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synced 2025-12-14 20:36:38 +01:00
StringMap always copies its strings into its own storage. A DenseMap of StringRefs has the same caveats as any other use of StringRef, but in the cases I've changed the string has very clear ownership that outlives the map. No functionality change, but should reduce memory usage and malloc traffic a little.
347 lines
13 KiB
C++
347 lines
13 KiB
C++
//===--- ToolChain.cpp - Collections of tools for one platform ------------===//
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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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/// \file This file defines the base implementation of the ToolChain class.
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/// The platform-specific subclasses are implemented in ToolChains.cpp.
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/// For organizational purposes, the platform-independent logic for
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/// constructing job invocations is also located in ToolChains.cpp.
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//
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//===----------------------------------------------------------------------===//
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#include "swift/Driver/ToolChain.h"
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#include "swift/Driver/Compilation.h"
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#include "swift/Driver/Driver.h"
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#include "swift/Driver/Job.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/ADT/SetVector.h"
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#include "llvm/Option/ArgList.h"
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#include "llvm/Support/FileSystem.h"
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#include "llvm/Support/Path.h"
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#include "llvm/Support/Program.h"
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using namespace swift;
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using namespace swift::driver;
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using namespace llvm::opt;
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ToolChain::JobContext::JobContext(Compilation &C, ArrayRef<const Job *> Inputs,
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ArrayRef<const Action *> InputActions,
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const CommandOutput &Output,
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const OutputInfo &OI)
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: C(C), Inputs(Inputs), InputActions(InputActions), Output(Output), OI(OI),
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Args(C.getArgs()) {}
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ArrayRef<InputPair> ToolChain::JobContext::getTopLevelInputFiles() const {
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return C.getInputFiles();
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}
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const char *ToolChain::JobContext::getAllSourcesPath() const {
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return C.getAllSourcesPath();
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}
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const char *
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ToolChain::JobContext::getTemporaryFilePath(const llvm::Twine &name,
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StringRef suffix) const {
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SmallString<128> buffer;
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std::error_code EC = llvm::sys::fs::createTemporaryFile(name, suffix, buffer);
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if (EC) {
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// FIXME: This should not take down the entire process.
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llvm::report_fatal_error("unable to create temporary file for filelist");
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}
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C.addTemporaryFile(buffer.str(), PreserveOnSignal::Yes);
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// We can't just reference the data in the TemporaryFiles vector because
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// that could theoretically get copied to a new address.
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return C.getArgs().MakeArgString(buffer.str());
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}
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std::unique_ptr<Job> ToolChain::constructJob(
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const JobAction &JA, Compilation &C, SmallVectorImpl<const Job *> &&inputs,
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ArrayRef<const Action *> inputActions,
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std::unique_ptr<CommandOutput> output, const OutputInfo &OI) const {
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JobContext context{C, inputs, inputActions, *output, OI};
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auto invocationInfo = [&]() -> InvocationInfo {
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switch (JA.getKind()) {
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#define CASE(K) \
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case Action::Kind::K: \
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return constructInvocation(cast<K##Action>(JA), context);
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CASE(CompileJob)
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CASE(InterpretJob)
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CASE(BackendJob)
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CASE(MergeModuleJob)
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CASE(ModuleWrapJob)
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CASE(LinkJob)
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CASE(GenerateDSYMJob)
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CASE(VerifyDebugInfoJob)
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CASE(GeneratePCHJob)
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CASE(AutolinkExtractJob)
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CASE(REPLJob)
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#undef CASE
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case Action::Kind::Input:
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llvm_unreachable("not a JobAction");
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}
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// Work around MSVC warning: not all control paths return a value
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llvm_unreachable("All switch cases are covered");
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}();
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// Special-case the Swift frontend.
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const char *executablePath = nullptr;
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if (StringRef(SWIFT_EXECUTABLE_NAME) == invocationInfo.ExecutableName) {
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executablePath = getDriver().getSwiftProgramPath().c_str();
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} else {
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std::string relativePath =
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findProgramRelativeToSwift(invocationInfo.ExecutableName);
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if (!relativePath.empty()) {
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executablePath = C.getArgs().MakeArgString(relativePath);
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} else {
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auto systemPath =
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llvm::sys::findProgramByName(invocationInfo.ExecutableName);
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if (systemPath) {
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executablePath = C.getArgs().MakeArgString(systemPath.get());
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} else {
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// For debugging purposes.
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executablePath = invocationInfo.ExecutableName;
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}
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}
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}
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const char *responseFilePath = nullptr;
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const char *responseFileArg = nullptr;
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if (invocationInfo.allowsResponseFiles &&
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!llvm::sys::commandLineFitsWithinSystemLimits(
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executablePath, invocationInfo.Arguments)) {
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responseFilePath = context.getTemporaryFilePath("arguments", "resp");
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responseFileArg = C.getArgs().MakeArgString(Twine("@") + responseFilePath);
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}
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return llvm::make_unique<Job>(JA, std::move(inputs), std::move(output),
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executablePath,
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std::move(invocationInfo.Arguments),
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std::move(invocationInfo.ExtraEnvironment),
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std::move(invocationInfo.FilelistInfos),
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responseFilePath,
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responseFileArg);
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}
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std::string
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ToolChain::findProgramRelativeToSwift(StringRef executableName) const {
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auto insertionResult =
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ProgramLookupCache.insert(std::make_pair(executableName, ""));
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if (insertionResult.second) {
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std::string path = findProgramRelativeToSwiftImpl(executableName);
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insertionResult.first->setValue(std::move(path));
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}
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return insertionResult.first->getValue();
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}
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std::string
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ToolChain::findProgramRelativeToSwiftImpl(StringRef executableName) const {
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StringRef swiftPath = getDriver().getSwiftProgramPath();
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StringRef swiftBinDir = llvm::sys::path::parent_path(swiftPath);
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auto result = llvm::sys::findProgramByName(executableName, {swiftBinDir});
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if (result)
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return result.get();
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return {};
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}
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file_types::ID ToolChain::lookupTypeForExtension(StringRef Ext) const {
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return file_types::lookupTypeForExtension(Ext);
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}
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/// Return a _single_ TY_Swift InputAction, if one exists;
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/// if 0 or >1 such inputs exist, return nullptr.
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static const InputAction *findSingleSwiftInput(const CompileJobAction *CJA) {
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auto Inputs = CJA->getInputs();
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const InputAction *IA = nullptr;
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for (auto const *I : Inputs) {
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if (auto const *S = dyn_cast<InputAction>(I)) {
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if (S->getType() == file_types::TY_Swift) {
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if (IA == nullptr) {
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IA = S;
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} else {
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// Already found one, two is too many.
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return nullptr;
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}
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}
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}
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}
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return IA;
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}
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static bool jobsHaveSameExecutableNames(const Job *A, const Job *B) {
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// Jobs that get here (that are derived from CompileJobActions) should always
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// have the same executable name -- it should always be SWIFT_EXECUTABLE_NAME
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// -- but we check here just to be sure / fail gracefully in non-assert
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// builds.
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assert(strcmp(A->getExecutable(), B->getExecutable()) == 0);
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if (strcmp(A->getExecutable(), B->getExecutable()) != 0) {
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return false;
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}
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return true;
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}
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static bool jobsHaveSameOutputTypes(const Job *A, const Job *B) {
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if (A->getOutput().getPrimaryOutputType() !=
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B->getOutput().getPrimaryOutputType())
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return false;
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return A->getOutput().hasSameAdditionalOutputTypes(B->getOutput());
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}
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static bool jobsHaveSameEnvironment(const Job *A, const Job *B) {
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auto AEnv = A->getExtraEnvironment();
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auto BEnv = B->getExtraEnvironment();
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if (AEnv.size() != BEnv.size())
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return false;
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for (size_t i = 0; i < AEnv.size(); ++i) {
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if (strcmp(AEnv[i].first, BEnv[i].first) != 0)
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return false;
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if (strcmp(AEnv[i].second, BEnv[i].second) != 0)
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return false;
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}
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return true;
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}
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bool ToolChain::jobIsBatchable(const Compilation &C, const Job *A) const {
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// FIXME: There might be a tighter criterion to use here?
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if (C.getOutputInfo().CompilerMode != OutputInfo::Mode::StandardCompile)
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return false;
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auto const *CJActA = dyn_cast<const CompileJobAction>(&A->getSource());
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if (!CJActA)
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return false;
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return findSingleSwiftInput(CJActA) != nullptr;
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}
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bool ToolChain::jobsAreBatchCombinable(const Compilation &C, const Job *A,
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const Job *B) const {
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assert(jobIsBatchable(C, A));
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assert(jobIsBatchable(C, B));
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return (jobsHaveSameExecutableNames(A, B) && jobsHaveSameOutputTypes(A, B) &&
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jobsHaveSameEnvironment(A, B));
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}
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/// Form a synthetic \c CommandOutput for a \c BatchJob by merging together the
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/// \c CommandOutputs of all the jobs passed.
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static std::unique_ptr<CommandOutput>
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makeBatchCommandOutput(ArrayRef<const Job *> jobs, Compilation &C,
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file_types::ID outputType) {
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auto output =
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llvm::make_unique<CommandOutput>(outputType, C.getDerivedOutputFileMap());
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for (auto const *J : jobs) {
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output->addOutputs(J->getOutput());
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}
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return output;
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}
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/// Set-union the \c Inputs and \c InputActions from each \c Job in \p jobs into
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/// the provided \p inputJobs and \p inputActions vectors, further adding all \c
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/// Actions in the \p jobs -- InputActions or otherwise -- to \p batchCJA. Do
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/// set-union rather than concatenation here to avoid mentioning the same input
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/// multiple times.
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static bool
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mergeBatchInputs(ArrayRef<const Job *> jobs,
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llvm::SmallSetVector<const Job *, 16> &inputJobs,
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llvm::SmallSetVector<const Action *, 16> &inputActions,
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CompileJobAction *batchCJA) {
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llvm::SmallSetVector<const Action *, 16> allActions;
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for (auto const *J : jobs) {
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for (auto const *I : J->getInputs()) {
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inputJobs.insert(I);
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}
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auto const *CJA = dyn_cast<CompileJobAction>(&J->getSource());
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if (!CJA)
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return true;
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for (auto const *I : CJA->getInputs()) {
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// Capture _all_ input actions -- whether or not they are InputActions --
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// in allActions, to set as the inputs for batchCJA below.
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allActions.insert(I);
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// Only collect input actions that _are InputActions_ in the inputActions
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// array, to load into the JobContext in our caller.
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if (auto const *IA = dyn_cast<InputAction>(I)) {
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inputActions.insert(IA);
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}
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}
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}
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for (auto const *I : allActions) {
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batchCJA->addInput(I);
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}
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return false;
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}
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/// Unfortunately the success or failure of a Swift compilation is currently
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/// sensitive to the order in which files are processed, at least in terms of
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/// the order of processing extensions (and likely other ways we haven't
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/// discovered yet). So long as this is true, we need to make sure any batch job
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/// we build names its inputs in an order that's a subsequence of the sequence
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/// of inputs the driver was initially invoked with.
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static void
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sortJobsToMatchCompilationInputs(ArrayRef<const Job *> unsortedJobs,
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SmallVectorImpl<const Job *> &sortedJobs,
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Compilation &C) {
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llvm::DenseMap<StringRef, const Job *> jobsByInput;
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for (const Job *J : unsortedJobs) {
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const CompileJobAction *CJA = cast<CompileJobAction>(&J->getSource());
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const InputAction *IA = findSingleSwiftInput(CJA);
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auto R =
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jobsByInput.insert(std::make_pair(IA->getInputArg().getValue(), J));
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assert(R.second);
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(void)R;
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}
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for (const InputPair &P : C.getInputFiles()) {
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auto I = jobsByInput.find(P.second->getValue());
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if (I != jobsByInput.end()) {
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sortedJobs.push_back(I->second);
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}
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}
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}
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/// Construct a \c BatchJob by merging the constituent \p jobs' CommandOutput,
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/// input \c Job and \c Action members. Call through to \c constructInvocation
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/// on \p BatchJob, to build the \c InvocationInfo.
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std::unique_ptr<Job>
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ToolChain::constructBatchJob(ArrayRef<const Job *> unsortedJobs,
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Job::PID &NextQuasiPID,
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Compilation &C) const {
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if (unsortedJobs.empty())
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return nullptr;
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llvm::SmallVector<const Job *, 16> sortedJobs;
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sortJobsToMatchCompilationInputs(unsortedJobs, sortedJobs, C);
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// Synthetic OutputInfo is a slightly-modified version of the initial
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// compilation's OI.
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auto OI = C.getOutputInfo();
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OI.CompilerMode = OutputInfo::Mode::BatchModeCompile;
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auto const *executablePath = sortedJobs[0]->getExecutable();
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auto outputType = sortedJobs[0]->getOutput().getPrimaryOutputType();
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auto output = makeBatchCommandOutput(sortedJobs, C, outputType);
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llvm::SmallSetVector<const Job *, 16> inputJobs;
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llvm::SmallSetVector<const Action *, 16> inputActions;
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auto *batchCJA = C.createAction<CompileJobAction>(outputType);
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if (mergeBatchInputs(sortedJobs, inputJobs, inputActions, batchCJA))
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return nullptr;
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JobContext context{C, inputJobs.getArrayRef(), inputActions.getArrayRef(),
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*output, OI};
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auto invocationInfo = constructInvocation(*batchCJA, context);
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return llvm::make_unique<BatchJob>(
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*batchCJA, inputJobs.takeVector(), std::move(output), executablePath,
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std::move(invocationInfo.Arguments),
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std::move(invocationInfo.ExtraEnvironment),
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std::move(invocationInfo.FilelistInfos), sortedJobs, NextQuasiPID);
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}
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