Summary: There was a naming conflict in the getNVPTXTargetFeatures function that prevented some compilers from correctly disambiguating between the enumeration and variable of the same name. Rename the variable to avoid this.
922 lines
36 KiB
C++
922 lines
36 KiB
C++
//===--- Cuda.cpp - Cuda Tool and ToolChain Implementations -----*- C++ -*-===//
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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 "Cuda.h"
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#include "CommonArgs.h"
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#include "clang/Basic/Cuda.h"
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#include "clang/Config/config.h"
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#include "clang/Driver/Compilation.h"
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#include "clang/Driver/Distro.h"
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#include "clang/Driver/Driver.h"
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#include "clang/Driver/DriverDiagnostic.h"
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#include "clang/Driver/InputInfo.h"
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#include "clang/Driver/Options.h"
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#include "llvm/ADT/Optional.h"
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#include "llvm/ADT/StringExtras.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/Host.h"
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#include "llvm/Support/Path.h"
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#include "llvm/Support/Process.h"
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#include "llvm/Support/Program.h"
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#include "llvm/Support/TargetParser.h"
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#include "llvm/Support/VirtualFileSystem.h"
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#include <system_error>
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using namespace clang::driver;
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using namespace clang::driver::toolchains;
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using namespace clang::driver::tools;
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using namespace clang;
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using namespace llvm::opt;
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namespace {
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CudaVersion getCudaVersion(uint32_t raw_version) {
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if (raw_version < 7050)
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return CudaVersion::CUDA_70;
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if (raw_version < 8000)
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return CudaVersion::CUDA_75;
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if (raw_version < 9000)
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return CudaVersion::CUDA_80;
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if (raw_version < 9010)
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return CudaVersion::CUDA_90;
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if (raw_version < 9020)
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return CudaVersion::CUDA_91;
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if (raw_version < 10000)
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return CudaVersion::CUDA_92;
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if (raw_version < 10010)
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return CudaVersion::CUDA_100;
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if (raw_version < 10020)
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return CudaVersion::CUDA_101;
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if (raw_version < 11000)
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return CudaVersion::CUDA_102;
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if (raw_version < 11010)
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return CudaVersion::CUDA_110;
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if (raw_version < 11020)
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return CudaVersion::CUDA_111;
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if (raw_version < 11030)
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return CudaVersion::CUDA_112;
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if (raw_version < 11040)
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return CudaVersion::CUDA_113;
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if (raw_version < 11050)
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return CudaVersion::CUDA_114;
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if (raw_version < 11060)
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return CudaVersion::CUDA_115;
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return CudaVersion::NEW;
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}
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CudaVersion parseCudaHFile(llvm::StringRef Input) {
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// Helper lambda which skips the words if the line starts with them or returns
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// None otherwise.
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auto StartsWithWords =
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[](llvm::StringRef Line,
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const SmallVector<StringRef, 3> words) -> llvm::Optional<StringRef> {
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for (StringRef word : words) {
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if (!Line.consume_front(word))
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return {};
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Line = Line.ltrim();
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}
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return Line;
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};
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Input = Input.ltrim();
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while (!Input.empty()) {
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if (auto Line =
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StartsWithWords(Input.ltrim(), {"#", "define", "CUDA_VERSION"})) {
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uint32_t RawVersion;
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Line->consumeInteger(10, RawVersion);
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return getCudaVersion(RawVersion);
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}
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// Find next non-empty line.
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Input = Input.drop_front(Input.find_first_of("\n\r")).ltrim();
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}
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return CudaVersion::UNKNOWN;
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}
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} // namespace
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void CudaInstallationDetector::WarnIfUnsupportedVersion() {
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if (Version > CudaVersion::PARTIALLY_SUPPORTED) {
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std::string VersionString = CudaVersionToString(Version);
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if (!VersionString.empty())
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VersionString.insert(0, " ");
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D.Diag(diag::warn_drv_new_cuda_version)
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<< VersionString
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<< (CudaVersion::PARTIALLY_SUPPORTED != CudaVersion::FULLY_SUPPORTED)
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<< CudaVersionToString(CudaVersion::PARTIALLY_SUPPORTED);
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} else if (Version > CudaVersion::FULLY_SUPPORTED)
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D.Diag(diag::warn_drv_partially_supported_cuda_version)
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<< CudaVersionToString(Version);
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}
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CudaInstallationDetector::CudaInstallationDetector(
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const Driver &D, const llvm::Triple &HostTriple,
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const llvm::opt::ArgList &Args)
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: D(D) {
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struct Candidate {
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std::string Path;
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bool StrictChecking;
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Candidate(std::string Path, bool StrictChecking = false)
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: Path(Path), StrictChecking(StrictChecking) {}
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};
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SmallVector<Candidate, 4> Candidates;
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// In decreasing order so we prefer newer versions to older versions.
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std::initializer_list<const char *> Versions = {"8.0", "7.5", "7.0"};
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auto &FS = D.getVFS();
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if (Args.hasArg(clang::driver::options::OPT_cuda_path_EQ)) {
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Candidates.emplace_back(
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Args.getLastArgValue(clang::driver::options::OPT_cuda_path_EQ).str());
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} else if (HostTriple.isOSWindows()) {
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for (const char *Ver : Versions)
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Candidates.emplace_back(
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D.SysRoot + "/Program Files/NVIDIA GPU Computing Toolkit/CUDA/v" +
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Ver);
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} else {
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if (!Args.hasArg(clang::driver::options::OPT_cuda_path_ignore_env)) {
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// Try to find ptxas binary. If the executable is located in a directory
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// called 'bin/', its parent directory might be a good guess for a valid
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// CUDA installation.
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// However, some distributions might installs 'ptxas' to /usr/bin. In that
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// case the candidate would be '/usr' which passes the following checks
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// because '/usr/include' exists as well. To avoid this case, we always
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// check for the directory potentially containing files for libdevice,
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// even if the user passes -nocudalib.
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if (llvm::ErrorOr<std::string> ptxas =
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llvm::sys::findProgramByName("ptxas")) {
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SmallString<256> ptxasAbsolutePath;
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llvm::sys::fs::real_path(*ptxas, ptxasAbsolutePath);
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StringRef ptxasDir = llvm::sys::path::parent_path(ptxasAbsolutePath);
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if (llvm::sys::path::filename(ptxasDir) == "bin")
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Candidates.emplace_back(
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std::string(llvm::sys::path::parent_path(ptxasDir)),
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/*StrictChecking=*/true);
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}
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}
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Candidates.emplace_back(D.SysRoot + "/usr/local/cuda");
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for (const char *Ver : Versions)
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Candidates.emplace_back(D.SysRoot + "/usr/local/cuda-" + Ver);
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Distro Dist(FS, llvm::Triple(llvm::sys::getProcessTriple()));
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if (Dist.IsDebian() || Dist.IsUbuntu())
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// Special case for Debian to have nvidia-cuda-toolkit work
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// out of the box. More info on http://bugs.debian.org/882505
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Candidates.emplace_back(D.SysRoot + "/usr/lib/cuda");
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}
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bool NoCudaLib = Args.hasArg(options::OPT_nogpulib);
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for (const auto &Candidate : Candidates) {
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InstallPath = Candidate.Path;
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if (InstallPath.empty() || !FS.exists(InstallPath))
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continue;
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BinPath = InstallPath + "/bin";
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IncludePath = InstallPath + "/include";
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LibDevicePath = InstallPath + "/nvvm/libdevice";
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if (!(FS.exists(IncludePath) && FS.exists(BinPath)))
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continue;
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bool CheckLibDevice = (!NoCudaLib || Candidate.StrictChecking);
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if (CheckLibDevice && !FS.exists(LibDevicePath))
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continue;
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// On Linux, we have both lib and lib64 directories, and we need to choose
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// based on our triple. On MacOS, we have only a lib directory.
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//
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// It's sufficient for our purposes to be flexible: If both lib and lib64
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// exist, we choose whichever one matches our triple. Otherwise, if only
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// lib exists, we use it.
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if (HostTriple.isArch64Bit() && FS.exists(InstallPath + "/lib64"))
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LibPath = InstallPath + "/lib64";
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else if (FS.exists(InstallPath + "/lib"))
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LibPath = InstallPath + "/lib";
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else
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continue;
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Version = CudaVersion::UNKNOWN;
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if (auto CudaHFile = FS.getBufferForFile(InstallPath + "/include/cuda.h"))
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Version = parseCudaHFile((*CudaHFile)->getBuffer());
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// As the last resort, make an educated guess between CUDA-7.0, which had
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// old-style libdevice bitcode, and an unknown recent CUDA version.
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if (Version == CudaVersion::UNKNOWN) {
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Version = FS.exists(LibDevicePath + "/libdevice.10.bc")
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? CudaVersion::NEW
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: CudaVersion::CUDA_70;
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}
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if (Version >= CudaVersion::CUDA_90) {
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// CUDA-9+ uses single libdevice file for all GPU variants.
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std::string FilePath = LibDevicePath + "/libdevice.10.bc";
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if (FS.exists(FilePath)) {
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for (int Arch = (int)CudaArch::SM_30, E = (int)CudaArch::LAST; Arch < E;
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++Arch) {
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CudaArch GpuArch = static_cast<CudaArch>(Arch);
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if (!IsNVIDIAGpuArch(GpuArch))
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continue;
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std::string GpuArchName(CudaArchToString(GpuArch));
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LibDeviceMap[GpuArchName] = FilePath;
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}
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}
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} else {
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std::error_code EC;
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for (llvm::vfs::directory_iterator LI = FS.dir_begin(LibDevicePath, EC),
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LE;
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!EC && LI != LE; LI = LI.increment(EC)) {
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StringRef FilePath = LI->path();
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StringRef FileName = llvm::sys::path::filename(FilePath);
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// Process all bitcode filenames that look like
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// libdevice.compute_XX.YY.bc
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const StringRef LibDeviceName = "libdevice.";
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if (!(FileName.startswith(LibDeviceName) && FileName.endswith(".bc")))
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continue;
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StringRef GpuArch = FileName.slice(
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LibDeviceName.size(), FileName.find('.', LibDeviceName.size()));
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LibDeviceMap[GpuArch] = FilePath.str();
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// Insert map entries for specific devices with this compute
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// capability. NVCC's choice of the libdevice library version is
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// rather peculiar and depends on the CUDA version.
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if (GpuArch == "compute_20") {
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LibDeviceMap["sm_20"] = std::string(FilePath);
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LibDeviceMap["sm_21"] = std::string(FilePath);
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LibDeviceMap["sm_32"] = std::string(FilePath);
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} else if (GpuArch == "compute_30") {
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LibDeviceMap["sm_30"] = std::string(FilePath);
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if (Version < CudaVersion::CUDA_80) {
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LibDeviceMap["sm_50"] = std::string(FilePath);
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LibDeviceMap["sm_52"] = std::string(FilePath);
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LibDeviceMap["sm_53"] = std::string(FilePath);
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}
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LibDeviceMap["sm_60"] = std::string(FilePath);
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LibDeviceMap["sm_61"] = std::string(FilePath);
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LibDeviceMap["sm_62"] = std::string(FilePath);
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} else if (GpuArch == "compute_35") {
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LibDeviceMap["sm_35"] = std::string(FilePath);
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LibDeviceMap["sm_37"] = std::string(FilePath);
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} else if (GpuArch == "compute_50") {
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if (Version >= CudaVersion::CUDA_80) {
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LibDeviceMap["sm_50"] = std::string(FilePath);
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LibDeviceMap["sm_52"] = std::string(FilePath);
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LibDeviceMap["sm_53"] = std::string(FilePath);
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}
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}
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}
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}
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// Check that we have found at least one libdevice that we can link in if
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// -nocudalib hasn't been specified.
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if (LibDeviceMap.empty() && !NoCudaLib)
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continue;
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IsValid = true;
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break;
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}
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}
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void CudaInstallationDetector::AddCudaIncludeArgs(
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const ArgList &DriverArgs, ArgStringList &CC1Args) const {
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if (!DriverArgs.hasArg(options::OPT_nobuiltininc)) {
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// Add cuda_wrappers/* to our system include path. This lets us wrap
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// standard library headers.
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SmallString<128> P(D.ResourceDir);
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llvm::sys::path::append(P, "include");
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llvm::sys::path::append(P, "cuda_wrappers");
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CC1Args.push_back("-internal-isystem");
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CC1Args.push_back(DriverArgs.MakeArgString(P));
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}
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if (DriverArgs.hasArg(options::OPT_nogpuinc))
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return;
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if (!isValid()) {
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D.Diag(diag::err_drv_no_cuda_installation);
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return;
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}
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CC1Args.push_back("-include");
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CC1Args.push_back("__clang_cuda_runtime_wrapper.h");
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}
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void CudaInstallationDetector::CheckCudaVersionSupportsArch(
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CudaArch Arch) const {
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if (Arch == CudaArch::UNKNOWN || Version == CudaVersion::UNKNOWN ||
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ArchsWithBadVersion[(int)Arch])
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return;
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auto MinVersion = MinVersionForCudaArch(Arch);
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auto MaxVersion = MaxVersionForCudaArch(Arch);
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if (Version < MinVersion || Version > MaxVersion) {
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ArchsWithBadVersion[(int)Arch] = true;
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D.Diag(diag::err_drv_cuda_version_unsupported)
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<< CudaArchToString(Arch) << CudaVersionToString(MinVersion)
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<< CudaVersionToString(MaxVersion) << InstallPath
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<< CudaVersionToString(Version);
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}
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}
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void CudaInstallationDetector::print(raw_ostream &OS) const {
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if (isValid())
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OS << "Found CUDA installation: " << InstallPath << ", version "
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<< CudaVersionToString(Version) << "\n";
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}
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namespace {
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/// Debug info level for the NVPTX devices. We may need to emit different debug
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/// info level for the host and for the device itselfi. This type controls
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/// emission of the debug info for the devices. It either prohibits disable info
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/// emission completely, or emits debug directives only, or emits same debug
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/// info as for the host.
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enum DeviceDebugInfoLevel {
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DisableDebugInfo, /// Do not emit debug info for the devices.
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DebugDirectivesOnly, /// Emit only debug directives.
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EmitSameDebugInfoAsHost, /// Use the same debug info level just like for the
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/// host.
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};
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} // anonymous namespace
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/// Define debug info level for the NVPTX devices. If the debug info for both
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/// the host and device are disabled (-g0/-ggdb0 or no debug options at all). If
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/// only debug directives are requested for the both host and device
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/// (-gline-directvies-only), or the debug info only for the device is disabled
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/// (optimization is on and --cuda-noopt-device-debug was not specified), the
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/// debug directves only must be emitted for the device. Otherwise, use the same
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/// debug info level just like for the host (with the limitations of only
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/// supported DWARF2 standard).
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static DeviceDebugInfoLevel mustEmitDebugInfo(const ArgList &Args) {
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const Arg *A = Args.getLastArg(options::OPT_O_Group);
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bool IsDebugEnabled = !A || A->getOption().matches(options::OPT_O0) ||
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Args.hasFlag(options::OPT_cuda_noopt_device_debug,
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options::OPT_no_cuda_noopt_device_debug,
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/*Default=*/false);
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if (const Arg *A = Args.getLastArg(options::OPT_g_Group)) {
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const Option &Opt = A->getOption();
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if (Opt.matches(options::OPT_gN_Group)) {
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if (Opt.matches(options::OPT_g0) || Opt.matches(options::OPT_ggdb0))
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return DisableDebugInfo;
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if (Opt.matches(options::OPT_gline_directives_only))
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return DebugDirectivesOnly;
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}
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return IsDebugEnabled ? EmitSameDebugInfoAsHost : DebugDirectivesOnly;
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}
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return willEmitRemarks(Args) ? DebugDirectivesOnly : DisableDebugInfo;
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}
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void NVPTX::Assembler::ConstructJob(Compilation &C, const JobAction &JA,
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const InputInfo &Output,
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const InputInfoList &Inputs,
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const ArgList &Args,
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const char *LinkingOutput) const {
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const auto &TC =
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static_cast<const toolchains::CudaToolChain &>(getToolChain());
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assert(TC.getTriple().isNVPTX() && "Wrong platform");
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StringRef GPUArchName;
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// If this is an OpenMP action we need to extract the device architecture
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// from the -march=arch option. This option may come from -Xopenmp-target
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// flag or the default value.
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if (JA.isDeviceOffloading(Action::OFK_OpenMP)) {
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GPUArchName = Args.getLastArgValue(options::OPT_march_EQ);
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assert(!GPUArchName.empty() && "Must have an architecture passed in.");
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} else
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GPUArchName = JA.getOffloadingArch();
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// Obtain architecture from the action.
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CudaArch gpu_arch = StringToCudaArch(GPUArchName);
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assert(gpu_arch != CudaArch::UNKNOWN &&
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"Device action expected to have an architecture.");
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// Check that our installation's ptxas supports gpu_arch.
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if (!Args.hasArg(options::OPT_no_cuda_version_check)) {
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TC.CudaInstallation.CheckCudaVersionSupportsArch(gpu_arch);
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}
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ArgStringList CmdArgs;
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CmdArgs.push_back(TC.getTriple().isArch64Bit() ? "-m64" : "-m32");
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DeviceDebugInfoLevel DIKind = mustEmitDebugInfo(Args);
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if (DIKind == EmitSameDebugInfoAsHost) {
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// ptxas does not accept -g option if optimization is enabled, so
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// we ignore the compiler's -O* options if we want debug info.
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CmdArgs.push_back("-g");
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CmdArgs.push_back("--dont-merge-basicblocks");
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CmdArgs.push_back("--return-at-end");
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} else if (Arg *A = Args.getLastArg(options::OPT_O_Group)) {
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// Map the -O we received to -O{0,1,2,3}.
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//
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// TODO: Perhaps we should map host -O2 to ptxas -O3. -O3 is ptxas's
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// default, so it may correspond more closely to the spirit of clang -O2.
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// -O3 seems like the least-bad option when -Osomething is specified to
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// clang but it isn't handled below.
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StringRef OOpt = "3";
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if (A->getOption().matches(options::OPT_O4) ||
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A->getOption().matches(options::OPT_Ofast))
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OOpt = "3";
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else if (A->getOption().matches(options::OPT_O0))
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OOpt = "0";
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else if (A->getOption().matches(options::OPT_O)) {
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// -Os, -Oz, and -O(anything else) map to -O2, for lack of better options.
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OOpt = llvm::StringSwitch<const char *>(A->getValue())
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.Case("1", "1")
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.Case("2", "2")
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.Case("3", "3")
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.Case("s", "2")
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.Case("z", "2")
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.Default("2");
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}
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CmdArgs.push_back(Args.MakeArgString(llvm::Twine("-O") + OOpt));
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} else {
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// If no -O was passed, pass -O0 to ptxas -- no opt flag should correspond
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|
// to no optimizations, but ptxas's default is -O3.
|
|
CmdArgs.push_back("-O0");
|
|
}
|
|
if (DIKind == DebugDirectivesOnly)
|
|
CmdArgs.push_back("-lineinfo");
|
|
|
|
// Pass -v to ptxas if it was passed to the driver.
|
|
if (Args.hasArg(options::OPT_v))
|
|
CmdArgs.push_back("-v");
|
|
|
|
CmdArgs.push_back("--gpu-name");
|
|
CmdArgs.push_back(Args.MakeArgString(CudaArchToString(gpu_arch)));
|
|
CmdArgs.push_back("--output-file");
|
|
CmdArgs.push_back(Args.MakeArgString(TC.getInputFilename(Output)));
|
|
for (const auto& II : Inputs)
|
|
CmdArgs.push_back(Args.MakeArgString(II.getFilename()));
|
|
|
|
for (const auto& A : Args.getAllArgValues(options::OPT_Xcuda_ptxas))
|
|
CmdArgs.push_back(Args.MakeArgString(A));
|
|
|
|
bool Relocatable = false;
|
|
if (JA.isOffloading(Action::OFK_OpenMP))
|
|
// In OpenMP we need to generate relocatable code.
|
|
Relocatable = Args.hasFlag(options::OPT_fopenmp_relocatable_target,
|
|
options::OPT_fnoopenmp_relocatable_target,
|
|
/*Default=*/true);
|
|
else if (JA.isOffloading(Action::OFK_Cuda))
|
|
Relocatable = Args.hasFlag(options::OPT_fgpu_rdc,
|
|
options::OPT_fno_gpu_rdc, /*Default=*/false);
|
|
|
|
if (Relocatable)
|
|
CmdArgs.push_back("-c");
|
|
|
|
const char *Exec;
|
|
if (Arg *A = Args.getLastArg(options::OPT_ptxas_path_EQ))
|
|
Exec = A->getValue();
|
|
else
|
|
Exec = Args.MakeArgString(TC.GetProgramPath("ptxas"));
|
|
C.addCommand(std::make_unique<Command>(
|
|
JA, *this,
|
|
ResponseFileSupport{ResponseFileSupport::RF_Full, llvm::sys::WEM_UTF8,
|
|
"--options-file"},
|
|
Exec, CmdArgs, Inputs, Output));
|
|
}
|
|
|
|
static bool shouldIncludePTX(const ArgList &Args, const char *gpu_arch) {
|
|
bool includePTX = true;
|
|
for (Arg *A : Args) {
|
|
if (!(A->getOption().matches(options::OPT_cuda_include_ptx_EQ) ||
|
|
A->getOption().matches(options::OPT_no_cuda_include_ptx_EQ)))
|
|
continue;
|
|
A->claim();
|
|
const StringRef ArchStr = A->getValue();
|
|
if (ArchStr == "all" || ArchStr == gpu_arch) {
|
|
includePTX = A->getOption().matches(options::OPT_cuda_include_ptx_EQ);
|
|
continue;
|
|
}
|
|
}
|
|
return includePTX;
|
|
}
|
|
|
|
// All inputs to this linker must be from CudaDeviceActions, as we need to look
|
|
// at the Inputs' Actions in order to figure out which GPU architecture they
|
|
// correspond to.
|
|
void NVPTX::Linker::ConstructJob(Compilation &C, const JobAction &JA,
|
|
const InputInfo &Output,
|
|
const InputInfoList &Inputs,
|
|
const ArgList &Args,
|
|
const char *LinkingOutput) const {
|
|
const auto &TC =
|
|
static_cast<const toolchains::CudaToolChain &>(getToolChain());
|
|
assert(TC.getTriple().isNVPTX() && "Wrong platform");
|
|
|
|
ArgStringList CmdArgs;
|
|
if (TC.CudaInstallation.version() <= CudaVersion::CUDA_100)
|
|
CmdArgs.push_back("--cuda");
|
|
CmdArgs.push_back(TC.getTriple().isArch64Bit() ? "-64" : "-32");
|
|
CmdArgs.push_back(Args.MakeArgString("--create"));
|
|
CmdArgs.push_back(Args.MakeArgString(Output.getFilename()));
|
|
if (mustEmitDebugInfo(Args) == EmitSameDebugInfoAsHost)
|
|
CmdArgs.push_back("-g");
|
|
|
|
for (const auto& II : Inputs) {
|
|
auto *A = II.getAction();
|
|
assert(A->getInputs().size() == 1 &&
|
|
"Device offload action is expected to have a single input");
|
|
const char *gpu_arch_str = A->getOffloadingArch();
|
|
assert(gpu_arch_str &&
|
|
"Device action expected to have associated a GPU architecture!");
|
|
CudaArch gpu_arch = StringToCudaArch(gpu_arch_str);
|
|
|
|
if (II.getType() == types::TY_PP_Asm &&
|
|
!shouldIncludePTX(Args, gpu_arch_str))
|
|
continue;
|
|
// We need to pass an Arch of the form "sm_XX" for cubin files and
|
|
// "compute_XX" for ptx.
|
|
const char *Arch = (II.getType() == types::TY_PP_Asm)
|
|
? CudaArchToVirtualArchString(gpu_arch)
|
|
: gpu_arch_str;
|
|
CmdArgs.push_back(Args.MakeArgString(llvm::Twine("--image=profile=") +
|
|
Arch + ",file=" + II.getFilename()));
|
|
}
|
|
|
|
for (const auto& A : Args.getAllArgValues(options::OPT_Xcuda_fatbinary))
|
|
CmdArgs.push_back(Args.MakeArgString(A));
|
|
|
|
const char *Exec = Args.MakeArgString(TC.GetProgramPath("fatbinary"));
|
|
C.addCommand(std::make_unique<Command>(
|
|
JA, *this,
|
|
ResponseFileSupport{ResponseFileSupport::RF_Full, llvm::sys::WEM_UTF8,
|
|
"--options-file"},
|
|
Exec, CmdArgs, Inputs, Output));
|
|
}
|
|
|
|
void NVPTX::OpenMPLinker::ConstructJob(Compilation &C, const JobAction &JA,
|
|
const InputInfo &Output,
|
|
const InputInfoList &Inputs,
|
|
const ArgList &Args,
|
|
const char *LinkingOutput) const {
|
|
const auto &TC =
|
|
static_cast<const toolchains::CudaToolChain &>(getToolChain());
|
|
assert(TC.getTriple().isNVPTX() && "Wrong platform");
|
|
|
|
ArgStringList CmdArgs;
|
|
|
|
// OpenMP uses nvlink to link cubin files. The result will be embedded in the
|
|
// host binary by the host linker.
|
|
assert(!JA.isHostOffloading(Action::OFK_OpenMP) &&
|
|
"CUDA toolchain not expected for an OpenMP host device.");
|
|
|
|
if (Output.isFilename()) {
|
|
CmdArgs.push_back("-o");
|
|
CmdArgs.push_back(Output.getFilename());
|
|
} else
|
|
assert(Output.isNothing() && "Invalid output.");
|
|
if (mustEmitDebugInfo(Args) == EmitSameDebugInfoAsHost)
|
|
CmdArgs.push_back("-g");
|
|
|
|
if (Args.hasArg(options::OPT_v))
|
|
CmdArgs.push_back("-v");
|
|
|
|
StringRef GPUArch =
|
|
Args.getLastArgValue(options::OPT_march_EQ);
|
|
assert(!GPUArch.empty() && "At least one GPU Arch required for ptxas.");
|
|
|
|
CmdArgs.push_back("-arch");
|
|
CmdArgs.push_back(Args.MakeArgString(GPUArch));
|
|
|
|
// Add paths specified in LIBRARY_PATH environment variable as -L options.
|
|
addDirectoryList(Args, CmdArgs, "-L", "LIBRARY_PATH");
|
|
|
|
// Add paths for the default clang library path.
|
|
SmallString<256> DefaultLibPath =
|
|
llvm::sys::path::parent_path(TC.getDriver().Dir);
|
|
llvm::sys::path::append(DefaultLibPath, "lib" CLANG_LIBDIR_SUFFIX);
|
|
CmdArgs.push_back(Args.MakeArgString(Twine("-L") + DefaultLibPath));
|
|
|
|
for (const auto &II : Inputs) {
|
|
if (II.getType() == types::TY_LLVM_IR ||
|
|
II.getType() == types::TY_LTO_IR ||
|
|
II.getType() == types::TY_LTO_BC ||
|
|
II.getType() == types::TY_LLVM_BC) {
|
|
C.getDriver().Diag(diag::err_drv_no_linker_llvm_support)
|
|
<< getToolChain().getTripleString();
|
|
continue;
|
|
}
|
|
|
|
// Currently, we only pass the input files to the linker, we do not pass
|
|
// any libraries that may be valid only for the host.
|
|
if (!II.isFilename())
|
|
continue;
|
|
|
|
const char *CubinF = C.addTempFile(
|
|
C.getArgs().MakeArgString(getToolChain().getInputFilename(II)));
|
|
|
|
CmdArgs.push_back(CubinF);
|
|
}
|
|
|
|
AddStaticDeviceLibsLinking(C, *this, JA, Inputs, Args, CmdArgs, "nvptx",
|
|
GPUArch, /*isBitCodeSDL=*/false,
|
|
/*postClangLink=*/false);
|
|
|
|
// Find nvlink and pass it as "--nvlink-path=" argument of
|
|
// clang-nvlink-wrapper.
|
|
CmdArgs.push_back(Args.MakeArgString(
|
|
Twine("--nvlink-path=" + getToolChain().GetProgramPath("nvlink"))));
|
|
|
|
const char *Exec =
|
|
Args.MakeArgString(getToolChain().GetProgramPath("clang-nvlink-wrapper"));
|
|
C.addCommand(std::make_unique<Command>(
|
|
JA, *this,
|
|
ResponseFileSupport{ResponseFileSupport::RF_Full, llvm::sys::WEM_UTF8,
|
|
"--options-file"},
|
|
Exec, CmdArgs, Inputs, Output));
|
|
}
|
|
|
|
void NVPTX::getNVPTXTargetFeatures(const Driver &D, const llvm::Triple &Triple,
|
|
const llvm::opt::ArgList &Args,
|
|
std::vector<StringRef> &Features,
|
|
Optional<clang::CudaVersion> Version) {
|
|
if (!Version) {
|
|
CudaInstallationDetector CudaInstallation(D, Triple, Args);
|
|
Version = CudaInstallation.version();
|
|
}
|
|
|
|
// New CUDA versions often introduce new instructions that are only supported
|
|
// by new PTX version, so we need to raise PTX level to enable them in NVPTX
|
|
// back-end.
|
|
const char *PtxFeature = nullptr;
|
|
switch (*Version) {
|
|
#define CASE_CUDA_VERSION(CUDA_VER, PTX_VER) \
|
|
case CudaVersion::CUDA_##CUDA_VER: \
|
|
PtxFeature = "+ptx" #PTX_VER; \
|
|
break;
|
|
CASE_CUDA_VERSION(115, 75);
|
|
CASE_CUDA_VERSION(114, 74);
|
|
CASE_CUDA_VERSION(113, 73);
|
|
CASE_CUDA_VERSION(112, 72);
|
|
CASE_CUDA_VERSION(111, 71);
|
|
CASE_CUDA_VERSION(110, 70);
|
|
CASE_CUDA_VERSION(102, 65);
|
|
CASE_CUDA_VERSION(101, 64);
|
|
CASE_CUDA_VERSION(100, 63);
|
|
CASE_CUDA_VERSION(92, 61);
|
|
CASE_CUDA_VERSION(91, 61);
|
|
CASE_CUDA_VERSION(90, 60);
|
|
#undef CASE_CUDA_VERSION
|
|
default:
|
|
PtxFeature = "+ptx42";
|
|
}
|
|
Features.push_back(PtxFeature);
|
|
}
|
|
|
|
/// CUDA toolchain. Our assembler is ptxas, and our "linker" is fatbinary,
|
|
/// which isn't properly a linker but nonetheless performs the step of stitching
|
|
/// together object files from the assembler into a single blob.
|
|
|
|
CudaToolChain::CudaToolChain(const Driver &D, const llvm::Triple &Triple,
|
|
const ToolChain &HostTC, const ArgList &Args,
|
|
const Action::OffloadKind OK)
|
|
: ToolChain(D, Triple, Args), HostTC(HostTC),
|
|
CudaInstallation(D, HostTC.getTriple(), Args), OK(OK) {
|
|
if (CudaInstallation.isValid()) {
|
|
CudaInstallation.WarnIfUnsupportedVersion();
|
|
getProgramPaths().push_back(std::string(CudaInstallation.getBinPath()));
|
|
}
|
|
// Lookup binaries into the driver directory, this is used to
|
|
// discover the clang-offload-bundler executable.
|
|
getProgramPaths().push_back(getDriver().Dir);
|
|
}
|
|
|
|
std::string CudaToolChain::getInputFilename(const InputInfo &Input) const {
|
|
// Only object files are changed, for example assembly files keep their .s
|
|
// extensions. CUDA also continues to use .o as they don't use nvlink but
|
|
// fatbinary.
|
|
if (!(OK == Action::OFK_OpenMP && Input.getType() == types::TY_Object))
|
|
return ToolChain::getInputFilename(Input);
|
|
|
|
// Replace extension for object files with cubin because nvlink relies on
|
|
// these particular file names.
|
|
SmallString<256> Filename(ToolChain::getInputFilename(Input));
|
|
llvm::sys::path::replace_extension(Filename, "cubin");
|
|
return std::string(Filename.str());
|
|
}
|
|
|
|
void CudaToolChain::addClangTargetOptions(
|
|
const llvm::opt::ArgList &DriverArgs,
|
|
llvm::opt::ArgStringList &CC1Args,
|
|
Action::OffloadKind DeviceOffloadingKind) const {
|
|
HostTC.addClangTargetOptions(DriverArgs, CC1Args, DeviceOffloadingKind);
|
|
|
|
StringRef GpuArch = DriverArgs.getLastArgValue(options::OPT_march_EQ);
|
|
assert(!GpuArch.empty() && "Must have an explicit GPU arch.");
|
|
assert((DeviceOffloadingKind == Action::OFK_OpenMP ||
|
|
DeviceOffloadingKind == Action::OFK_Cuda) &&
|
|
"Only OpenMP or CUDA offloading kinds are supported for NVIDIA GPUs.");
|
|
|
|
if (DeviceOffloadingKind == Action::OFK_Cuda) {
|
|
CC1Args.append(
|
|
{"-fcuda-is-device", "-mllvm", "-enable-memcpyopt-without-libcalls"});
|
|
|
|
if (DriverArgs.hasFlag(options::OPT_fcuda_approx_transcendentals,
|
|
options::OPT_fno_cuda_approx_transcendentals, false))
|
|
CC1Args.push_back("-fcuda-approx-transcendentals");
|
|
}
|
|
|
|
if (DriverArgs.hasArg(options::OPT_nogpulib))
|
|
return;
|
|
|
|
if (DeviceOffloadingKind == Action::OFK_OpenMP &&
|
|
DriverArgs.hasArg(options::OPT_S))
|
|
return;
|
|
|
|
std::string LibDeviceFile = CudaInstallation.getLibDeviceFile(GpuArch);
|
|
if (LibDeviceFile.empty()) {
|
|
getDriver().Diag(diag::err_drv_no_cuda_libdevice) << GpuArch;
|
|
return;
|
|
}
|
|
|
|
CC1Args.push_back("-mlink-builtin-bitcode");
|
|
CC1Args.push_back(DriverArgs.MakeArgString(LibDeviceFile));
|
|
|
|
clang::CudaVersion CudaInstallationVersion = CudaInstallation.version();
|
|
|
|
std::vector<StringRef> Features;
|
|
NVPTX::getNVPTXTargetFeatures(getDriver(), getTriple(), DriverArgs, Features,
|
|
CudaInstallationVersion);
|
|
for (StringRef PtxFeature : Features)
|
|
CC1Args.append({"-target-feature", DriverArgs.MakeArgString(PtxFeature)});
|
|
if (DriverArgs.hasFlag(options::OPT_fcuda_short_ptr,
|
|
options::OPT_fno_cuda_short_ptr, false))
|
|
CC1Args.append({"-mllvm", "--nvptx-short-ptr"});
|
|
|
|
if (CudaInstallationVersion >= CudaVersion::UNKNOWN)
|
|
CC1Args.push_back(
|
|
DriverArgs.MakeArgString(Twine("-target-sdk-version=") +
|
|
CudaVersionToString(CudaInstallationVersion)));
|
|
|
|
if (DeviceOffloadingKind == Action::OFK_OpenMP) {
|
|
if (CudaInstallationVersion < CudaVersion::CUDA_92) {
|
|
getDriver().Diag(
|
|
diag::err_drv_omp_offload_target_cuda_version_not_support)
|
|
<< CudaVersionToString(CudaInstallationVersion);
|
|
return;
|
|
}
|
|
|
|
// Link the bitcode library late if we're using device LTO.
|
|
if (getDriver().isUsingLTO(/* IsOffload */ true))
|
|
return;
|
|
|
|
addOpenMPDeviceRTL(getDriver(), DriverArgs, CC1Args, GpuArch.str(),
|
|
getTriple());
|
|
AddStaticDeviceLibsPostLinking(getDriver(), DriverArgs, CC1Args, "nvptx",
|
|
GpuArch, /*isBitCodeSDL=*/true,
|
|
/*postClangLink=*/true);
|
|
}
|
|
}
|
|
|
|
llvm::DenormalMode CudaToolChain::getDefaultDenormalModeForType(
|
|
const llvm::opt::ArgList &DriverArgs, const JobAction &JA,
|
|
const llvm::fltSemantics *FPType) const {
|
|
if (JA.getOffloadingDeviceKind() == Action::OFK_Cuda) {
|
|
if (FPType && FPType == &llvm::APFloat::IEEEsingle() &&
|
|
DriverArgs.hasFlag(options::OPT_fgpu_flush_denormals_to_zero,
|
|
options::OPT_fno_gpu_flush_denormals_to_zero, false))
|
|
return llvm::DenormalMode::getPreserveSign();
|
|
}
|
|
|
|
assert(JA.getOffloadingDeviceKind() != Action::OFK_Host);
|
|
return llvm::DenormalMode::getIEEE();
|
|
}
|
|
|
|
bool CudaToolChain::supportsDebugInfoOption(const llvm::opt::Arg *A) const {
|
|
const Option &O = A->getOption();
|
|
return (O.matches(options::OPT_gN_Group) &&
|
|
!O.matches(options::OPT_gmodules)) ||
|
|
O.matches(options::OPT_g_Flag) ||
|
|
O.matches(options::OPT_ggdbN_Group) || O.matches(options::OPT_ggdb) ||
|
|
O.matches(options::OPT_gdwarf) || O.matches(options::OPT_gdwarf_2) ||
|
|
O.matches(options::OPT_gdwarf_3) || O.matches(options::OPT_gdwarf_4) ||
|
|
O.matches(options::OPT_gdwarf_5) ||
|
|
O.matches(options::OPT_gcolumn_info);
|
|
}
|
|
|
|
void CudaToolChain::adjustDebugInfoKind(
|
|
codegenoptions::DebugInfoKind &DebugInfoKind, const ArgList &Args) const {
|
|
switch (mustEmitDebugInfo(Args)) {
|
|
case DisableDebugInfo:
|
|
DebugInfoKind = codegenoptions::NoDebugInfo;
|
|
break;
|
|
case DebugDirectivesOnly:
|
|
DebugInfoKind = codegenoptions::DebugDirectivesOnly;
|
|
break;
|
|
case EmitSameDebugInfoAsHost:
|
|
// Use same debug info level as the host.
|
|
break;
|
|
}
|
|
}
|
|
|
|
void CudaToolChain::AddCudaIncludeArgs(const ArgList &DriverArgs,
|
|
ArgStringList &CC1Args) const {
|
|
// Check our CUDA version if we're going to include the CUDA headers.
|
|
if (!DriverArgs.hasArg(options::OPT_nogpuinc) &&
|
|
!DriverArgs.hasArg(options::OPT_no_cuda_version_check)) {
|
|
StringRef Arch = DriverArgs.getLastArgValue(options::OPT_march_EQ);
|
|
assert(!Arch.empty() && "Must have an explicit GPU arch.");
|
|
CudaInstallation.CheckCudaVersionSupportsArch(StringToCudaArch(Arch));
|
|
}
|
|
CudaInstallation.AddCudaIncludeArgs(DriverArgs, CC1Args);
|
|
}
|
|
|
|
llvm::opt::DerivedArgList *
|
|
CudaToolChain::TranslateArgs(const llvm::opt::DerivedArgList &Args,
|
|
StringRef BoundArch,
|
|
Action::OffloadKind DeviceOffloadKind) const {
|
|
DerivedArgList *DAL =
|
|
HostTC.TranslateArgs(Args, BoundArch, DeviceOffloadKind);
|
|
if (!DAL)
|
|
DAL = new DerivedArgList(Args.getBaseArgs());
|
|
|
|
const OptTable &Opts = getDriver().getOpts();
|
|
|
|
// For OpenMP device offloading, append derived arguments. Make sure
|
|
// flags are not duplicated.
|
|
// Also append the compute capability.
|
|
if (DeviceOffloadKind == Action::OFK_OpenMP) {
|
|
for (Arg *A : Args)
|
|
if (!llvm::is_contained(*DAL, A))
|
|
DAL->append(A);
|
|
|
|
StringRef Arch = DAL->getLastArgValue(options::OPT_march_EQ);
|
|
if (Arch.empty())
|
|
DAL->AddJoinedArg(nullptr, Opts.getOption(options::OPT_march_EQ),
|
|
CLANG_OPENMP_NVPTX_DEFAULT_ARCH);
|
|
|
|
return DAL;
|
|
}
|
|
|
|
for (Arg *A : Args) {
|
|
DAL->append(A);
|
|
}
|
|
|
|
if (!BoundArch.empty()) {
|
|
DAL->eraseArg(options::OPT_march_EQ);
|
|
DAL->AddJoinedArg(nullptr, Opts.getOption(options::OPT_march_EQ), BoundArch);
|
|
}
|
|
return DAL;
|
|
}
|
|
|
|
Tool *CudaToolChain::buildAssembler() const {
|
|
return new tools::NVPTX::Assembler(*this);
|
|
}
|
|
|
|
Tool *CudaToolChain::buildLinker() const {
|
|
if (OK == Action::OFK_OpenMP)
|
|
return new tools::NVPTX::OpenMPLinker(*this);
|
|
return new tools::NVPTX::Linker(*this);
|
|
}
|
|
|
|
void CudaToolChain::addClangWarningOptions(ArgStringList &CC1Args) const {
|
|
HostTC.addClangWarningOptions(CC1Args);
|
|
}
|
|
|
|
ToolChain::CXXStdlibType
|
|
CudaToolChain::GetCXXStdlibType(const ArgList &Args) const {
|
|
return HostTC.GetCXXStdlibType(Args);
|
|
}
|
|
|
|
void CudaToolChain::AddClangSystemIncludeArgs(const ArgList &DriverArgs,
|
|
ArgStringList &CC1Args) const {
|
|
HostTC.AddClangSystemIncludeArgs(DriverArgs, CC1Args);
|
|
|
|
if (!DriverArgs.hasArg(options::OPT_nogpuinc) && CudaInstallation.isValid())
|
|
CC1Args.append(
|
|
{"-internal-isystem",
|
|
DriverArgs.MakeArgString(CudaInstallation.getIncludePath())});
|
|
}
|
|
|
|
void CudaToolChain::AddClangCXXStdlibIncludeArgs(const ArgList &Args,
|
|
ArgStringList &CC1Args) const {
|
|
HostTC.AddClangCXXStdlibIncludeArgs(Args, CC1Args);
|
|
}
|
|
|
|
void CudaToolChain::AddIAMCUIncludeArgs(const ArgList &Args,
|
|
ArgStringList &CC1Args) const {
|
|
HostTC.AddIAMCUIncludeArgs(Args, CC1Args);
|
|
}
|
|
|
|
SanitizerMask CudaToolChain::getSupportedSanitizers() const {
|
|
// The CudaToolChain only supports sanitizers in the sense that it allows
|
|
// sanitizer arguments on the command line if they are supported by the host
|
|
// toolchain. The CudaToolChain will actually ignore any command line
|
|
// arguments for any of these "supported" sanitizers. That means that no
|
|
// sanitization of device code is actually supported at this time.
|
|
//
|
|
// This behavior is necessary because the host and device toolchains
|
|
// invocations often share the command line, so the device toolchain must
|
|
// tolerate flags meant only for the host toolchain.
|
|
return HostTC.getSupportedSanitizers();
|
|
}
|
|
|
|
VersionTuple CudaToolChain::computeMSVCVersion(const Driver *D,
|
|
const ArgList &Args) const {
|
|
return HostTC.computeMSVCVersion(D, Args);
|
|
}
|