196 lines
7.4 KiB
C++
196 lines
7.4 KiB
C++
#if defined(ESP_PLATFORM)
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#include <sdkconfig.h>
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#endif
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#if defined(ESP_PLATFORM)
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#include <Tactility/PanicHandler.h>
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#include <esp_attr.h>
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#include <esp_memory_utils.h>
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#include <esp_private/panic_internal.h>
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#if defined(CONFIG_IDF_TARGET_ARCH_XTENSA)
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#include <esp_cpu.h>
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#include <esp_cpu_utils.h>
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#include <esp_debug_helpers.h>
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#include <xtensa/xtruntime.h>
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#elif defined(CONFIG_IDF_TARGET_ARCH_RISCV)
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#include <riscv/rvruntime-frames.h>
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// The walker below reads s0 as a frame pointer. GCC only guarantees this with
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// -fno-omit-frame-pointer (set project-wide, excluding the bootloader, in the top-level
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// CMakeLists.txt).
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#endif
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#include <cstring>
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extern "C" {
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/**
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* This static variable survives a crash reboot.
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* It is reset by the Boot app.
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*/
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static RTC_NOINIT_ATTR CrashData crashData;
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void __real_esp_panic_handler(void* info);
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void __wrap_esp_panic_handler(void* info) {
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const auto* panic_info = static_cast<const panic_info_t*>(info);
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switch (panic_info->exception) {
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// Watchdag timer issues are not consider real crashes: they trigger relatively often
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// and could cause a previous real crash to be overwritten by a watchdog timer warning during reboot.
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case PANIC_EXCEPTION_IWDT: crashData.cause = CrashCause::WatchdogInterrupt; return;
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case PANIC_EXCEPTION_TWDT: crashData.cause = CrashCause::WatchdogTask; return;
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// We also don't care about debugger errors:
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case PANIC_EXCEPTION_DEBUG: crashData.cause = CrashCause::Debug; return;
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// We only care about 'real' crashes:
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case PANIC_EXCEPTION_ABORT: crashData.cause = CrashCause::Abort; break;
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case PANIC_EXCEPTION_FAULT:
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default: crashData.cause = CrashCause::Fault; break;
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}
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crashData.callstackLength = 0;
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crashData.callstackCorrupted = false;
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crashData.faultAddress = reinterpret_cast<uint32_t>(panic_info->addr);
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// g_panic_abort_details carries the actual assert()/abort() message when present; panic_info->reason
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// is ESP-IDF's generic description otherwise (e.g. "IllegalInstruction").
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const char* reason = (panic_info->exception == PANIC_EXCEPTION_ABORT && g_panic_abort_details != nullptr)
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? g_panic_abort_details
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: panic_info->reason;
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crashData.reason[0] = '\0';
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if (reason != nullptr) {
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strncpy(crashData.reason, reason, sizeof(crashData.reason) - 1);
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crashData.reason[sizeof(crashData.reason) - 1] = '\0';
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}
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#if defined(CONFIG_IDF_TARGET_ARCH_XTENSA)
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// Xtensa's register-windowing hardware lets ESP-IDF walk the stack via
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// esp_backtrace_get_start()/esp_backtrace_get_next_frame().
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esp_backtrace_frame_t frame = {
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.pc = 0,
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.sp = 0,
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.next_pc = 0,
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.exc_frame = nullptr
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};
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esp_backtrace_get_start(&frame.pc, &frame.sp, &frame.next_pc);
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crashData.callstack[0].pc = frame.pc;
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#if CRASH_DATA_INCLUDES_SP
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crashData.callstack[0].sp = frame.sp;
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#endif
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crashData.callstackLength++;
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uint32_t processed_pc = esp_cpu_process_stack_pc(frame.pc);
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bool pc_is_valid = esp_ptr_executable((void *)processed_pc);
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/* Ignore the first corrupted PC in case of InstrFetchProhibited on Xtensa */
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if (frame.exc_frame && ((XtExcFrame *)frame.exc_frame)->exccause == EXCCAUSE_INSTR_PROHIBITED) {
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pc_is_valid = true;
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}
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crashData.callstackCorrupted = !(esp_stack_ptr_is_sane(frame.sp) && pc_is_valid);
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while (
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frame.next_pc != 0 &&
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!crashData.callstackCorrupted
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&& crashData.callstackLength < CRASH_DATA_CALLSTACK_LIMIT
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) {
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if (esp_backtrace_get_next_frame(&frame)) {
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// Validate the current frame
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uint32_t processed_frame_pc = esp_cpu_process_stack_pc(frame.pc);
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bool frame_pc_is_valid = esp_ptr_executable((void *)processed_frame_pc);
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if (!esp_stack_ptr_is_sane(frame.sp) || !frame_pc_is_valid) {
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crashData.callstackCorrupted = true;
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break;
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}
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crashData.callstack[crashData.callstackLength].pc = frame.pc;
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#if CRASH_DATA_INCLUDES_SP
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crashData.callstack[crashData.callstackLength].sp = frame.sp;
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#endif
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crashData.callstackLength++;
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} else {
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crashData.callstackCorrupted = true;
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break;
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}
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}
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#elif defined(CONFIG_IDF_TARGET_ARCH_RISCV)
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// RISC-V has no register-windowing hardware, so the stack has to be walked by hand via the
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// frame-pointer (s0) chain. Algorithm ported from esp-rs/esp-hal's esp-backtrace crate
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// (Apache-2.0): https://github.com/esp-rs/esp-hal/blob/main/esp-backtrace/src/riscv.rs
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//
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// s0 for a frame points just past that frame's saved {ra, s0} pair: the caller's return
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// address is at fp-4, the caller's own frame pointer at fp-8.
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const auto* exc_frame = static_cast<const RvExcFrame*>(panic_info->frame);
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// mepc is the exact faulting instruction, not a return address, so it's used directly rather
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// than read from the stack like the rest of the walk.
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crashData.callstack[0].pc = exc_frame->mepc;
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#if CRASH_DATA_INCLUDES_SP
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crashData.callstack[0].sp = exc_frame->sp;
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#endif
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crashData.callstackLength++;
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uint32_t fp = exc_frame->s0;
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crashData.callstackCorrupted = !(esp_stack_ptr_is_sane(exc_frame->sp) && esp_ptr_executable(reinterpret_cast<void*>(exc_frame->mepc)));
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while (
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!crashData.callstackCorrupted
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&& crashData.callstackLength < CRASH_DATA_CALLSTACK_LIMIT
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) {
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// esp_stack_ptr_is_sane() also requires 16-byte alignment, a property of sp at call
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// boundaries but not of a frame pointer (fp only needs word alignment). esp_ptr_in_dram()
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// is the same range check without that assumption.
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//
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// Checked against fp-8, not just fp: the record about to be read is [fp-8, fp), and an fp
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// near the very start of the DRAM range can itself pass esp_ptr_in_dram() while fp-8
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// underflows below it, so validate the whole record before dereferencing any of it.
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//
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// Every task's root frame is vPortTaskWrapper() (FreeRTOS-Kernel/portable/riscv/port.c),
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// which marks itself `.cfi_undefined ra`: no valid frame exists below it, so an invalid fp
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// here is the expected end of the walk once at least one real frame has been captured, not
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// corruption. An invalid fp on the very first iteration is a real problem.
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if (!esp_ptr_in_dram(reinterpret_cast<void*>(fp - 8)) || !esp_ptr_in_dram(reinterpret_cast<void*>(fp)) || (fp & 0x3) != 0) {
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crashData.callstackCorrupted = (crashData.callstackLength <= 1);
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break;
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}
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uint32_t ra = *reinterpret_cast<const uint32_t*>(fp - 4);
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uint32_t prev_fp = *reinterpret_cast<const uint32_t*>(fp - 8);
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// A zero return address marks the outermost frame (startup code zero-initialises it).
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if (ra == 0) {
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break;
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}
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if (!esp_ptr_executable(reinterpret_cast<void*>(ra))) {
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crashData.callstackCorrupted = (crashData.callstackLength <= 1);
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break;
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}
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crashData.callstack[crashData.callstackLength].pc = ra;
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#if CRASH_DATA_INCLUDES_SP
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crashData.callstack[crashData.callstackLength].sp = fp;
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#endif
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crashData.callstackLength++;
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fp = prev_fp;
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}
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#endif // CONFIG_IDF_TARGET_ARCH_XTENSA / CONFIG_IDF_TARGET_ARCH_RISCV
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// TODO: Handle corrupted logic
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__real_esp_panic_handler(info);
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}
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}
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const CrashData& getRtcCrashData() { return crashData; }
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#endif
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