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This removes a bunch of manual filesystem helpers and complexity that are directly provided by the new library. It also moves all of the install paths detection to use `std::filesystem::path` instead of the LLVM path library. The goal is to consolidate all our logic onto a single stack, and the standard one seems the best for that purpose. This does give up some of the optimizations of this code to avoid memory allocation, but in practice that likely isn't a critical issue. And with the new filesystem library we can likely do more to avoid that by using directory-object-relative filesystem access. However, that will have to wait for moving more parts of the toolchain over to use this set of filesystem abstractions. There is a related TODO left in the manifest handling code.
217 lines
7.0 KiB
C++
217 lines
7.0 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "toolchain/install/install_paths.h"
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#include <filesystem>
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#include <memory>
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#include <string>
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#include "common/check.h"
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#include "common/filesystem.h"
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/ADT/StringRef.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/VirtualFileSystem.h"
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#include "tools/cpp/runfiles/runfiles.h"
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namespace Carbon {
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// The location within our Bazel output tree of the prefix_root.
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static constexpr llvm::StringLiteral PrefixRoot =
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"carbon/toolchain/install/prefix_root/";
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// Path within an install prefix for our marker of a valid install.
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static constexpr llvm::StringLiteral MarkerPath =
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"lib/carbon/carbon_install.txt";
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auto InstallPaths::MakeExeRelative(llvm::StringRef exe_path) -> InstallPaths {
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InstallPaths paths;
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// Double check the exe was present.
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auto exe_access_result = Filesystem::Cwd().Access(exe_path.str());
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if (!exe_access_result.ok()) {
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paths.SetError(llvm::Twine("Failed to test for access executable: ") +
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exe_access_result.error().ToString());
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return paths;
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} else if (!*exe_access_result) {
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paths.SetError(llvm::Twine("Unable to access executable: ") + exe_path);
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return paths;
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}
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return MakeFromFile(exe_path.str());
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}
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auto InstallPaths::MakeForBazelRunfiles(llvm::StringRef exe_path)
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-> InstallPaths {
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using bazel::tools::cpp::runfiles::Runfiles;
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std::string runtimes_error;
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std::unique_ptr<Runfiles> runfiles(
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Runfiles::Create(exe_path.str(), &runtimes_error));
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CARBON_CHECK(runfiles != nullptr, "Failed to find runtimes tree: {0}",
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runtimes_error);
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std::string relative_marker_path = (PrefixRoot.str() + MarkerPath).str();
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std::filesystem::path runtimes_marker_path =
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runfiles->Rlocation(relative_marker_path);
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// Start from the marker, remove that filename, and walk up to find the
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// install prefix.
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return MakeFromFile(std::move(runtimes_marker_path));
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}
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auto InstallPaths::Make(llvm::StringRef install_prefix) -> InstallPaths {
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InstallPaths paths(install_prefix.str());
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auto open_result = Filesystem::Cwd().OpenDir(paths.prefix_);
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if (!open_result.ok()) {
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paths.SetError(open_result.error().ToString());
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} else {
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paths.prefix_dir_ = *std::move(open_result);
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paths.CheckMarkerFile();
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}
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return paths;
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}
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auto InstallPaths::ReadPreludeManifest() const
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-> ErrorOr<llvm::SmallVector<std::string>> {
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return ReadManifest(core_package(), "prelude_manifest.txt");
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}
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auto InstallPaths::ReadClangHeadersManifest() const
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-> ErrorOr<llvm::SmallVector<std::string>> {
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return ReadManifest(prefix_ / "..", "clang_headers_manifest.txt");
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}
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auto InstallPaths::ReadManifest(std::filesystem::path manifest_path,
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std::filesystem::path manifest_file) const
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-> ErrorOr<llvm::SmallVector<std::string>> {
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// This is structured to avoid a vector copy on success.
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ErrorOr<llvm::SmallVector<std::string>> result =
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llvm::SmallVector<std::string>();
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// TODO: It would be nice to adjust the manifests to be within the install
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// prefix and use that open directory to access the manifest. Also to update
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// callers to be able to use the relative paths via an open directory rather
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// than having to form absolute paths for all the entries.
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auto read_result =
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Filesystem::Cwd().ReadFileToString(manifest_path / manifest_file);
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if (!read_result.ok()) {
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result = ErrorBuilder()
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<< "Loading manifest `" << (manifest_path / manifest_file)
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<< "`: " << read_result.error();
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return result;
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}
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// The manifest should have one file per line.
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llvm::StringRef buffer = *read_result;
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while (true) {
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auto [token, remainder] = llvm::getToken(buffer, "\n");
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if (token.empty()) {
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break;
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}
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result->push_back((manifest_path / std::string_view(token)).native());
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buffer = remainder;
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}
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if (result->empty()) {
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result = ErrorBuilder()
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<< "Manifest `" << (manifest_path / manifest_file) << "` is empty";
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}
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return result;
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}
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auto InstallPaths::MakeFromFile(std::filesystem::path file_path)
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-> InstallPaths {
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// TODO: Detect a Windows executable path and use custom logic to map to the
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// correct install prefix for that platform.
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//
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// We assume an executable will be in a `bin` directory and this is a
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// FHS-like install prefix. We remove the filename and walk up to find the
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// expected install prefix.
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std::error_code ec;
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InstallPaths paths(std::filesystem::absolute(
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std::move(file_path).remove_filename() / "../..", ec));
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if (ec) {
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paths.SetError(ec.message());
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return paths;
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}
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auto open_result = Filesystem::Cwd().OpenDir(paths.prefix_);
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if (!open_result.ok()) {
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paths.SetError(open_result.error().ToString());
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return paths;
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}
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paths.prefix_dir_ = *std::move(open_result);
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paths.CheckMarkerFile();
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return paths;
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}
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auto InstallPaths::SetError(llvm::Twine message) -> void {
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// Use an empty prefix on error as that should use the working directory which
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// is the least likely problematic.
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prefix_ = "";
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prefix_dir_ = Filesystem::Dir();
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error_ = {message.str()};
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}
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auto InstallPaths::CheckMarkerFile() -> void {
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if (!prefix_.is_absolute()) {
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SetError(llvm::Twine("Not an absolute path: ") + prefix_.native());
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return;
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}
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auto access_result = prefix_dir_.Access(MarkerPath.str());
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if (!access_result.ok()) {
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SetError(access_result.error().ToString());
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return;
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}
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if (!*access_result) {
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SetError(llvm::Twine("No install marker at path: ") +
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(prefix_ / std::string_view(MarkerPath)).native());
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return;
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}
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// Success!
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}
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auto InstallPaths::core_package() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/core";
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}
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auto InstallPaths::llvm_install_bin() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin/";
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}
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auto InstallPaths::clang_path() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin/clang";
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}
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auto InstallPaths::lld_path() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin/lld";
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}
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auto InstallPaths::ld_lld_path() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin/ld.lld";
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}
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auto InstallPaths::ld64_lld_path() const -> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin/ld64.lld";
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}
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auto InstallPaths::llvm_tool_path(LLVMTool tool) const
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-> std::filesystem::path {
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// TODO: Adjust this to work equally well on Windows.
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return prefix_ / "lib/carbon/llvm/bin" / std::string_view(tool.bin_name());
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}
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} // namespace Carbon
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