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Rather than using the forward declaration for the LLVMSupport types, expect to be able to use the full declaration. Because these are references in the implementation, there is no reason to use a forward declaration as the full types need to be declared for use. The LLVM headers will provide the declaration and definition for the types. This is motivated by the desire to ensure that the LLVMSupport symbols are properly namespaced to avoid ODR violations in the runtime.
471 lines
14 KiB
C++
471 lines
14 KiB
C++
//===--- Errors.cpp - Error reporting utilities ---------------------------===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2017 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// Utilities for reporting errors to stderr, system console, and crash logs.
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//
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//===----------------------------------------------------------------------===//
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#if defined(__CYGWIN__) || defined(__HAIKU__) || defined(__wasi__)
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#define SWIFT_SUPPORTS_BACKTRACE_REPORTING 0
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#else
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#define SWIFT_SUPPORTS_BACKTRACE_REPORTING 1
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#endif
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#if defined(_WIN32)
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#include <mutex>
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#endif
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#include <inttypes.h>
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#include <stdint.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#if defined(_WIN32)
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#include <io.h>
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#else
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#include <unistd.h>
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#endif
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#include <stdarg.h>
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#include "ImageInspection.h"
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#include "swift/Runtime/Debug.h"
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#include "swift/Runtime/Mutex.h"
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#include "swift/Demangling/Demangle.h"
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#include "llvm/ADT/StringRef.h"
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#if defined(_MSC_VER)
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#include <DbgHelp.h>
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#else
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#include <cxxabi.h>
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#endif
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#if __has_include(<execinfo.h>)
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#include <execinfo.h>
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#endif
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#if defined(__APPLE__)
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#include <asl.h>
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#elif defined(__ANDROID__)
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#include <android/log.h>
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#endif
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#if defined(__ELF__)
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#include <unwind.h>
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#endif
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#include <inttypes.h>
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namespace FatalErrorFlags {
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enum: uint32_t {
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ReportBacktrace = 1 << 0
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};
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} // end namespace FatalErrorFlags
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using namespace swift;
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#if SWIFT_SUPPORTS_BACKTRACE_REPORTING
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static bool getSymbolNameAddr(llvm::StringRef libraryName,
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const SymbolInfo &syminfo,
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std::string &symbolName, uintptr_t &addrOut) {
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// If we failed to find a symbol and thus dlinfo->dli_sname is nullptr, we
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// need to use the hex address.
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bool hasUnavailableAddress = syminfo.symbolName == nullptr;
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if (hasUnavailableAddress) {
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return false;
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}
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// Ok, now we know that we have some sort of "real" name. Set the outAddr.
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addrOut = uintptr_t(syminfo.symbolAddress);
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// First lets try to demangle using cxxabi. If this fails, we will try to
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// demangle with swift. We are taking advantage of __cxa_demangle actually
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// providing failure status instead of just returning the original string like
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// swift demangle.
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#if defined(_WIN32)
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DWORD dwFlags = UNDNAME_COMPLETE;
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#if !defined(_WIN64)
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dwFlags |= UNDNAME_32_BIT_DECODE;
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#endif
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static std::mutex mutex;
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char szUndName[1024];
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DWORD dwResult;
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{
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std::lock_guard<std::mutex> lock(mutex);
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dwResult = UnDecorateSymbolName(syminfo.symbolName.get(), szUndName,
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sizeof(szUndName), dwFlags);
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}
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if (dwResult == TRUE) {
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symbolName += szUndName;
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return true;
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}
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#else
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int status;
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char *demangled =
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abi::__cxa_demangle(syminfo.symbolName.get(), 0, 0, &status);
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if (status == 0) {
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assert(demangled != nullptr &&
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"If __cxa_demangle succeeds, demangled should never be nullptr");
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symbolName += demangled;
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free(demangled);
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return true;
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}
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assert(demangled == nullptr &&
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"If __cxa_demangle fails, demangled should be a nullptr");
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#endif
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// Otherwise, try to demangle with swift. If swift fails to demangle, it will
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// just pass through the original output.
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symbolName = demangleSymbolAsString(
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syminfo.symbolName.get(), strlen(syminfo.symbolName.get()),
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Demangle::DemangleOptions::SimplifiedUIDemangleOptions());
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return true;
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}
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#endif
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void swift::dumpStackTraceEntry(unsigned index, void *framePC,
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bool shortOutput) {
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#if SWIFT_SUPPORTS_BACKTRACE_REPORTING
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SymbolInfo syminfo;
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// 0 is failure for lookupSymbol
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if (0 == lookupSymbol(framePC, &syminfo)) {
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return;
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}
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// If lookupSymbol succeeded then fileName is non-null. Thus, we find the
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// library name here. Avoid using StringRef::rsplit because its definition
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// is not provided in the header so that it requires linking with
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// libSupport.a.
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llvm::StringRef libraryName{syminfo.fileName};
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libraryName = libraryName.substr(libraryName.rfind('/')).substr(1);
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// Next we get the symbol name that we are going to use in our backtrace.
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std::string symbolName;
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// We initialize symbolAddr to framePC so that if we succeed in finding the
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// symbol, we get the offset in the function and if we fail to find the symbol
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// we just get HexAddr + 0.
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uintptr_t symbolAddr = uintptr_t(framePC);
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bool foundSymbol =
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getSymbolNameAddr(libraryName, syminfo, symbolName, symbolAddr);
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ptrdiff_t offset = 0;
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if (foundSymbol) {
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offset = ptrdiff_t(uintptr_t(framePC) - symbolAddr);
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} else {
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offset = ptrdiff_t(uintptr_t(framePC) - uintptr_t(syminfo.baseAddress));
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symbolAddr = uintptr_t(framePC);
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symbolName = "<unavailable>";
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}
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// We do not use %p here for our pointers since the format is implementation
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// defined. This makes it logically impossible to check the output. Forcing
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// hexadecimal solves this issue.
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// If the symbol is not available, we print out <unavailable> + offset
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// from the base address of where the image containing framePC is mapped.
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// This gives enough info to reconstruct identical debugging target after
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// this process terminates.
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if (shortOutput) {
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fprintf(stderr, "%s`%s + %td", libraryName.data(), symbolName.c_str(),
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offset);
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} else {
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constexpr const char *format = "%-4u %-34s 0x%0.16" PRIxPTR " %s + %td\n";
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fprintf(stderr, format, index, libraryName.data(), symbolAddr,
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symbolName.c_str(), offset);
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}
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#else
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if (shortOutput) {
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fprintf(stderr, "<unavailable>");
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} else {
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constexpr const char *format = "%-4u 0x%0.16tx\n";
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fprintf(stderr, format, index, reinterpret_cast<uintptr_t>(framePC));
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}
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#endif
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}
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#if defined(__ELF__)
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struct UnwindState {
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void **current;
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void **end;
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};
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static _Unwind_Reason_Code SwiftUnwindFrame(struct _Unwind_Context *context, void *arg) {
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struct UnwindState *state = static_cast<struct UnwindState *>(arg);
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if (state->current == state->end) {
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return _URC_END_OF_STACK;
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}
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uintptr_t pc;
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#if defined(__arm__)
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// ARM r15 is PC. UNW_REG_PC is *not* the same value, and using that will
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// result in abnormal behaviour.
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_Unwind_VRS_Get(context, _UVRSC_CORE, 15, _UVRSD_UINT32, &pc);
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// Clear the ISA bit during the reporting.
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pc &= ~(uintptr_t)0x1;
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#else
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pc = _Unwind_GetIP(context);
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#endif
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if (pc) {
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*state->current++ = reinterpret_cast<void *>(pc);
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}
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return _URC_NO_REASON;
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}
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#endif
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SWIFT_NOINLINE
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void swift::printCurrentBacktrace(unsigned framesToSkip) {
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#if SWIFT_SUPPORTS_BACKTRACE_REPORTING
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constexpr unsigned maxSupportedStackDepth = 128;
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void *addrs[maxSupportedStackDepth];
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#if defined(_WIN32)
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int symbolCount = CaptureStackBackTrace(0, maxSupportedStackDepth, addrs, NULL);
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#elif defined(__ELF__)
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struct UnwindState state = {&addrs[0], &addrs[maxSupportedStackDepth]};
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_Unwind_Backtrace(SwiftUnwindFrame, &state);
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int symbolCount = state.current - addrs;
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#else
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int symbolCount = backtrace(addrs, maxSupportedStackDepth);
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#endif
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for (int i = framesToSkip; i < symbolCount; ++i) {
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dumpStackTraceEntry(i - framesToSkip, addrs[i]);
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}
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#else
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fprintf(stderr, "<backtrace unavailable>\n");
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#endif
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}
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#ifdef SWIFT_HAVE_CRASHREPORTERCLIENT
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#include <malloc/malloc.h>
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// Instead of linking to CrashReporterClient.a (because it complicates the
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// build system), define the only symbol from that static archive ourselves.
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//
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// The layout of this struct is CrashReporter ABI, so there are no ABI concerns
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// here.
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extern "C" {
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SWIFT_LIBRARY_VISIBILITY
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struct crashreporter_annotations_t gCRAnnotations
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__attribute__((__section__("__DATA," CRASHREPORTER_ANNOTATIONS_SECTION))) = {
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CRASHREPORTER_ANNOTATIONS_VERSION, 0, 0, 0, 0, 0, 0, 0};
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}
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// Report a message to any forthcoming crash log.
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static void
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reportOnCrash(uint32_t flags, const char *message)
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{
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// We must use an "unsafe" mutex in this pathway since the normal "safe"
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// mutex calls fatalError when an error is detected and fatalError ends up
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// calling us. In other words we could get infinite recursion if the
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// mutex errors.
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static swift::StaticUnsafeMutex crashlogLock;
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crashlogLock.lock();
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char *oldMessage = (char *)CRGetCrashLogMessage();
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char *newMessage;
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if (oldMessage) {
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asprintf(&newMessage, "%s%s", oldMessage, message);
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if (malloc_size(oldMessage)) free(oldMessage);
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} else {
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newMessage = strdup(message);
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}
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CRSetCrashLogMessage(newMessage);
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crashlogLock.unlock();
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}
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#else
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static void
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reportOnCrash(uint32_t flags, const char *message)
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{
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// empty
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}
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#endif
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// Report a message to system console and stderr.
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static void
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reportNow(uint32_t flags, const char *message)
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{
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#if defined(_WIN32)
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#define STDERR_FILENO 2
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_write(STDERR_FILENO, message, strlen(message));
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#else
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write(STDERR_FILENO, message, strlen(message));
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#endif
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#if defined(__APPLE__)
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asl_log(nullptr, nullptr, ASL_LEVEL_ERR, "%s", message);
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#elif defined(__ANDROID__)
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__android_log_print(ANDROID_LOG_FATAL, "SwiftRuntime", "%s", message);
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#endif
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#if SWIFT_SUPPORTS_BACKTRACE_REPORTING
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if (flags & FatalErrorFlags::ReportBacktrace) {
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fputs("Current stack trace:\n", stderr);
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printCurrentBacktrace();
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}
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#endif
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}
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SWIFT_NOINLINE SWIFT_RUNTIME_EXPORT void
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_swift_runtime_on_report(uintptr_t flags, const char *message,
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RuntimeErrorDetails *details) {
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// Do nothing. This function is meant to be used by the debugger.
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// The following is necessary to avoid calls from being optimized out.
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asm volatile("" // Do nothing.
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: // Output list, empty.
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: "r" (flags), "r" (message), "r" (details) // Input list.
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: // Clobber list, empty.
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);
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}
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void swift::_swift_reportToDebugger(uintptr_t flags, const char *message,
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RuntimeErrorDetails *details) {
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_swift_runtime_on_report(flags, message, details);
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}
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bool swift::_swift_reportFatalErrorsToDebugger = true;
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bool swift::_swift_shouldReportFatalErrorsToDebugger() {
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return _swift_reportFatalErrorsToDebugger;
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}
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/// Report a fatal error to system console, stderr, and crash logs.
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/// Does not crash by itself.
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void swift::swift_reportError(uint32_t flags,
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const char *message) {
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#if defined(__APPLE__) && NDEBUG
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flags &= ~FatalErrorFlags::ReportBacktrace;
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#endif
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reportNow(flags, message);
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reportOnCrash(flags, message);
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}
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static int swift_vasprintf(char **strp, const char *fmt, va_list ap) {
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#if defined(_WIN32)
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int len = _vscprintf(fmt, ap);
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if (len < 0)
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return -1;
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char *buffer = reinterpret_cast<char *>(malloc(len + 1));
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if (!buffer)
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return -1;
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int result = vsprintf(buffer, fmt, ap);
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if (result < 0) {
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free(buffer);
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return -1;
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}
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*strp = buffer;
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return result;
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#else
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return vasprintf(strp, fmt, ap);
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#endif
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}
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// Report a fatal error to system console, stderr, and crash logs, then abort.
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SWIFT_NORETURN void swift::fatalError(uint32_t flags, const char *format, ...) {
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va_list args;
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va_start(args, format);
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char *log;
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#pragma GCC diagnostic push
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#pragma GCC diagnostic ignored "-Wuninitialized"
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swift_vasprintf(&log, format, args);
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#pragma GCC diagnostic pop
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swift_reportError(flags, log);
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abort();
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}
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// Report a warning to system console and stderr.
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void
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swift::warningv(uint32_t flags, const char *format, va_list args)
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{
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char *log;
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#pragma GCC diagnostic push
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#pragma GCC diagnostic ignored "-Wuninitialized"
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swift_vasprintf(&log, format, args);
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#pragma GCC diagnostic pop
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reportNow(flags, log);
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free(log);
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}
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// Report a warning to system console and stderr.
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void
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swift::warning(uint32_t flags, const char *format, ...)
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{
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va_list args;
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va_start(args, format);
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warningv(flags, format, args);
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}
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// Crash when a deleted method is called by accident.
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SWIFT_RUNTIME_EXPORT SWIFT_NORETURN void swift_deletedMethodError() {
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swift::fatalError(/* flags = */ 0,
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"Fatal error: Call of deleted method\n");
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}
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// Crash due to a retain count overflow.
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// FIXME: can't pass the object's address from InlineRefCounts without hacks
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void swift::swift_abortRetainOverflow() {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: Object was retained too many times");
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}
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// Crash due to an unowned retain count overflow.
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// FIXME: can't pass the object's address from InlineRefCounts without hacks
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void swift::swift_abortUnownedRetainOverflow() {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: Object's unowned reference was retained too many times");
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}
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// Crash due to a weak retain count overflow.
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// FIXME: can't pass the object's address from InlineRefCounts without hacks
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void swift::swift_abortWeakRetainOverflow() {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: Object's weak reference was retained too many times");
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}
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// Crash due to retain of a dead unowned reference.
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// FIXME: can't pass the object's address from InlineRefCounts without hacks
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void swift::swift_abortRetainUnowned(const void *object) {
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if (object) {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: Attempted to read an unowned reference but "
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"object %p was already deallocated", object);
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} else {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: Attempted to read an unowned reference but "
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"the object was already deallocated");
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}
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}
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/// Halt due to enabling an already enabled dynamic replacement().
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void swift::swift_abortDynamicReplacementEnabling() {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: trying to enable a dynamic replacement "
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"that is already enabled");
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}
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/// Halt due to disabling an already disabled dynamic replacement().
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void swift::swift_abortDynamicReplacementDisabling() {
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swift::fatalError(FatalErrorFlags::ReportBacktrace,
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"Fatal error: trying to disable a dynamic replacement "
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"that is already disabled");
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}
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