1 //===-- Path.cpp - Implement OS Path Concept ------------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the operating system Path API. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Support/COFF.h" 15 #include "llvm/Support/Endian.h" 16 #include "llvm/Support/Errc.h" 17 #include "llvm/Support/Path.h" 18 #include "llvm/Support/ErrorHandling.h" 19 #include "llvm/Support/FileSystem.h" 20 #include "llvm/Support/Process.h" 21 #include <cctype> 22 #include <cstdio> 23 #include <cstring> 24 #include <fcntl.h> 25 26 #if !defined(_MSC_VER) && !defined(__MINGW32__) 27 #include <unistd.h> 28 #else 29 #include <io.h> 30 #endif 31 32 using namespace llvm; 33 34 namespace { 35 using llvm::StringRef; 36 using llvm::sys::path::is_separator; 37 38 #ifdef LLVM_ON_WIN32 39 const char *separators = "\\/"; 40 const char preferred_separator = '\\'; 41 #else 42 const char separators = '/'; 43 const char preferred_separator = '/'; 44 #endif 45 46 StringRef find_first_component(StringRef path) { 47 // Look for this first component in the following order. 48 // * empty (in this case we return an empty string) 49 // * either C: or {//,\\}net. 50 // * {/,\} 51 // * {.,..} 52 // * {file,directory}name 53 54 if (path.empty()) 55 return path; 56 57 #ifdef LLVM_ON_WIN32 58 // C: 59 if (path.size() >= 2 && std::isalpha(static_cast<unsigned char>(path[0])) && 60 path[1] == ':') 61 return path.substr(0, 2); 62 #endif 63 64 // //net 65 if ((path.size() > 2) && 66 is_separator(path[0]) && 67 path[0] == path[1] && 68 !is_separator(path[2])) { 69 // Find the next directory separator. 70 size_t end = path.find_first_of(separators, 2); 71 return path.substr(0, end); 72 } 73 74 // {/,\} 75 if (is_separator(path[0])) 76 return path.substr(0, 1); 77 78 if (path.startswith("..")) 79 return path.substr(0, 2); 80 81 if (path[0] == '.') 82 return path.substr(0, 1); 83 84 // * {file,directory}name 85 size_t end = path.find_first_of(separators); 86 return path.substr(0, end); 87 } 88 89 size_t filename_pos(StringRef str) { 90 if (str.size() == 2 && 91 is_separator(str[0]) && 92 str[0] == str[1]) 93 return 0; 94 95 if (str.size() > 0 && is_separator(str[str.size() - 1])) 96 return str.size() - 1; 97 98 size_t pos = str.find_last_of(separators, str.size() - 1); 99 100 #ifdef LLVM_ON_WIN32 101 if (pos == StringRef::npos) 102 pos = str.find_last_of(':', str.size() - 2); 103 #endif 104 105 if (pos == StringRef::npos || 106 (pos == 1 && is_separator(str[0]))) 107 return 0; 108 109 return pos + 1; 110 } 111 112 size_t root_dir_start(StringRef str) { 113 // case "c:/" 114 #ifdef LLVM_ON_WIN32 115 if (str.size() > 2 && 116 str[1] == ':' && 117 is_separator(str[2])) 118 return 2; 119 #endif 120 121 // case "//" 122 if (str.size() == 2 && 123 is_separator(str[0]) && 124 str[0] == str[1]) 125 return StringRef::npos; 126 127 // case "//net" 128 if (str.size() > 3 && 129 is_separator(str[0]) && 130 str[0] == str[1] && 131 !is_separator(str[2])) { 132 return str.find_first_of(separators, 2); 133 } 134 135 // case "/" 136 if (str.size() > 0 && is_separator(str[0])) 137 return 0; 138 139 return StringRef::npos; 140 } 141 142 size_t parent_path_end(StringRef path) { 143 size_t end_pos = filename_pos(path); 144 145 bool filename_was_sep = path.size() > 0 && is_separator(path[end_pos]); 146 147 // Skip separators except for root dir. 148 size_t root_dir_pos = root_dir_start(path.substr(0, end_pos)); 149 150 while(end_pos > 0 && 151 (end_pos - 1) != root_dir_pos && 152 is_separator(path[end_pos - 1])) 153 --end_pos; 154 155 if (end_pos == 1 && root_dir_pos == 0 && filename_was_sep) 156 return StringRef::npos; 157 158 return end_pos; 159 } 160 } // end unnamed namespace 161 162 enum FSEntity { 163 FS_Dir, 164 FS_File, 165 FS_Name 166 }; 167 168 static std::error_code createUniqueEntity(const Twine &Model, int &ResultFD, 169 SmallVectorImpl<char> &ResultPath, 170 bool MakeAbsolute, unsigned Mode, 171 FSEntity Type) { 172 SmallString<128> ModelStorage; 173 Model.toVector(ModelStorage); 174 175 if (MakeAbsolute) { 176 // Make model absolute by prepending a temp directory if it's not already. 177 if (!sys::path::is_absolute(Twine(ModelStorage))) { 178 SmallString<128> TDir; 179 sys::path::system_temp_directory(true, TDir); 180 sys::path::append(TDir, Twine(ModelStorage)); 181 ModelStorage.swap(TDir); 182 } 183 } 184 185 // From here on, DO NOT modify model. It may be needed if the randomly chosen 186 // path already exists. 187 ResultPath = ModelStorage; 188 // Null terminate. 189 ResultPath.push_back(0); 190 ResultPath.pop_back(); 191 192 retry_random_path: 193 // Replace '%' with random chars. 194 for (unsigned i = 0, e = ModelStorage.size(); i != e; ++i) { 195 if (ModelStorage[i] == '%') 196 ResultPath[i] = "0123456789abcdef"[sys::Process::GetRandomNumber() & 15]; 197 } 198 199 // Try to open + create the file. 200 switch (Type) { 201 case FS_File: { 202 if (std::error_code EC = 203 sys::fs::openFileForWrite(Twine(ResultPath.begin()), ResultFD, 204 sys::fs::F_RW | sys::fs::F_Excl, Mode)) { 205 if (EC == errc::file_exists) 206 goto retry_random_path; 207 return EC; 208 } 209 210 return std::error_code(); 211 } 212 213 case FS_Name: { 214 std::error_code EC = 215 sys::fs::access(ResultPath.begin(), sys::fs::AccessMode::Exist); 216 if (EC == errc::no_such_file_or_directory) 217 return std::error_code(); 218 if (EC) 219 return EC; 220 goto retry_random_path; 221 } 222 223 case FS_Dir: { 224 if (std::error_code EC = 225 sys::fs::create_directory(ResultPath.begin(), false)) { 226 if (EC == errc::file_exists) 227 goto retry_random_path; 228 return EC; 229 } 230 return std::error_code(); 231 } 232 } 233 llvm_unreachable("Invalid Type"); 234 } 235 236 namespace llvm { 237 namespace sys { 238 namespace path { 239 240 const_iterator begin(StringRef path) { 241 const_iterator i; 242 i.Path = path; 243 i.Component = find_first_component(path); 244 i.Position = 0; 245 return i; 246 } 247 248 const_iterator end(StringRef path) { 249 const_iterator i; 250 i.Path = path; 251 i.Position = path.size(); 252 return i; 253 } 254 255 const_iterator &const_iterator::operator++() { 256 assert(Position < Path.size() && "Tried to increment past end!"); 257 258 // Increment Position to past the current component 259 Position += Component.size(); 260 261 // Check for end. 262 if (Position == Path.size()) { 263 Component = StringRef(); 264 return *this; 265 } 266 267 // Both POSIX and Windows treat paths that begin with exactly two separators 268 // specially. 269 bool was_net = Component.size() > 2 && 270 is_separator(Component[0]) && 271 Component[1] == Component[0] && 272 !is_separator(Component[2]); 273 274 // Handle separators. 275 if (is_separator(Path[Position])) { 276 // Root dir. 277 if (was_net 278 #ifdef LLVM_ON_WIN32 279 // c:/ 280 || Component.endswith(":") 281 #endif 282 ) { 283 Component = Path.substr(Position, 1); 284 return *this; 285 } 286 287 // Skip extra separators. 288 while (Position != Path.size() && 289 is_separator(Path[Position])) { 290 ++Position; 291 } 292 293 // Treat trailing '/' as a '.'. 294 if (Position == Path.size()) { 295 --Position; 296 Component = "."; 297 return *this; 298 } 299 } 300 301 // Find next component. 302 size_t end_pos = Path.find_first_of(separators, Position); 303 Component = Path.slice(Position, end_pos); 304 305 return *this; 306 } 307 308 bool const_iterator::operator==(const const_iterator &RHS) const { 309 return Path.begin() == RHS.Path.begin() && Position == RHS.Position; 310 } 311 312 ptrdiff_t const_iterator::operator-(const const_iterator &RHS) const { 313 return Position - RHS.Position; 314 } 315 316 reverse_iterator rbegin(StringRef Path) { 317 reverse_iterator I; 318 I.Path = Path; 319 I.Position = Path.size(); 320 return ++I; 321 } 322 323 reverse_iterator rend(StringRef Path) { 324 reverse_iterator I; 325 I.Path = Path; 326 I.Component = Path.substr(0, 0); 327 I.Position = 0; 328 return I; 329 } 330 331 reverse_iterator &reverse_iterator::operator++() { 332 // If we're at the end and the previous char was a '/', return '.' unless 333 // we are the root path. 334 size_t root_dir_pos = root_dir_start(Path); 335 if (Position == Path.size() && 336 Path.size() > root_dir_pos + 1 && 337 is_separator(Path[Position - 1])) { 338 --Position; 339 Component = "."; 340 return *this; 341 } 342 343 // Skip separators unless it's the root directory. 344 size_t end_pos = Position; 345 346 while(end_pos > 0 && 347 (end_pos - 1) != root_dir_pos && 348 is_separator(Path[end_pos - 1])) 349 --end_pos; 350 351 // Find next separator. 352 size_t start_pos = filename_pos(Path.substr(0, end_pos)); 353 Component = Path.slice(start_pos, end_pos); 354 Position = start_pos; 355 return *this; 356 } 357 358 bool reverse_iterator::operator==(const reverse_iterator &RHS) const { 359 return Path.begin() == RHS.Path.begin() && Component == RHS.Component && 360 Position == RHS.Position; 361 } 362 363 StringRef root_path(StringRef path) { 364 const_iterator b = begin(path), 365 pos = b, 366 e = end(path); 367 if (b != e) { 368 bool has_net = b->size() > 2 && is_separator((*b)[0]) && (*b)[1] == (*b)[0]; 369 bool has_drive = 370 #ifdef LLVM_ON_WIN32 371 b->endswith(":"); 372 #else 373 false; 374 #endif 375 376 if (has_net || has_drive) { 377 if ((++pos != e) && is_separator((*pos)[0])) { 378 // {C:/,//net/}, so get the first two components. 379 return path.substr(0, b->size() + pos->size()); 380 } else { 381 // just {C:,//net}, return the first component. 382 return *b; 383 } 384 } 385 386 // POSIX style root directory. 387 if (is_separator((*b)[0])) { 388 return *b; 389 } 390 } 391 392 return StringRef(); 393 } 394 395 StringRef root_name(StringRef path) { 396 const_iterator b = begin(path), 397 e = end(path); 398 if (b != e) { 399 bool has_net = b->size() > 2 && is_separator((*b)[0]) && (*b)[1] == (*b)[0]; 400 bool has_drive = 401 #ifdef LLVM_ON_WIN32 402 b->endswith(":"); 403 #else 404 false; 405 #endif 406 407 if (has_net || has_drive) { 408 // just {C:,//net}, return the first component. 409 return *b; 410 } 411 } 412 413 // No path or no name. 414 return StringRef(); 415 } 416 417 StringRef root_directory(StringRef path) { 418 const_iterator b = begin(path), 419 pos = b, 420 e = end(path); 421 if (b != e) { 422 bool has_net = b->size() > 2 && is_separator((*b)[0]) && (*b)[1] == (*b)[0]; 423 bool has_drive = 424 #ifdef LLVM_ON_WIN32 425 b->endswith(":"); 426 #else 427 false; 428 #endif 429 430 if ((has_net || has_drive) && 431 // {C:,//net}, skip to the next component. 432 (++pos != e) && is_separator((*pos)[0])) { 433 return *pos; 434 } 435 436 // POSIX style root directory. 437 if (!has_net && is_separator((*b)[0])) { 438 return *b; 439 } 440 } 441 442 // No path or no root. 443 return StringRef(); 444 } 445 446 StringRef relative_path(StringRef path) { 447 StringRef root = root_path(path); 448 return path.substr(root.size()); 449 } 450 451 void append(SmallVectorImpl<char> &path, const Twine &a, 452 const Twine &b, 453 const Twine &c, 454 const Twine &d) { 455 SmallString<32> a_storage; 456 SmallString<32> b_storage; 457 SmallString<32> c_storage; 458 SmallString<32> d_storage; 459 460 SmallVector<StringRef, 4> components; 461 if (!a.isTriviallyEmpty()) components.push_back(a.toStringRef(a_storage)); 462 if (!b.isTriviallyEmpty()) components.push_back(b.toStringRef(b_storage)); 463 if (!c.isTriviallyEmpty()) components.push_back(c.toStringRef(c_storage)); 464 if (!d.isTriviallyEmpty()) components.push_back(d.toStringRef(d_storage)); 465 466 for (SmallVectorImpl<StringRef>::const_iterator i = components.begin(), 467 e = components.end(); 468 i != e; ++i) { 469 bool path_has_sep = !path.empty() && is_separator(path[path.size() - 1]); 470 bool component_has_sep = !i->empty() && is_separator((*i)[0]); 471 bool is_root_name = has_root_name(*i); 472 473 if (path_has_sep) { 474 // Strip separators from beginning of component. 475 size_t loc = i->find_first_not_of(separators); 476 StringRef c = i->substr(loc); 477 478 // Append it. 479 path.append(c.begin(), c.end()); 480 continue; 481 } 482 483 if (!component_has_sep && !(path.empty() || is_root_name)) { 484 // Add a separator. 485 path.push_back(preferred_separator); 486 } 487 488 path.append(i->begin(), i->end()); 489 } 490 } 491 492 void append(SmallVectorImpl<char> &path, 493 const_iterator begin, const_iterator end) { 494 for (; begin != end; ++begin) 495 path::append(path, *begin); 496 } 497 498 StringRef parent_path(StringRef path) { 499 size_t end_pos = parent_path_end(path); 500 if (end_pos == StringRef::npos) 501 return StringRef(); 502 else 503 return path.substr(0, end_pos); 504 } 505 506 void remove_filename(SmallVectorImpl<char> &path) { 507 size_t end_pos = parent_path_end(StringRef(path.begin(), path.size())); 508 if (end_pos != StringRef::npos) 509 path.set_size(end_pos); 510 } 511 512 void replace_extension(SmallVectorImpl<char> &path, const Twine &extension) { 513 StringRef p(path.begin(), path.size()); 514 SmallString<32> ext_storage; 515 StringRef ext = extension.toStringRef(ext_storage); 516 517 // Erase existing extension. 518 size_t pos = p.find_last_of('.'); 519 if (pos != StringRef::npos && pos >= filename_pos(p)) 520 path.set_size(pos); 521 522 // Append '.' if needed. 523 if (ext.size() > 0 && ext[0] != '.') 524 path.push_back('.'); 525 526 // Append extension. 527 path.append(ext.begin(), ext.end()); 528 } 529 530 void native(const Twine &path, SmallVectorImpl<char> &result) { 531 assert((!path.isSingleStringRef() || 532 path.getSingleStringRef().data() != result.data()) && 533 "path and result are not allowed to overlap!"); 534 // Clear result. 535 result.clear(); 536 path.toVector(result); 537 native(result); 538 } 539 540 void native(SmallVectorImpl<char> &Path) { 541 #ifdef LLVM_ON_WIN32 542 std::replace(Path.begin(), Path.end(), '/', '\\'); 543 #else 544 for (auto PI = Path.begin(), PE = Path.end(); PI < PE; ++PI) { 545 if (*PI == '\\') { 546 auto PN = PI + 1; 547 if (PN < PE && *PN == '\\') 548 ++PI; // increment once, the for loop will move over the escaped slash 549 else 550 *PI = '/'; 551 } 552 } 553 #endif 554 } 555 556 StringRef filename(StringRef path) { 557 return *rbegin(path); 558 } 559 560 StringRef stem(StringRef path) { 561 StringRef fname = filename(path); 562 size_t pos = fname.find_last_of('.'); 563 if (pos == StringRef::npos) 564 return fname; 565 else 566 if ((fname.size() == 1 && fname == ".") || 567 (fname.size() == 2 && fname == "..")) 568 return fname; 569 else 570 return fname.substr(0, pos); 571 } 572 573 StringRef extension(StringRef path) { 574 StringRef fname = filename(path); 575 size_t pos = fname.find_last_of('.'); 576 if (pos == StringRef::npos) 577 return StringRef(); 578 else 579 if ((fname.size() == 1 && fname == ".") || 580 (fname.size() == 2 && fname == "..")) 581 return StringRef(); 582 else 583 return fname.substr(pos); 584 } 585 586 bool is_separator(char value) { 587 switch(value) { 588 #ifdef LLVM_ON_WIN32 589 case '\\': // fall through 590 #endif 591 case '/': return true; 592 default: return false; 593 } 594 } 595 596 static const char preferred_separator_string[] = { preferred_separator, '\0' }; 597 598 StringRef get_separator() { 599 return preferred_separator_string; 600 } 601 602 bool has_root_name(const Twine &path) { 603 SmallString<128> path_storage; 604 StringRef p = path.toStringRef(path_storage); 605 606 return !root_name(p).empty(); 607 } 608 609 bool has_root_directory(const Twine &path) { 610 SmallString<128> path_storage; 611 StringRef p = path.toStringRef(path_storage); 612 613 return !root_directory(p).empty(); 614 } 615 616 bool has_root_path(const Twine &path) { 617 SmallString<128> path_storage; 618 StringRef p = path.toStringRef(path_storage); 619 620 return !root_path(p).empty(); 621 } 622 623 bool has_relative_path(const Twine &path) { 624 SmallString<128> path_storage; 625 StringRef p = path.toStringRef(path_storage); 626 627 return !relative_path(p).empty(); 628 } 629 630 bool has_filename(const Twine &path) { 631 SmallString<128> path_storage; 632 StringRef p = path.toStringRef(path_storage); 633 634 return !filename(p).empty(); 635 } 636 637 bool has_parent_path(const Twine &path) { 638 SmallString<128> path_storage; 639 StringRef p = path.toStringRef(path_storage); 640 641 return !parent_path(p).empty(); 642 } 643 644 bool has_stem(const Twine &path) { 645 SmallString<128> path_storage; 646 StringRef p = path.toStringRef(path_storage); 647 648 return !stem(p).empty(); 649 } 650 651 bool has_extension(const Twine &path) { 652 SmallString<128> path_storage; 653 StringRef p = path.toStringRef(path_storage); 654 655 return !extension(p).empty(); 656 } 657 658 bool is_absolute(const Twine &path) { 659 SmallString<128> path_storage; 660 StringRef p = path.toStringRef(path_storage); 661 662 bool rootDir = has_root_directory(p), 663 #ifdef LLVM_ON_WIN32 664 rootName = has_root_name(p); 665 #else 666 rootName = true; 667 #endif 668 669 return rootDir && rootName; 670 } 671 672 bool is_relative(const Twine &path) { 673 return !is_absolute(path); 674 } 675 676 } // end namespace path 677 678 namespace fs { 679 680 std::error_code getUniqueID(const Twine Path, UniqueID &Result) { 681 file_status Status; 682 std::error_code EC = status(Path, Status); 683 if (EC) 684 return EC; 685 Result = Status.getUniqueID(); 686 return std::error_code(); 687 } 688 689 std::error_code createUniqueFile(const Twine &Model, int &ResultFd, 690 SmallVectorImpl<char> &ResultPath, 691 unsigned Mode) { 692 return createUniqueEntity(Model, ResultFd, ResultPath, false, Mode, FS_File); 693 } 694 695 std::error_code createUniqueFile(const Twine &Model, 696 SmallVectorImpl<char> &ResultPath) { 697 int Dummy; 698 return createUniqueEntity(Model, Dummy, ResultPath, false, 0, FS_Name); 699 } 700 701 static std::error_code 702 createTemporaryFile(const Twine &Model, int &ResultFD, 703 llvm::SmallVectorImpl<char> &ResultPath, FSEntity Type) { 704 SmallString<128> Storage; 705 StringRef P = Model.toNullTerminatedStringRef(Storage); 706 assert(P.find_first_of(separators) == StringRef::npos && 707 "Model must be a simple filename."); 708 // Use P.begin() so that createUniqueEntity doesn't need to recreate Storage. 709 return createUniqueEntity(P.begin(), ResultFD, ResultPath, 710 true, owner_read | owner_write, Type); 711 } 712 713 static std::error_code 714 createTemporaryFile(const Twine &Prefix, StringRef Suffix, int &ResultFD, 715 llvm::SmallVectorImpl<char> &ResultPath, FSEntity Type) { 716 const char *Middle = Suffix.empty() ? "-%%%%%%" : "-%%%%%%."; 717 return createTemporaryFile(Prefix + Middle + Suffix, ResultFD, ResultPath, 718 Type); 719 } 720 721 std::error_code createTemporaryFile(const Twine &Prefix, StringRef Suffix, 722 int &ResultFD, 723 SmallVectorImpl<char> &ResultPath) { 724 return createTemporaryFile(Prefix, Suffix, ResultFD, ResultPath, FS_File); 725 } 726 727 std::error_code createTemporaryFile(const Twine &Prefix, StringRef Suffix, 728 SmallVectorImpl<char> &ResultPath) { 729 int Dummy; 730 return createTemporaryFile(Prefix, Suffix, Dummy, ResultPath, FS_Name); 731 } 732 733 734 // This is a mkdtemp with a different pattern. We use createUniqueEntity mostly 735 // for consistency. We should try using mkdtemp. 736 std::error_code createUniqueDirectory(const Twine &Prefix, 737 SmallVectorImpl<char> &ResultPath) { 738 int Dummy; 739 return createUniqueEntity(Prefix + "-%%%%%%", Dummy, ResultPath, 740 true, 0, FS_Dir); 741 } 742 743 std::error_code make_absolute(SmallVectorImpl<char> &path) { 744 StringRef p(path.data(), path.size()); 745 746 bool rootDirectory = path::has_root_directory(p), 747 #ifdef LLVM_ON_WIN32 748 rootName = path::has_root_name(p); 749 #else 750 rootName = true; 751 #endif 752 753 // Already absolute. 754 if (rootName && rootDirectory) 755 return std::error_code(); 756 757 // All of the following conditions will need the current directory. 758 SmallString<128> current_dir; 759 if (std::error_code ec = current_path(current_dir)) 760 return ec; 761 762 // Relative path. Prepend the current directory. 763 if (!rootName && !rootDirectory) { 764 // Append path to the current directory. 765 path::append(current_dir, p); 766 // Set path to the result. 767 path.swap(current_dir); 768 return std::error_code(); 769 } 770 771 if (!rootName && rootDirectory) { 772 StringRef cdrn = path::root_name(current_dir); 773 SmallString<128> curDirRootName(cdrn.begin(), cdrn.end()); 774 path::append(curDirRootName, p); 775 // Set path to the result. 776 path.swap(curDirRootName); 777 return std::error_code(); 778 } 779 780 if (rootName && !rootDirectory) { 781 StringRef pRootName = path::root_name(p); 782 StringRef bRootDirectory = path::root_directory(current_dir); 783 StringRef bRelativePath = path::relative_path(current_dir); 784 StringRef pRelativePath = path::relative_path(p); 785 786 SmallString<128> res; 787 path::append(res, pRootName, bRootDirectory, bRelativePath, pRelativePath); 788 path.swap(res); 789 return std::error_code(); 790 } 791 792 llvm_unreachable("All rootName and rootDirectory combinations should have " 793 "occurred above!"); 794 } 795 796 std::error_code create_directories(const Twine &Path, bool IgnoreExisting) { 797 SmallString<128> PathStorage; 798 StringRef P = Path.toStringRef(PathStorage); 799 800 // Be optimistic and try to create the directory 801 std::error_code EC = create_directory(P, IgnoreExisting); 802 // If we succeeded, or had any error other than the parent not existing, just 803 // return it. 804 if (EC != errc::no_such_file_or_directory) 805 return EC; 806 807 // We failed because of a no_such_file_or_directory, try to create the 808 // parent. 809 StringRef Parent = path::parent_path(P); 810 if (Parent.empty()) 811 return EC; 812 813 if ((EC = create_directories(Parent))) 814 return EC; 815 816 return create_directory(P, IgnoreExisting); 817 } 818 819 std::error_code copy_file(const Twine &From, const Twine &To) { 820 int ReadFD, WriteFD; 821 if (std::error_code EC = openFileForRead(From, ReadFD)) 822 return EC; 823 if (std::error_code EC = openFileForWrite(To, WriteFD, F_None)) { 824 close(ReadFD); 825 return EC; 826 } 827 828 const size_t BufSize = 4096; 829 char *Buf = new char[BufSize]; 830 int BytesRead = 0, BytesWritten = 0; 831 for (;;) { 832 BytesRead = read(ReadFD, Buf, BufSize); 833 if (BytesRead <= 0) 834 break; 835 while (BytesRead) { 836 BytesWritten = write(WriteFD, Buf, BytesRead); 837 if (BytesWritten < 0) 838 break; 839 BytesRead -= BytesWritten; 840 } 841 if (BytesWritten < 0) 842 break; 843 } 844 close(ReadFD); 845 close(WriteFD); 846 delete[] Buf; 847 848 if (BytesRead < 0 || BytesWritten < 0) 849 return std::error_code(errno, std::generic_category()); 850 return std::error_code(); 851 } 852 853 bool exists(file_status status) { 854 return status_known(status) && status.type() != file_type::file_not_found; 855 } 856 857 bool status_known(file_status s) { 858 return s.type() != file_type::status_error; 859 } 860 861 bool is_directory(file_status status) { 862 return status.type() == file_type::directory_file; 863 } 864 865 std::error_code is_directory(const Twine &path, bool &result) { 866 file_status st; 867 if (std::error_code ec = status(path, st)) 868 return ec; 869 result = is_directory(st); 870 return std::error_code(); 871 } 872 873 bool is_regular_file(file_status status) { 874 return status.type() == file_type::regular_file; 875 } 876 877 std::error_code is_regular_file(const Twine &path, bool &result) { 878 file_status st; 879 if (std::error_code ec = status(path, st)) 880 return ec; 881 result = is_regular_file(st); 882 return std::error_code(); 883 } 884 885 bool is_other(file_status status) { 886 return exists(status) && 887 !is_regular_file(status) && 888 !is_directory(status); 889 } 890 891 std::error_code is_other(const Twine &Path, bool &Result) { 892 file_status FileStatus; 893 if (std::error_code EC = status(Path, FileStatus)) 894 return EC; 895 Result = is_other(FileStatus); 896 return std::error_code(); 897 } 898 899 void directory_entry::replace_filename(const Twine &filename, file_status st) { 900 SmallString<128> path(Path.begin(), Path.end()); 901 path::remove_filename(path); 902 path::append(path, filename); 903 Path = path.str(); 904 Status = st; 905 } 906 907 /// @brief Identify the magic in magic. 908 file_magic identify_magic(StringRef Magic) { 909 if (Magic.size() < 4) 910 return file_magic::unknown; 911 switch ((unsigned char)Magic[0]) { 912 case 0x00: { 913 // COFF bigobj or short import library file 914 if (Magic[1] == (char)0x00 && Magic[2] == (char)0xff && 915 Magic[3] == (char)0xff) { 916 size_t MinSize = offsetof(COFF::BigObjHeader, UUID) + sizeof(COFF::BigObjMagic); 917 if (Magic.size() < MinSize) 918 return file_magic::coff_import_library; 919 920 int BigObjVersion = *reinterpret_cast<const support::ulittle16_t*>( 921 Magic.data() + offsetof(COFF::BigObjHeader, Version)); 922 if (BigObjVersion < COFF::BigObjHeader::MinBigObjectVersion) 923 return file_magic::coff_import_library; 924 925 const char *Start = Magic.data() + offsetof(COFF::BigObjHeader, UUID); 926 if (memcmp(Start, COFF::BigObjMagic, sizeof(COFF::BigObjMagic)) != 0) 927 return file_magic::coff_import_library; 928 return file_magic::coff_object; 929 } 930 // Windows resource file 931 const char Expected[] = { 0, 0, 0, 0, '\x20', 0, 0, 0, '\xff' }; 932 if (Magic.size() >= sizeof(Expected) && 933 memcmp(Magic.data(), Expected, sizeof(Expected)) == 0) 934 return file_magic::windows_resource; 935 // 0x0000 = COFF unknown machine type 936 if (Magic[1] == 0) 937 return file_magic::coff_object; 938 break; 939 } 940 case 0xDE: // 0x0B17C0DE = BC wraper 941 if (Magic[1] == (char)0xC0 && Magic[2] == (char)0x17 && 942 Magic[3] == (char)0x0B) 943 return file_magic::bitcode; 944 break; 945 case 'B': 946 if (Magic[1] == 'C' && Magic[2] == (char)0xC0 && Magic[3] == (char)0xDE) 947 return file_magic::bitcode; 948 break; 949 case '!': 950 if (Magic.size() >= 8) 951 if (memcmp(Magic.data(),"!<arch>\n",8) == 0) 952 return file_magic::archive; 953 break; 954 955 case '\177': 956 if (Magic.size() >= 18 && Magic[1] == 'E' && Magic[2] == 'L' && 957 Magic[3] == 'F') { 958 bool Data2MSB = Magic[5] == 2; 959 unsigned high = Data2MSB ? 16 : 17; 960 unsigned low = Data2MSB ? 17 : 16; 961 if (Magic[high] == 0) 962 switch (Magic[low]) { 963 default: break; 964 case 1: return file_magic::elf_relocatable; 965 case 2: return file_magic::elf_executable; 966 case 3: return file_magic::elf_shared_object; 967 case 4: return file_magic::elf_core; 968 } 969 else 970 // It's still some type of ELF file. 971 return file_magic::elf; 972 } 973 break; 974 975 case 0xCA: 976 if (Magic[1] == char(0xFE) && Magic[2] == char(0xBA) && 977 Magic[3] == char(0xBE)) { 978 // This is complicated by an overlap with Java class files. 979 // See the Mach-O section in /usr/share/file/magic for details. 980 if (Magic.size() >= 8 && Magic[7] < 43) 981 return file_magic::macho_universal_binary; 982 } 983 break; 984 985 // The two magic numbers for mach-o are: 986 // 0xfeedface - 32-bit mach-o 987 // 0xfeedfacf - 64-bit mach-o 988 case 0xFE: 989 case 0xCE: 990 case 0xCF: { 991 uint16_t type = 0; 992 if (Magic[0] == char(0xFE) && Magic[1] == char(0xED) && 993 Magic[2] == char(0xFA) && 994 (Magic[3] == char(0xCE) || Magic[3] == char(0xCF))) { 995 /* Native endian */ 996 if (Magic.size() >= 16) type = Magic[14] << 8 | Magic[15]; 997 } else if ((Magic[0] == char(0xCE) || Magic[0] == char(0xCF)) && 998 Magic[1] == char(0xFA) && Magic[2] == char(0xED) && 999 Magic[3] == char(0xFE)) { 1000 /* Reverse endian */ 1001 if (Magic.size() >= 14) type = Magic[13] << 8 | Magic[12]; 1002 } 1003 switch (type) { 1004 default: break; 1005 case 1: return file_magic::macho_object; 1006 case 2: return file_magic::macho_executable; 1007 case 3: return file_magic::macho_fixed_virtual_memory_shared_lib; 1008 case 4: return file_magic::macho_core; 1009 case 5: return file_magic::macho_preload_executable; 1010 case 6: return file_magic::macho_dynamically_linked_shared_lib; 1011 case 7: return file_magic::macho_dynamic_linker; 1012 case 8: return file_magic::macho_bundle; 1013 case 9: return file_magic::macho_dynamically_linked_shared_lib_stub; 1014 case 10: return file_magic::macho_dsym_companion; 1015 } 1016 break; 1017 } 1018 case 0xF0: // PowerPC Windows 1019 case 0x83: // Alpha 32-bit 1020 case 0x84: // Alpha 64-bit 1021 case 0x66: // MPS R4000 Windows 1022 case 0x50: // mc68K 1023 case 0x4c: // 80386 Windows 1024 case 0xc4: // ARMNT Windows 1025 if (Magic[1] == 0x01) 1026 return file_magic::coff_object; 1027 1028 case 0x90: // PA-RISC Windows 1029 case 0x68: // mc68K Windows 1030 if (Magic[1] == 0x02) 1031 return file_magic::coff_object; 1032 break; 1033 1034 case 'M': // Possible MS-DOS stub on Windows PE file 1035 if (Magic[1] == 'Z') { 1036 uint32_t off = 1037 *reinterpret_cast<const support::ulittle32_t*>(Magic.data() + 0x3c); 1038 // PE/COFF file, either EXE or DLL. 1039 if (off < Magic.size() && 1040 memcmp(Magic.data()+off, COFF::PEMagic, sizeof(COFF::PEMagic)) == 0) 1041 return file_magic::pecoff_executable; 1042 } 1043 break; 1044 1045 case 0x64: // x86-64 Windows. 1046 if (Magic[1] == char(0x86)) 1047 return file_magic::coff_object; 1048 break; 1049 1050 default: 1051 break; 1052 } 1053 return file_magic::unknown; 1054 } 1055 1056 std::error_code identify_magic(const Twine &Path, file_magic &Result) { 1057 int FD; 1058 if (std::error_code EC = openFileForRead(Path, FD)) 1059 return EC; 1060 1061 char Buffer[32]; 1062 int Length = read(FD, Buffer, sizeof(Buffer)); 1063 if (close(FD) != 0 || Length < 0) 1064 return std::error_code(errno, std::generic_category()); 1065 1066 Result = identify_magic(StringRef(Buffer, Length)); 1067 return std::error_code(); 1068 } 1069 1070 std::error_code directory_entry::status(file_status &result) const { 1071 return fs::status(Path, result); 1072 } 1073 1074 } // end namespace fs 1075 } // end namespace sys 1076 } // end namespace llvm 1077 1078 // Include the truly platform-specific parts. 1079 #if defined(LLVM_ON_UNIX) 1080 #include "Unix/Path.inc" 1081 #endif 1082 #if defined(LLVM_ON_WIN32) 1083 #include "Windows/Path.inc" 1084 #endif 1085