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This patch converts TagTypeKind into scoped enum. Among other benefits, this allows us to forward-declare it where necessary.
484 lines
18 KiB
C++
484 lines
18 KiB
C++
//===-- PlatformLinux.cpp -------------------------------------------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#include "PlatformLinux.h"
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#include "lldb/Host/Config.h"
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#include <cstdio>
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#if LLDB_ENABLE_POSIX
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#include <sys/utsname.h>
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#endif
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#include "Utility/ARM64_DWARF_Registers.h"
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#include "lldb/Core/Debugger.h"
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#include "lldb/Core/PluginManager.h"
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#include "lldb/Host/HostInfo.h"
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#include "lldb/Symbol/UnwindPlan.h"
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#include "lldb/Target/Process.h"
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#include "lldb/Target/Target.h"
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#include "lldb/Utility/FileSpec.h"
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#include "lldb/Utility/LLDBLog.h"
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#include "lldb/Utility/Log.h"
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#include "lldb/Utility/State.h"
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#include "lldb/Utility/Status.h"
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#include "lldb/Utility/StreamString.h"
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// Define these constants from Linux mman.h for use when targeting remote linux
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// systems even when host has different values.
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#define MAP_PRIVATE 2
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#define MAP_ANON 0x20
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using namespace lldb;
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using namespace lldb_private;
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using namespace lldb_private::platform_linux;
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LLDB_PLUGIN_DEFINE(PlatformLinux)
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static uint32_t g_initialize_count = 0;
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PlatformSP PlatformLinux::CreateInstance(bool force, const ArchSpec *arch) {
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Log *log = GetLog(LLDBLog::Platform);
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LLDB_LOG(log, "force = {0}, arch=({1}, {2})", force,
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arch ? arch->GetArchitectureName() : "<null>",
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arch ? arch->GetTriple().getTriple() : "<null>");
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bool create = force;
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if (!create && arch && arch->IsValid()) {
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const llvm::Triple &triple = arch->GetTriple();
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switch (triple.getOS()) {
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case llvm::Triple::Linux:
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create = true;
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break;
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#if defined(__linux__)
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// Only accept "unknown" for the OS if the host is linux and it "unknown"
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// wasn't specified (it was just returned because it was NOT specified)
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case llvm::Triple::OSType::UnknownOS:
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create = !arch->TripleOSWasSpecified();
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break;
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#endif
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default:
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break;
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}
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}
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LLDB_LOG(log, "create = {0}", create);
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if (create) {
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return PlatformSP(new PlatformLinux(false));
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}
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return PlatformSP();
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}
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llvm::StringRef PlatformLinux::GetPluginDescriptionStatic(bool is_host) {
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if (is_host)
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return "Local Linux user platform plug-in.";
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return "Remote Linux user platform plug-in.";
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}
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void PlatformLinux::Initialize() {
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PlatformPOSIX::Initialize();
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if (g_initialize_count++ == 0) {
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#if defined(__linux__) && !defined(__ANDROID__)
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PlatformSP default_platform_sp(new PlatformLinux(true));
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default_platform_sp->SetSystemArchitecture(HostInfo::GetArchitecture());
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Platform::SetHostPlatform(default_platform_sp);
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#endif
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PluginManager::RegisterPlugin(
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PlatformLinux::GetPluginNameStatic(false),
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PlatformLinux::GetPluginDescriptionStatic(false),
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PlatformLinux::CreateInstance, nullptr);
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}
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}
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void PlatformLinux::Terminate() {
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if (g_initialize_count > 0) {
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if (--g_initialize_count == 0) {
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PluginManager::UnregisterPlugin(PlatformLinux::CreateInstance);
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}
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}
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PlatformPOSIX::Terminate();
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}
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/// Default Constructor
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PlatformLinux::PlatformLinux(bool is_host)
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: PlatformPOSIX(is_host) // This is the local host platform
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{
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if (is_host) {
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ArchSpec hostArch = HostInfo::GetArchitecture(HostInfo::eArchKindDefault);
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m_supported_architectures.push_back(hostArch);
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if (hostArch.GetTriple().isArch64Bit()) {
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m_supported_architectures.push_back(
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HostInfo::GetArchitecture(HostInfo::eArchKind32));
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}
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} else {
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m_supported_architectures = CreateArchList(
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{llvm::Triple::x86_64, llvm::Triple::x86, llvm::Triple::arm,
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llvm::Triple::aarch64, llvm::Triple::mips64, llvm::Triple::mips64,
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llvm::Triple::hexagon, llvm::Triple::mips, llvm::Triple::mips64el,
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llvm::Triple::mipsel, llvm::Triple::msp430, llvm::Triple::systemz},
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llvm::Triple::Linux);
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}
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}
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std::vector<ArchSpec>
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PlatformLinux::GetSupportedArchitectures(const ArchSpec &process_host_arch) {
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if (m_remote_platform_sp)
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return m_remote_platform_sp->GetSupportedArchitectures(process_host_arch);
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return m_supported_architectures;
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}
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void PlatformLinux::GetStatus(Stream &strm) {
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Platform::GetStatus(strm);
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#if LLDB_ENABLE_POSIX
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// Display local kernel information only when we are running in host mode.
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// Otherwise, we would end up printing non-Linux information (when running on
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// Mac OS for example).
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if (IsHost()) {
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struct utsname un;
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if (uname(&un))
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return;
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strm.Printf(" Kernel: %s\n", un.sysname);
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strm.Printf(" Release: %s\n", un.release);
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strm.Printf(" Version: %s\n", un.version);
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}
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#endif
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}
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uint32_t
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PlatformLinux::GetResumeCountForLaunchInfo(ProcessLaunchInfo &launch_info) {
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uint32_t resume_count = 0;
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// Always resume past the initial stop when we use eLaunchFlagDebug
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if (launch_info.GetFlags().Test(eLaunchFlagDebug)) {
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// Resume past the stop for the final exec into the true inferior.
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++resume_count;
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}
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// If we're not launching a shell, we're done.
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const FileSpec &shell = launch_info.GetShell();
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if (!shell)
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return resume_count;
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std::string shell_string = shell.GetPath();
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// We're in a shell, so for sure we have to resume past the shell exec.
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++resume_count;
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// Figure out what shell we're planning on using.
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const char *shell_name = strrchr(shell_string.c_str(), '/');
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if (shell_name == nullptr)
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shell_name = shell_string.c_str();
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else
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shell_name++;
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if (strcmp(shell_name, "csh") == 0 || strcmp(shell_name, "tcsh") == 0 ||
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strcmp(shell_name, "zsh") == 0 || strcmp(shell_name, "sh") == 0) {
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// These shells seem to re-exec themselves. Add another resume.
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++resume_count;
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}
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return resume_count;
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}
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bool PlatformLinux::CanDebugProcess() {
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if (IsHost()) {
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return true;
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} else {
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// If we're connected, we can debug.
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return IsConnected();
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}
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}
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void PlatformLinux::CalculateTrapHandlerSymbolNames() {
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m_trap_handlers.push_back(ConstString("_sigtramp"));
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m_trap_handlers.push_back(ConstString("__kernel_rt_sigreturn"));
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m_trap_handlers.push_back(ConstString("__restore_rt"));
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}
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static lldb::UnwindPlanSP GetAArch64TrapHandlerUnwindPlan(ConstString name) {
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UnwindPlanSP unwind_plan_sp;
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if (name != "__kernel_rt_sigreturn")
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return unwind_plan_sp;
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UnwindPlan::RowSP row = std::make_shared<UnwindPlan::Row>();
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row->SetOffset(0);
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// In the signal trampoline frame, sp points to an rt_sigframe[1], which is:
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// - 128-byte siginfo struct
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// - ucontext struct:
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// - 8-byte long (uc_flags)
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// - 8-byte pointer (uc_link)
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// - 24-byte stack_t
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// - 128-byte signal set
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// - 8 bytes of padding because sigcontext has 16-byte alignment
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// - sigcontext/mcontext_t
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// [1]
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// https://github.com/torvalds/linux/blob/master/arch/arm64/kernel/signal.c
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int32_t offset = 128 + 8 + 8 + 24 + 128 + 8;
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// Then sigcontext[2] is:
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// - 8 byte fault address
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// - 31 8 byte registers
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// - 8 byte sp
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// - 8 byte pc
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// [2]
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// https://github.com/torvalds/linux/blob/master/arch/arm64/include/uapi/asm/sigcontext.h
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// Skip fault address
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offset += 8;
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row->GetCFAValue().SetIsRegisterPlusOffset(arm64_dwarf::sp, offset);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x0, 0 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x1, 1 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x2, 2 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x3, 3 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x4, 4 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x5, 5 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x6, 6 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x7, 7 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x8, 8 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x9, 9 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x10, 10 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x11, 11 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x12, 12 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x13, 13 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x14, 14 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x15, 15 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x16, 16 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x17, 17 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x18, 18 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x19, 19 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x20, 20 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x21, 21 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x22, 22 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x23, 23 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x24, 24 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x25, 25 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x26, 26 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x27, 27 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x28, 28 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::fp, 29 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::x30, 30 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::sp, 31 * 8, false);
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row->SetRegisterLocationToAtCFAPlusOffset(arm64_dwarf::pc, 32 * 8, false);
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// The sigcontext may also contain floating point and SVE registers.
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// However this would require a dynamic unwind plan so they are not included
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// here.
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unwind_plan_sp = std::make_shared<UnwindPlan>(eRegisterKindDWARF);
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unwind_plan_sp->AppendRow(row);
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unwind_plan_sp->SetSourceName("AArch64 Linux sigcontext");
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unwind_plan_sp->SetSourcedFromCompiler(eLazyBoolYes);
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// Because sp is the same throughout the function
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unwind_plan_sp->SetUnwindPlanValidAtAllInstructions(eLazyBoolYes);
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unwind_plan_sp->SetUnwindPlanForSignalTrap(eLazyBoolYes);
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return unwind_plan_sp;
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}
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lldb::UnwindPlanSP
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PlatformLinux::GetTrapHandlerUnwindPlan(const llvm::Triple &triple,
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ConstString name) {
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if (triple.isAArch64())
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return GetAArch64TrapHandlerUnwindPlan(name);
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return {};
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}
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MmapArgList PlatformLinux::GetMmapArgumentList(const ArchSpec &arch,
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addr_t addr, addr_t length,
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unsigned prot, unsigned flags,
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addr_t fd, addr_t offset) {
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uint64_t flags_platform = 0;
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uint64_t map_anon = arch.IsMIPS() ? 0x800 : MAP_ANON;
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if (flags & eMmapFlagsPrivate)
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flags_platform |= MAP_PRIVATE;
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if (flags & eMmapFlagsAnon)
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flags_platform |= map_anon;
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MmapArgList args({addr, length, prot, flags_platform, fd, offset});
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return args;
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}
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CompilerType PlatformLinux::GetSiginfoType(const llvm::Triple &triple) {
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{
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std::lock_guard<std::mutex> guard(m_mutex);
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if (!m_type_system)
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m_type_system = std::make_shared<TypeSystemClang>("siginfo", triple);
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}
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TypeSystemClang *ast = m_type_system.get();
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bool si_errno_then_code = true;
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switch (triple.getArch()) {
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case llvm::Triple::mips:
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case llvm::Triple::mipsel:
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case llvm::Triple::mips64:
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case llvm::Triple::mips64el:
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// mips has si_code and si_errno swapped
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si_errno_then_code = false;
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break;
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default:
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break;
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}
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// generic types
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CompilerType int_type = ast->GetBasicType(eBasicTypeInt);
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CompilerType uint_type = ast->GetBasicType(eBasicTypeUnsignedInt);
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CompilerType short_type = ast->GetBasicType(eBasicTypeShort);
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CompilerType long_type = ast->GetBasicType(eBasicTypeLong);
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CompilerType voidp_type = ast->GetBasicType(eBasicTypeVoid).GetPointerType();
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// platform-specific types
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CompilerType &pid_type = int_type;
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CompilerType &uid_type = uint_type;
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CompilerType &clock_type = long_type;
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CompilerType &band_type = long_type;
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CompilerType sigval_type = ast->CreateRecordType(
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nullptr, OptionalClangModuleID(), lldb::eAccessPublic, "__lldb_sigval_t",
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llvm::to_underlying(clang::TagTypeKind::Union), lldb::eLanguageTypeC);
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ast->StartTagDeclarationDefinition(sigval_type);
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ast->AddFieldToRecordType(sigval_type, "sival_int", int_type,
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(sigval_type, "sival_ptr", voidp_type,
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lldb::eAccessPublic, 0);
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ast->CompleteTagDeclarationDefinition(sigval_type);
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CompilerType sigfault_bounds_type = ast->CreateRecordType(
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nullptr, OptionalClangModuleID(), lldb::eAccessPublic, "",
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llvm::to_underlying(clang::TagTypeKind::Union), lldb::eLanguageTypeC);
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ast->StartTagDeclarationDefinition(sigfault_bounds_type);
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ast->AddFieldToRecordType(
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sigfault_bounds_type, "_addr_bnd",
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ast->CreateStructForIdentifier(llvm::StringRef(),
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{
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{"_lower", voidp_type},
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{"_upper", voidp_type},
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}),
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(sigfault_bounds_type, "_pkey", uint_type,
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lldb::eAccessPublic, 0);
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ast->CompleteTagDeclarationDefinition(sigfault_bounds_type);
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// siginfo_t
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CompilerType siginfo_type = ast->CreateRecordType(
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nullptr, OptionalClangModuleID(), lldb::eAccessPublic, "__lldb_siginfo_t",
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llvm::to_underlying(clang::TagTypeKind::Struct), lldb::eLanguageTypeC);
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ast->StartTagDeclarationDefinition(siginfo_type);
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ast->AddFieldToRecordType(siginfo_type, "si_signo", int_type,
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lldb::eAccessPublic, 0);
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if (si_errno_then_code) {
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ast->AddFieldToRecordType(siginfo_type, "si_errno", int_type,
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(siginfo_type, "si_code", int_type,
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lldb::eAccessPublic, 0);
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} else {
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ast->AddFieldToRecordType(siginfo_type, "si_code", int_type,
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(siginfo_type, "si_errno", int_type,
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lldb::eAccessPublic, 0);
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}
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// the structure is padded on 64-bit arches to fix alignment
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if (triple.isArch64Bit())
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ast->AddFieldToRecordType(siginfo_type, "__pad0", int_type,
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lldb::eAccessPublic, 0);
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// union used to hold the signal data
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CompilerType union_type = ast->CreateRecordType(
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nullptr, OptionalClangModuleID(), lldb::eAccessPublic, "",
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llvm::to_underlying(clang::TagTypeKind::Union), lldb::eLanguageTypeC);
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ast->StartTagDeclarationDefinition(union_type);
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ast->AddFieldToRecordType(
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union_type, "_kill",
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ast->CreateStructForIdentifier(llvm::StringRef(),
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{
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{"si_pid", pid_type},
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{"si_uid", uid_type},
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}),
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(
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union_type, "_timer",
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ast->CreateStructForIdentifier(llvm::StringRef(),
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{
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{"si_tid", int_type},
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{"si_overrun", int_type},
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{"si_sigval", sigval_type},
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}),
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(
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union_type, "_rt",
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ast->CreateStructForIdentifier(llvm::StringRef(),
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{
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{"si_pid", pid_type},
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{"si_uid", uid_type},
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{"si_sigval", sigval_type},
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}),
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lldb::eAccessPublic, 0);
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ast->AddFieldToRecordType(
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union_type, "_sigchld",
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ast->CreateStructForIdentifier(llvm::StringRef(),
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{
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{"si_pid", pid_type},
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{"si_uid", uid_type},
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{"si_status", int_type},
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|
{"si_utime", clock_type},
|
|
{"si_stime", clock_type},
|
|
}),
|
|
lldb::eAccessPublic, 0);
|
|
|
|
ast->AddFieldToRecordType(
|
|
union_type, "_sigfault",
|
|
ast->CreateStructForIdentifier(llvm::StringRef(),
|
|
{
|
|
{"si_addr", voidp_type},
|
|
{"si_addr_lsb", short_type},
|
|
{"_bounds", sigfault_bounds_type},
|
|
}),
|
|
lldb::eAccessPublic, 0);
|
|
|
|
ast->AddFieldToRecordType(
|
|
union_type, "_sigpoll",
|
|
ast->CreateStructForIdentifier(llvm::StringRef(),
|
|
{
|
|
{"si_band", band_type},
|
|
{"si_fd", int_type},
|
|
}),
|
|
lldb::eAccessPublic, 0);
|
|
|
|
// NB: SIGSYS is not present on ia64 but we don't seem to support that
|
|
ast->AddFieldToRecordType(
|
|
union_type, "_sigsys",
|
|
ast->CreateStructForIdentifier(llvm::StringRef(),
|
|
{
|
|
{"_call_addr", voidp_type},
|
|
{"_syscall", int_type},
|
|
{"_arch", uint_type},
|
|
}),
|
|
lldb::eAccessPublic, 0);
|
|
|
|
ast->CompleteTagDeclarationDefinition(union_type);
|
|
ast->AddFieldToRecordType(siginfo_type, "_sifields", union_type,
|
|
lldb::eAccessPublic, 0);
|
|
|
|
ast->CompleteTagDeclarationDefinition(siginfo_type);
|
|
return siginfo_type;
|
|
}
|