Fix RegsArm::GetPcAdjustment to check for an invalid elf before trying
to read memory.
Modify the tests for this so it crashes without this change.
Also modify the GetPcAdjustment for all different architectures so
that unless the relative pc is too small, it will return the minimum
amount that should be adjusted. This is to handle cases where we still
want to adjust the pc but it's in an invalid elf. Mostly this is for
handling cases when the pc is in jit gdb debug code so that we use the
right unwind information.
Bug: 77233204
Test: Passes unit tests for libbacktrace/libunwindstack.
Change-Id: Id73609adaf3b80a583584441de228156fec3afa7
(cherry picked from commit 6dbc28ece3)
176 lines
5 KiB
C++
176 lines
5 KiB
C++
/*
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* Copyright (C) 2017 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <stdint.h>
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#include <functional>
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#include <unwindstack/Elf.h>
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#include <unwindstack/MachineMips.h>
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#include <unwindstack/MapInfo.h>
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#include <unwindstack/Memory.h>
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#include <unwindstack/RegsMips.h>
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#include <unwindstack/UcontextMips.h>
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#include <unwindstack/UserMips.h>
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namespace unwindstack {
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RegsMips::RegsMips()
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: RegsImpl<uint32_t>(MIPS_REG_LAST, Location(LOCATION_REGISTER, MIPS_REG_RA)) {}
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ArchEnum RegsMips::Arch() {
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return ARCH_MIPS;
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}
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uint64_t RegsMips::pc() {
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return regs_[MIPS_REG_PC];
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}
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uint64_t RegsMips::sp() {
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return regs_[MIPS_REG_SP];
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}
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void RegsMips::set_pc(uint64_t pc) {
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regs_[MIPS_REG_PC] = static_cast<uint32_t>(pc);
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}
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void RegsMips::set_sp(uint64_t sp) {
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regs_[MIPS_REG_SP] = static_cast<uint32_t>(sp);
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}
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uint64_t RegsMips::GetPcAdjustment(uint64_t rel_pc, Elf*) {
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if (rel_pc < 8) {
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return 0;
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}
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// For now, just assume no compact branches
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return 8;
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}
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bool RegsMips::SetPcFromReturnAddress(Memory*) {
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uint32_t ra = regs_[MIPS_REG_RA];
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if (regs_[MIPS_REG_PC] == ra) {
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return false;
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}
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regs_[MIPS_REG_PC] = ra;
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return true;
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}
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void RegsMips::IterateRegisters(std::function<void(const char*, uint64_t)> fn) {
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fn("r0", regs_[MIPS_REG_R0]);
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fn("r1", regs_[MIPS_REG_R1]);
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fn("r2", regs_[MIPS_REG_R2]);
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fn("r3", regs_[MIPS_REG_R3]);
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fn("r4", regs_[MIPS_REG_R4]);
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fn("r5", regs_[MIPS_REG_R5]);
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fn("r6", regs_[MIPS_REG_R6]);
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fn("r7", regs_[MIPS_REG_R7]);
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fn("r8", regs_[MIPS_REG_R8]);
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fn("r9", regs_[MIPS_REG_R9]);
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fn("r10", regs_[MIPS_REG_R10]);
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fn("r11", regs_[MIPS_REG_R11]);
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fn("r12", regs_[MIPS_REG_R12]);
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fn("r13", regs_[MIPS_REG_R13]);
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fn("r14", regs_[MIPS_REG_R14]);
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fn("r15", regs_[MIPS_REG_R15]);
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fn("r16", regs_[MIPS_REG_R16]);
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fn("r17", regs_[MIPS_REG_R17]);
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fn("r18", regs_[MIPS_REG_R18]);
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fn("r19", regs_[MIPS_REG_R19]);
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fn("r20", regs_[MIPS_REG_R20]);
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fn("r21", regs_[MIPS_REG_R21]);
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fn("r22", regs_[MIPS_REG_R22]);
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fn("r23", regs_[MIPS_REG_R23]);
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fn("r24", regs_[MIPS_REG_R24]);
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fn("r25", regs_[MIPS_REG_R25]);
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fn("r26", regs_[MIPS_REG_R26]);
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fn("r27", regs_[MIPS_REG_R27]);
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fn("r28", regs_[MIPS_REG_R28]);
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fn("sp", regs_[MIPS_REG_SP]);
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fn("r30", regs_[MIPS_REG_R30]);
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fn("ra", regs_[MIPS_REG_RA]);
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fn("pc", regs_[MIPS_REG_PC]);
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}
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Regs* RegsMips::Read(void* remote_data) {
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mips_user_regs* user = reinterpret_cast<mips_user_regs*>(remote_data);
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RegsMips* regs = new RegsMips();
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uint32_t* reg_data = reinterpret_cast<uint32_t*>(regs->RawData());
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memcpy(regs->RawData(), &user->regs[MIPS32_EF_R0], (MIPS_REG_R31 + 1) * sizeof(uint32_t));
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reg_data[MIPS_REG_PC] = user->regs[MIPS32_EF_CP0_EPC];
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return regs;
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}
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Regs* RegsMips::CreateFromUcontext(void* ucontext) {
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mips_ucontext_t* mips_ucontext = reinterpret_cast<mips_ucontext_t*>(ucontext);
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RegsMips* regs = new RegsMips();
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// Copy 64 bit sc_regs over to 32 bit regs
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for (int i = 0; i < 32; i++) {
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(*regs)[MIPS_REG_R0 + i] = mips_ucontext->uc_mcontext.sc_regs[i];
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}
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(*regs)[MIPS_REG_PC] = mips_ucontext->uc_mcontext.sc_pc;
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return regs;
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}
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bool RegsMips::StepIfSignalHandler(uint64_t rel_pc, Elf* elf, Memory* process_memory) {
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uint64_t data;
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uint64_t offset = 0;
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Memory* elf_memory = elf->memory();
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// Read from elf memory since it is usually more expensive to read from
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// process memory.
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if (!elf_memory->Read(rel_pc, &data, sizeof(data))) {
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return false;
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}
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// Look for the kernel sigreturn functions.
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// __vdso_rt_sigreturn:
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// 0x24021061 li v0, 0x1061
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// 0x0000000c syscall
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// __vdso_sigreturn:
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// 0x24021017 li v0, 0x1017
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// 0x0000000c syscall
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if (data == 0x0000000c24021061ULL) {
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// vdso_rt_sigreturn => read rt_sigframe
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// offset = siginfo offset + sizeof(siginfo) + uc_mcontext offset + sc_pc offset
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offset = 24 + 128 + 24 + 8;
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} else if (data == 0x0000000c24021017LL) {
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// vdso_sigreturn => read sigframe
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// offset = sigcontext offset + sc_pc offset
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offset = 24 + 8;
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} else {
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return false;
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}
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// read sc_pc and sc_regs[32] from stack
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uint64_t values[MIPS_REG_LAST];
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if (!process_memory->Read(regs_[MIPS_REG_SP] + offset, values, sizeof(values))) {
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return false;
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}
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// Copy 64 bit sc_pc over to 32 bit regs_[MIPS_REG_PC]
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regs_[MIPS_REG_PC] = values[0];
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// Copy 64 bit sc_regs over to 32 bit regs
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for (int i = 0; i < 32; i++) {
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regs_[MIPS_REG_R0 + i] = values[1 + i];
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}
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return true;
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}
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} // namespace unwindstack
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