mirror of
https://github.com/ziglang/zig.git
synced 2025-12-24 15:13:08 +00:00
This is relevant to PIEs, which are notably enabled by default on macOS. The build system needs to only see virtual addresses, that is, those which do not have the slide applied; but the fuzzer itself naturally sees relocated addresses (i.e. with the slide applied). We just need to subtract the slide when we communicate addresses to the build system.
571 lines
23 KiB
Zig
571 lines
23 KiB
Zig
mutex: std.Thread.Mutex,
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modules: std.ArrayListUnmanaged(Module),
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module_name_arena: std.heap.ArenaAllocator.State,
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pub const init: SelfInfo = .{
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.mutex = .{},
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.modules = .empty,
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.module_name_arena = .{},
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};
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pub fn deinit(si: *SelfInfo, gpa: Allocator) void {
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for (si.modules.items) |*module| {
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di: {
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const di = &(module.di orelse break :di catch break :di);
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di.deinit(gpa);
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}
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}
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si.modules.deinit(gpa);
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var module_name_arena = si.module_name_arena.promote(gpa);
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module_name_arena.deinit();
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}
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pub fn getSymbol(si: *SelfInfo, gpa: Allocator, io: Io, address: usize) Error!std.debug.Symbol {
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si.mutex.lock();
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defer si.mutex.unlock();
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const module = try si.findModule(gpa, address);
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const di = try module.getDebugInfo(gpa, io);
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return di.getSymbol(gpa, address - module.base_address);
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}
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pub fn getModuleName(si: *SelfInfo, gpa: Allocator, address: usize) Error![]const u8 {
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si.mutex.lock();
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defer si.mutex.unlock();
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const module = try si.findModule(gpa, address);
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return module.name;
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}
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pub fn getModuleSlide(si: *SelfInfo, gpa: Allocator, address: usize) Error!usize {
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si.mutex.lock();
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defer si.mutex.unlock();
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const module = try si.findModule(gpa, address);
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return module.base_address;
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}
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pub const can_unwind: bool = switch (builtin.cpu.arch) {
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else => true,
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// On x86, `RtlVirtualUnwind` does not exist. We could in theory use `RtlCaptureStackBackTrace`
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// instead, but on x86, it turns out that function is just... doing FP unwinding with esp! It's
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// hard to find implementation details to confirm that, but the most authoritative source I have
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// is an entry in the LLVM mailing list from 2020/08/16 which contains this quote:
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//
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// > x86 doesn't have what most architectures would consider an "unwinder" in the sense of
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// > restoring registers; there is simply a linked list of frames that participate in SEH and
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// > that desire to be called for a dynamic unwind operation, so RtlCaptureStackBackTrace
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// > assumes that EBP-based frames are in use and walks an EBP-based frame chain on x86 - not
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// > all x86 code is written with EBP-based frames so while even though we generally build the
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// > OS that way, you might always run the risk of encountering external code that uses EBP as a
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// > general purpose register for which such an unwind attempt for a stack trace would fail.
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//
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// Regardless, it's easy to effectively confirm this hypothesis just by compiling some code with
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// `-fomit-frame-pointer -OReleaseFast` and observing that `RtlCaptureStackBackTrace` returns an
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// empty trace when it's called in such an application. Note that without `-OReleaseFast` or
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// similar, LLVM seems reluctant to ever clobber ebp, so you'll get a trace returned which just
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// contains all of the kernel32/ntdll frames but none of your own. Don't be deceived---this is
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// just coincidental!
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//
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// Anyway, the point is, the only stack walking primitive on x86-windows is FP unwinding. We
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// *could* ask Microsoft to do that for us with `RtlCaptureStackBackTrace`... but better to just
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// use our existing FP unwinder in `std.debug`!
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.x86 => false,
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};
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pub const UnwindContext = struct {
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pc: usize,
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cur: windows.CONTEXT,
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history_table: windows.UNWIND_HISTORY_TABLE,
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pub fn init(ctx: *const std.debug.cpu_context.Native) UnwindContext {
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return .{
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.pc = @returnAddress(),
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.cur = switch (builtin.cpu.arch) {
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.x86_64 => std.mem.zeroInit(windows.CONTEXT, .{
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.Rax = ctx.gprs.get(.rax),
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.Rcx = ctx.gprs.get(.rcx),
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.Rdx = ctx.gprs.get(.rdx),
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.Rbx = ctx.gprs.get(.rbx),
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.Rsp = ctx.gprs.get(.rsp),
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.Rbp = ctx.gprs.get(.rbp),
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.Rsi = ctx.gprs.get(.rsi),
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.Rdi = ctx.gprs.get(.rdi),
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.R8 = ctx.gprs.get(.r8),
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.R9 = ctx.gprs.get(.r9),
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.R10 = ctx.gprs.get(.r10),
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.R11 = ctx.gprs.get(.r11),
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.R12 = ctx.gprs.get(.r12),
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.R13 = ctx.gprs.get(.r13),
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.R14 = ctx.gprs.get(.r14),
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.R15 = ctx.gprs.get(.r15),
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.Rip = ctx.gprs.get(.rip),
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}),
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.aarch64 => .{
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.ContextFlags = 0,
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.Cpsr = 0,
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.DUMMYUNIONNAME = .{ .X = ctx.x },
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.Sp = ctx.sp,
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.Pc = ctx.pc,
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.V = @splat(.{ .B = @splat(0) }),
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.Fpcr = 0,
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.Fpsr = 0,
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.Bcr = @splat(0),
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.Bvr = @splat(0),
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.Wcr = @splat(0),
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.Wvr = @splat(0),
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},
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.thumb => .{
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.ContextFlags = 0,
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.R0 = ctx.r[0],
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.R1 = ctx.r[1],
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.R2 = ctx.r[2],
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.R3 = ctx.r[3],
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.R4 = ctx.r[4],
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.R5 = ctx.r[5],
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.R6 = ctx.r[6],
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.R7 = ctx.r[7],
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.R8 = ctx.r[8],
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.R9 = ctx.r[9],
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.R10 = ctx.r[10],
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.R11 = ctx.r[11],
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.R12 = ctx.r[12],
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.Sp = ctx.r[13],
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.Lr = ctx.r[14],
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.Pc = ctx.r[15],
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.Cpsr = 0,
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.Fpcsr = 0,
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.Padding = 0,
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.DUMMYUNIONNAME = .{ .S = @splat(0) },
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.Bvr = @splat(0),
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.Bcr = @splat(0),
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.Wvr = @splat(0),
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.Wcr = @splat(0),
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.Padding2 = @splat(0),
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},
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else => comptime unreachable,
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},
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.history_table = std.mem.zeroes(windows.UNWIND_HISTORY_TABLE),
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};
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}
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pub fn deinit(ctx: *UnwindContext, gpa: Allocator) void {
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_ = ctx;
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_ = gpa;
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}
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pub fn getFp(ctx: *UnwindContext) usize {
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return ctx.cur.getRegs().bp;
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}
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};
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pub fn unwindFrame(si: *SelfInfo, gpa: Allocator, context: *UnwindContext) Error!usize {
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_ = si;
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_ = gpa;
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const current_regs = context.cur.getRegs();
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var image_base: windows.DWORD64 = undefined;
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if (windows.ntdll.RtlLookupFunctionEntry(current_regs.ip, &image_base, &context.history_table)) |runtime_function| {
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var handler_data: ?*anyopaque = null;
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var establisher_frame: u64 = undefined;
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_ = windows.ntdll.RtlVirtualUnwind(
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windows.UNW_FLAG_NHANDLER,
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image_base,
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current_regs.ip,
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runtime_function,
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&context.cur,
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&handler_data,
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&establisher_frame,
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null,
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);
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} else {
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// leaf function
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context.cur.setIp(@as(*const usize, @ptrFromInt(current_regs.sp)).*);
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context.cur.setSp(current_regs.sp + @sizeOf(usize));
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}
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const next_regs = context.cur.getRegs();
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const tib = &windows.teb().NtTib;
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if (next_regs.sp < @intFromPtr(tib.StackLimit) or next_regs.sp > @intFromPtr(tib.StackBase)) {
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context.pc = 0;
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return 0;
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}
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// Like `DwarfUnwindContext.unwindFrame`, adjust our next lookup pc in case the `call` was this
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// function's last instruction making `next_regs.ip` one byte past its end.
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context.pc = next_regs.ip -| 1;
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return next_regs.ip;
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}
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const Module = struct {
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base_address: usize,
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size: u32,
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name: []const u8,
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handle: windows.HMODULE,
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di: ?(Error!DebugInfo),
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const DebugInfo = struct {
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arena: std.heap.ArenaAllocator.State,
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io: Io,
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coff_image_base: u64,
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mapped_file: ?MappedFile,
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dwarf: ?Dwarf,
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pdb: ?Pdb,
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coff_section_headers: []coff.SectionHeader,
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const MappedFile = struct {
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file: fs.File,
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section_handle: windows.HANDLE,
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section_view: []const u8,
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fn deinit(mf: *const MappedFile) void {
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const process_handle = windows.GetCurrentProcess();
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assert(windows.ntdll.NtUnmapViewOfSection(process_handle, @constCast(mf.section_view.ptr)) == .SUCCESS);
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windows.CloseHandle(mf.section_handle);
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mf.file.close();
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}
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};
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fn deinit(di: *DebugInfo, gpa: Allocator) void {
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const io = di.io;
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if (di.dwarf) |*dwarf| dwarf.deinit(gpa);
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if (di.pdb) |*pdb| {
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pdb.file_reader.file.close(io);
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pdb.deinit();
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}
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if (di.mapped_file) |*mf| mf.deinit();
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var arena = di.arena.promote(gpa);
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arena.deinit();
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}
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fn getSymbol(di: *DebugInfo, gpa: Allocator, vaddr: usize) Error!std.debug.Symbol {
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pdb: {
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const pdb = &(di.pdb orelse break :pdb);
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var coff_section: *align(1) const coff.SectionHeader = undefined;
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const mod_index = for (pdb.sect_contribs) |sect_contrib| {
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if (sect_contrib.section > di.coff_section_headers.len) continue;
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// Remember that SectionContribEntry.Section is 1-based.
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coff_section = &di.coff_section_headers[sect_contrib.section - 1];
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const vaddr_start = coff_section.virtual_address + sect_contrib.offset;
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const vaddr_end = vaddr_start + sect_contrib.size;
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if (vaddr >= vaddr_start and vaddr < vaddr_end) {
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break sect_contrib.module_index;
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}
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} else {
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// we have no information to add to the address
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break :pdb;
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};
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const module = pdb.getModule(mod_index) catch |err| switch (err) {
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error.InvalidDebugInfo,
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error.MissingDebugInfo,
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error.OutOfMemory,
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=> |e| return e,
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error.ReadFailed,
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error.EndOfStream,
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=> return error.InvalidDebugInfo,
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} orelse {
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return error.InvalidDebugInfo; // bad module index
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};
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return .{
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.name = pdb.getSymbolName(module, vaddr - coff_section.virtual_address),
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.compile_unit_name = fs.path.basename(module.obj_file_name),
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.source_location = pdb.getLineNumberInfo(module, vaddr - coff_section.virtual_address) catch null,
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};
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}
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dwarf: {
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const dwarf = &(di.dwarf orelse break :dwarf);
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const dwarf_address = vaddr + di.coff_image_base;
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return dwarf.getSymbol(gpa, native_endian, dwarf_address) catch |err| switch (err) {
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error.MissingDebugInfo => break :dwarf,
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error.InvalidDebugInfo,
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error.OutOfMemory,
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=> |e| return e,
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error.ReadFailed,
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error.EndOfStream,
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error.Overflow,
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error.StreamTooLong,
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=> return error.InvalidDebugInfo,
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};
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}
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return error.MissingDebugInfo;
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}
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};
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fn getDebugInfo(module: *Module, gpa: Allocator, io: Io) Error!*DebugInfo {
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if (module.di == null) module.di = loadDebugInfo(module, gpa, io);
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return if (module.di.?) |*di| di else |err| err;
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}
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fn loadDebugInfo(module: *const Module, gpa: Allocator, io: Io) Error!DebugInfo {
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const mapped_ptr: [*]const u8 = @ptrFromInt(module.base_address);
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const mapped = mapped_ptr[0..module.size];
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var coff_obj = coff.Coff.init(mapped, true) catch return error.InvalidDebugInfo;
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var arena_instance: std.heap.ArenaAllocator = .init(gpa);
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errdefer arena_instance.deinit();
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const arena = arena_instance.allocator();
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// The string table is not mapped into memory by the loader, so if a section name is in the
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// string table then we have to map the full image file from disk. This can happen when
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// a binary is produced with -gdwarf, since the section names are longer than 8 bytes.
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const mapped_file: ?DebugInfo.MappedFile = mapped: {
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if (!coff_obj.strtabRequired()) break :mapped null;
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var name_buffer: [windows.PATH_MAX_WIDE + 4:0]u16 = undefined;
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name_buffer[0..4].* = .{ '\\', '?', '?', '\\' }; // openFileAbsoluteW requires the prefix to be present
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const process_handle = windows.GetCurrentProcess();
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const len = windows.kernel32.GetModuleFileNameExW(
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process_handle,
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module.handle,
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name_buffer[4..],
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windows.PATH_MAX_WIDE,
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);
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if (len == 0) return error.MissingDebugInfo;
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const name_w = name_buffer[0 .. len + 4 :0];
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var threaded: Io.Threaded = .init_single_threaded;
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const coff_file = threaded.dirOpenFileWtf16(null, name_w, .{}) catch |err| switch (err) {
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error.Canceled => |e| return e,
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error.Unexpected => |e| return e,
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error.FileNotFound => return error.MissingDebugInfo,
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error.FileTooBig,
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error.IsDir,
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error.NotDir,
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error.SymLinkLoop,
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error.NameTooLong,
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error.BadPathName,
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=> return error.InvalidDebugInfo,
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error.SystemResources,
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error.WouldBlock,
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error.AccessDenied,
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error.ProcessNotFound,
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error.PermissionDenied,
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error.NoSpaceLeft,
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error.DeviceBusy,
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error.NoDevice,
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error.SharingViolation,
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error.PathAlreadyExists,
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error.PipeBusy,
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error.NetworkNotFound,
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error.AntivirusInterference,
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error.ProcessFdQuotaExceeded,
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error.SystemFdQuotaExceeded,
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error.FileLocksNotSupported,
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error.FileBusy,
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=> return error.ReadFailed,
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};
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errdefer coff_file.close(io);
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var section_handle: windows.HANDLE = undefined;
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const create_section_rc = windows.ntdll.NtCreateSection(
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§ion_handle,
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windows.STANDARD_RIGHTS_REQUIRED | windows.SECTION_QUERY | windows.SECTION_MAP_READ,
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null,
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null,
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windows.PAGE_READONLY,
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// The documentation states that if no AllocationAttribute is specified, then SEC_COMMIT is the default.
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// In practice, this isn't the case and specifying 0 will result in INVALID_PARAMETER_6.
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windows.SEC_COMMIT,
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coff_file.handle,
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);
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if (create_section_rc != .SUCCESS) return error.MissingDebugInfo;
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errdefer windows.CloseHandle(section_handle);
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var coff_len: usize = 0;
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var section_view_ptr: ?[*]const u8 = null;
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const map_section_rc = windows.ntdll.NtMapViewOfSection(
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section_handle,
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process_handle,
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@ptrCast(§ion_view_ptr),
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null,
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|
0,
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|
null,
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&coff_len,
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.ViewUnmap,
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0,
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windows.PAGE_READONLY,
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);
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if (map_section_rc != .SUCCESS) return error.MissingDebugInfo;
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errdefer assert(windows.ntdll.NtUnmapViewOfSection(process_handle, @constCast(section_view_ptr.?)) == .SUCCESS);
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const section_view = section_view_ptr.?[0..coff_len];
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coff_obj = coff.Coff.init(section_view, false) catch return error.InvalidDebugInfo;
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|
break :mapped .{
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.file = .adaptFromNewApi(coff_file),
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.section_handle = section_handle,
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.section_view = section_view,
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|
};
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};
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errdefer if (mapped_file) |*mf| mf.deinit();
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const coff_image_base = coff_obj.getImageBase();
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var opt_dwarf: ?Dwarf = dwarf: {
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|
if (coff_obj.getSectionByName(".debug_info") == null) break :dwarf null;
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|
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var sections: Dwarf.SectionArray = undefined;
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inline for (@typeInfo(Dwarf.Section.Id).@"enum".fields, 0..) |section, i| {
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sections[i] = if (coff_obj.getSectionByName("." ++ section.name)) |section_header| .{
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|
.data = try coff_obj.getSectionDataAlloc(section_header, arena),
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|
.owned = false,
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|
} else null;
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|
}
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|
break :dwarf .{ .sections = sections };
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|
};
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|
errdefer if (opt_dwarf) |*dwarf| dwarf.deinit(gpa);
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|
|
if (opt_dwarf) |*dwarf| {
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|
dwarf.open(gpa, native_endian) catch |err| switch (err) {
|
|
error.Overflow,
|
|
error.EndOfStream,
|
|
error.StreamTooLong,
|
|
error.ReadFailed,
|
|
=> return error.InvalidDebugInfo,
|
|
|
|
error.InvalidDebugInfo,
|
|
error.MissingDebugInfo,
|
|
error.OutOfMemory,
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|
=> |e| return e,
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};
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|
}
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|
var opt_pdb: ?Pdb = pdb: {
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|
const path = coff_obj.getPdbPath() catch {
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|
return error.InvalidDebugInfo;
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|
} orelse {
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|
break :pdb null;
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|
};
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|
const pdb_file_open_result = if (fs.path.isAbsolute(path)) res: {
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|
break :res std.fs.cwd().openFile(path, .{});
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|
} else res: {
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|
const self_dir = fs.selfExeDirPathAlloc(gpa) catch |err| switch (err) {
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|
error.OutOfMemory, error.Unexpected => |e| return e,
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|
else => return error.ReadFailed,
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|
};
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|
defer gpa.free(self_dir);
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|
const abs_path = try fs.path.join(gpa, &.{ self_dir, path });
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defer gpa.free(abs_path);
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break :res std.fs.cwd().openFile(abs_path, .{});
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|
};
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|
const pdb_file = pdb_file_open_result catch |err| switch (err) {
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|
error.FileNotFound, error.IsDir => break :pdb null,
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|
else => return error.ReadFailed,
|
|
};
|
|
errdefer pdb_file.close();
|
|
|
|
const pdb_reader = try arena.create(Io.File.Reader);
|
|
pdb_reader.* = pdb_file.reader(io, try arena.alloc(u8, 4096));
|
|
|
|
var pdb = Pdb.init(gpa, pdb_reader) catch |err| switch (err) {
|
|
error.OutOfMemory, error.ReadFailed, error.Unexpected => |e| return e,
|
|
else => return error.InvalidDebugInfo,
|
|
};
|
|
errdefer pdb.deinit();
|
|
pdb.parseInfoStream() catch |err| switch (err) {
|
|
error.UnknownPDBVersion => return error.UnsupportedDebugInfo,
|
|
error.EndOfStream => return error.InvalidDebugInfo,
|
|
|
|
error.InvalidDebugInfo,
|
|
error.MissingDebugInfo,
|
|
error.OutOfMemory,
|
|
error.ReadFailed,
|
|
=> |e| return e,
|
|
};
|
|
pdb.parseDbiStream() catch |err| switch (err) {
|
|
error.UnknownPDBVersion => return error.UnsupportedDebugInfo,
|
|
|
|
error.EndOfStream,
|
|
error.EOF,
|
|
error.StreamTooLong,
|
|
error.WriteFailed,
|
|
=> return error.InvalidDebugInfo,
|
|
|
|
error.InvalidDebugInfo,
|
|
error.OutOfMemory,
|
|
error.ReadFailed,
|
|
=> |e| return e,
|
|
};
|
|
|
|
if (!std.mem.eql(u8, &coff_obj.guid, &pdb.guid) or coff_obj.age != pdb.age)
|
|
return error.InvalidDebugInfo;
|
|
|
|
break :pdb pdb;
|
|
};
|
|
errdefer if (opt_pdb) |*pdb| {
|
|
pdb.file_reader.file.close(io);
|
|
pdb.deinit();
|
|
};
|
|
|
|
const coff_section_headers: []coff.SectionHeader = if (opt_pdb != null) csh: {
|
|
break :csh try coff_obj.getSectionHeadersAlloc(arena);
|
|
} else &.{};
|
|
|
|
return .{
|
|
.arena = arena_instance.state,
|
|
.io = io,
|
|
.coff_image_base = coff_image_base,
|
|
.mapped_file = mapped_file,
|
|
.dwarf = opt_dwarf,
|
|
.pdb = opt_pdb,
|
|
.coff_section_headers = coff_section_headers,
|
|
};
|
|
}
|
|
};
|
|
|
|
/// Assumes we already hold `si.mutex`.
|
|
fn findModule(si: *SelfInfo, gpa: Allocator, address: usize) error{ MissingDebugInfo, OutOfMemory, Unexpected }!*Module {
|
|
for (si.modules.items) |*mod| {
|
|
if (address >= mod.base_address and address < mod.base_address + mod.size) {
|
|
return mod;
|
|
}
|
|
}
|
|
|
|
// A new module might have been loaded; rebuild the list.
|
|
{
|
|
for (si.modules.items) |*mod| {
|
|
const di = &(mod.di orelse continue catch continue);
|
|
di.deinit(gpa);
|
|
}
|
|
si.modules.clearRetainingCapacity();
|
|
|
|
var module_name_arena = si.module_name_arena.promote(gpa);
|
|
defer si.module_name_arena = module_name_arena.state;
|
|
_ = module_name_arena.reset(.retain_capacity);
|
|
|
|
const handle = windows.kernel32.CreateToolhelp32Snapshot(windows.TH32CS_SNAPMODULE | windows.TH32CS_SNAPMODULE32, 0);
|
|
if (handle == windows.INVALID_HANDLE_VALUE) {
|
|
return windows.unexpectedError(windows.GetLastError());
|
|
}
|
|
defer windows.CloseHandle(handle);
|
|
var entry: windows.MODULEENTRY32 = undefined;
|
|
entry.dwSize = @sizeOf(windows.MODULEENTRY32);
|
|
var result = windows.kernel32.Module32First(handle, &entry);
|
|
while (result != 0) : (result = windows.kernel32.Module32Next(handle, &entry)) {
|
|
try si.modules.append(gpa, .{
|
|
.base_address = @intFromPtr(entry.modBaseAddr),
|
|
.size = entry.modBaseSize,
|
|
.name = try module_name_arena.allocator().dupe(
|
|
u8,
|
|
std.mem.sliceTo(&entry.szModule, 0),
|
|
),
|
|
.handle = entry.hModule,
|
|
.di = null,
|
|
});
|
|
}
|
|
}
|
|
|
|
for (si.modules.items) |*mod| {
|
|
if (address >= mod.base_address and address < mod.base_address + mod.size) {
|
|
return mod;
|
|
}
|
|
}
|
|
|
|
return error.MissingDebugInfo;
|
|
}
|
|
|
|
const std = @import("std");
|
|
const Io = std.Io;
|
|
const Allocator = std.mem.Allocator;
|
|
const Dwarf = std.debug.Dwarf;
|
|
const Pdb = std.debug.Pdb;
|
|
const Error = std.debug.SelfInfoError;
|
|
const assert = std.debug.assert;
|
|
const coff = std.coff;
|
|
const fs = std.fs;
|
|
const windows = std.os.windows;
|
|
|
|
const builtin = @import("builtin");
|
|
const native_endian = builtin.target.cpu.arch.endian();
|
|
|
|
const SelfInfo = @This();
|