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328 lines
14 KiB
Rust
328 lines
14 KiB
Rust
// Copyright 2015 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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//! Implementation of panics backed by libgcc/libunwind (in some form)
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//!
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//! For background on exception handling and stack unwinding please see
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//! "Exception Handling in LLVM" (llvm.org/docs/ExceptionHandling.html) and
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//! documents linked from it.
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//! These are also good reads:
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//! http://mentorembedded.github.io/cxx-abi/abi-eh.html
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//! http://monoinfinito.wordpress.com/series/exception-handling-in-c/
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//! http://www.airs.com/blog/index.php?s=exception+frames
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//!
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//! ## A brief summary
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//!
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//! Exception handling happens in two phases: a search phase and a cleanup
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//! phase.
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//!
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//! In both phases the unwinder walks stack frames from top to bottom using
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//! information from the stack frame unwind sections of the current process's
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//! modules ("module" here refers to an OS module, i.e., an executable or a
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//! dynamic library).
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//!
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//! For each stack frame, it invokes the associated "personality routine", whose
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//! address is also stored in the unwind info section.
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//!
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//! In the search phase, the job of a personality routine is to examine
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//! exception object being thrown, and to decide whether it should be caught at
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//! that stack frame. Once the handler frame has been identified, cleanup phase
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//! begins.
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//!
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//! In the cleanup phase, the unwinder invokes each personality routine again.
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//! This time it decides which (if any) cleanup code needs to be run for
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//! the current stack frame. If so, the control is transferred to a special
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//! branch in the function body, the "landing pad", which invokes destructors,
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//! frees memory, etc. At the end of the landing pad, control is transferred
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//! back to the unwinder and unwinding resumes.
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//!
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//! Once stack has been unwound down to the handler frame level, unwinding stops
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//! and the last personality routine transfers control to the catch block.
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//!
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//! ## `eh_personality` and `eh_unwind_resume`
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//!
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//! These language items are used by the compiler when generating unwind info.
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//! The first one is the personality routine described above. The second one
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//! allows compilation target to customize the process of resuming unwind at the
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//! end of the landing pads. `eh_unwind_resume` is used only if
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//! `custom_unwind_resume` flag in the target options is set.
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#![allow(private_no_mangle_fns)]
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use core::any::Any;
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use core::ptr;
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use alloc::boxed::Box;
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use unwind as uw;
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use libc::{c_int, uintptr_t};
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use dwarf::eh::{self, EHContext, EHAction};
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#[repr(C)]
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struct Exception {
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_uwe: uw::_Unwind_Exception,
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cause: Option<Box<dyn Any + Send>>,
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}
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pub unsafe fn panic(data: Box<dyn Any + Send>) -> u32 {
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let exception = Box::new(Exception {
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_uwe: uw::_Unwind_Exception {
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exception_class: rust_exception_class(),
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exception_cleanup,
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private: [0; uw::unwinder_private_data_size],
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},
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cause: Some(data),
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});
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let exception_param = Box::into_raw(exception) as *mut uw::_Unwind_Exception;
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return uw::_Unwind_RaiseException(exception_param) as u32;
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extern "C" fn exception_cleanup(_unwind_code: uw::_Unwind_Reason_Code,
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exception: *mut uw::_Unwind_Exception) {
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unsafe {
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let _: Box<Exception> = Box::from_raw(exception as *mut Exception);
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}
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}
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}
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pub fn payload() -> *mut u8 {
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ptr::null_mut()
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}
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pub unsafe fn cleanup(ptr: *mut u8) -> Box<dyn Any + Send> {
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let my_ep = ptr as *mut Exception;
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let cause = (*my_ep).cause.take();
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uw::_Unwind_DeleteException(ptr as *mut _);
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cause.unwrap()
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}
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// Rust's exception class identifier. This is used by personality routines to
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// determine whether the exception was thrown by their own runtime.
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fn rust_exception_class() -> uw::_Unwind_Exception_Class {
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// M O Z \0 R U S T -- vendor, language
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0x4d4f5a_00_52555354
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}
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// Register ids were lifted from LLVM's TargetLowering::getExceptionPointerRegister()
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// and TargetLowering::getExceptionSelectorRegister() for each architecture,
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// then mapped to DWARF register numbers via register definition tables
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// (typically <arch>RegisterInfo.td, search for "DwarfRegNum").
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// See also http://llvm.org/docs/WritingAnLLVMBackend.html#defining-a-register.
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#[cfg(target_arch = "x86")]
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const UNWIND_DATA_REG: (i32, i32) = (0, 2); // EAX, EDX
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#[cfg(target_arch = "x86_64")]
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const UNWIND_DATA_REG: (i32, i32) = (0, 1); // RAX, RDX
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#[cfg(any(target_arch = "arm", target_arch = "aarch64"))]
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const UNWIND_DATA_REG: (i32, i32) = (0, 1); // R0, R1 / X0, X1
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#[cfg(any(target_arch = "mips", target_arch = "mips64"))]
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const UNWIND_DATA_REG: (i32, i32) = (4, 5); // A0, A1
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#[cfg(any(target_arch = "powerpc", target_arch = "powerpc64"))]
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const UNWIND_DATA_REG: (i32, i32) = (3, 4); // R3, R4 / X3, X4
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#[cfg(target_arch = "s390x")]
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const UNWIND_DATA_REG: (i32, i32) = (6, 7); // R6, R7
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#[cfg(target_arch = "sparc64")]
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const UNWIND_DATA_REG: (i32, i32) = (24, 25); // I0, I1
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// The following code is based on GCC's C and C++ personality routines. For reference, see:
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// https://github.com/gcc-mirror/gcc/blob/master/libstdc++-v3/libsupc++/eh_personality.cc
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// https://github.com/gcc-mirror/gcc/blob/trunk/libgcc/unwind-c.c
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// The personality routine for most of our targets, except ARM, which has a slightly different ABI
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// (however, iOS goes here as it uses SjLj unwinding). Also, the 64-bit Windows implementation
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// lives in seh64_gnu.rs
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#[cfg(all(any(target_os = "ios", target_os = "netbsd", not(target_arch = "arm"))))]
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#[lang = "eh_personality"]
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#[no_mangle]
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#[allow(unused)]
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unsafe extern "C" fn rust_eh_personality(version: c_int,
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actions: uw::_Unwind_Action,
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exception_class: uw::_Unwind_Exception_Class,
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exception_object: *mut uw::_Unwind_Exception,
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context: *mut uw::_Unwind_Context)
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-> uw::_Unwind_Reason_Code {
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if version != 1 {
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return uw::_URC_FATAL_PHASE1_ERROR;
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}
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let eh_action = match find_eh_action(context) {
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Ok(action) => action,
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Err(_) => return uw::_URC_FATAL_PHASE1_ERROR,
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};
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if actions as i32 & uw::_UA_SEARCH_PHASE as i32 != 0 {
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match eh_action {
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EHAction::None |
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EHAction::Cleanup(_) => return uw::_URC_CONTINUE_UNWIND,
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EHAction::Catch(_) => return uw::_URC_HANDLER_FOUND,
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EHAction::Terminate => return uw::_URC_FATAL_PHASE1_ERROR,
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}
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} else {
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match eh_action {
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EHAction::None => return uw::_URC_CONTINUE_UNWIND,
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EHAction::Cleanup(lpad) |
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EHAction::Catch(lpad) => {
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uw::_Unwind_SetGR(context, UNWIND_DATA_REG.0, exception_object as uintptr_t);
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uw::_Unwind_SetGR(context, UNWIND_DATA_REG.1, 0);
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uw::_Unwind_SetIP(context, lpad);
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return uw::_URC_INSTALL_CONTEXT;
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}
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EHAction::Terminate => return uw::_URC_FATAL_PHASE2_ERROR,
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}
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}
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}
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// ARM EHABI personality routine.
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// http://infocenter.arm.com/help/topic/com.arm.doc.ihi0038b/IHI0038B_ehabi.pdf
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#[cfg(all(target_arch = "arm", not(target_os = "ios"), not(target_os = "netbsd")))]
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#[lang = "eh_personality"]
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#[no_mangle]
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unsafe extern "C" fn rust_eh_personality(state: uw::_Unwind_State,
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exception_object: *mut uw::_Unwind_Exception,
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context: *mut uw::_Unwind_Context)
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-> uw::_Unwind_Reason_Code {
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let state = state as c_int;
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let action = state & uw::_US_ACTION_MASK as c_int;
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let search_phase = if action == uw::_US_VIRTUAL_UNWIND_FRAME as c_int {
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// Backtraces on ARM will call the personality routine with
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// state == _US_VIRTUAL_UNWIND_FRAME | _US_FORCE_UNWIND. In those cases
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// we want to continue unwinding the stack, otherwise all our backtraces
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// would end at __rust_try
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if state & uw::_US_FORCE_UNWIND as c_int != 0 {
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return continue_unwind(exception_object, context);
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}
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true
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} else if action == uw::_US_UNWIND_FRAME_STARTING as c_int {
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false
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} else if action == uw::_US_UNWIND_FRAME_RESUME as c_int {
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return continue_unwind(exception_object, context);
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} else {
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return uw::_URC_FAILURE;
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};
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// The DWARF unwinder assumes that _Unwind_Context holds things like the function
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// and LSDA pointers, however ARM EHABI places them into the exception object.
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// To preserve signatures of functions like _Unwind_GetLanguageSpecificData(), which
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// take only the context pointer, GCC personality routines stash a pointer to exception_object
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// in the context, using location reserved for ARM's "scratch register" (r12).
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uw::_Unwind_SetGR(context,
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uw::UNWIND_POINTER_REG,
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exception_object as uw::_Unwind_Ptr);
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// ...A more principled approach would be to provide the full definition of ARM's
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// _Unwind_Context in our libunwind bindings and fetch the required data from there directly,
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// bypassing DWARF compatibility functions.
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let eh_action = match find_eh_action(context) {
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Ok(action) => action,
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Err(_) => return uw::_URC_FAILURE,
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};
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if search_phase {
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match eh_action {
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EHAction::None |
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EHAction::Cleanup(_) => return continue_unwind(exception_object, context),
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EHAction::Catch(_) => return uw::_URC_HANDLER_FOUND,
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EHAction::Terminate => return uw::_URC_FAILURE,
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}
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} else {
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match eh_action {
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EHAction::None => return continue_unwind(exception_object, context),
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EHAction::Cleanup(lpad) |
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EHAction::Catch(lpad) => {
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uw::_Unwind_SetGR(context, UNWIND_DATA_REG.0, exception_object as uintptr_t);
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uw::_Unwind_SetGR(context, UNWIND_DATA_REG.1, 0);
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uw::_Unwind_SetIP(context, lpad);
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return uw::_URC_INSTALL_CONTEXT;
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}
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EHAction::Terminate => return uw::_URC_FAILURE,
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}
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}
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// On ARM EHABI the personality routine is responsible for actually
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// unwinding a single stack frame before returning (ARM EHABI Sec. 6.1).
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unsafe fn continue_unwind(exception_object: *mut uw::_Unwind_Exception,
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context: *mut uw::_Unwind_Context)
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-> uw::_Unwind_Reason_Code {
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if __gnu_unwind_frame(exception_object, context) == uw::_URC_NO_REASON {
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uw::_URC_CONTINUE_UNWIND
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} else {
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uw::_URC_FAILURE
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}
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}
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// defined in libgcc
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extern "C" {
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fn __gnu_unwind_frame(exception_object: *mut uw::_Unwind_Exception,
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context: *mut uw::_Unwind_Context)
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-> uw::_Unwind_Reason_Code;
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}
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}
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unsafe fn find_eh_action(context: *mut uw::_Unwind_Context)
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-> Result<EHAction, ()>
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{
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let lsda = uw::_Unwind_GetLanguageSpecificData(context) as *const u8;
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let mut ip_before_instr: c_int = 0;
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let ip = uw::_Unwind_GetIPInfo(context, &mut ip_before_instr);
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let eh_context = EHContext {
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// The return address points 1 byte past the call instruction,
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// which could be in the next IP range in LSDA range table.
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ip: if ip_before_instr != 0 { ip } else { ip - 1 },
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func_start: uw::_Unwind_GetRegionStart(context),
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get_text_start: &|| uw::_Unwind_GetTextRelBase(context),
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get_data_start: &|| uw::_Unwind_GetDataRelBase(context),
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};
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eh::find_eh_action(lsda, &eh_context)
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}
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// See docs in the `unwind` module.
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#[cfg(all(target_os="windows", target_arch = "x86", target_env="gnu"))]
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#[lang = "eh_unwind_resume"]
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#[unwind(allowed)]
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unsafe extern "C" fn rust_eh_unwind_resume(panic_ctx: *mut u8) -> ! {
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uw::_Unwind_Resume(panic_ctx as *mut uw::_Unwind_Exception);
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}
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// Frame unwind info registration
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//
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// Each module's image contains a frame unwind info section (usually
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// ".eh_frame"). When a module is loaded/unloaded into the process, the
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// unwinder must be informed about the location of this section in memory. The
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// methods of achieving that vary by the platform. On some (e.g., Linux), the
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// unwinder can discover unwind info sections on its own (by dynamically
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// enumerating currently loaded modules via the dl_iterate_phdr() API and
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// finding their ".eh_frame" sections); Others, like Windows, require modules
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// to actively register their unwind info sections via unwinder API.
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//
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// This module defines two symbols which are referenced and called from
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// rsbegin.rs to register our information with the GCC runtime. The
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// implementation of stack unwinding is (for now) deferred to libgcc_eh, however
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// Rust crates use these Rust-specific entry points to avoid potential clashes
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// with any GCC runtime.
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#[cfg(all(target_os="windows", target_arch = "x86", target_env="gnu"))]
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pub mod eh_frame_registry {
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extern "C" {
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fn __register_frame_info(eh_frame_begin: *const u8, object: *mut u8);
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fn __deregister_frame_info(eh_frame_begin: *const u8, object: *mut u8);
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}
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#[no_mangle]
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pub unsafe extern "C" fn rust_eh_register_frames(eh_frame_begin: *const u8, object: *mut u8) {
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__register_frame_info(eh_frame_begin, object);
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}
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#[no_mangle]
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pub unsafe extern "C" fn rust_eh_unregister_frames(eh_frame_begin: *const u8,
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object: *mut u8) {
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__deregister_frame_info(eh_frame_begin, object);
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}
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}
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