("%s(%s%-*s)", state->tmp_val, name, (int)(12 - strlen (name)),")");
sdb_set (state->sdb, state->key, fname, 0);
free (fname);
}
}
return true;
}
static Sdb *store_versioninfo_gnu_versym(ELFOBJ *eo, Elf_(Shdr) *shdr, int sz) {
if (!eo->strtab) {
return NULL;
}
if (!eo->version_info[DT_VERSIONTAGIDX (DT_VERSYM)]) {
return NULL;
}
if (shdr->sh_link >= eo->ehdr.e_shnum) {
return NULL;
}
Sdb *sdb = sdb_new0 ();
if (!sdb) {
return NULL;
}
const ut64 num_entries = sz / sizeof (Elf_(Versym));