1 //===- VirtualFileSystem.cpp - Virtual File System Layer ------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the VirtualFileSystem interface. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/Support/VirtualFileSystem.h" 14 #include "llvm/ADT/ArrayRef.h" 15 #include "llvm/ADT/DenseMap.h" 16 #include "llvm/ADT/IntrusiveRefCntPtr.h" 17 #include "llvm/ADT/None.h" 18 #include "llvm/ADT/Optional.h" 19 #include "llvm/ADT/STLExtras.h" 20 #include "llvm/ADT/SmallString.h" 21 #include "llvm/ADT/SmallVector.h" 22 #include "llvm/ADT/StringRef.h" 23 #include "llvm/ADT/StringSet.h" 24 #include "llvm/ADT/Twine.h" 25 #include "llvm/ADT/iterator_range.h" 26 #include "llvm/Config/llvm-config.h" 27 #include "llvm/Support/Casting.h" 28 #include "llvm/Support/Chrono.h" 29 #include "llvm/Support/Compiler.h" 30 #include "llvm/Support/Debug.h" 31 #include "llvm/Support/Errc.h" 32 #include "llvm/Support/ErrorHandling.h" 33 #include "llvm/Support/ErrorOr.h" 34 #include "llvm/Support/FileSystem.h" 35 #include "llvm/Support/MemoryBuffer.h" 36 #include "llvm/Support/Path.h" 37 #include "llvm/Support/Process.h" 38 #include "llvm/Support/SMLoc.h" 39 #include "llvm/Support/SourceMgr.h" 40 #include "llvm/Support/YAMLParser.h" 41 #include "llvm/Support/raw_ostream.h" 42 #include <algorithm> 43 #include <atomic> 44 #include <cassert> 45 #include <cstdint> 46 #include <iterator> 47 #include <limits> 48 #include <map> 49 #include <memory> 50 #include <mutex> 51 #include <string> 52 #include <system_error> 53 #include <utility> 54 #include <vector> 55 56 using namespace llvm; 57 using namespace llvm::vfs; 58 59 using llvm::sys::fs::file_t; 60 using llvm::sys::fs::file_status; 61 using llvm::sys::fs::file_type; 62 using llvm::sys::fs::kInvalidFile; 63 using llvm::sys::fs::perms; 64 using llvm::sys::fs::UniqueID; 65 66 Status::Status(const file_status &Status) 67 : UID(Status.getUniqueID()), MTime(Status.getLastModificationTime()), 68 User(Status.getUser()), Group(Status.getGroup()), Size(Status.getSize()), 69 Type(Status.type()), Perms(Status.permissions()) {} 70 71 Status::Status(const Twine &Name, UniqueID UID, sys::TimePoint<> MTime, 72 uint32_t User, uint32_t Group, uint64_t Size, file_type Type, 73 perms Perms) 74 : Name(Name.str()), UID(UID), MTime(MTime), User(User), Group(Group), 75 Size(Size), Type(Type), Perms(Perms) {} 76 77 Status Status::copyWithNewName(const Status &In, const Twine &NewName) { 78 return Status(NewName, In.getUniqueID(), In.getLastModificationTime(), 79 In.getUser(), In.getGroup(), In.getSize(), In.getType(), 80 In.getPermissions()); 81 } 82 83 Status Status::copyWithNewName(const file_status &In, const Twine &NewName) { 84 return Status(NewName, In.getUniqueID(), In.getLastModificationTime(), 85 In.getUser(), In.getGroup(), In.getSize(), In.type(), 86 In.permissions()); 87 } 88 89 bool Status::equivalent(const Status &Other) const { 90 assert(isStatusKnown() && Other.isStatusKnown()); 91 return getUniqueID() == Other.getUniqueID(); 92 } 93 94 bool Status::isDirectory() const { return Type == file_type::directory_file; } 95 96 bool Status::isRegularFile() const { return Type == file_type::regular_file; } 97 98 bool Status::isOther() const { 99 return exists() && !isRegularFile() && !isDirectory() && !isSymlink(); 100 } 101 102 bool Status::isSymlink() const { return Type == file_type::symlink_file; } 103 104 bool Status::isStatusKnown() const { return Type != file_type::status_error; } 105 106 bool Status::exists() const { 107 return isStatusKnown() && Type != file_type::file_not_found; 108 } 109 110 File::~File() = default; 111 112 FileSystem::~FileSystem() = default; 113 114 ErrorOr<std::unique_ptr<MemoryBuffer>> 115 FileSystem::getBufferForFile(const llvm::Twine &Name, int64_t FileSize, 116 bool RequiresNullTerminator, bool IsVolatile) { 117 auto F = openFileForRead(Name); 118 if (!F) 119 return F.getError(); 120 121 return (*F)->getBuffer(Name, FileSize, RequiresNullTerminator, IsVolatile); 122 } 123 124 std::error_code FileSystem::makeAbsolute(SmallVectorImpl<char> &Path) const { 125 if (llvm::sys::path::is_absolute(Path)) 126 return {}; 127 128 auto WorkingDir = getCurrentWorkingDirectory(); 129 if (!WorkingDir) 130 return WorkingDir.getError(); 131 132 llvm::sys::fs::make_absolute(WorkingDir.get(), Path); 133 return {}; 134 } 135 136 std::error_code FileSystem::getRealPath(const Twine &Path, 137 SmallVectorImpl<char> &Output) const { 138 return errc::operation_not_permitted; 139 } 140 141 std::error_code FileSystem::isLocal(const Twine &Path, bool &Result) { 142 return errc::operation_not_permitted; 143 } 144 145 bool FileSystem::exists(const Twine &Path) { 146 auto Status = status(Path); 147 return Status && Status->exists(); 148 } 149 150 #ifndef NDEBUG 151 static bool isTraversalComponent(StringRef Component) { 152 return Component.equals("..") || Component.equals("."); 153 } 154 155 static bool pathHasTraversal(StringRef Path) { 156 using namespace llvm::sys; 157 158 for (StringRef Comp : llvm::make_range(path::begin(Path), path::end(Path))) 159 if (isTraversalComponent(Comp)) 160 return true; 161 return false; 162 } 163 #endif 164 165 //===-----------------------------------------------------------------------===/ 166 // RealFileSystem implementation 167 //===-----------------------------------------------------------------------===/ 168 169 namespace { 170 171 /// Wrapper around a raw file descriptor. 172 class RealFile : public File { 173 friend class RealFileSystem; 174 175 file_t FD; 176 Status S; 177 std::string RealName; 178 179 RealFile(file_t RawFD, StringRef NewName, StringRef NewRealPathName) 180 : FD(RawFD), S(NewName, {}, {}, {}, {}, {}, 181 llvm::sys::fs::file_type::status_error, {}), 182 RealName(NewRealPathName.str()) { 183 assert(FD != kInvalidFile && "Invalid or inactive file descriptor"); 184 } 185 186 public: 187 ~RealFile() override; 188 189 ErrorOr<Status> status() override; 190 ErrorOr<std::string> getName() override; 191 ErrorOr<std::unique_ptr<MemoryBuffer>> getBuffer(const Twine &Name, 192 int64_t FileSize, 193 bool RequiresNullTerminator, 194 bool IsVolatile) override; 195 std::error_code close() override; 196 }; 197 198 } // namespace 199 200 RealFile::~RealFile() { close(); } 201 202 ErrorOr<Status> RealFile::status() { 203 assert(FD != kInvalidFile && "cannot stat closed file"); 204 if (!S.isStatusKnown()) { 205 file_status RealStatus; 206 if (std::error_code EC = sys::fs::status(FD, RealStatus)) 207 return EC; 208 S = Status::copyWithNewName(RealStatus, S.getName()); 209 } 210 return S; 211 } 212 213 ErrorOr<std::string> RealFile::getName() { 214 return RealName.empty() ? S.getName().str() : RealName; 215 } 216 217 ErrorOr<std::unique_ptr<MemoryBuffer>> 218 RealFile::getBuffer(const Twine &Name, int64_t FileSize, 219 bool RequiresNullTerminator, bool IsVolatile) { 220 assert(FD != kInvalidFile && "cannot get buffer for closed file"); 221 return MemoryBuffer::getOpenFile(FD, Name, FileSize, RequiresNullTerminator, 222 IsVolatile); 223 } 224 225 std::error_code RealFile::close() { 226 std::error_code EC = sys::fs::closeFile(FD); 227 FD = kInvalidFile; 228 return EC; 229 } 230 231 namespace { 232 233 /// A file system according to your operating system. 234 /// This may be linked to the process's working directory, or maintain its own. 235 /// 236 /// Currently, its own working directory is emulated by storing the path and 237 /// sending absolute paths to llvm::sys::fs:: functions. 238 /// A more principled approach would be to push this down a level, modelling 239 /// the working dir as an llvm::sys::fs::WorkingDir or similar. 240 /// This would enable the use of openat()-style functions on some platforms. 241 class RealFileSystem : public FileSystem { 242 public: 243 explicit RealFileSystem(bool LinkCWDToProcess) { 244 if (!LinkCWDToProcess) { 245 SmallString<128> PWD, RealPWD; 246 if (llvm::sys::fs::current_path(PWD)) 247 return; // Awful, but nothing to do here. 248 if (llvm::sys::fs::real_path(PWD, RealPWD)) 249 WD = {PWD, PWD}; 250 else 251 WD = {PWD, RealPWD}; 252 } 253 } 254 255 ErrorOr<Status> status(const Twine &Path) override; 256 ErrorOr<std::unique_ptr<File>> openFileForRead(const Twine &Path) override; 257 directory_iterator dir_begin(const Twine &Dir, std::error_code &EC) override; 258 259 llvm::ErrorOr<std::string> getCurrentWorkingDirectory() const override; 260 std::error_code setCurrentWorkingDirectory(const Twine &Path) override; 261 std::error_code isLocal(const Twine &Path, bool &Result) override; 262 std::error_code getRealPath(const Twine &Path, 263 SmallVectorImpl<char> &Output) const override; 264 265 private: 266 // If this FS has its own working dir, use it to make Path absolute. 267 // The returned twine is safe to use as long as both Storage and Path live. 268 Twine adjustPath(const Twine &Path, SmallVectorImpl<char> &Storage) const { 269 if (!WD) 270 return Path; 271 Path.toVector(Storage); 272 sys::fs::make_absolute(WD->Resolved, Storage); 273 return Storage; 274 } 275 276 struct WorkingDirectory { 277 // The current working directory, without symlinks resolved. (echo $PWD). 278 SmallString<128> Specified; 279 // The current working directory, with links resolved. (readlink .). 280 SmallString<128> Resolved; 281 }; 282 Optional<WorkingDirectory> WD; 283 }; 284 285 } // namespace 286 287 ErrorOr<Status> RealFileSystem::status(const Twine &Path) { 288 SmallString<256> Storage; 289 sys::fs::file_status RealStatus; 290 if (std::error_code EC = 291 sys::fs::status(adjustPath(Path, Storage), RealStatus)) 292 return EC; 293 return Status::copyWithNewName(RealStatus, Path); 294 } 295 296 ErrorOr<std::unique_ptr<File>> 297 RealFileSystem::openFileForRead(const Twine &Name) { 298 SmallString<256> RealName, Storage; 299 Expected<file_t> FDOrErr = sys::fs::openNativeFileForRead( 300 adjustPath(Name, Storage), sys::fs::OF_None, &RealName); 301 if (!FDOrErr) 302 return errorToErrorCode(FDOrErr.takeError()); 303 return std::unique_ptr<File>( 304 new RealFile(*FDOrErr, Name.str(), RealName.str())); 305 } 306 307 llvm::ErrorOr<std::string> RealFileSystem::getCurrentWorkingDirectory() const { 308 if (WD) 309 return std::string(WD->Specified.str()); 310 311 SmallString<128> Dir; 312 if (std::error_code EC = llvm::sys::fs::current_path(Dir)) 313 return EC; 314 return std::string(Dir.str()); 315 } 316 317 std::error_code RealFileSystem::setCurrentWorkingDirectory(const Twine &Path) { 318 if (!WD) 319 return llvm::sys::fs::set_current_path(Path); 320 321 SmallString<128> Absolute, Resolved, Storage; 322 adjustPath(Path, Storage).toVector(Absolute); 323 bool IsDir; 324 if (auto Err = llvm::sys::fs::is_directory(Absolute, IsDir)) 325 return Err; 326 if (!IsDir) 327 return std::make_error_code(std::errc::not_a_directory); 328 if (auto Err = llvm::sys::fs::real_path(Absolute, Resolved)) 329 return Err; 330 WD = {Absolute, Resolved}; 331 return std::error_code(); 332 } 333 334 std::error_code RealFileSystem::isLocal(const Twine &Path, bool &Result) { 335 SmallString<256> Storage; 336 return llvm::sys::fs::is_local(adjustPath(Path, Storage), Result); 337 } 338 339 std::error_code 340 RealFileSystem::getRealPath(const Twine &Path, 341 SmallVectorImpl<char> &Output) const { 342 SmallString<256> Storage; 343 return llvm::sys::fs::real_path(adjustPath(Path, Storage), Output); 344 } 345 346 IntrusiveRefCntPtr<FileSystem> vfs::getRealFileSystem() { 347 static IntrusiveRefCntPtr<FileSystem> FS(new RealFileSystem(true)); 348 return FS; 349 } 350 351 std::unique_ptr<FileSystem> vfs::createPhysicalFileSystem() { 352 return std::make_unique<RealFileSystem>(false); 353 } 354 355 namespace { 356 357 class RealFSDirIter : public llvm::vfs::detail::DirIterImpl { 358 llvm::sys::fs::directory_iterator Iter; 359 360 public: 361 RealFSDirIter(const Twine &Path, std::error_code &EC) : Iter(Path, EC) { 362 if (Iter != llvm::sys::fs::directory_iterator()) 363 CurrentEntry = directory_entry(Iter->path(), Iter->type()); 364 } 365 366 std::error_code increment() override { 367 std::error_code EC; 368 Iter.increment(EC); 369 CurrentEntry = (Iter == llvm::sys::fs::directory_iterator()) 370 ? directory_entry() 371 : directory_entry(Iter->path(), Iter->type()); 372 return EC; 373 } 374 }; 375 376 } // namespace 377 378 directory_iterator RealFileSystem::dir_begin(const Twine &Dir, 379 std::error_code &EC) { 380 SmallString<128> Storage; 381 return directory_iterator( 382 std::make_shared<RealFSDirIter>(adjustPath(Dir, Storage), EC)); 383 } 384 385 //===-----------------------------------------------------------------------===/ 386 // OverlayFileSystem implementation 387 //===-----------------------------------------------------------------------===/ 388 389 OverlayFileSystem::OverlayFileSystem(IntrusiveRefCntPtr<FileSystem> BaseFS) { 390 FSList.push_back(std::move(BaseFS)); 391 } 392 393 void OverlayFileSystem::pushOverlay(IntrusiveRefCntPtr<FileSystem> FS) { 394 FSList.push_back(FS); 395 // Synchronize added file systems by duplicating the working directory from 396 // the first one in the list. 397 FS->setCurrentWorkingDirectory(getCurrentWorkingDirectory().get()); 398 } 399 400 ErrorOr<Status> OverlayFileSystem::status(const Twine &Path) { 401 // FIXME: handle symlinks that cross file systems 402 for (iterator I = overlays_begin(), E = overlays_end(); I != E; ++I) { 403 ErrorOr<Status> Status = (*I)->status(Path); 404 if (Status || Status.getError() != llvm::errc::no_such_file_or_directory) 405 return Status; 406 } 407 return make_error_code(llvm::errc::no_such_file_or_directory); 408 } 409 410 ErrorOr<std::unique_ptr<File>> 411 OverlayFileSystem::openFileForRead(const llvm::Twine &Path) { 412 // FIXME: handle symlinks that cross file systems 413 for (iterator I = overlays_begin(), E = overlays_end(); I != E; ++I) { 414 auto Result = (*I)->openFileForRead(Path); 415 if (Result || Result.getError() != llvm::errc::no_such_file_or_directory) 416 return Result; 417 } 418 return make_error_code(llvm::errc::no_such_file_or_directory); 419 } 420 421 llvm::ErrorOr<std::string> 422 OverlayFileSystem::getCurrentWorkingDirectory() const { 423 // All file systems are synchronized, just take the first working directory. 424 return FSList.front()->getCurrentWorkingDirectory(); 425 } 426 427 std::error_code 428 OverlayFileSystem::setCurrentWorkingDirectory(const Twine &Path) { 429 for (auto &FS : FSList) 430 if (std::error_code EC = FS->setCurrentWorkingDirectory(Path)) 431 return EC; 432 return {}; 433 } 434 435 std::error_code OverlayFileSystem::isLocal(const Twine &Path, bool &Result) { 436 for (auto &FS : FSList) 437 if (FS->exists(Path)) 438 return FS->isLocal(Path, Result); 439 return errc::no_such_file_or_directory; 440 } 441 442 std::error_code 443 OverlayFileSystem::getRealPath(const Twine &Path, 444 SmallVectorImpl<char> &Output) const { 445 for (auto &FS : FSList) 446 if (FS->exists(Path)) 447 return FS->getRealPath(Path, Output); 448 return errc::no_such_file_or_directory; 449 } 450 451 llvm::vfs::detail::DirIterImpl::~DirIterImpl() = default; 452 453 namespace { 454 455 class OverlayFSDirIterImpl : public llvm::vfs::detail::DirIterImpl { 456 OverlayFileSystem &Overlays; 457 std::string Path; 458 OverlayFileSystem::iterator CurrentFS; 459 directory_iterator CurrentDirIter; 460 llvm::StringSet<> SeenNames; 461 462 std::error_code incrementFS() { 463 assert(CurrentFS != Overlays.overlays_end() && "incrementing past end"); 464 ++CurrentFS; 465 for (auto E = Overlays.overlays_end(); CurrentFS != E; ++CurrentFS) { 466 std::error_code EC; 467 CurrentDirIter = (*CurrentFS)->dir_begin(Path, EC); 468 if (EC && EC != errc::no_such_file_or_directory) 469 return EC; 470 if (CurrentDirIter != directory_iterator()) 471 break; // found 472 } 473 return {}; 474 } 475 476 std::error_code incrementDirIter(bool IsFirstTime) { 477 assert((IsFirstTime || CurrentDirIter != directory_iterator()) && 478 "incrementing past end"); 479 std::error_code EC; 480 if (!IsFirstTime) 481 CurrentDirIter.increment(EC); 482 if (!EC && CurrentDirIter == directory_iterator()) 483 EC = incrementFS(); 484 return EC; 485 } 486 487 std::error_code incrementImpl(bool IsFirstTime) { 488 while (true) { 489 std::error_code EC = incrementDirIter(IsFirstTime); 490 if (EC || CurrentDirIter == directory_iterator()) { 491 CurrentEntry = directory_entry(); 492 return EC; 493 } 494 CurrentEntry = *CurrentDirIter; 495 StringRef Name = llvm::sys::path::filename(CurrentEntry.path()); 496 if (SeenNames.insert(Name).second) 497 return EC; // name not seen before 498 } 499 llvm_unreachable("returned above"); 500 } 501 502 public: 503 OverlayFSDirIterImpl(const Twine &Path, OverlayFileSystem &FS, 504 std::error_code &EC) 505 : Overlays(FS), Path(Path.str()), CurrentFS(Overlays.overlays_begin()) { 506 CurrentDirIter = (*CurrentFS)->dir_begin(Path, EC); 507 EC = incrementImpl(true); 508 } 509 510 std::error_code increment() override { return incrementImpl(false); } 511 }; 512 513 } // namespace 514 515 directory_iterator OverlayFileSystem::dir_begin(const Twine &Dir, 516 std::error_code &EC) { 517 return directory_iterator( 518 std::make_shared<OverlayFSDirIterImpl>(Dir, *this, EC)); 519 } 520 521 void ProxyFileSystem::anchor() {} 522 523 namespace llvm { 524 namespace vfs { 525 526 namespace detail { 527 528 enum InMemoryNodeKind { IME_File, IME_Directory, IME_HardLink }; 529 530 /// The in memory file system is a tree of Nodes. Every node can either be a 531 /// file , hardlink or a directory. 532 class InMemoryNode { 533 InMemoryNodeKind Kind; 534 std::string FileName; 535 536 public: 537 InMemoryNode(llvm::StringRef FileName, InMemoryNodeKind Kind) 538 : Kind(Kind), FileName(std::string(llvm::sys::path::filename(FileName))) { 539 } 540 virtual ~InMemoryNode() = default; 541 542 /// Get the filename of this node (the name without the directory part). 543 StringRef getFileName() const { return FileName; } 544 InMemoryNodeKind getKind() const { return Kind; } 545 virtual std::string toString(unsigned Indent) const = 0; 546 }; 547 548 class InMemoryFile : public InMemoryNode { 549 Status Stat; 550 std::unique_ptr<llvm::MemoryBuffer> Buffer; 551 552 public: 553 InMemoryFile(Status Stat, std::unique_ptr<llvm::MemoryBuffer> Buffer) 554 : InMemoryNode(Stat.getName(), IME_File), Stat(std::move(Stat)), 555 Buffer(std::move(Buffer)) {} 556 557 /// Return the \p Status for this node. \p RequestedName should be the name 558 /// through which the caller referred to this node. It will override 559 /// \p Status::Name in the return value, to mimic the behavior of \p RealFile. 560 Status getStatus(const Twine &RequestedName) const { 561 return Status::copyWithNewName(Stat, RequestedName); 562 } 563 llvm::MemoryBuffer *getBuffer() const { return Buffer.get(); } 564 565 std::string toString(unsigned Indent) const override { 566 return (std::string(Indent, ' ') + Stat.getName() + "\n").str(); 567 } 568 569 static bool classof(const InMemoryNode *N) { 570 return N->getKind() == IME_File; 571 } 572 }; 573 574 namespace { 575 576 class InMemoryHardLink : public InMemoryNode { 577 const InMemoryFile &ResolvedFile; 578 579 public: 580 InMemoryHardLink(StringRef Path, const InMemoryFile &ResolvedFile) 581 : InMemoryNode(Path, IME_HardLink), ResolvedFile(ResolvedFile) {} 582 const InMemoryFile &getResolvedFile() const { return ResolvedFile; } 583 584 std::string toString(unsigned Indent) const override { 585 return std::string(Indent, ' ') + "HardLink to -> " + 586 ResolvedFile.toString(0); 587 } 588 589 static bool classof(const InMemoryNode *N) { 590 return N->getKind() == IME_HardLink; 591 } 592 }; 593 594 /// Adapt a InMemoryFile for VFS' File interface. The goal is to make 595 /// \p InMemoryFileAdaptor mimic as much as possible the behavior of 596 /// \p RealFile. 597 class InMemoryFileAdaptor : public File { 598 const InMemoryFile &Node; 599 /// The name to use when returning a Status for this file. 600 std::string RequestedName; 601 602 public: 603 explicit InMemoryFileAdaptor(const InMemoryFile &Node, 604 std::string RequestedName) 605 : Node(Node), RequestedName(std::move(RequestedName)) {} 606 607 llvm::ErrorOr<Status> status() override { 608 return Node.getStatus(RequestedName); 609 } 610 611 llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> 612 getBuffer(const Twine &Name, int64_t FileSize, bool RequiresNullTerminator, 613 bool IsVolatile) override { 614 llvm::MemoryBuffer *Buf = Node.getBuffer(); 615 return llvm::MemoryBuffer::getMemBuffer( 616 Buf->getBuffer(), Buf->getBufferIdentifier(), RequiresNullTerminator); 617 } 618 619 std::error_code close() override { return {}; } 620 }; 621 } // namespace 622 623 class InMemoryDirectory : public InMemoryNode { 624 Status Stat; 625 llvm::StringMap<std::unique_ptr<InMemoryNode>> Entries; 626 627 public: 628 InMemoryDirectory(Status Stat) 629 : InMemoryNode(Stat.getName(), IME_Directory), Stat(std::move(Stat)) {} 630 631 /// Return the \p Status for this node. \p RequestedName should be the name 632 /// through which the caller referred to this node. It will override 633 /// \p Status::Name in the return value, to mimic the behavior of \p RealFile. 634 Status getStatus(const Twine &RequestedName) const { 635 return Status::copyWithNewName(Stat, RequestedName); 636 } 637 InMemoryNode *getChild(StringRef Name) { 638 auto I = Entries.find(Name); 639 if (I != Entries.end()) 640 return I->second.get(); 641 return nullptr; 642 } 643 644 InMemoryNode *addChild(StringRef Name, std::unique_ptr<InMemoryNode> Child) { 645 return Entries.insert(make_pair(Name, std::move(Child))) 646 .first->second.get(); 647 } 648 649 using const_iterator = decltype(Entries)::const_iterator; 650 651 const_iterator begin() const { return Entries.begin(); } 652 const_iterator end() const { return Entries.end(); } 653 654 std::string toString(unsigned Indent) const override { 655 std::string Result = 656 (std::string(Indent, ' ') + Stat.getName() + "\n").str(); 657 for (const auto &Entry : Entries) 658 Result += Entry.second->toString(Indent + 2); 659 return Result; 660 } 661 662 static bool classof(const InMemoryNode *N) { 663 return N->getKind() == IME_Directory; 664 } 665 }; 666 667 namespace { 668 Status getNodeStatus(const InMemoryNode *Node, const Twine &RequestedName) { 669 if (auto Dir = dyn_cast<detail::InMemoryDirectory>(Node)) 670 return Dir->getStatus(RequestedName); 671 if (auto File = dyn_cast<detail::InMemoryFile>(Node)) 672 return File->getStatus(RequestedName); 673 if (auto Link = dyn_cast<detail::InMemoryHardLink>(Node)) 674 return Link->getResolvedFile().getStatus(RequestedName); 675 llvm_unreachable("Unknown node type"); 676 } 677 } // namespace 678 } // namespace detail 679 680 InMemoryFileSystem::InMemoryFileSystem(bool UseNormalizedPaths) 681 : Root(new detail::InMemoryDirectory( 682 Status("", getNextVirtualUniqueID(), llvm::sys::TimePoint<>(), 0, 0, 683 0, llvm::sys::fs::file_type::directory_file, 684 llvm::sys::fs::perms::all_all))), 685 UseNormalizedPaths(UseNormalizedPaths) {} 686 687 InMemoryFileSystem::~InMemoryFileSystem() = default; 688 689 std::string InMemoryFileSystem::toString() const { 690 return Root->toString(/*Indent=*/0); 691 } 692 693 bool InMemoryFileSystem::addFile(const Twine &P, time_t ModificationTime, 694 std::unique_ptr<llvm::MemoryBuffer> Buffer, 695 Optional<uint32_t> User, 696 Optional<uint32_t> Group, 697 Optional<llvm::sys::fs::file_type> Type, 698 Optional<llvm::sys::fs::perms> Perms, 699 const detail::InMemoryFile *HardLinkTarget) { 700 SmallString<128> Path; 701 P.toVector(Path); 702 703 // Fix up relative paths. This just prepends the current working directory. 704 std::error_code EC = makeAbsolute(Path); 705 assert(!EC); 706 (void)EC; 707 708 if (useNormalizedPaths()) 709 llvm::sys::path::remove_dots(Path, /*remove_dot_dot=*/true); 710 711 if (Path.empty()) 712 return false; 713 714 detail::InMemoryDirectory *Dir = Root.get(); 715 auto I = llvm::sys::path::begin(Path), E = sys::path::end(Path); 716 const auto ResolvedUser = User.getValueOr(0); 717 const auto ResolvedGroup = Group.getValueOr(0); 718 const auto ResolvedType = Type.getValueOr(sys::fs::file_type::regular_file); 719 const auto ResolvedPerms = Perms.getValueOr(sys::fs::all_all); 720 assert(!(HardLinkTarget && Buffer) && "HardLink cannot have a buffer"); 721 // Any intermediate directories we create should be accessible by 722 // the owner, even if Perms says otherwise for the final path. 723 const auto NewDirectoryPerms = ResolvedPerms | sys::fs::owner_all; 724 while (true) { 725 StringRef Name = *I; 726 detail::InMemoryNode *Node = Dir->getChild(Name); 727 ++I; 728 if (!Node) { 729 if (I == E) { 730 // End of the path. 731 std::unique_ptr<detail::InMemoryNode> Child; 732 if (HardLinkTarget) 733 Child.reset(new detail::InMemoryHardLink(P.str(), *HardLinkTarget)); 734 else { 735 // Create a new file or directory. 736 Status Stat(P.str(), getNextVirtualUniqueID(), 737 llvm::sys::toTimePoint(ModificationTime), ResolvedUser, 738 ResolvedGroup, Buffer->getBufferSize(), ResolvedType, 739 ResolvedPerms); 740 if (ResolvedType == sys::fs::file_type::directory_file) { 741 Child.reset(new detail::InMemoryDirectory(std::move(Stat))); 742 } else { 743 Child.reset( 744 new detail::InMemoryFile(std::move(Stat), std::move(Buffer))); 745 } 746 } 747 Dir->addChild(Name, std::move(Child)); 748 return true; 749 } 750 751 // Create a new directory. Use the path up to here. 752 Status Stat( 753 StringRef(Path.str().begin(), Name.end() - Path.str().begin()), 754 getNextVirtualUniqueID(), llvm::sys::toTimePoint(ModificationTime), 755 ResolvedUser, ResolvedGroup, 0, sys::fs::file_type::directory_file, 756 NewDirectoryPerms); 757 Dir = cast<detail::InMemoryDirectory>(Dir->addChild( 758 Name, std::make_unique<detail::InMemoryDirectory>(std::move(Stat)))); 759 continue; 760 } 761 762 if (auto *NewDir = dyn_cast<detail::InMemoryDirectory>(Node)) { 763 Dir = NewDir; 764 } else { 765 assert((isa<detail::InMemoryFile>(Node) || 766 isa<detail::InMemoryHardLink>(Node)) && 767 "Must be either file, hardlink or directory!"); 768 769 // Trying to insert a directory in place of a file. 770 if (I != E) 771 return false; 772 773 // Return false only if the new file is different from the existing one. 774 if (auto Link = dyn_cast<detail::InMemoryHardLink>(Node)) { 775 return Link->getResolvedFile().getBuffer()->getBuffer() == 776 Buffer->getBuffer(); 777 } 778 return cast<detail::InMemoryFile>(Node)->getBuffer()->getBuffer() == 779 Buffer->getBuffer(); 780 } 781 } 782 } 783 784 bool InMemoryFileSystem::addFile(const Twine &P, time_t ModificationTime, 785 std::unique_ptr<llvm::MemoryBuffer> Buffer, 786 Optional<uint32_t> User, 787 Optional<uint32_t> Group, 788 Optional<llvm::sys::fs::file_type> Type, 789 Optional<llvm::sys::fs::perms> Perms) { 790 return addFile(P, ModificationTime, std::move(Buffer), User, Group, Type, 791 Perms, /*HardLinkTarget=*/nullptr); 792 } 793 794 bool InMemoryFileSystem::addFileNoOwn(const Twine &P, time_t ModificationTime, 795 llvm::MemoryBuffer *Buffer, 796 Optional<uint32_t> User, 797 Optional<uint32_t> Group, 798 Optional<llvm::sys::fs::file_type> Type, 799 Optional<llvm::sys::fs::perms> Perms) { 800 return addFile(P, ModificationTime, 801 llvm::MemoryBuffer::getMemBuffer( 802 Buffer->getBuffer(), Buffer->getBufferIdentifier()), 803 std::move(User), std::move(Group), std::move(Type), 804 std::move(Perms)); 805 } 806 807 static ErrorOr<const detail::InMemoryNode *> 808 lookupInMemoryNode(const InMemoryFileSystem &FS, detail::InMemoryDirectory *Dir, 809 const Twine &P) { 810 SmallString<128> Path; 811 P.toVector(Path); 812 813 // Fix up relative paths. This just prepends the current working directory. 814 std::error_code EC = FS.makeAbsolute(Path); 815 assert(!EC); 816 (void)EC; 817 818 if (FS.useNormalizedPaths()) 819 llvm::sys::path::remove_dots(Path, /*remove_dot_dot=*/true); 820 821 if (Path.empty()) 822 return Dir; 823 824 auto I = llvm::sys::path::begin(Path), E = llvm::sys::path::end(Path); 825 while (true) { 826 detail::InMemoryNode *Node = Dir->getChild(*I); 827 ++I; 828 if (!Node) 829 return errc::no_such_file_or_directory; 830 831 // Return the file if it's at the end of the path. 832 if (auto File = dyn_cast<detail::InMemoryFile>(Node)) { 833 if (I == E) 834 return File; 835 return errc::no_such_file_or_directory; 836 } 837 838 // If Node is HardLink then return the resolved file. 839 if (auto File = dyn_cast<detail::InMemoryHardLink>(Node)) { 840 if (I == E) 841 return &File->getResolvedFile(); 842 return errc::no_such_file_or_directory; 843 } 844 // Traverse directories. 845 Dir = cast<detail::InMemoryDirectory>(Node); 846 if (I == E) 847 return Dir; 848 } 849 } 850 851 bool InMemoryFileSystem::addHardLink(const Twine &FromPath, 852 const Twine &ToPath) { 853 auto FromNode = lookupInMemoryNode(*this, Root.get(), FromPath); 854 auto ToNode = lookupInMemoryNode(*this, Root.get(), ToPath); 855 // FromPath must not have been added before. ToPath must have been added 856 // before. Resolved ToPath must be a File. 857 if (!ToNode || FromNode || !isa<detail::InMemoryFile>(*ToNode)) 858 return false; 859 return this->addFile(FromPath, 0, nullptr, None, None, None, None, 860 cast<detail::InMemoryFile>(*ToNode)); 861 } 862 863 llvm::ErrorOr<Status> InMemoryFileSystem::status(const Twine &Path) { 864 auto Node = lookupInMemoryNode(*this, Root.get(), Path); 865 if (Node) 866 return detail::getNodeStatus(*Node, Path); 867 return Node.getError(); 868 } 869 870 llvm::ErrorOr<std::unique_ptr<File>> 871 InMemoryFileSystem::openFileForRead(const Twine &Path) { 872 auto Node = lookupInMemoryNode(*this, Root.get(), Path); 873 if (!Node) 874 return Node.getError(); 875 876 // When we have a file provide a heap-allocated wrapper for the memory buffer 877 // to match the ownership semantics for File. 878 if (auto *F = dyn_cast<detail::InMemoryFile>(*Node)) 879 return std::unique_ptr<File>( 880 new detail::InMemoryFileAdaptor(*F, Path.str())); 881 882 // FIXME: errc::not_a_file? 883 return make_error_code(llvm::errc::invalid_argument); 884 } 885 886 namespace { 887 888 /// Adaptor from InMemoryDir::iterator to directory_iterator. 889 class InMemoryDirIterator : public llvm::vfs::detail::DirIterImpl { 890 detail::InMemoryDirectory::const_iterator I; 891 detail::InMemoryDirectory::const_iterator E; 892 std::string RequestedDirName; 893 894 void setCurrentEntry() { 895 if (I != E) { 896 SmallString<256> Path(RequestedDirName); 897 llvm::sys::path::append(Path, I->second->getFileName()); 898 sys::fs::file_type Type = sys::fs::file_type::type_unknown; 899 switch (I->second->getKind()) { 900 case detail::IME_File: 901 case detail::IME_HardLink: 902 Type = sys::fs::file_type::regular_file; 903 break; 904 case detail::IME_Directory: 905 Type = sys::fs::file_type::directory_file; 906 break; 907 } 908 CurrentEntry = directory_entry(std::string(Path.str()), Type); 909 } else { 910 // When we're at the end, make CurrentEntry invalid and DirIterImpl will 911 // do the rest. 912 CurrentEntry = directory_entry(); 913 } 914 } 915 916 public: 917 InMemoryDirIterator() = default; 918 919 explicit InMemoryDirIterator(const detail::InMemoryDirectory &Dir, 920 std::string RequestedDirName) 921 : I(Dir.begin()), E(Dir.end()), 922 RequestedDirName(std::move(RequestedDirName)) { 923 setCurrentEntry(); 924 } 925 926 std::error_code increment() override { 927 ++I; 928 setCurrentEntry(); 929 return {}; 930 } 931 }; 932 933 } // namespace 934 935 directory_iterator InMemoryFileSystem::dir_begin(const Twine &Dir, 936 std::error_code &EC) { 937 auto Node = lookupInMemoryNode(*this, Root.get(), Dir); 938 if (!Node) { 939 EC = Node.getError(); 940 return directory_iterator(std::make_shared<InMemoryDirIterator>()); 941 } 942 943 if (auto *DirNode = dyn_cast<detail::InMemoryDirectory>(*Node)) 944 return directory_iterator( 945 std::make_shared<InMemoryDirIterator>(*DirNode, Dir.str())); 946 947 EC = make_error_code(llvm::errc::not_a_directory); 948 return directory_iterator(std::make_shared<InMemoryDirIterator>()); 949 } 950 951 std::error_code InMemoryFileSystem::setCurrentWorkingDirectory(const Twine &P) { 952 SmallString<128> Path; 953 P.toVector(Path); 954 955 // Fix up relative paths. This just prepends the current working directory. 956 std::error_code EC = makeAbsolute(Path); 957 assert(!EC); 958 (void)EC; 959 960 if (useNormalizedPaths()) 961 llvm::sys::path::remove_dots(Path, /*remove_dot_dot=*/true); 962 963 if (!Path.empty()) 964 WorkingDirectory = std::string(Path.str()); 965 return {}; 966 } 967 968 std::error_code 969 InMemoryFileSystem::getRealPath(const Twine &Path, 970 SmallVectorImpl<char> &Output) const { 971 auto CWD = getCurrentWorkingDirectory(); 972 if (!CWD || CWD->empty()) 973 return errc::operation_not_permitted; 974 Path.toVector(Output); 975 if (auto EC = makeAbsolute(Output)) 976 return EC; 977 llvm::sys::path::remove_dots(Output, /*remove_dot_dot=*/true); 978 return {}; 979 } 980 981 std::error_code InMemoryFileSystem::isLocal(const Twine &Path, bool &Result) { 982 Result = false; 983 return {}; 984 } 985 986 } // namespace vfs 987 } // namespace llvm 988 989 //===-----------------------------------------------------------------------===/ 990 // RedirectingFileSystem implementation 991 //===-----------------------------------------------------------------------===/ 992 993 RedirectingFileSystem::RedirectingFileSystem(IntrusiveRefCntPtr<FileSystem> FS) 994 : ExternalFS(std::move(FS)) { 995 if (ExternalFS) 996 if (auto ExternalWorkingDirectory = 997 ExternalFS->getCurrentWorkingDirectory()) { 998 WorkingDirectory = *ExternalWorkingDirectory; 999 ExternalFSValidWD = true; 1000 } 1001 } 1002 1003 // FIXME: reuse implementation common with OverlayFSDirIterImpl as these 1004 // iterators are conceptually similar. 1005 class llvm::vfs::VFSFromYamlDirIterImpl 1006 : public llvm::vfs::detail::DirIterImpl { 1007 std::string Dir; 1008 RedirectingFileSystem::RedirectingDirectoryEntry::iterator Current, End; 1009 1010 // To handle 'fallthrough' mode we need to iterate at first through 1011 // RedirectingDirectoryEntry and then through ExternalFS. These operations are 1012 // done sequentially, we just need to keep a track of what kind of iteration 1013 // we are currently performing. 1014 1015 /// Flag telling if we should iterate through ExternalFS or stop at the last 1016 /// RedirectingDirectoryEntry::iterator. 1017 bool IterateExternalFS; 1018 /// Flag telling if we have switched to iterating through ExternalFS. 1019 bool IsExternalFSCurrent = false; 1020 FileSystem &ExternalFS; 1021 directory_iterator ExternalDirIter; 1022 llvm::StringSet<> SeenNames; 1023 1024 /// To combine multiple iterations, different methods are responsible for 1025 /// different iteration steps. 1026 /// @{ 1027 1028 /// Responsible for dispatching between RedirectingDirectoryEntry iteration 1029 /// and ExternalFS iteration. 1030 std::error_code incrementImpl(bool IsFirstTime); 1031 /// Responsible for RedirectingDirectoryEntry iteration. 1032 std::error_code incrementContent(bool IsFirstTime); 1033 /// Responsible for ExternalFS iteration. 1034 std::error_code incrementExternal(); 1035 /// @} 1036 1037 public: 1038 VFSFromYamlDirIterImpl( 1039 const Twine &Path, 1040 RedirectingFileSystem::RedirectingDirectoryEntry::iterator Begin, 1041 RedirectingFileSystem::RedirectingDirectoryEntry::iterator End, 1042 bool IterateExternalFS, FileSystem &ExternalFS, std::error_code &EC); 1043 1044 std::error_code increment() override; 1045 }; 1046 1047 llvm::ErrorOr<std::string> 1048 RedirectingFileSystem::getCurrentWorkingDirectory() const { 1049 return WorkingDirectory; 1050 } 1051 1052 std::error_code 1053 RedirectingFileSystem::setCurrentWorkingDirectory(const Twine &Path) { 1054 // Don't change the working directory if the path doesn't exist. 1055 if (!exists(Path)) 1056 return errc::no_such_file_or_directory; 1057 1058 // Always change the external FS but ignore its result. 1059 if (ExternalFS) { 1060 auto EC = ExternalFS->setCurrentWorkingDirectory(Path); 1061 ExternalFSValidWD = !static_cast<bool>(EC); 1062 } 1063 1064 SmallString<128> AbsolutePath; 1065 Path.toVector(AbsolutePath); 1066 if (std::error_code EC = makeAbsolute(AbsolutePath)) 1067 return EC; 1068 WorkingDirectory = std::string(AbsolutePath.str()); 1069 return {}; 1070 } 1071 1072 std::error_code RedirectingFileSystem::isLocal(const Twine &Path, 1073 bool &Result) { 1074 return ExternalFS->isLocal(Path, Result); 1075 } 1076 1077 std::error_code RedirectingFileSystem::makeAbsolute(SmallVectorImpl<char> &Path) const { 1078 if (llvm::sys::path::is_absolute(Path, llvm::sys::path::Style::posix) || 1079 llvm::sys::path::is_absolute(Path, llvm::sys::path::Style::windows)) 1080 return {}; 1081 1082 auto WorkingDir = getCurrentWorkingDirectory(); 1083 if (!WorkingDir) 1084 return WorkingDir.getError(); 1085 1086 llvm::sys::fs::make_absolute(WorkingDir.get(), Path); 1087 return {}; 1088 } 1089 1090 directory_iterator RedirectingFileSystem::dir_begin(const Twine &Dir, 1091 std::error_code &EC) { 1092 ErrorOr<RedirectingFileSystem::Entry *> E = lookupPath(Dir); 1093 if (!E) { 1094 EC = E.getError(); 1095 if (shouldUseExternalFS() && EC == errc::no_such_file_or_directory) 1096 return ExternalFS->dir_begin(Dir, EC); 1097 return {}; 1098 } 1099 ErrorOr<Status> S = status(Dir, *E); 1100 if (!S) { 1101 EC = S.getError(); 1102 return {}; 1103 } 1104 if (!S->isDirectory()) { 1105 EC = std::error_code(static_cast<int>(errc::not_a_directory), 1106 std::system_category()); 1107 return {}; 1108 } 1109 1110 auto *D = cast<RedirectingFileSystem::RedirectingDirectoryEntry>(*E); 1111 return directory_iterator(std::make_shared<VFSFromYamlDirIterImpl>( 1112 Dir, D->contents_begin(), D->contents_end(), 1113 /*IterateExternalFS=*/shouldUseExternalFS(), *ExternalFS, EC)); 1114 } 1115 1116 void RedirectingFileSystem::setExternalContentsPrefixDir(StringRef PrefixDir) { 1117 ExternalContentsPrefixDir = PrefixDir.str(); 1118 } 1119 1120 StringRef RedirectingFileSystem::getExternalContentsPrefixDir() const { 1121 return ExternalContentsPrefixDir; 1122 } 1123 1124 void RedirectingFileSystem::dump(raw_ostream &OS) const { 1125 for (const auto &Root : Roots) 1126 dumpEntry(OS, Root.get()); 1127 } 1128 1129 void RedirectingFileSystem::dumpEntry(raw_ostream &OS, 1130 RedirectingFileSystem::Entry *E, 1131 int NumSpaces) const { 1132 StringRef Name = E->getName(); 1133 for (int i = 0, e = NumSpaces; i < e; ++i) 1134 OS << " "; 1135 OS << "'" << Name.str().c_str() << "'" 1136 << "\n"; 1137 1138 if (E->getKind() == RedirectingFileSystem::EK_Directory) { 1139 auto *DE = dyn_cast<RedirectingFileSystem::RedirectingDirectoryEntry>(E); 1140 assert(DE && "Should be a directory"); 1141 1142 for (std::unique_ptr<Entry> &SubEntry : 1143 llvm::make_range(DE->contents_begin(), DE->contents_end())) 1144 dumpEntry(OS, SubEntry.get(), NumSpaces + 2); 1145 } 1146 } 1147 1148 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 1149 LLVM_DUMP_METHOD void RedirectingFileSystem::dump() const { dump(dbgs()); } 1150 #endif 1151 1152 /// A helper class to hold the common YAML parsing state. 1153 class llvm::vfs::RedirectingFileSystemParser { 1154 yaml::Stream &Stream; 1155 1156 void error(yaml::Node *N, const Twine &Msg) { Stream.printError(N, Msg); } 1157 1158 // false on error 1159 bool parseScalarString(yaml::Node *N, StringRef &Result, 1160 SmallVectorImpl<char> &Storage) { 1161 const auto *S = dyn_cast<yaml::ScalarNode>(N); 1162 1163 if (!S) { 1164 error(N, "expected string"); 1165 return false; 1166 } 1167 Result = S->getValue(Storage); 1168 return true; 1169 } 1170 1171 // false on error 1172 bool parseScalarBool(yaml::Node *N, bool &Result) { 1173 SmallString<5> Storage; 1174 StringRef Value; 1175 if (!parseScalarString(N, Value, Storage)) 1176 return false; 1177 1178 if (Value.equals_lower("true") || Value.equals_lower("on") || 1179 Value.equals_lower("yes") || Value == "1") { 1180 Result = true; 1181 return true; 1182 } else if (Value.equals_lower("false") || Value.equals_lower("off") || 1183 Value.equals_lower("no") || Value == "0") { 1184 Result = false; 1185 return true; 1186 } 1187 1188 error(N, "expected boolean value"); 1189 return false; 1190 } 1191 1192 struct KeyStatus { 1193 bool Required; 1194 bool Seen = false; 1195 1196 KeyStatus(bool Required = false) : Required(Required) {} 1197 }; 1198 1199 using KeyStatusPair = std::pair<StringRef, KeyStatus>; 1200 1201 // false on error 1202 bool checkDuplicateOrUnknownKey(yaml::Node *KeyNode, StringRef Key, 1203 DenseMap<StringRef, KeyStatus> &Keys) { 1204 if (!Keys.count(Key)) { 1205 error(KeyNode, "unknown key"); 1206 return false; 1207 } 1208 KeyStatus &S = Keys[Key]; 1209 if (S.Seen) { 1210 error(KeyNode, Twine("duplicate key '") + Key + "'"); 1211 return false; 1212 } 1213 S.Seen = true; 1214 return true; 1215 } 1216 1217 // false on error 1218 bool checkMissingKeys(yaml::Node *Obj, DenseMap<StringRef, KeyStatus> &Keys) { 1219 for (const auto &I : Keys) { 1220 if (I.second.Required && !I.second.Seen) { 1221 error(Obj, Twine("missing key '") + I.first + "'"); 1222 return false; 1223 } 1224 } 1225 return true; 1226 } 1227 1228 RedirectingFileSystem::Entry * 1229 lookupOrCreateEntry(RedirectingFileSystem *FS, StringRef Name, 1230 RedirectingFileSystem::Entry *ParentEntry = nullptr) { 1231 if (!ParentEntry) { // Look for a existent root 1232 for (const auto &Root : FS->Roots) { 1233 if (Name.equals(Root->getName())) { 1234 ParentEntry = Root.get(); 1235 return ParentEntry; 1236 } 1237 } 1238 } else { // Advance to the next component 1239 auto *DE = dyn_cast<RedirectingFileSystem::RedirectingDirectoryEntry>( 1240 ParentEntry); 1241 for (std::unique_ptr<RedirectingFileSystem::Entry> &Content : 1242 llvm::make_range(DE->contents_begin(), DE->contents_end())) { 1243 auto *DirContent = 1244 dyn_cast<RedirectingFileSystem::RedirectingDirectoryEntry>( 1245 Content.get()); 1246 if (DirContent && Name.equals(Content->getName())) 1247 return DirContent; 1248 } 1249 } 1250 1251 // ... or create a new one 1252 std::unique_ptr<RedirectingFileSystem::Entry> E = 1253 std::make_unique<RedirectingFileSystem::RedirectingDirectoryEntry>( 1254 Name, Status("", getNextVirtualUniqueID(), 1255 std::chrono::system_clock::now(), 0, 0, 0, 1256 file_type::directory_file, sys::fs::all_all)); 1257 1258 if (!ParentEntry) { // Add a new root to the overlay 1259 FS->Roots.push_back(std::move(E)); 1260 ParentEntry = FS->Roots.back().get(); 1261 return ParentEntry; 1262 } 1263 1264 auto *DE = 1265 cast<RedirectingFileSystem::RedirectingDirectoryEntry>(ParentEntry); 1266 DE->addContent(std::move(E)); 1267 return DE->getLastContent(); 1268 } 1269 1270 void uniqueOverlayTree(RedirectingFileSystem *FS, 1271 RedirectingFileSystem::Entry *SrcE, 1272 RedirectingFileSystem::Entry *NewParentE = nullptr) { 1273 StringRef Name = SrcE->getName(); 1274 switch (SrcE->getKind()) { 1275 case RedirectingFileSystem::EK_Directory: { 1276 auto *DE = cast<RedirectingFileSystem::RedirectingDirectoryEntry>(SrcE); 1277 // Empty directories could be present in the YAML as a way to 1278 // describe a file for a current directory after some of its subdir 1279 // is parsed. This only leads to redundant walks, ignore it. 1280 if (!Name.empty()) 1281 NewParentE = lookupOrCreateEntry(FS, Name, NewParentE); 1282 for (std::unique_ptr<RedirectingFileSystem::Entry> &SubEntry : 1283 llvm::make_range(DE->contents_begin(), DE->contents_end())) 1284 uniqueOverlayTree(FS, SubEntry.get(), NewParentE); 1285 break; 1286 } 1287 case RedirectingFileSystem::EK_File: { 1288 assert(NewParentE && "Parent entry must exist"); 1289 auto *FE = cast<RedirectingFileSystem::RedirectingFileEntry>(SrcE); 1290 auto *DE = 1291 cast<RedirectingFileSystem::RedirectingDirectoryEntry>(NewParentE); 1292 DE->addContent( 1293 std::make_unique<RedirectingFileSystem::RedirectingFileEntry>( 1294 Name, FE->getExternalContentsPath(), FE->getUseName())); 1295 break; 1296 } 1297 } 1298 } 1299 1300 std::unique_ptr<RedirectingFileSystem::Entry> 1301 parseEntry(yaml::Node *N, RedirectingFileSystem *FS, bool IsRootEntry) { 1302 auto *M = dyn_cast<yaml::MappingNode>(N); 1303 if (!M) { 1304 error(N, "expected mapping node for file or directory entry"); 1305 return nullptr; 1306 } 1307 1308 KeyStatusPair Fields[] = { 1309 KeyStatusPair("name", true), 1310 KeyStatusPair("type", true), 1311 KeyStatusPair("contents", false), 1312 KeyStatusPair("external-contents", false), 1313 KeyStatusPair("use-external-name", false), 1314 }; 1315 1316 DenseMap<StringRef, KeyStatus> Keys(std::begin(Fields), std::end(Fields)); 1317 1318 bool HasContents = false; // external or otherwise 1319 std::vector<std::unique_ptr<RedirectingFileSystem::Entry>> 1320 EntryArrayContents; 1321 std::string ExternalContentsPath; 1322 std::string Name; 1323 yaml::Node *NameValueNode = nullptr; 1324 auto UseExternalName = 1325 RedirectingFileSystem::RedirectingFileEntry::NK_NotSet; 1326 RedirectingFileSystem::EntryKind Kind; 1327 1328 for (auto &I : *M) { 1329 StringRef Key; 1330 // Reuse the buffer for key and value, since we don't look at key after 1331 // parsing value. 1332 SmallString<256> Buffer; 1333 if (!parseScalarString(I.getKey(), Key, Buffer)) 1334 return nullptr; 1335 1336 if (!checkDuplicateOrUnknownKey(I.getKey(), Key, Keys)) 1337 return nullptr; 1338 1339 StringRef Value; 1340 if (Key == "name") { 1341 if (!parseScalarString(I.getValue(), Value, Buffer)) 1342 return nullptr; 1343 1344 NameValueNode = I.getValue(); 1345 if (FS->UseCanonicalizedPaths) { 1346 SmallString<256> Path(Value); 1347 // Guarantee that old YAML files containing paths with ".." and "." 1348 // are properly canonicalized before read into the VFS. 1349 Path = sys::path::remove_leading_dotslash(Path); 1350 sys::path::remove_dots(Path, /*remove_dot_dot=*/true); 1351 Name = std::string(Path.str()); 1352 } else { 1353 Name = std::string(Value); 1354 } 1355 } else if (Key == "type") { 1356 if (!parseScalarString(I.getValue(), Value, Buffer)) 1357 return nullptr; 1358 if (Value == "file") 1359 Kind = RedirectingFileSystem::EK_File; 1360 else if (Value == "directory") 1361 Kind = RedirectingFileSystem::EK_Directory; 1362 else { 1363 error(I.getValue(), "unknown value for 'type'"); 1364 return nullptr; 1365 } 1366 } else if (Key == "contents") { 1367 if (HasContents) { 1368 error(I.getKey(), 1369 "entry already has 'contents' or 'external-contents'"); 1370 return nullptr; 1371 } 1372 HasContents = true; 1373 auto *Contents = dyn_cast<yaml::SequenceNode>(I.getValue()); 1374 if (!Contents) { 1375 // FIXME: this is only for directories, what about files? 1376 error(I.getValue(), "expected array"); 1377 return nullptr; 1378 } 1379 1380 for (auto &I : *Contents) { 1381 if (std::unique_ptr<RedirectingFileSystem::Entry> E = 1382 parseEntry(&I, FS, /*IsRootEntry*/ false)) 1383 EntryArrayContents.push_back(std::move(E)); 1384 else 1385 return nullptr; 1386 } 1387 } else if (Key == "external-contents") { 1388 if (HasContents) { 1389 error(I.getKey(), 1390 "entry already has 'contents' or 'external-contents'"); 1391 return nullptr; 1392 } 1393 HasContents = true; 1394 if (!parseScalarString(I.getValue(), Value, Buffer)) 1395 return nullptr; 1396 1397 SmallString<256> FullPath; 1398 if (FS->IsRelativeOverlay) { 1399 FullPath = FS->getExternalContentsPrefixDir(); 1400 assert(!FullPath.empty() && 1401 "External contents prefix directory must exist"); 1402 llvm::sys::path::append(FullPath, Value); 1403 } else { 1404 FullPath = Value; 1405 } 1406 1407 if (FS->UseCanonicalizedPaths) { 1408 // Guarantee that old YAML files containing paths with ".." and "." 1409 // are properly canonicalized before read into the VFS. 1410 FullPath = sys::path::remove_leading_dotslash(FullPath); 1411 sys::path::remove_dots(FullPath, /*remove_dot_dot=*/true); 1412 } 1413 ExternalContentsPath = std::string(FullPath.str()); 1414 } else if (Key == "use-external-name") { 1415 bool Val; 1416 if (!parseScalarBool(I.getValue(), Val)) 1417 return nullptr; 1418 UseExternalName = 1419 Val ? RedirectingFileSystem::RedirectingFileEntry::NK_External 1420 : RedirectingFileSystem::RedirectingFileEntry::NK_Virtual; 1421 } else { 1422 llvm_unreachable("key missing from Keys"); 1423 } 1424 } 1425 1426 if (Stream.failed()) 1427 return nullptr; 1428 1429 // check for missing keys 1430 if (!HasContents) { 1431 error(N, "missing key 'contents' or 'external-contents'"); 1432 return nullptr; 1433 } 1434 if (!checkMissingKeys(N, Keys)) 1435 return nullptr; 1436 1437 // check invalid configuration 1438 if (Kind == RedirectingFileSystem::EK_Directory && 1439 UseExternalName != 1440 RedirectingFileSystem::RedirectingFileEntry::NK_NotSet) { 1441 error(N, "'use-external-name' is not supported for directories"); 1442 return nullptr; 1443 } 1444 1445 sys::path::Style path_style = sys::path::Style::native; 1446 if (IsRootEntry) { 1447 // VFS root entries may be in either Posix or Windows style. Figure out 1448 // which style we have, and use it consistently. 1449 if (sys::path::is_absolute(Name, sys::path::Style::posix)) { 1450 path_style = sys::path::Style::posix; 1451 } else if (sys::path::is_absolute(Name, sys::path::Style::windows)) { 1452 path_style = sys::path::Style::windows; 1453 } else { 1454 assert(NameValueNode && "Name presence should be checked earlier"); 1455 error(NameValueNode, 1456 "entry with relative path at the root level is not discoverable"); 1457 return nullptr; 1458 } 1459 } 1460 1461 // Remove trailing slash(es), being careful not to remove the root path 1462 StringRef Trimmed(Name); 1463 size_t RootPathLen = sys::path::root_path(Trimmed, path_style).size(); 1464 while (Trimmed.size() > RootPathLen && 1465 sys::path::is_separator(Trimmed.back(), path_style)) 1466 Trimmed = Trimmed.slice(0, Trimmed.size() - 1); 1467 1468 // Get the last component 1469 StringRef LastComponent = sys::path::filename(Trimmed, path_style); 1470 1471 std::unique_ptr<RedirectingFileSystem::Entry> Result; 1472 switch (Kind) { 1473 case RedirectingFileSystem::EK_File: 1474 Result = std::make_unique<RedirectingFileSystem::RedirectingFileEntry>( 1475 LastComponent, std::move(ExternalContentsPath), UseExternalName); 1476 break; 1477 case RedirectingFileSystem::EK_Directory: 1478 Result = 1479 std::make_unique<RedirectingFileSystem::RedirectingDirectoryEntry>( 1480 LastComponent, std::move(EntryArrayContents), 1481 Status("", getNextVirtualUniqueID(), 1482 std::chrono::system_clock::now(), 0, 0, 0, 1483 file_type::directory_file, sys::fs::all_all)); 1484 break; 1485 } 1486 1487 StringRef Parent = sys::path::parent_path(Trimmed, path_style); 1488 if (Parent.empty()) 1489 return Result; 1490 1491 // if 'name' contains multiple components, create implicit directory entries 1492 for (sys::path::reverse_iterator I = sys::path::rbegin(Parent, path_style), 1493 E = sys::path::rend(Parent); 1494 I != E; ++I) { 1495 std::vector<std::unique_ptr<RedirectingFileSystem::Entry>> Entries; 1496 Entries.push_back(std::move(Result)); 1497 Result = 1498 std::make_unique<RedirectingFileSystem::RedirectingDirectoryEntry>( 1499 *I, std::move(Entries), 1500 Status("", getNextVirtualUniqueID(), 1501 std::chrono::system_clock::now(), 0, 0, 0, 1502 file_type::directory_file, sys::fs::all_all)); 1503 } 1504 return Result; 1505 } 1506 1507 public: 1508 RedirectingFileSystemParser(yaml::Stream &S) : Stream(S) {} 1509 1510 // false on error 1511 bool parse(yaml::Node *Root, RedirectingFileSystem *FS) { 1512 auto *Top = dyn_cast<yaml::MappingNode>(Root); 1513 if (!Top) { 1514 error(Root, "expected mapping node"); 1515 return false; 1516 } 1517 1518 KeyStatusPair Fields[] = { 1519 KeyStatusPair("version", true), 1520 KeyStatusPair("case-sensitive", false), 1521 KeyStatusPair("use-external-names", false), 1522 KeyStatusPair("overlay-relative", false), 1523 KeyStatusPair("fallthrough", false), 1524 KeyStatusPair("roots", true), 1525 }; 1526 1527 DenseMap<StringRef, KeyStatus> Keys(std::begin(Fields), std::end(Fields)); 1528 std::vector<std::unique_ptr<RedirectingFileSystem::Entry>> RootEntries; 1529 1530 // Parse configuration and 'roots' 1531 for (auto &I : *Top) { 1532 SmallString<10> KeyBuffer; 1533 StringRef Key; 1534 if (!parseScalarString(I.getKey(), Key, KeyBuffer)) 1535 return false; 1536 1537 if (!checkDuplicateOrUnknownKey(I.getKey(), Key, Keys)) 1538 return false; 1539 1540 if (Key == "roots") { 1541 auto *Roots = dyn_cast<yaml::SequenceNode>(I.getValue()); 1542 if (!Roots) { 1543 error(I.getValue(), "expected array"); 1544 return false; 1545 } 1546 1547 for (auto &I : *Roots) { 1548 if (std::unique_ptr<RedirectingFileSystem::Entry> E = 1549 parseEntry(&I, FS, /*IsRootEntry*/ true)) 1550 RootEntries.push_back(std::move(E)); 1551 else 1552 return false; 1553 } 1554 } else if (Key == "version") { 1555 StringRef VersionString; 1556 SmallString<4> Storage; 1557 if (!parseScalarString(I.getValue(), VersionString, Storage)) 1558 return false; 1559 int Version; 1560 if (VersionString.getAsInteger<int>(10, Version)) { 1561 error(I.getValue(), "expected integer"); 1562 return false; 1563 } 1564 if (Version < 0) { 1565 error(I.getValue(), "invalid version number"); 1566 return false; 1567 } 1568 if (Version != 0) { 1569 error(I.getValue(), "version mismatch, expected 0"); 1570 return false; 1571 } 1572 } else if (Key == "case-sensitive") { 1573 if (!parseScalarBool(I.getValue(), FS->CaseSensitive)) 1574 return false; 1575 } else if (Key == "overlay-relative") { 1576 if (!parseScalarBool(I.getValue(), FS->IsRelativeOverlay)) 1577 return false; 1578 } else if (Key == "use-external-names") { 1579 if (!parseScalarBool(I.getValue(), FS->UseExternalNames)) 1580 return false; 1581 } else if (Key == "fallthrough") { 1582 if (!parseScalarBool(I.getValue(), FS->IsFallthrough)) 1583 return false; 1584 } else { 1585 llvm_unreachable("key missing from Keys"); 1586 } 1587 } 1588 1589 if (Stream.failed()) 1590 return false; 1591 1592 if (!checkMissingKeys(Top, Keys)) 1593 return false; 1594 1595 // Now that we sucessefully parsed the YAML file, canonicalize the internal 1596 // representation to a proper directory tree so that we can search faster 1597 // inside the VFS. 1598 for (auto &E : RootEntries) 1599 uniqueOverlayTree(FS, E.get()); 1600 1601 return true; 1602 } 1603 }; 1604 1605 RedirectingFileSystem * 1606 RedirectingFileSystem::create(std::unique_ptr<MemoryBuffer> Buffer, 1607 SourceMgr::DiagHandlerTy DiagHandler, 1608 StringRef YAMLFilePath, void *DiagContext, 1609 IntrusiveRefCntPtr<FileSystem> ExternalFS) { 1610 SourceMgr SM; 1611 yaml::Stream Stream(Buffer->getMemBufferRef(), SM); 1612 1613 SM.setDiagHandler(DiagHandler, DiagContext); 1614 yaml::document_iterator DI = Stream.begin(); 1615 yaml::Node *Root = DI->getRoot(); 1616 if (DI == Stream.end() || !Root) { 1617 SM.PrintMessage(SMLoc(), SourceMgr::DK_Error, "expected root node"); 1618 return nullptr; 1619 } 1620 1621 RedirectingFileSystemParser P(Stream); 1622 1623 std::unique_ptr<RedirectingFileSystem> FS( 1624 new RedirectingFileSystem(ExternalFS)); 1625 1626 if (!YAMLFilePath.empty()) { 1627 // Use the YAML path from -ivfsoverlay to compute the dir to be prefixed 1628 // to each 'external-contents' path. 1629 // 1630 // Example: 1631 // -ivfsoverlay dummy.cache/vfs/vfs.yaml 1632 // yields: 1633 // FS->ExternalContentsPrefixDir => /<absolute_path_to>/dummy.cache/vfs 1634 // 1635 SmallString<256> OverlayAbsDir = sys::path::parent_path(YAMLFilePath); 1636 std::error_code EC = llvm::sys::fs::make_absolute(OverlayAbsDir); 1637 assert(!EC && "Overlay dir final path must be absolute"); 1638 (void)EC; 1639 FS->setExternalContentsPrefixDir(OverlayAbsDir); 1640 } 1641 1642 if (!P.parse(Root, FS.get())) 1643 return nullptr; 1644 1645 return FS.release(); 1646 } 1647 1648 ErrorOr<RedirectingFileSystem::Entry *> 1649 RedirectingFileSystem::lookupPath(const Twine &Path_) const { 1650 SmallString<256> Path; 1651 Path_.toVector(Path); 1652 1653 // Handle relative paths 1654 if (std::error_code EC = makeAbsolute(Path)) 1655 return EC; 1656 1657 // Canonicalize path by removing ".", "..", "./", etc components. This is 1658 // a VFS request, do bot bother about symlinks in the path components 1659 // but canonicalize in order to perform the correct entry search. 1660 if (UseCanonicalizedPaths) { 1661 Path = sys::path::remove_leading_dotslash(Path); 1662 sys::path::remove_dots(Path, /*remove_dot_dot=*/true); 1663 } 1664 1665 if (Path.empty()) 1666 return make_error_code(llvm::errc::invalid_argument); 1667 1668 sys::path::const_iterator Start = sys::path::begin(Path); 1669 sys::path::const_iterator End = sys::path::end(Path); 1670 for (const auto &Root : Roots) { 1671 ErrorOr<RedirectingFileSystem::Entry *> Result = 1672 lookupPath(Start, End, Root.get()); 1673 if (Result || Result.getError() != llvm::errc::no_such_file_or_directory) 1674 return Result; 1675 } 1676 return make_error_code(llvm::errc::no_such_file_or_directory); 1677 } 1678 1679 ErrorOr<RedirectingFileSystem::Entry *> 1680 RedirectingFileSystem::lookupPath(sys::path::const_iterator Start, 1681 sys::path::const_iterator End, 1682 RedirectingFileSystem::Entry *From) const { 1683 #ifndef _WIN32 1684 assert(!isTraversalComponent(*Start) && 1685 !isTraversalComponent(From->getName()) && 1686 "Paths should not contain traversal components"); 1687 #else 1688 // FIXME: this is here to support windows, remove it once canonicalized 1689 // paths become globally default. 1690 if (Start->equals(".")) 1691 ++Start; 1692 #endif 1693 1694 StringRef FromName = From->getName(); 1695 1696 // Forward the search to the next component in case this is an empty one. 1697 if (!FromName.empty()) { 1698 if (!pathComponentMatches(*Start, FromName)) 1699 return make_error_code(llvm::errc::no_such_file_or_directory); 1700 1701 ++Start; 1702 1703 if (Start == End) { 1704 // Match! 1705 return From; 1706 } 1707 } 1708 1709 auto *DE = dyn_cast<RedirectingFileSystem::RedirectingDirectoryEntry>(From); 1710 if (!DE) 1711 return make_error_code(llvm::errc::not_a_directory); 1712 1713 for (const std::unique_ptr<RedirectingFileSystem::Entry> &DirEntry : 1714 llvm::make_range(DE->contents_begin(), DE->contents_end())) { 1715 ErrorOr<RedirectingFileSystem::Entry *> Result = 1716 lookupPath(Start, End, DirEntry.get()); 1717 if (Result || Result.getError() != llvm::errc::no_such_file_or_directory) 1718 return Result; 1719 } 1720 1721 return make_error_code(llvm::errc::no_such_file_or_directory); 1722 } 1723 1724 static Status getRedirectedFileStatus(const Twine &Path, bool UseExternalNames, 1725 Status ExternalStatus) { 1726 Status S = ExternalStatus; 1727 if (!UseExternalNames) 1728 S = Status::copyWithNewName(S, Path); 1729 S.IsVFSMapped = true; 1730 return S; 1731 } 1732 1733 ErrorOr<Status> RedirectingFileSystem::status(const Twine &Path, 1734 RedirectingFileSystem::Entry *E) { 1735 assert(E != nullptr); 1736 if (auto *F = dyn_cast<RedirectingFileSystem::RedirectingFileEntry>(E)) { 1737 ErrorOr<Status> S = ExternalFS->status(F->getExternalContentsPath()); 1738 assert(!S || S->getName() == F->getExternalContentsPath()); 1739 if (S) 1740 return getRedirectedFileStatus(Path, F->useExternalName(UseExternalNames), 1741 *S); 1742 return S; 1743 } else { // directory 1744 auto *DE = cast<RedirectingFileSystem::RedirectingDirectoryEntry>(E); 1745 return Status::copyWithNewName(DE->getStatus(), Path); 1746 } 1747 } 1748 1749 ErrorOr<Status> RedirectingFileSystem::status(const Twine &Path) { 1750 ErrorOr<RedirectingFileSystem::Entry *> Result = lookupPath(Path); 1751 if (!Result) { 1752 if (shouldUseExternalFS() && 1753 Result.getError() == llvm::errc::no_such_file_or_directory) { 1754 return ExternalFS->status(Path); 1755 } 1756 return Result.getError(); 1757 } 1758 return status(Path, *Result); 1759 } 1760 1761 namespace { 1762 1763 /// Provide a file wrapper with an overriden status. 1764 class FileWithFixedStatus : public File { 1765 std::unique_ptr<File> InnerFile; 1766 Status S; 1767 1768 public: 1769 FileWithFixedStatus(std::unique_ptr<File> InnerFile, Status S) 1770 : InnerFile(std::move(InnerFile)), S(std::move(S)) {} 1771 1772 ErrorOr<Status> status() override { return S; } 1773 ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> 1774 1775 getBuffer(const Twine &Name, int64_t FileSize, bool RequiresNullTerminator, 1776 bool IsVolatile) override { 1777 return InnerFile->getBuffer(Name, FileSize, RequiresNullTerminator, 1778 IsVolatile); 1779 } 1780 1781 std::error_code close() override { return InnerFile->close(); } 1782 }; 1783 1784 } // namespace 1785 1786 ErrorOr<std::unique_ptr<File>> 1787 RedirectingFileSystem::openFileForRead(const Twine &Path) { 1788 ErrorOr<RedirectingFileSystem::Entry *> E = lookupPath(Path); 1789 if (!E) { 1790 if (shouldUseExternalFS() && 1791 E.getError() == llvm::errc::no_such_file_or_directory) { 1792 return ExternalFS->openFileForRead(Path); 1793 } 1794 return E.getError(); 1795 } 1796 1797 auto *F = dyn_cast<RedirectingFileSystem::RedirectingFileEntry>(*E); 1798 if (!F) // FIXME: errc::not_a_file? 1799 return make_error_code(llvm::errc::invalid_argument); 1800 1801 auto Result = ExternalFS->openFileForRead(F->getExternalContentsPath()); 1802 if (!Result) 1803 return Result; 1804 1805 auto ExternalStatus = (*Result)->status(); 1806 if (!ExternalStatus) 1807 return ExternalStatus.getError(); 1808 1809 // FIXME: Update the status with the name and VFSMapped. 1810 Status S = getRedirectedFileStatus(Path, F->useExternalName(UseExternalNames), 1811 *ExternalStatus); 1812 return std::unique_ptr<File>( 1813 std::make_unique<FileWithFixedStatus>(std::move(*Result), S)); 1814 } 1815 1816 std::error_code 1817 RedirectingFileSystem::getRealPath(const Twine &Path, 1818 SmallVectorImpl<char> &Output) const { 1819 ErrorOr<RedirectingFileSystem::Entry *> Result = lookupPath(Path); 1820 if (!Result) { 1821 if (shouldUseExternalFS() && 1822 Result.getError() == llvm::errc::no_such_file_or_directory) { 1823 return ExternalFS->getRealPath(Path, Output); 1824 } 1825 return Result.getError(); 1826 } 1827 1828 if (auto *F = 1829 dyn_cast<RedirectingFileSystem::RedirectingFileEntry>(*Result)) { 1830 return ExternalFS->getRealPath(F->getExternalContentsPath(), Output); 1831 } 1832 // Even if there is a directory entry, fall back to ExternalFS if allowed, 1833 // because directories don't have a single external contents path. 1834 return shouldUseExternalFS() ? ExternalFS->getRealPath(Path, Output) 1835 : llvm::errc::invalid_argument; 1836 } 1837 1838 IntrusiveRefCntPtr<FileSystem> 1839 vfs::getVFSFromYAML(std::unique_ptr<MemoryBuffer> Buffer, 1840 SourceMgr::DiagHandlerTy DiagHandler, 1841 StringRef YAMLFilePath, void *DiagContext, 1842 IntrusiveRefCntPtr<FileSystem> ExternalFS) { 1843 return RedirectingFileSystem::create(std::move(Buffer), DiagHandler, 1844 YAMLFilePath, DiagContext, 1845 std::move(ExternalFS)); 1846 } 1847 1848 static void getVFSEntries(RedirectingFileSystem::Entry *SrcE, 1849 SmallVectorImpl<StringRef> &Path, 1850 SmallVectorImpl<YAMLVFSEntry> &Entries) { 1851 auto Kind = SrcE->getKind(); 1852 if (Kind == RedirectingFileSystem::EK_Directory) { 1853 auto *DE = dyn_cast<RedirectingFileSystem::RedirectingDirectoryEntry>(SrcE); 1854 assert(DE && "Must be a directory"); 1855 for (std::unique_ptr<RedirectingFileSystem::Entry> &SubEntry : 1856 llvm::make_range(DE->contents_begin(), DE->contents_end())) { 1857 Path.push_back(SubEntry->getName()); 1858 getVFSEntries(SubEntry.get(), Path, Entries); 1859 Path.pop_back(); 1860 } 1861 return; 1862 } 1863 1864 assert(Kind == RedirectingFileSystem::EK_File && "Must be a EK_File"); 1865 auto *FE = dyn_cast<RedirectingFileSystem::RedirectingFileEntry>(SrcE); 1866 assert(FE && "Must be a file"); 1867 SmallString<128> VPath; 1868 for (auto &Comp : Path) 1869 llvm::sys::path::append(VPath, Comp); 1870 Entries.push_back(YAMLVFSEntry(VPath.c_str(), FE->getExternalContentsPath())); 1871 } 1872 1873 void vfs::collectVFSFromYAML(std::unique_ptr<MemoryBuffer> Buffer, 1874 SourceMgr::DiagHandlerTy DiagHandler, 1875 StringRef YAMLFilePath, 1876 SmallVectorImpl<YAMLVFSEntry> &CollectedEntries, 1877 void *DiagContext, 1878 IntrusiveRefCntPtr<FileSystem> ExternalFS) { 1879 RedirectingFileSystem *VFS = RedirectingFileSystem::create( 1880 std::move(Buffer), DiagHandler, YAMLFilePath, DiagContext, 1881 std::move(ExternalFS)); 1882 ErrorOr<RedirectingFileSystem::Entry *> RootE = VFS->lookupPath("/"); 1883 if (!RootE) 1884 return; 1885 SmallVector<StringRef, 8> Components; 1886 Components.push_back("/"); 1887 getVFSEntries(*RootE, Components, CollectedEntries); 1888 } 1889 1890 UniqueID vfs::getNextVirtualUniqueID() { 1891 static std::atomic<unsigned> UID; 1892 unsigned ID = ++UID; 1893 // The following assumes that uint64_t max will never collide with a real 1894 // dev_t value from the OS. 1895 return UniqueID(std::numeric_limits<uint64_t>::max(), ID); 1896 } 1897 1898 void YAMLVFSWriter::addFileMapping(StringRef VirtualPath, StringRef RealPath) { 1899 assert(sys::path::is_absolute(VirtualPath) && "virtual path not absolute"); 1900 assert(sys::path::is_absolute(RealPath) && "real path not absolute"); 1901 assert(!pathHasTraversal(VirtualPath) && "path traversal is not supported"); 1902 Mappings.emplace_back(VirtualPath, RealPath); 1903 } 1904 1905 namespace { 1906 1907 class JSONWriter { 1908 llvm::raw_ostream &OS; 1909 SmallVector<StringRef, 16> DirStack; 1910 1911 unsigned getDirIndent() { return 4 * DirStack.size(); } 1912 unsigned getFileIndent() { return 4 * (DirStack.size() + 1); } 1913 bool containedIn(StringRef Parent, StringRef Path); 1914 StringRef containedPart(StringRef Parent, StringRef Path); 1915 void startDirectory(StringRef Path); 1916 void endDirectory(); 1917 void writeEntry(StringRef VPath, StringRef RPath); 1918 1919 public: 1920 JSONWriter(llvm::raw_ostream &OS) : OS(OS) {} 1921 1922 void write(ArrayRef<YAMLVFSEntry> Entries, Optional<bool> UseExternalNames, 1923 Optional<bool> IsCaseSensitive, Optional<bool> IsOverlayRelative, 1924 StringRef OverlayDir); 1925 }; 1926 1927 } // namespace 1928 1929 bool JSONWriter::containedIn(StringRef Parent, StringRef Path) { 1930 using namespace llvm::sys; 1931 1932 // Compare each path component. 1933 auto IParent = path::begin(Parent), EParent = path::end(Parent); 1934 for (auto IChild = path::begin(Path), EChild = path::end(Path); 1935 IParent != EParent && IChild != EChild; ++IParent, ++IChild) { 1936 if (*IParent != *IChild) 1937 return false; 1938 } 1939 // Have we exhausted the parent path? 1940 return IParent == EParent; 1941 } 1942 1943 StringRef JSONWriter::containedPart(StringRef Parent, StringRef Path) { 1944 assert(!Parent.empty()); 1945 assert(containedIn(Parent, Path)); 1946 return Path.slice(Parent.size() + 1, StringRef::npos); 1947 } 1948 1949 void JSONWriter::startDirectory(StringRef Path) { 1950 StringRef Name = 1951 DirStack.empty() ? Path : containedPart(DirStack.back(), Path); 1952 DirStack.push_back(Path); 1953 unsigned Indent = getDirIndent(); 1954 OS.indent(Indent) << "{\n"; 1955 OS.indent(Indent + 2) << "'type': 'directory',\n"; 1956 OS.indent(Indent + 2) << "'name': \"" << llvm::yaml::escape(Name) << "\",\n"; 1957 OS.indent(Indent + 2) << "'contents': [\n"; 1958 } 1959 1960 void JSONWriter::endDirectory() { 1961 unsigned Indent = getDirIndent(); 1962 OS.indent(Indent + 2) << "]\n"; 1963 OS.indent(Indent) << "}"; 1964 1965 DirStack.pop_back(); 1966 } 1967 1968 void JSONWriter::writeEntry(StringRef VPath, StringRef RPath) { 1969 unsigned Indent = getFileIndent(); 1970 OS.indent(Indent) << "{\n"; 1971 OS.indent(Indent + 2) << "'type': 'file',\n"; 1972 OS.indent(Indent + 2) << "'name': \"" << llvm::yaml::escape(VPath) << "\",\n"; 1973 OS.indent(Indent + 2) << "'external-contents': \"" 1974 << llvm::yaml::escape(RPath) << "\"\n"; 1975 OS.indent(Indent) << "}"; 1976 } 1977 1978 void JSONWriter::write(ArrayRef<YAMLVFSEntry> Entries, 1979 Optional<bool> UseExternalNames, 1980 Optional<bool> IsCaseSensitive, 1981 Optional<bool> IsOverlayRelative, 1982 StringRef OverlayDir) { 1983 using namespace llvm::sys; 1984 1985 OS << "{\n" 1986 " 'version': 0,\n"; 1987 if (IsCaseSensitive.hasValue()) 1988 OS << " 'case-sensitive': '" 1989 << (IsCaseSensitive.getValue() ? "true" : "false") << "',\n"; 1990 if (UseExternalNames.hasValue()) 1991 OS << " 'use-external-names': '" 1992 << (UseExternalNames.getValue() ? "true" : "false") << "',\n"; 1993 bool UseOverlayRelative = false; 1994 if (IsOverlayRelative.hasValue()) { 1995 UseOverlayRelative = IsOverlayRelative.getValue(); 1996 OS << " 'overlay-relative': '" << (UseOverlayRelative ? "true" : "false") 1997 << "',\n"; 1998 } 1999 OS << " 'roots': [\n"; 2000 2001 if (!Entries.empty()) { 2002 const YAMLVFSEntry &Entry = Entries.front(); 2003 startDirectory(path::parent_path(Entry.VPath)); 2004 2005 StringRef RPath = Entry.RPath; 2006 if (UseOverlayRelative) { 2007 unsigned OverlayDirLen = OverlayDir.size(); 2008 assert(RPath.substr(0, OverlayDirLen) == OverlayDir && 2009 "Overlay dir must be contained in RPath"); 2010 RPath = RPath.slice(OverlayDirLen, RPath.size()); 2011 } 2012 2013 writeEntry(path::filename(Entry.VPath), RPath); 2014 2015 for (const auto &Entry : Entries.slice(1)) { 2016 StringRef Dir = path::parent_path(Entry.VPath); 2017 if (Dir == DirStack.back()) 2018 OS << ",\n"; 2019 else { 2020 while (!DirStack.empty() && !containedIn(DirStack.back(), Dir)) { 2021 OS << "\n"; 2022 endDirectory(); 2023 } 2024 OS << ",\n"; 2025 startDirectory(Dir); 2026 } 2027 StringRef RPath = Entry.RPath; 2028 if (UseOverlayRelative) { 2029 unsigned OverlayDirLen = OverlayDir.size(); 2030 assert(RPath.substr(0, OverlayDirLen) == OverlayDir && 2031 "Overlay dir must be contained in RPath"); 2032 RPath = RPath.slice(OverlayDirLen, RPath.size()); 2033 } 2034 writeEntry(path::filename(Entry.VPath), RPath); 2035 } 2036 2037 while (!DirStack.empty()) { 2038 OS << "\n"; 2039 endDirectory(); 2040 } 2041 OS << "\n"; 2042 } 2043 2044 OS << " ]\n" 2045 << "}\n"; 2046 } 2047 2048 void YAMLVFSWriter::write(llvm::raw_ostream &OS) { 2049 llvm::sort(Mappings, [](const YAMLVFSEntry &LHS, const YAMLVFSEntry &RHS) { 2050 return LHS.VPath < RHS.VPath; 2051 }); 2052 2053 JSONWriter(OS).write(Mappings, UseExternalNames, IsCaseSensitive, 2054 IsOverlayRelative, OverlayDir); 2055 } 2056 2057 VFSFromYamlDirIterImpl::VFSFromYamlDirIterImpl( 2058 const Twine &_Path, 2059 RedirectingFileSystem::RedirectingDirectoryEntry::iterator Begin, 2060 RedirectingFileSystem::RedirectingDirectoryEntry::iterator End, 2061 bool IterateExternalFS, FileSystem &ExternalFS, std::error_code &EC) 2062 : Dir(_Path.str()), Current(Begin), End(End), 2063 IterateExternalFS(IterateExternalFS), ExternalFS(ExternalFS) { 2064 EC = incrementImpl(/*IsFirstTime=*/true); 2065 } 2066 2067 std::error_code VFSFromYamlDirIterImpl::increment() { 2068 return incrementImpl(/*IsFirstTime=*/false); 2069 } 2070 2071 std::error_code VFSFromYamlDirIterImpl::incrementExternal() { 2072 assert(!(IsExternalFSCurrent && ExternalDirIter == directory_iterator()) && 2073 "incrementing past end"); 2074 std::error_code EC; 2075 if (IsExternalFSCurrent) { 2076 ExternalDirIter.increment(EC); 2077 } else if (IterateExternalFS) { 2078 ExternalDirIter = ExternalFS.dir_begin(Dir, EC); 2079 IsExternalFSCurrent = true; 2080 if (EC && EC != errc::no_such_file_or_directory) 2081 return EC; 2082 EC = {}; 2083 } 2084 if (EC || ExternalDirIter == directory_iterator()) { 2085 CurrentEntry = directory_entry(); 2086 } else { 2087 CurrentEntry = *ExternalDirIter; 2088 } 2089 return EC; 2090 } 2091 2092 std::error_code VFSFromYamlDirIterImpl::incrementContent(bool IsFirstTime) { 2093 assert((IsFirstTime || Current != End) && "cannot iterate past end"); 2094 if (!IsFirstTime) 2095 ++Current; 2096 while (Current != End) { 2097 SmallString<128> PathStr(Dir); 2098 llvm::sys::path::append(PathStr, (*Current)->getName()); 2099 sys::fs::file_type Type = sys::fs::file_type::type_unknown; 2100 switch ((*Current)->getKind()) { 2101 case RedirectingFileSystem::EK_Directory: 2102 Type = sys::fs::file_type::directory_file; 2103 break; 2104 case RedirectingFileSystem::EK_File: 2105 Type = sys::fs::file_type::regular_file; 2106 break; 2107 } 2108 CurrentEntry = directory_entry(std::string(PathStr.str()), Type); 2109 return {}; 2110 } 2111 return incrementExternal(); 2112 } 2113 2114 std::error_code VFSFromYamlDirIterImpl::incrementImpl(bool IsFirstTime) { 2115 while (true) { 2116 std::error_code EC = IsExternalFSCurrent ? incrementExternal() 2117 : incrementContent(IsFirstTime); 2118 if (EC || CurrentEntry.path().empty()) 2119 return EC; 2120 StringRef Name = llvm::sys::path::filename(CurrentEntry.path()); 2121 if (SeenNames.insert(Name).second) 2122 return EC; // name not seen before 2123 } 2124 llvm_unreachable("returned above"); 2125 } 2126 2127 vfs::recursive_directory_iterator::recursive_directory_iterator( 2128 FileSystem &FS_, const Twine &Path, std::error_code &EC) 2129 : FS(&FS_) { 2130 directory_iterator I = FS->dir_begin(Path, EC); 2131 if (I != directory_iterator()) { 2132 State = std::make_shared<detail::RecDirIterState>(); 2133 State->Stack.push(I); 2134 } 2135 } 2136 2137 vfs::recursive_directory_iterator & 2138 recursive_directory_iterator::increment(std::error_code &EC) { 2139 assert(FS && State && !State->Stack.empty() && "incrementing past end"); 2140 assert(!State->Stack.top()->path().empty() && "non-canonical end iterator"); 2141 vfs::directory_iterator End; 2142 2143 if (State->HasNoPushRequest) 2144 State->HasNoPushRequest = false; 2145 else { 2146 if (State->Stack.top()->type() == sys::fs::file_type::directory_file) { 2147 vfs::directory_iterator I = FS->dir_begin(State->Stack.top()->path(), EC); 2148 if (I != End) { 2149 State->Stack.push(I); 2150 return *this; 2151 } 2152 } 2153 } 2154 2155 while (!State->Stack.empty() && State->Stack.top().increment(EC) == End) 2156 State->Stack.pop(); 2157 2158 if (State->Stack.empty()) 2159 State.reset(); // end iterator 2160 2161 return *this; 2162 } 2163