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0372f5b7df
Summary: The command prints out list of functions that were not entered. To do this, addresses are first converted to function locations. Set operations are used for function locations. Differential Revision: http://reviews.llvm.org/D14889 review llvm-svn: 254742
481 lines
15 KiB
C++
481 lines
15 KiB
C++
//===-- sancov.cc --------------------------------------------===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file is a command-line tool for reading and analyzing sanitizer
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// coverage.
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//===----------------------------------------------------------------------===//
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/DebugInfo/Symbolize/Symbolize.h"
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#include "llvm/MC/MCAsmInfo.h"
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#include "llvm/MC/MCContext.h"
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#include "llvm/MC/MCDisassembler.h"
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#include "llvm/MC/MCInst.h"
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#include "llvm/MC/MCInstPrinter.h"
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#include "llvm/MC/MCInstrAnalysis.h"
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#include "llvm/MC/MCInstrInfo.h"
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#include "llvm/MC/MCObjectFileInfo.h"
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#include "llvm/MC/MCRegisterInfo.h"
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#include "llvm/MC/MCSubtargetInfo.h"
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#include "llvm/Object/Binary.h"
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#include "llvm/Object/ObjectFile.h"
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#include "llvm/Support/CommandLine.h"
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#include "llvm/Support/Errc.h"
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#include "llvm/Support/ErrorOr.h"
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#include "llvm/Support/FileSystem.h"
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#include "llvm/Support/LineIterator.h"
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#include "llvm/Support/ManagedStatic.h"
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#include "llvm/Support/MemoryBuffer.h"
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#include "llvm/Support/Path.h"
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#include "llvm/Support/PrettyStackTrace.h"
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#include "llvm/Support/Signals.h"
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#include "llvm/Support/TargetRegistry.h"
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#include "llvm/Support/TargetSelect.h"
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#include "llvm/Support/ToolOutputFile.h"
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#include "llvm/Support/raw_ostream.h"
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#include <set>
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#include <stdio.h>
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#include <string>
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#include <vector>
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using namespace llvm;
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namespace {
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// --------- COMMAND LINE FLAGS ---------
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enum ActionType {
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PrintAction,
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CoveredFunctionsAction,
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NotCoveredFunctionsAction
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};
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cl::opt<ActionType> Action(
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cl::desc("Action (required)"), cl::Required,
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cl::values(clEnumValN(PrintAction, "print", "Print coverage addresses"),
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clEnumValN(CoveredFunctionsAction, "covered-functions",
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"Print all covered funcions."),
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clEnumValN(NotCoveredFunctionsAction, "not-covered-functions",
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"Print all not covered funcions."),
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clEnumValEnd));
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static cl::list<std::string> ClInputFiles(cl::Positional, cl::OneOrMore,
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cl::desc("<filenames...>"));
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static cl::opt<std::string>
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ClBinaryName("obj", cl::Required,
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cl::desc("Path to object file to be symbolized"));
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static cl::opt<bool>
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ClDemangle("demangle", cl::init(true),
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cl::desc("Print demangled function name."));
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static cl::opt<std::string> ClStripPathPrefix(
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"strip_path_prefix", cl::init(""),
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cl::desc("Strip this prefix from file paths in reports."));
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// --------- FORMAT SPECIFICATION ---------
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struct FileHeader {
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uint32_t Bitness;
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uint32_t Magic;
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};
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static const uint32_t BinCoverageMagic = 0xC0BFFFFF;
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static const uint32_t Bitness32 = 0xFFFFFF32;
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static const uint32_t Bitness64 = 0xFFFFFF64;
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// ---------
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static void FailIfError(std::error_code Error) {
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if (!Error)
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return;
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errs() << "Error: " << Error.message() << "(" << Error.value() << ")\n";
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exit(1);
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}
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template <typename T> static void FailIfError(const ErrorOr<T> &E) {
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FailIfError(E.getError());
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}
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static void FailIfNotEmpty(const std::string &E) {
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if (E.empty())
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return;
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errs() << "Error: " << E << "\n";
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exit(1);
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}
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template <typename T>
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static void FailIfEmpty(const std::unique_ptr<T> &Ptr,
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const std::string &Message) {
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if (Ptr.get())
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return;
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errs() << "Error: " << Message << "\n";
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exit(1);
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}
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template <typename T>
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static void readInts(const char *Start, const char *End,
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std::set<uint64_t> *Ints) {
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const T *S = reinterpret_cast<const T *>(Start);
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const T *E = reinterpret_cast<const T *>(End);
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std::copy(S, E, std::inserter(*Ints, Ints->end()));
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}
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struct FileLoc {
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bool operator<(const FileLoc &RHS) const {
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return std::tie(FileName, Line) < std::tie(RHS.FileName, RHS.Line);
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}
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std::string FileName;
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uint32_t Line;
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};
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struct FunctionLoc {
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bool operator<(const FunctionLoc &RHS) const {
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return std::tie(Loc, FunctionName) < std::tie(RHS.Loc, RHS.FunctionName);
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}
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FileLoc Loc;
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std::string FunctionName;
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};
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std::string stripPathPrefix(std::string Path) {
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if (ClStripPathPrefix.empty())
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return Path;
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size_t Pos = Path.find(ClStripPathPrefix);
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if (Pos == std::string::npos)
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return Path;
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return Path.substr(Pos + ClStripPathPrefix.size());
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}
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// Compute [FileLoc -> FunctionName] map for given addresses.
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static std::map<FileLoc, std::string>
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computeFunctionsMap(const std::set<uint64_t> &Addrs) {
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std::map<FileLoc, std::string> Fns;
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symbolize::LLVMSymbolizer::Options SymbolizerOptions;
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SymbolizerOptions.Demangle = ClDemangle;
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SymbolizerOptions.UseSymbolTable = true;
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symbolize::LLVMSymbolizer Symbolizer(SymbolizerOptions);
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// Fill in Fns map.
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for (auto Addr : Addrs) {
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auto InliningInfo = Symbolizer.symbolizeInlinedCode(ClBinaryName, Addr);
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FailIfError(InliningInfo);
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for (uint32_t i = 0; i < InliningInfo->getNumberOfFrames(); ++i) {
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auto FrameInfo = InliningInfo->getFrame(i);
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SmallString<256> FileName(FrameInfo.FileName);
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sys::path::remove_dots(FileName, /* remove_dot_dot */ true);
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FileLoc Loc = {FileName.str(), FrameInfo.Line};
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Fns[Loc] = FrameInfo.FunctionName;
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}
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}
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return Fns;
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}
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// Compute functions for given addresses. It keeps only the first
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// occurence of a function within a file.
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std::set<FunctionLoc> computeFunctionLocs(const std::set<uint64_t> &Addrs) {
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std::map<FileLoc, std::string> Fns = computeFunctionsMap(Addrs);
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std::set<FunctionLoc> result;
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std::string LastFileName;
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std::set<std::string> ProcessedFunctions;
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for (const auto &P : Fns) {
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std::string FileName = P.first.FileName;
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std::string FunctionName = P.second;
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if (LastFileName != FileName)
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ProcessedFunctions.clear();
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LastFileName = FileName;
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if (!ProcessedFunctions.insert(FunctionName).second)
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continue;
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result.insert(FunctionLoc{P.first, P.second});
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}
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return result;
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}
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// Locate __sanitizer_cov function address.
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static uint64_t findSanitizerCovFunction(const object::ObjectFile &O) {
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for (const object::SymbolRef &Symbol : O.symbols()) {
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ErrorOr<uint64_t> AddressOrErr = Symbol.getAddress();
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FailIfError(AddressOrErr);
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ErrorOr<StringRef> Name = Symbol.getName();
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FailIfError(Name);
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if (Name.get() == "__sanitizer_cov") {
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return AddressOrErr.get();
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}
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}
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FailIfNotEmpty("__sanitizer_cov not found");
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return 0; // not reachable.
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}
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// Locate addresses of all coverage points in a file. Coverage point
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// is defined as the 'address of instruction following __sanitizer_cov
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// call - 1'.
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static void getObjectCoveragePoints(const object::ObjectFile &O,
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std::set<uint64_t> *Addrs) {
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Triple TheTriple("unknown-unknown-unknown");
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TheTriple.setArch(Triple::ArchType(O.getArch()));
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auto TripleName = TheTriple.getTriple();
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std::string Error;
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const Target *TheTarget = TargetRegistry::lookupTarget(TripleName, Error);
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FailIfNotEmpty(Error);
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std::unique_ptr<const MCSubtargetInfo> STI(
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TheTarget->createMCSubtargetInfo(TripleName, "", ""));
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FailIfEmpty(STI, "no subtarget info for target " + TripleName);
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std::unique_ptr<const MCRegisterInfo> MRI(
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TheTarget->createMCRegInfo(TripleName));
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FailIfEmpty(MRI, "no register info for target " + TripleName);
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std::unique_ptr<const MCAsmInfo> AsmInfo(
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TheTarget->createMCAsmInfo(*MRI, TripleName));
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FailIfEmpty(AsmInfo, "no asm info for target " + TripleName);
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std::unique_ptr<const MCObjectFileInfo> MOFI(new MCObjectFileInfo);
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MCContext Ctx(AsmInfo.get(), MRI.get(), MOFI.get());
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std::unique_ptr<MCDisassembler> DisAsm(
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TheTarget->createMCDisassembler(*STI, Ctx));
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FailIfEmpty(DisAsm, "no disassembler info for target " + TripleName);
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std::unique_ptr<const MCInstrInfo> MII(TheTarget->createMCInstrInfo());
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FailIfEmpty(MII, "no instruction info for target " + TripleName);
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std::unique_ptr<const MCInstrAnalysis> MIA(
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TheTarget->createMCInstrAnalysis(MII.get()));
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FailIfEmpty(MIA, "no instruction analysis info for target " + TripleName);
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uint64_t SanCovAddr = findSanitizerCovFunction(O);
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for (const auto Section : O.sections()) {
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if (Section.isVirtual() || !Section.isText()) // llvm-objdump does the same.
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continue;
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uint64_t SectionAddr = Section.getAddress();
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uint64_t SectSize = Section.getSize();
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if (!SectSize)
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continue;
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StringRef SectionName;
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FailIfError(Section.getName(SectionName));
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StringRef BytesStr;
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FailIfError(Section.getContents(BytesStr));
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ArrayRef<uint8_t> Bytes(reinterpret_cast<const uint8_t *>(BytesStr.data()),
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BytesStr.size());
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for (uint64_t Index = 0, Size = 0; Index < Section.getSize();
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Index += Size) {
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MCInst Inst;
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if (!DisAsm->getInstruction(Inst, Size, Bytes.slice(Index),
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SectionAddr + Index, nulls(), nulls())) {
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if (Size == 0)
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Size = 1;
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continue;
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}
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uint64_t Target;
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if (MIA->isCall(Inst) &&
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MIA->evaluateBranch(Inst, SectionAddr + Index, Size, Target)) {
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if (Target == SanCovAddr) {
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// Sanitizer coverage uses the address of the next instruction - 1.
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Addrs->insert(Index + SectionAddr + Size - 1);
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}
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}
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}
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}
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}
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static void getArchiveCoveragePoints(const object::Archive &A,
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std::set<uint64_t> *Addrs) {
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for (auto &ErrorOrChild : A.children()) {
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FailIfError(ErrorOrChild);
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const object::Archive::Child &C = *ErrorOrChild;
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ErrorOr<std::unique_ptr<object::Binary>> ChildOrErr = C.getAsBinary();
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FailIfError(ChildOrErr);
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if (object::ObjectFile *O =
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dyn_cast<object::ObjectFile>(&*ChildOrErr.get()))
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getObjectCoveragePoints(*O, Addrs);
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else
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FailIfError(object::object_error::invalid_file_type);
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}
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}
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// Locate addresses of all coverage points in a file. Coverage point
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// is defined as the 'address of instruction following __sanitizer_cov
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// call - 1'.
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std::set<uint64_t> getCoveragePoints(std::string FileName) {
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std::set<uint64_t> Result;
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ErrorOr<object::OwningBinary<object::Binary>> BinaryOrErr =
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object::createBinary(FileName);
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FailIfError(BinaryOrErr);
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object::Binary &Binary = *BinaryOrErr.get().getBinary();
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if (object::Archive *A = dyn_cast<object::Archive>(&Binary))
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getArchiveCoveragePoints(*A, &Result);
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else if (object::ObjectFile *O = dyn_cast<object::ObjectFile>(&Binary))
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getObjectCoveragePoints(*O, &Result);
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else
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FailIfError(object::object_error::invalid_file_type);
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return Result;
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}
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static void printFunctionLocs(const std::set<FunctionLoc> &FnLocs,
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raw_ostream &OS) {
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for (const FunctionLoc &FnLoc : FnLocs) {
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OS << stripPathPrefix(FnLoc.Loc.FileName) << ":" << FnLoc.Loc.Line << " "
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<< FnLoc.FunctionName << "\n";
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}
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}
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class CoverageData {
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public:
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// Read single file coverage data.
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static ErrorOr<std::unique_ptr<CoverageData>> read(std::string FileName) {
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ErrorOr<std::unique_ptr<MemoryBuffer>> BufOrErr =
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MemoryBuffer::getFile(FileName);
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if (!BufOrErr)
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return BufOrErr.getError();
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std::unique_ptr<MemoryBuffer> Buf = std::move(BufOrErr.get());
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if (Buf->getBufferSize() < 8) {
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errs() << "File too small (<8): " << Buf->getBufferSize();
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return make_error_code(errc::illegal_byte_sequence);
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}
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const FileHeader *Header =
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reinterpret_cast<const FileHeader *>(Buf->getBufferStart());
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if (Header->Magic != BinCoverageMagic) {
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errs() << "Wrong magic: " << Header->Magic;
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return make_error_code(errc::illegal_byte_sequence);
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}
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auto Addrs = llvm::make_unique<std::set<uint64_t>>();
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switch (Header->Bitness) {
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case Bitness64:
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readInts<uint64_t>(Buf->getBufferStart() + 8, Buf->getBufferEnd(),
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Addrs.get());
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break;
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case Bitness32:
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readInts<uint32_t>(Buf->getBufferStart() + 8, Buf->getBufferEnd(),
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Addrs.get());
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break;
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default:
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errs() << "Unsupported bitness: " << Header->Bitness;
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return make_error_code(errc::illegal_byte_sequence);
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}
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return std::unique_ptr<CoverageData>(new CoverageData(std::move(Addrs)));
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}
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// Merge multiple coverage data together.
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static std::unique_ptr<CoverageData>
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merge(const std::vector<std::unique_ptr<CoverageData>> &Covs) {
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auto Addrs = llvm::make_unique<std::set<uint64_t>>();
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for (const auto &Cov : Covs)
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Addrs->insert(Cov->Addrs->begin(), Cov->Addrs->end());
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return std::unique_ptr<CoverageData>(new CoverageData(std::move(Addrs)));
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}
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// Read list of files and merges their coverage info.
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static ErrorOr<std::unique_ptr<CoverageData>>
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readAndMerge(const std::vector<std::string> &FileNames) {
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std::vector<std::unique_ptr<CoverageData>> Covs;
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for (const auto &FileName : FileNames) {
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auto Cov = read(FileName);
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if (!Cov)
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return Cov.getError();
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Covs.push_back(std::move(Cov.get()));
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}
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return merge(Covs);
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}
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// Print coverage addresses.
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void printAddrs(raw_ostream &OS) {
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for (auto Addr : *Addrs) {
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OS << "0x";
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OS.write_hex(Addr);
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OS << "\n";
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}
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}
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// Print list of covered functions.
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// Line format: <file_name>:<line> <function_name>
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void printCoveredFunctions(raw_ostream &OS) {
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printFunctionLocs(computeFunctionLocs(*Addrs), OS);
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}
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// Print list of not covered functions.
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// Line format: <file_name>:<line> <function_name>
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void printNotCoveredFunctions(raw_ostream &OS) {
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std::set<FunctionLoc> AllFns =
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computeFunctionLocs(getCoveragePoints(ClBinaryName));
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std::set<FunctionLoc> CoveredFns = computeFunctionLocs(*Addrs);
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std::set<FunctionLoc> NotCoveredFns;
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std::set_difference(AllFns.begin(), AllFns.end(), CoveredFns.begin(),
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CoveredFns.end(),
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std::inserter(NotCoveredFns, NotCoveredFns.end()));
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printFunctionLocs(NotCoveredFns, OS);
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}
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private:
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explicit CoverageData(std::unique_ptr<std::set<uint64_t>> Addrs)
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: Addrs(std::move(Addrs)) {}
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std::unique_ptr<std::set<uint64_t>> Addrs;
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};
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} // namespace
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int main(int argc, char **argv) {
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// Print stack trace if we signal out.
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sys::PrintStackTraceOnErrorSignal();
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PrettyStackTraceProgram X(argc, argv);
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llvm_shutdown_obj Y; // Call llvm_shutdown() on exit.
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llvm::InitializeAllTargetInfos();
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llvm::InitializeAllTargetMCs();
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llvm::InitializeAllDisassemblers();
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cl::ParseCommandLineOptions(argc, argv, "Sanitizer Coverage Processing Tool");
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auto CovData = CoverageData::readAndMerge(ClInputFiles);
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FailIfError(CovData);
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switch (Action) {
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case PrintAction: {
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CovData.get()->printAddrs(outs());
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return 0;
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}
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case CoveredFunctionsAction: {
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CovData.get()->printCoveredFunctions(outs());
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return 0;
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}
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case NotCoveredFunctionsAction: {
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CovData.get()->printNotCoveredFunctions(outs());
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return 0;
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}
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}
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llvm_unreachable("unsupported action");
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}
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