ArchiveWriter.cpp revision f2e292ce58ca07d9bbe3cad75f8baa35bd85964a
1//===-- ArchiveWriter.cpp - Write LLVM archive files ----------------------===// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file was developed by Reid Spencer and is distributed under the 6// University of Illinois Open Source License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9// 10// Builds up an LLVM archive file (.a) containing LLVM bytecode. 11// 12//===----------------------------------------------------------------------===// 13 14#include "ArchiveInternals.h" 15#include "llvm/Bytecode/Reader.h" 16#include "llvm/Support/Compressor.h" 17#include "llvm/System/Signals.h" 18#include "llvm/System/Process.h" 19#include <fstream> 20#include <ostream> 21#include <iomanip> 22using namespace llvm; 23 24// Write an integer using variable bit rate encoding. This saves a few bytes 25// per entry in the symbol table. 26inline void writeInteger(unsigned num, std::ofstream& ARFile) { 27 while (1) { 28 if (num < 0x80) { // done? 29 ARFile << (unsigned char)num; 30 return; 31 } 32 33 // Nope, we are bigger than a character, output the next 7 bits and set the 34 // high bit to say that there is more coming... 35 ARFile << (unsigned char)(0x80 | ((unsigned char)num & 0x7F)); 36 num >>= 7; // Shift out 7 bits now... 37 } 38} 39 40// Compute how many bytes are taken by a given VBR encoded value. This is needed 41// to pre-compute the size of the symbol table. 42inline unsigned numVbrBytes(unsigned num) { 43 44 // Note that the following nested ifs are somewhat equivalent to a binary 45 // search. We split it in half by comparing against 2^14 first. This allows 46 // most reasonable values to be done in 2 comparisons instead of 1 for 47 // small ones and four for large ones. We expect this to access file offsets 48 // in the 2^10 to 2^24 range and symbol lengths in the 2^0 to 2^8 range, 49 // so this approach is reasonable. 50 if (num < 1<<14) 51 if (num < 1<<7) 52 return 1; 53 else 54 return 2; 55 if (num < 1<<21) 56 return 3; 57 58 if (num < 1<<28) 59 return 4; 60 return 5; // anything >= 2^28 takes 5 bytes 61} 62 63// Create an empty archive. 64Archive* 65Archive::CreateEmpty(const sys::Path& FilePath ) { 66 Archive* result = new Archive(FilePath); 67 return result; 68} 69 70// Fill the ArchiveMemberHeader with the information from a member. If 71// TruncateNames is true, names are flattened to 15 chars or less. The sz field 72// is provided here instead of coming from the mbr because the member might be 73// stored compressed and the compressed size is not the ArchiveMember's size. 74// Furthermore compressed files have negative size fields to identify them as 75// compressed. 76bool 77Archive::fillHeader(const ArchiveMember &mbr, ArchiveMemberHeader& hdr, 78 int sz, bool TruncateNames) const { 79 80 // Set the permissions mode, uid and gid 81 hdr.init(); 82 char buffer[32]; 83 sprintf(buffer, "%-8o", mbr.getMode()); 84 memcpy(hdr.mode,buffer,8); 85 sprintf(buffer, "%-6u", mbr.getUser()); 86 memcpy(hdr.uid,buffer,6); 87 sprintf(buffer, "%-6u", mbr.getGroup()); 88 memcpy(hdr.gid,buffer,6); 89 90 // Set the last modification date 91 uint64_t secondsSinceEpoch = mbr.getModTime().toEpochTime(); 92 sprintf(buffer,"%-12u", unsigned(secondsSinceEpoch)); 93 memcpy(hdr.date,buffer,12); 94 95 // Get rid of trailing blanks in the name 96 std::string mbrPath = mbr.getPath().toString(); 97 size_t mbrLen = mbrPath.length(); 98 while (mbrLen > 0 && mbrPath[mbrLen-1] == ' ') { 99 mbrPath.erase(mbrLen-1,1); 100 mbrLen--; 101 } 102 103 // Set the name field in one of its various flavors. 104 bool writeLongName = false; 105 if (mbr.isStringTable()) { 106 memcpy(hdr.name,ARFILE_STRTAB_NAME,16); 107 } else if (mbr.isSVR4SymbolTable()) { 108 memcpy(hdr.name,ARFILE_SVR4_SYMTAB_NAME,16); 109 } else if (mbr.isBSD4SymbolTable()) { 110 memcpy(hdr.name,ARFILE_BSD4_SYMTAB_NAME,16); 111 } else if (mbr.isLLVMSymbolTable()) { 112 memcpy(hdr.name,ARFILE_LLVM_SYMTAB_NAME,16); 113 } else if (TruncateNames) { 114 const char* nm = mbrPath.c_str(); 115 unsigned len = mbrPath.length(); 116 size_t slashpos = mbrPath.rfind('/'); 117 if (slashpos != std::string::npos) { 118 nm += slashpos + 1; 119 len -= slashpos +1; 120 } 121 if (len > 15) 122 len = 15; 123 memcpy(hdr.name,nm,len); 124 hdr.name[len] = '/'; 125 } else if (mbrPath.length() < 16 && mbrPath.find('/') == std::string::npos) { 126 memcpy(hdr.name,mbrPath.c_str(),mbrPath.length()); 127 hdr.name[mbrPath.length()] = '/'; 128 } else { 129 std::string nm = "#1/"; 130 nm += utostr(mbrPath.length()); 131 memcpy(hdr.name,nm.data(),nm.length()); 132 if (sz < 0) 133 sz -= mbrPath.length(); 134 else 135 sz += mbrPath.length(); 136 writeLongName = true; 137 } 138 139 // Set the size field 140 if (sz < 0) { 141 buffer[0] = '-'; 142 sprintf(&buffer[1],"%-9u",(unsigned)-sz); 143 } else { 144 sprintf(buffer, "%-10u", (unsigned)sz); 145 } 146 memcpy(hdr.size,buffer,10); 147 148 return writeLongName; 149} 150 151// Insert a file into the archive before some other member. This also takes care 152// of extracting the necessary flags and information from the file. 153bool 154Archive::addFileBefore(const sys::Path& filePath, iterator where, 155 std::string* ErrMsg) { 156 if (!filePath.exists()) { 157 if (ErrMsg) 158 *ErrMsg = "Can not add a non-existent file to archive"; 159 return true; 160 } 161 162 ArchiveMember* mbr = new ArchiveMember(this); 163 164 mbr->data = 0; 165 mbr->path = filePath; 166 if (mbr->path.getFileStatus(mbr->info, ErrMsg)) 167 return true; 168 169 unsigned flags = 0; 170 bool hasSlash = filePath.toString().find('/') != std::string::npos; 171 if (hasSlash) 172 flags |= ArchiveMember::HasPathFlag; 173 if (hasSlash || filePath.toString().length() > 15) 174 flags |= ArchiveMember::HasLongFilenameFlag; 175 std::string magic; 176 mbr->path.getMagicNumber(magic,4); 177 switch (sys::IdentifyFileType(magic.c_str(),4)) { 178 case sys::BytecodeFileType: 179 flags |= ArchiveMember::BytecodeFlag; 180 break; 181 case sys::CompressedBytecodeFileType: 182 flags |= ArchiveMember::CompressedBytecodeFlag; 183 break; 184 default: 185 break; 186 } 187 mbr->flags = flags; 188 members.insert(where,mbr); 189 return false; 190} 191 192// Write one member out to the file. 193bool 194Archive::writeMember( 195 const ArchiveMember& member, 196 std::ofstream& ARFile, 197 bool CreateSymbolTable, 198 bool TruncateNames, 199 bool ShouldCompress, 200 std::string* ErrMsg 201) { 202 203 unsigned filepos = ARFile.tellp(); 204 filepos -= 8; 205 206 // Get the data and its size either from the 207 // member's in-memory data or directly from the file. 208 size_t fSize = member.getSize(); 209 const char* data = (const char*)member.getData(); 210 sys::MappedFile* mFile = 0; 211 if (!data) { 212 mFile = new sys::MappedFile(); 213 if (mFile->open(member.getPath(), sys::MappedFile::READ_ACCESS, ErrMsg)) 214 return true; 215 if (!(data = (const char*) mFile->map(ErrMsg))) 216 return true; 217 fSize = mFile->size(); 218 } 219 220 // Now that we have the data in memory, update the 221 // symbol table if its a bytecode file. 222 if (CreateSymbolTable && 223 (member.isBytecode() || member.isCompressedBytecode())) { 224 std::vector<std::string> symbols; 225 std::string FullMemberName = archPath.toString() + "(" + 226 member.getPath().toString() 227 + ")"; 228 ModuleProvider* MP = 229 GetBytecodeSymbols((const unsigned char*)data,fSize, 230 FullMemberName, symbols, 231 Compressor::decompressToNewBuffer, ErrMsg); 232 233 // If the bytecode parsed successfully 234 if ( MP ) { 235 for (std::vector<std::string>::iterator SI = symbols.begin(), 236 SE = symbols.end(); SI != SE; ++SI) { 237 238 std::pair<SymTabType::iterator,bool> Res = 239 symTab.insert(std::make_pair(*SI,filepos)); 240 241 if (Res.second) { 242 symTabSize += SI->length() + 243 numVbrBytes(SI->length()) + 244 numVbrBytes(filepos); 245 } 246 } 247 // We don't need this module any more. 248 delete MP; 249 } else { 250 if (mFile != 0) { 251 mFile->close(); 252 delete mFile; 253 } 254 if (ErrMsg) 255 *ErrMsg = "Can't parse bytecode member: " + member.getPath().toString() 256 + ": " + *ErrMsg; 257 return true; 258 } 259 } 260 261 // Determine if we actually should compress this member 262 bool willCompress = 263 (ShouldCompress && 264 !member.isCompressed() && 265 !member.isCompressedBytecode() && 266 !member.isLLVMSymbolTable() && 267 !member.isSVR4SymbolTable() && 268 !member.isBSD4SymbolTable()); 269 270 // Perform the compression. Note that if the file is uncompressed bytecode 271 // then we turn the file into compressed bytecode rather than treating it as 272 // compressed data. This is necessary since it allows us to determine that the 273 // file contains bytecode instead of looking like a regular compressed data 274 // member. A compressed bytecode file has its content compressed but has a 275 // magic number of "llvc". This acounts for the +/-4 arithmetic in the code 276 // below. 277 int hdrSize; 278 if (willCompress) { 279 char* output = 0; 280 if (member.isBytecode()) { 281 data +=4; 282 fSize -= 4; 283 } 284 fSize = Compressor::compressToNewBuffer(data,fSize,output,ErrMsg); 285 if (fSize == 0) 286 return true; 287 data = output; 288 if (member.isBytecode()) 289 hdrSize = -fSize-4; 290 else 291 hdrSize = -fSize; 292 } else { 293 hdrSize = fSize; 294 } 295 296 // Compute the fields of the header 297 ArchiveMemberHeader Hdr; 298 bool writeLongName = fillHeader(member,Hdr,hdrSize,TruncateNames); 299 300 // Write header to archive file 301 ARFile.write((char*)&Hdr, sizeof(Hdr)); 302 303 // Write the long filename if its long 304 if (writeLongName) { 305 ARFile.write(member.getPath().toString().data(), 306 member.getPath().toString().length()); 307 } 308 309 // Make sure we write the compressed bytecode magic number if we should. 310 if (willCompress && member.isBytecode()) 311 ARFile.write("llvc",4); 312 313 // Write the (possibly compressed) member's content to the file. 314 ARFile.write(data,fSize); 315 316 // Make sure the member is an even length 317 if ((ARFile.tellp() & 1) == 1) 318 ARFile << ARFILE_PAD; 319 320 // Free the compressed data, if necessary 321 if (willCompress) { 322 free((void*)data); 323 } 324 325 // Close the mapped file if it was opened 326 if (mFile != 0) { 327 mFile->close(); 328 delete mFile; 329 } 330 return false; 331} 332 333// Write out the LLVM symbol table as an archive member to the file. 334void 335Archive::writeSymbolTable(std::ofstream& ARFile) { 336 337 // Construct the symbol table's header 338 ArchiveMemberHeader Hdr; 339 Hdr.init(); 340 memcpy(Hdr.name,ARFILE_LLVM_SYMTAB_NAME,16); 341 uint64_t secondsSinceEpoch = sys::TimeValue::now().toEpochTime(); 342 char buffer[32]; 343 sprintf(buffer, "%-8o", 0644); 344 memcpy(Hdr.mode,buffer,8); 345 sprintf(buffer, "%-6u", sys::Process::GetCurrentUserId()); 346 memcpy(Hdr.uid,buffer,6); 347 sprintf(buffer, "%-6u", sys::Process::GetCurrentGroupId()); 348 memcpy(Hdr.gid,buffer,6); 349 sprintf(buffer,"%-12u", unsigned(secondsSinceEpoch)); 350 memcpy(Hdr.date,buffer,12); 351 sprintf(buffer,"%-10u",symTabSize); 352 memcpy(Hdr.size,buffer,10); 353 354 // Write the header 355 ARFile.write((char*)&Hdr, sizeof(Hdr)); 356 357 // Save the starting position of the symbol tables data content. 358 unsigned startpos = ARFile.tellp(); 359 360 // Write out the symbols sequentially 361 for ( Archive::SymTabType::iterator I = symTab.begin(), E = symTab.end(); 362 I != E; ++I) 363 { 364 // Write out the file index 365 writeInteger(I->second, ARFile); 366 // Write out the length of the symbol 367 writeInteger(I->first.length(), ARFile); 368 // Write out the symbol 369 ARFile.write(I->first.data(), I->first.length()); 370 } 371 372 // Now that we're done with the symbol table, get the ending file position 373 unsigned endpos = ARFile.tellp(); 374 375 // Make sure that the amount we wrote is what we pre-computed. This is 376 // critical for file integrity purposes. 377 assert(endpos - startpos == symTabSize && "Invalid symTabSize computation"); 378 379 // Make sure the symbol table is even sized 380 if (symTabSize % 2 != 0 ) 381 ARFile << ARFILE_PAD; 382} 383 384// Write the entire archive to the file specified when the archive was created. 385// This writes to a temporary file first. Options are for creating a symbol 386// table, flattening the file names (no directories, 15 chars max) and 387// compressing each archive member. 388bool 389Archive::writeToDisk(bool CreateSymbolTable, bool TruncateNames, bool Compress, 390 std::string* ErrMsg) 391{ 392 // Make sure they haven't opened up the file, not loaded it, 393 // but are now trying to write it which would wipe out the file. 394 if (members.empty() && mapfile->size() > 8) { 395 if (ErrMsg) 396 *ErrMsg = "Can't write an archive not opened for writing"; 397 return true; 398 } 399 400 // Create a temporary file to store the archive in 401 sys::Path TmpArchive = archPath; 402 if (TmpArchive.createTemporaryFileOnDisk(ErrMsg)) 403 return true; 404 405 // Make sure the temporary gets removed if we crash 406 sys::RemoveFileOnSignal(TmpArchive); 407 408 // Create archive file for output. 409 std::ios::openmode io_mode = std::ios::out | std::ios::trunc | 410 std::ios::binary; 411 std::ofstream ArchiveFile(TmpArchive.c_str(), io_mode); 412 413 // Check for errors opening or creating archive file. 414 if (!ArchiveFile.is_open() || ArchiveFile.bad()) { 415 if (TmpArchive.exists()) 416 TmpArchive.eraseFromDisk(); 417 if (ErrMsg) 418 *ErrMsg = "Error opening archive file: " + archPath.toString(); 419 return true; 420 } 421 422 // If we're creating a symbol table, reset it now 423 if (CreateSymbolTable) { 424 symTabSize = 0; 425 symTab.clear(); 426 } 427 428 // Write magic string to archive. 429 ArchiveFile << ARFILE_MAGIC; 430 431 // Loop over all member files, and write them out. Note that this also 432 // builds the symbol table, symTab. 433 for (MembersList::iterator I = begin(), E = end(); I != E; ++I) { 434 if (writeMember(*I, ArchiveFile, CreateSymbolTable, 435 TruncateNames, Compress, ErrMsg)) { 436 if (TmpArchive.exists()) 437 TmpArchive.eraseFromDisk(); 438 ArchiveFile.close(); 439 return true; 440 } 441 } 442 443 // Close archive file. 444 ArchiveFile.close(); 445 446 // Write the symbol table 447 if (CreateSymbolTable) { 448 // At this point we have written a file that is a legal archive but it 449 // doesn't have a symbol table in it. To aid in faster reading and to 450 // ensure compatibility with other archivers we need to put the symbol 451 // table first in the file. Unfortunately, this means mapping the file 452 // we just wrote back in and copying it to the destination file. 453 454 // Map in the archive we just wrote. 455 sys::MappedFile arch; 456 if (arch.open(TmpArchive, sys::MappedFile::READ_ACCESS, ErrMsg)) 457 return true; 458 const char* base; 459 if (!(base = (const char*) arch.map(ErrMsg))) 460 return true; 461 462 // Open another temporary file in order to avoid invalidating the 463 // mmapped data 464 sys::Path FinalFilePath = archPath; 465 if (FinalFilePath.createTemporaryFileOnDisk(ErrMsg)) 466 return true; 467 sys::RemoveFileOnSignal(FinalFilePath); 468 469 std::ofstream FinalFile(FinalFilePath.c_str(), io_mode); 470 if (!FinalFile.is_open() || FinalFile.bad()) { 471 if (TmpArchive.exists()) 472 TmpArchive.eraseFromDisk(); 473 if (ErrMsg) 474 *ErrMsg = "Error opening archive file: " + FinalFilePath.toString(); 475 return true; 476 } 477 478 // Write the file magic number 479 FinalFile << ARFILE_MAGIC; 480 481 // If there is a foreign symbol table, put it into the file now. Most 482 // ar(1) implementations require the symbol table to be first but llvm-ar 483 // can deal with it being after a foreign symbol table. This ensures 484 // compatibility with other ar(1) implementations as well as allowing the 485 // archive to store both native .o and LLVM .bc files, both indexed. 486 if (foreignST) { 487 if (writeMember(*foreignST, FinalFile, false, false, false, ErrMsg)) { 488 FinalFile.close(); 489 if (TmpArchive.exists()) 490 TmpArchive.eraseFromDisk(); 491 return true; 492 } 493 } 494 495 // Put out the LLVM symbol table now. 496 writeSymbolTable(FinalFile); 497 498 // Copy the temporary file contents being sure to skip the file's magic 499 // number. 500 FinalFile.write(base + sizeof(ARFILE_MAGIC)-1, 501 arch.size()-sizeof(ARFILE_MAGIC)+1); 502 503 // Close up shop 504 FinalFile.close(); 505 arch.close(); 506 507 // Move the final file over top of TmpArchive 508 if (FinalFilePath.renamePathOnDisk(TmpArchive, ErrMsg)) 509 return true; 510 } 511 512 // Before we replace the actual archive, we need to forget all the 513 // members, since they point to data in that old archive. We need to do 514 // this because we cannot replace an open file on Windows. 515 cleanUpMemory(); 516 517 if (TmpArchive.renamePathOnDisk(archPath, ErrMsg)) 518 return true; 519 520 return false; 521} 522