1 /* 2 * Copyright (C) 2009 The Android Open Source Project 3 * 4 * Licensed under the Apache License, Version 2.0 (the "License"); 5 * you may not use this file except in compliance with the License. 6 * You may obtain a copy of the License at 7 * 8 * http://www.apache.org/licenses/LICENSE-2.0 9 * 10 * Unless required by applicable law or agreed to in writing, software 11 * distributed under the License is distributed on an "AS IS" BASIS, 12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. 13 * See the License for the specific language governing permissions and 14 * limitations under the License. 15 */ 16 17 #include "updater/install.h" 18 19 #include <ctype.h> 20 #include <errno.h> 21 #include <fcntl.h> 22 #include <ftw.h> 23 #include <inttypes.h> 24 #include <stdarg.h> 25 #include <stdio.h> 26 #include <stdlib.h> 27 #include <string.h> 28 #include <sys/capability.h> 29 #include <sys/mount.h> 30 #include <sys/stat.h> 31 #include <sys/types.h> 32 #include <sys/wait.h> 33 #include <sys/xattr.h> 34 #include <time.h> 35 #include <unistd.h> 36 #include <utime.h> 37 38 #include <memory> 39 #include <string> 40 #include <vector> 41 42 #include <android-base/file.h> 43 #include <android-base/logging.h> 44 #include <android-base/parsedouble.h> 45 #include <android-base/parseint.h> 46 #include <android-base/properties.h> 47 #include <android-base/stringprintf.h> 48 #include <android-base/strings.h> 49 #include <android-base/unique_fd.h> 50 #include <applypatch/applypatch.h> 51 #include <bootloader_message/bootloader_message.h> 52 #include <ext4_utils/wipe.h> 53 #include <openssl/sha.h> 54 #include <selinux/label.h> 55 #include <selinux/selinux.h> 56 #include <tune2fs.h> 57 #include <ziparchive/zip_archive.h> 58 59 #include "edify/expr.h" 60 #include "otautil/dirutil.h" 61 #include "otautil/error_code.h" 62 #include "otautil/mounts.h" 63 #include "otautil/print_sha1.h" 64 #include "otautil/sysutil.h" 65 #include "updater/updater.h" 66 67 // Send over the buffer to recovery though the command pipe. 68 static void uiPrint(State* state, const std::string& buffer) { 69 UpdaterInfo* ui = static_cast<UpdaterInfo*>(state->cookie); 70 71 // "line1\nline2\n" will be split into 3 tokens: "line1", "line2" and "". 72 // So skip sending empty strings to UI. 73 std::vector<std::string> lines = android::base::Split(buffer, "\n"); 74 for (auto& line : lines) { 75 if (!line.empty()) { 76 fprintf(ui->cmd_pipe, "ui_print %s\n", line.c_str()); 77 } 78 } 79 80 // On the updater side, we need to dump the contents to stderr (which has 81 // been redirected to the log file). Because the recovery will only print 82 // the contents to screen when processing pipe command ui_print. 83 LOG(INFO) << buffer; 84 } 85 86 void uiPrintf(State* _Nonnull state, const char* _Nonnull format, ...) { 87 std::string error_msg; 88 89 va_list ap; 90 va_start(ap, format); 91 android::base::StringAppendV(&error_msg, format, ap); 92 va_end(ap); 93 94 uiPrint(state, error_msg); 95 } 96 97 // This is the updater side handler for ui_print() in edify script. Contents will be sent over to 98 // the recovery side for on-screen display. 99 Value* UIPrintFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 100 std::vector<std::string> args; 101 if (!ReadArgs(state, argv, &args)) { 102 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 103 } 104 105 std::string buffer = android::base::Join(args, ""); 106 uiPrint(state, buffer); 107 return StringValue(buffer); 108 } 109 110 // package_extract_file(package_file[, dest_file]) 111 // Extracts a single package_file from the update package and writes it to dest_file, 112 // overwriting existing files if necessary. Without the dest_file argument, returns the 113 // contents of the package file as a binary blob. 114 Value* PackageExtractFileFn(const char* name, State* state, 115 const std::vector<std::unique_ptr<Expr>>& argv) { 116 if (argv.size() < 1 || argv.size() > 2) { 117 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 or 2 args, got %zu", name, 118 argv.size()); 119 } 120 121 if (argv.size() == 2) { 122 // The two-argument version extracts to a file. 123 124 std::vector<std::string> args; 125 if (!ReadArgs(state, argv, &args)) { 126 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse %zu args", name, 127 argv.size()); 128 } 129 const std::string& zip_path = args[0]; 130 const std::string& dest_path = args[1]; 131 132 ZipArchiveHandle za = static_cast<UpdaterInfo*>(state->cookie)->package_zip; 133 ZipString zip_string_path(zip_path.c_str()); 134 ZipEntry entry; 135 if (FindEntry(za, zip_string_path, &entry) != 0) { 136 LOG(ERROR) << name << ": no " << zip_path << " in package"; 137 return StringValue(""); 138 } 139 140 android::base::unique_fd fd(TEMP_FAILURE_RETRY( 141 open(dest_path.c_str(), O_WRONLY | O_CREAT | O_TRUNC, S_IRUSR | S_IWUSR))); 142 if (fd == -1) { 143 PLOG(ERROR) << name << ": can't open " << dest_path << " for write"; 144 return StringValue(""); 145 } 146 147 bool success = true; 148 int32_t ret = ExtractEntryToFile(za, &entry, fd); 149 if (ret != 0) { 150 LOG(ERROR) << name << ": Failed to extract entry \"" << zip_path << "\" (" 151 << entry.uncompressed_length << " bytes) to \"" << dest_path 152 << "\": " << ErrorCodeString(ret); 153 success = false; 154 } 155 if (fsync(fd) == -1) { 156 PLOG(ERROR) << "fsync of \"" << dest_path << "\" failed"; 157 success = false; 158 } 159 160 if (close(fd.release()) != 0) { 161 PLOG(ERROR) << "close of \"" << dest_path << "\" failed"; 162 success = false; 163 } 164 165 return StringValue(success ? "t" : ""); 166 } else { 167 // The one-argument version returns the contents of the file as the result. 168 169 std::vector<std::string> args; 170 if (!ReadArgs(state, argv, &args)) { 171 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse %zu args", name, 172 argv.size()); 173 } 174 const std::string& zip_path = args[0]; 175 176 ZipArchiveHandle za = static_cast<UpdaterInfo*>(state->cookie)->package_zip; 177 ZipString zip_string_path(zip_path.c_str()); 178 ZipEntry entry; 179 if (FindEntry(za, zip_string_path, &entry) != 0) { 180 return ErrorAbort(state, kPackageExtractFileFailure, "%s(): no %s in package", name, 181 zip_path.c_str()); 182 } 183 184 std::string buffer; 185 buffer.resize(entry.uncompressed_length); 186 187 int32_t ret = 188 ExtractToMemory(za, &entry, reinterpret_cast<uint8_t*>(&buffer[0]), buffer.size()); 189 if (ret != 0) { 190 return ErrorAbort(state, kPackageExtractFileFailure, 191 "%s: Failed to extract entry \"%s\" (%zu bytes) to memory: %s", name, 192 zip_path.c_str(), buffer.size(), ErrorCodeString(ret)); 193 } 194 195 return new Value(Value::Type::BLOB, buffer); 196 } 197 } 198 199 // patch_partition_check(target_partition, source_partition) 200 // Checks if the target and source partitions have the desired checksums to be patched. It returns 201 // directly, if the target partition already has the expected checksum. Otherwise it in turn 202 // checks the integrity of the source partition and the backup file on /cache. 203 // 204 // For example, patch_partition_check( 205 // "EMMC:/dev/block/boot:12342568:8aaacf187a6929d0e9c3e9e46ea7ff495b43424d", 206 // "EMMC:/dev/block/boot:12363048:06b0b16299dcefc94900efed01e0763ff644ffa4") 207 Value* PatchPartitionCheckFn(const char* name, State* state, 208 const std::vector<std::unique_ptr<Expr>>& argv) { 209 if (argv.size() != 2) { 210 return ErrorAbort(state, kArgsParsingFailure, 211 "%s(): Invalid number of args (expected 2, got %zu)", name, argv.size()); 212 } 213 214 std::vector<std::string> args; 215 if (!ReadArgs(state, argv, &args, 0, 2)) { 216 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 217 } 218 219 std::string err; 220 auto target = Partition::Parse(args[0], &err); 221 if (!target) { 222 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse target \"%s\": %s", name, 223 args[0].c_str(), err.c_str()); 224 } 225 226 auto source = Partition::Parse(args[1], &err); 227 if (!source) { 228 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse source \"%s\": %s", name, 229 args[1].c_str(), err.c_str()); 230 } 231 232 bool result = PatchPartitionCheck(target, source); 233 return StringValue(result ? "t" : ""); 234 } 235 236 // patch_partition(target, source, patch) 237 // Applies the given patch to the source partition, and writes the result to the target partition. 238 // 239 // For example, patch_partition( 240 // "EMMC:/dev/block/boot:12342568:8aaacf187a6929d0e9c3e9e46ea7ff495b43424d", 241 // "EMMC:/dev/block/boot:12363048:06b0b16299dcefc94900efed01e0763ff644ffa4", 242 // package_extract_file("boot.img.p")) 243 Value* PatchPartitionFn(const char* name, State* state, 244 const std::vector<std::unique_ptr<Expr>>& argv) { 245 if (argv.size() != 3) { 246 return ErrorAbort(state, kArgsParsingFailure, 247 "%s(): Invalid number of args (expected 3, got %zu)", name, argv.size()); 248 } 249 250 std::vector<std::string> args; 251 if (!ReadArgs(state, argv, &args, 0, 2)) { 252 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 253 } 254 255 std::string err; 256 auto target = Partition::Parse(args[0], &err); 257 if (!target) { 258 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse target \"%s\": %s", name, 259 args[0].c_str(), err.c_str()); 260 } 261 262 auto source = Partition::Parse(args[1], &err); 263 if (!source) { 264 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse source \"%s\": %s", name, 265 args[1].c_str(), err.c_str()); 266 } 267 268 std::vector<std::unique_ptr<Value>> values; 269 if (!ReadValueArgs(state, argv, &values, 2, 1) || values[0]->type != Value::Type::BLOB) { 270 return ErrorAbort(state, kArgsParsingFailure, "%s(): Invalid patch arg", name); 271 } 272 273 bool result = PatchPartition(target, source, *values[0], nullptr); 274 return StringValue(result ? "t" : ""); 275 } 276 277 // mount(fs_type, partition_type, location, mount_point) 278 // mount(fs_type, partition_type, location, mount_point, mount_options) 279 280 // fs_type="ext4" partition_type="EMMC" location=device 281 Value* MountFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 282 if (argv.size() != 4 && argv.size() != 5) { 283 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 4-5 args, got %zu", name, 284 argv.size()); 285 } 286 287 std::vector<std::string> args; 288 if (!ReadArgs(state, argv, &args)) { 289 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 290 } 291 const std::string& fs_type = args[0]; 292 const std::string& partition_type = args[1]; 293 const std::string& location = args[2]; 294 const std::string& mount_point = args[3]; 295 std::string mount_options; 296 297 if (argv.size() == 5) { 298 mount_options = args[4]; 299 } 300 301 if (fs_type.empty()) { 302 return ErrorAbort(state, kArgsParsingFailure, "fs_type argument to %s() can't be empty", name); 303 } 304 if (partition_type.empty()) { 305 return ErrorAbort(state, kArgsParsingFailure, "partition_type argument to %s() can't be empty", 306 name); 307 } 308 if (location.empty()) { 309 return ErrorAbort(state, kArgsParsingFailure, "location argument to %s() can't be empty", name); 310 } 311 if (mount_point.empty()) { 312 return ErrorAbort(state, kArgsParsingFailure, "mount_point argument to %s() can't be empty", 313 name); 314 } 315 316 { 317 char* secontext = nullptr; 318 319 if (sehandle) { 320 selabel_lookup(sehandle, &secontext, mount_point.c_str(), 0755); 321 setfscreatecon(secontext); 322 } 323 324 mkdir(mount_point.c_str(), 0755); 325 326 if (secontext) { 327 freecon(secontext); 328 setfscreatecon(nullptr); 329 } 330 } 331 332 if (mount(location.c_str(), mount_point.c_str(), fs_type.c_str(), 333 MS_NOATIME | MS_NODEV | MS_NODIRATIME, mount_options.c_str()) < 0) { 334 uiPrintf(state, "%s: Failed to mount %s at %s: %s", name, location.c_str(), mount_point.c_str(), 335 strerror(errno)); 336 return StringValue(""); 337 } 338 339 return StringValue(mount_point); 340 } 341 342 // is_mounted(mount_point) 343 Value* IsMountedFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 344 if (argv.size() != 1) { 345 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 346 } 347 348 std::vector<std::string> args; 349 if (!ReadArgs(state, argv, &args)) { 350 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 351 } 352 const std::string& mount_point = args[0]; 353 if (mount_point.empty()) { 354 return ErrorAbort(state, kArgsParsingFailure, 355 "mount_point argument to unmount() can't be empty"); 356 } 357 358 scan_mounted_volumes(); 359 MountedVolume* vol = find_mounted_volume_by_mount_point(mount_point.c_str()); 360 if (vol == nullptr) { 361 return StringValue(""); 362 } 363 364 return StringValue(mount_point); 365 } 366 367 Value* UnmountFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 368 if (argv.size() != 1) { 369 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 370 } 371 std::vector<std::string> args; 372 if (!ReadArgs(state, argv, &args)) { 373 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 374 } 375 const std::string& mount_point = args[0]; 376 if (mount_point.empty()) { 377 return ErrorAbort(state, kArgsParsingFailure, 378 "mount_point argument to unmount() can't be empty"); 379 } 380 381 scan_mounted_volumes(); 382 MountedVolume* vol = find_mounted_volume_by_mount_point(mount_point.c_str()); 383 if (vol == nullptr) { 384 uiPrintf(state, "Failed to unmount %s: No such volume", mount_point.c_str()); 385 return nullptr; 386 } else { 387 int ret = unmount_mounted_volume(vol); 388 if (ret != 0) { 389 uiPrintf(state, "Failed to unmount %s: %s", mount_point.c_str(), strerror(errno)); 390 } 391 } 392 393 return StringValue(mount_point); 394 } 395 396 static int exec_cmd(const std::vector<std::string>& args) { 397 CHECK(!args.empty()); 398 auto argv = StringVectorToNullTerminatedArray(args); 399 400 pid_t child; 401 if ((child = vfork()) == 0) { 402 execv(argv[0], argv.data()); 403 _exit(EXIT_FAILURE); 404 } 405 406 int status; 407 waitpid(child, &status, 0); 408 if (!WIFEXITED(status) || WEXITSTATUS(status) != 0) { 409 LOG(ERROR) << args[0] << " failed with status " << WEXITSTATUS(status); 410 } 411 return WEXITSTATUS(status); 412 } 413 414 // format(fs_type, partition_type, location, fs_size, mount_point) 415 // 416 // fs_type="ext4" partition_type="EMMC" location=device fs_size=<bytes> mount_point=<location> 417 // fs_type="f2fs" partition_type="EMMC" location=device fs_size=<bytes> mount_point=<location> 418 // if fs_size == 0, then make fs uses the entire partition. 419 // if fs_size > 0, that is the size to use 420 // if fs_size < 0, then reserve that many bytes at the end of the partition (not for "f2fs") 421 Value* FormatFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 422 if (argv.size() != 5) { 423 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 5 args, got %zu", name, 424 argv.size()); 425 } 426 427 std::vector<std::string> args; 428 if (!ReadArgs(state, argv, &args)) { 429 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 430 } 431 const std::string& fs_type = args[0]; 432 const std::string& partition_type = args[1]; 433 const std::string& location = args[2]; 434 const std::string& fs_size = args[3]; 435 const std::string& mount_point = args[4]; 436 437 if (fs_type.empty()) { 438 return ErrorAbort(state, kArgsParsingFailure, "fs_type argument to %s() can't be empty", name); 439 } 440 if (partition_type.empty()) { 441 return ErrorAbort(state, kArgsParsingFailure, "partition_type argument to %s() can't be empty", 442 name); 443 } 444 if (location.empty()) { 445 return ErrorAbort(state, kArgsParsingFailure, "location argument to %s() can't be empty", name); 446 } 447 if (mount_point.empty()) { 448 return ErrorAbort(state, kArgsParsingFailure, "mount_point argument to %s() can't be empty", 449 name); 450 } 451 452 int64_t size; 453 if (!android::base::ParseInt(fs_size, &size)) { 454 return ErrorAbort(state, kArgsParsingFailure, "%s: failed to parse int in %s", name, 455 fs_size.c_str()); 456 } 457 458 if (fs_type == "ext4") { 459 std::vector<std::string> mke2fs_args = { 460 "/system/bin/mke2fs", "-t", "ext4", "-b", "4096", location 461 }; 462 if (size != 0) { 463 mke2fs_args.push_back(std::to_string(size / 4096LL)); 464 } 465 466 if (auto status = exec_cmd(mke2fs_args); status != 0) { 467 LOG(ERROR) << name << ": mke2fs failed (" << status << ") on " << location; 468 return StringValue(""); 469 } 470 471 if (auto status = exec_cmd({ "/system/bin/e2fsdroid", "-e", "-a", mount_point, location }); 472 status != 0) { 473 LOG(ERROR) << name << ": e2fsdroid failed (" << status << ") on " << location; 474 return StringValue(""); 475 } 476 return StringValue(location); 477 } 478 479 if (fs_type == "f2fs") { 480 if (size < 0) { 481 LOG(ERROR) << name << ": fs_size can't be negative for f2fs: " << fs_size; 482 return StringValue(""); 483 } 484 std::vector<std::string> f2fs_args = { 485 "/system/bin/make_f2fs", "-g", "android", "-w", "512", location 486 }; 487 if (size >= 512) { 488 f2fs_args.push_back(std::to_string(size / 512)); 489 } 490 if (auto status = exec_cmd(f2fs_args); status != 0) { 491 LOG(ERROR) << name << ": make_f2fs failed (" << status << ") on " << location; 492 return StringValue(""); 493 } 494 495 if (auto status = exec_cmd({ "/system/bin/sload_f2fs", "-t", mount_point, location }); 496 status != 0) { 497 LOG(ERROR) << name << ": sload_f2fs failed (" << status << ") on " << location; 498 return StringValue(""); 499 } 500 501 return StringValue(location); 502 } 503 504 LOG(ERROR) << name << ": unsupported fs_type \"" << fs_type << "\" partition_type \"" 505 << partition_type << "\""; 506 return nullptr; 507 } 508 509 Value* ShowProgressFn(const char* name, State* state, 510 const std::vector<std::unique_ptr<Expr>>& argv) { 511 if (argv.size() != 2) { 512 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 513 argv.size()); 514 } 515 516 std::vector<std::string> args; 517 if (!ReadArgs(state, argv, &args)) { 518 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 519 } 520 const std::string& frac_str = args[0]; 521 const std::string& sec_str = args[1]; 522 523 double frac; 524 if (!android::base::ParseDouble(frac_str.c_str(), &frac)) { 525 return ErrorAbort(state, kArgsParsingFailure, "%s: failed to parse double in %s", name, 526 frac_str.c_str()); 527 } 528 int sec; 529 if (!android::base::ParseInt(sec_str.c_str(), &sec)) { 530 return ErrorAbort(state, kArgsParsingFailure, "%s: failed to parse int in %s", name, 531 sec_str.c_str()); 532 } 533 534 UpdaterInfo* ui = static_cast<UpdaterInfo*>(state->cookie); 535 fprintf(ui->cmd_pipe, "progress %f %d\n", frac, sec); 536 537 return StringValue(frac_str); 538 } 539 540 Value* SetProgressFn(const char* name, State* state, 541 const std::vector<std::unique_ptr<Expr>>& argv) { 542 if (argv.size() != 1) { 543 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 544 } 545 546 std::vector<std::string> args; 547 if (!ReadArgs(state, argv, &args)) { 548 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 549 } 550 const std::string& frac_str = args[0]; 551 552 double frac; 553 if (!android::base::ParseDouble(frac_str.c_str(), &frac)) { 554 return ErrorAbort(state, kArgsParsingFailure, "%s: failed to parse double in %s", name, 555 frac_str.c_str()); 556 } 557 558 UpdaterInfo* ui = static_cast<UpdaterInfo*>(state->cookie); 559 fprintf(ui->cmd_pipe, "set_progress %f\n", frac); 560 561 return StringValue(frac_str); 562 } 563 564 Value* GetPropFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 565 if (argv.size() != 1) { 566 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 567 } 568 std::string key; 569 if (!Evaluate(state, argv[0], &key)) { 570 return nullptr; 571 } 572 std::string value = android::base::GetProperty(key, ""); 573 574 return StringValue(value); 575 } 576 577 // file_getprop(file, key) 578 // 579 // interprets 'file' as a getprop-style file (key=value pairs, one 580 // per line. # comment lines, blank lines, lines without '=' ignored), 581 // and returns the value for 'key' (or "" if it isn't defined). 582 Value* FileGetPropFn(const char* name, State* state, 583 const std::vector<std::unique_ptr<Expr>>& argv) { 584 if (argv.size() != 2) { 585 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 586 argv.size()); 587 } 588 589 std::vector<std::string> args; 590 if (!ReadArgs(state, argv, &args)) { 591 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 592 } 593 const std::string& filename = args[0]; 594 const std::string& key = args[1]; 595 596 std::string buffer; 597 if (!android::base::ReadFileToString(filename, &buffer)) { 598 ErrorAbort(state, kFreadFailure, "%s: failed to read %s", name, filename.c_str()); 599 return nullptr; 600 } 601 602 std::vector<std::string> lines = android::base::Split(buffer, "\n"); 603 for (size_t i = 0; i < lines.size(); i++) { 604 std::string line = android::base::Trim(lines[i]); 605 606 // comment or blank line: skip to next line 607 if (line.empty() || line[0] == '#') { 608 continue; 609 } 610 size_t equal_pos = line.find('='); 611 if (equal_pos == std::string::npos) { 612 continue; 613 } 614 615 // trim whitespace between key and '=' 616 std::string str = android::base::Trim(line.substr(0, equal_pos)); 617 618 // not the key we're looking for 619 if (key != str) continue; 620 621 return StringValue(android::base::Trim(line.substr(equal_pos + 1))); 622 } 623 624 return StringValue(""); 625 } 626 627 // apply_patch_space(bytes) 628 Value* ApplyPatchSpaceFn(const char* name, State* state, 629 const std::vector<std::unique_ptr<Expr>>& argv) { 630 if (argv.size() != 1) { 631 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 args, got %zu", name, 632 argv.size()); 633 } 634 std::vector<std::string> args; 635 if (!ReadArgs(state, argv, &args)) { 636 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 637 } 638 const std::string& bytes_str = args[0]; 639 640 size_t bytes; 641 if (!android::base::ParseUint(bytes_str.c_str(), &bytes)) { 642 return ErrorAbort(state, kArgsParsingFailure, "%s(): can't parse \"%s\" as byte count", name, 643 bytes_str.c_str()); 644 } 645 646 // Skip the cache size check if the update is a retry. 647 if (state->is_retry || CheckAndFreeSpaceOnCache(bytes)) { 648 return StringValue("t"); 649 } 650 return StringValue(""); 651 } 652 653 Value* WipeCacheFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 654 if (!argv.empty()) { 655 return ErrorAbort(state, kArgsParsingFailure, "%s() expects no args, got %zu", name, 656 argv.size()); 657 } 658 fprintf(static_cast<UpdaterInfo*>(state->cookie)->cmd_pipe, "wipe_cache\n"); 659 return StringValue("t"); 660 } 661 662 Value* RunProgramFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 663 if (argv.size() < 1) { 664 return ErrorAbort(state, kArgsParsingFailure, "%s() expects at least 1 arg", name); 665 } 666 667 std::vector<std::string> args; 668 if (!ReadArgs(state, argv, &args)) { 669 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 670 } 671 672 auto exec_args = StringVectorToNullTerminatedArray(args); 673 LOG(INFO) << "about to run program [" << exec_args[0] << "] with " << argv.size() << " args"; 674 675 pid_t child = fork(); 676 if (child == 0) { 677 execv(exec_args[0], exec_args.data()); 678 PLOG(ERROR) << "run_program: execv failed"; 679 _exit(EXIT_FAILURE); 680 } 681 682 int status; 683 waitpid(child, &status, 0); 684 if (WIFEXITED(status)) { 685 if (WEXITSTATUS(status) != 0) { 686 LOG(ERROR) << "run_program: child exited with status " << WEXITSTATUS(status); 687 } 688 } else if (WIFSIGNALED(status)) { 689 LOG(ERROR) << "run_program: child terminated by signal " << WTERMSIG(status); 690 } 691 692 return StringValue(std::to_string(status)); 693 } 694 695 // read_file(filename) 696 // Reads a local file 'filename' and returns its contents as a string Value. 697 Value* ReadFileFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 698 if (argv.size() != 1) { 699 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 700 } 701 702 std::vector<std::string> args; 703 if (!ReadArgs(state, argv, &args)) { 704 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 705 } 706 const std::string& filename = args[0]; 707 708 std::string contents; 709 if (android::base::ReadFileToString(filename, &contents)) { 710 return new Value(Value::Type::STRING, std::move(contents)); 711 } 712 713 // Leave it to caller to handle the failure. 714 PLOG(ERROR) << name << ": Failed to read " << filename; 715 return StringValue(""); 716 } 717 718 // write_value(value, filename) 719 // Writes 'value' to 'filename'. 720 // Example: write_value("960000", "/sys/devices/system/cpu/cpu0/cpufreq/scaling_max_freq") 721 Value* WriteValueFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 722 if (argv.size() != 2) { 723 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 724 argv.size()); 725 } 726 727 std::vector<std::string> args; 728 if (!ReadArgs(state, argv, &args)) { 729 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 730 } 731 732 const std::string& filename = args[1]; 733 if (filename.empty()) { 734 return ErrorAbort(state, kArgsParsingFailure, "%s(): Filename cannot be empty", name); 735 } 736 737 const std::string& value = args[0]; 738 if (!android::base::WriteStringToFile(value, filename)) { 739 PLOG(ERROR) << name << ": Failed to write to \"" << filename << "\""; 740 return StringValue(""); 741 } else { 742 return StringValue("t"); 743 } 744 } 745 746 // Immediately reboot the device. Recovery is not finished normally, 747 // so if you reboot into recovery it will re-start applying the 748 // current package (because nothing has cleared the copy of the 749 // arguments stored in the BCB). 750 // 751 // The argument is the partition name passed to the android reboot 752 // property. It can be "recovery" to boot from the recovery 753 // partition, or "" (empty string) to boot from the regular boot 754 // partition. 755 Value* RebootNowFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 756 if (argv.size() != 2) { 757 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 758 argv.size()); 759 } 760 761 std::vector<std::string> args; 762 if (!ReadArgs(state, argv, &args)) { 763 return ErrorAbort(state, kArgsParsingFailure, "%s(): Failed to parse the argument(s)", name); 764 } 765 const std::string& filename = args[0]; 766 const std::string& property = args[1]; 767 768 // Zero out the 'command' field of the bootloader message. Leave the rest intact. 769 bootloader_message boot; 770 std::string err; 771 if (!read_bootloader_message_from(&boot, filename, &err)) { 772 LOG(ERROR) << name << "(): Failed to read from \"" << filename << "\": " << err; 773 return StringValue(""); 774 } 775 memset(boot.command, 0, sizeof(boot.command)); 776 if (!write_bootloader_message_to(boot, filename, &err)) { 777 LOG(ERROR) << name << "(): Failed to write to \"" << filename << "\": " << err; 778 return StringValue(""); 779 } 780 781 reboot("reboot," + property); 782 783 sleep(5); 784 return ErrorAbort(state, kRebootFailure, "%s() failed to reboot", name); 785 } 786 787 // Store a string value somewhere that future invocations of recovery 788 // can access it. This value is called the "stage" and can be used to 789 // drive packages that need to do reboots in the middle of 790 // installation and keep track of where they are in the multi-stage 791 // install. 792 // 793 // The first argument is the block device for the misc partition 794 // ("/misc" in the fstab), which is where this value is stored. The 795 // second argument is the string to store; it should not exceed 31 796 // bytes. 797 Value* SetStageFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 798 if (argv.size() != 2) { 799 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 800 argv.size()); 801 } 802 803 std::vector<std::string> args; 804 if (!ReadArgs(state, argv, &args)) { 805 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 806 } 807 const std::string& filename = args[0]; 808 const std::string& stagestr = args[1]; 809 810 // Store this value in the misc partition, immediately after the 811 // bootloader message that the main recovery uses to save its 812 // arguments in case of the device restarting midway through 813 // package installation. 814 bootloader_message boot; 815 std::string err; 816 if (!read_bootloader_message_from(&boot, filename, &err)) { 817 LOG(ERROR) << name << "(): Failed to read from \"" << filename << "\": " << err; 818 return StringValue(""); 819 } 820 strlcpy(boot.stage, stagestr.c_str(), sizeof(boot.stage)); 821 if (!write_bootloader_message_to(boot, filename, &err)) { 822 LOG(ERROR) << name << "(): Failed to write to \"" << filename << "\": " << err; 823 return StringValue(""); 824 } 825 826 return StringValue(filename); 827 } 828 829 // Return the value most recently saved with SetStageFn. The argument 830 // is the block device for the misc partition. 831 Value* GetStageFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 832 if (argv.size() != 1) { 833 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 1 arg, got %zu", name, argv.size()); 834 } 835 836 std::vector<std::string> args; 837 if (!ReadArgs(state, argv, &args)) { 838 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 839 } 840 const std::string& filename = args[0]; 841 842 bootloader_message boot; 843 std::string err; 844 if (!read_bootloader_message_from(&boot, filename, &err)) { 845 LOG(ERROR) << name << "(): Failed to read from \"" << filename << "\": " << err; 846 return StringValue(""); 847 } 848 849 return StringValue(boot.stage); 850 } 851 852 Value* WipeBlockDeviceFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 853 if (argv.size() != 2) { 854 return ErrorAbort(state, kArgsParsingFailure, "%s() expects 2 args, got %zu", name, 855 argv.size()); 856 } 857 858 std::vector<std::string> args; 859 if (!ReadArgs(state, argv, &args)) { 860 return ErrorAbort(state, kArgsParsingFailure, "%s() Failed to parse the argument(s)", name); 861 } 862 const std::string& filename = args[0]; 863 const std::string& len_str = args[1]; 864 865 size_t len; 866 if (!android::base::ParseUint(len_str.c_str(), &len)) { 867 return nullptr; 868 } 869 android::base::unique_fd fd(open(filename.c_str(), O_WRONLY)); 870 if (fd == -1) { 871 PLOG(ERROR) << "Failed to open " << filename; 872 return StringValue(""); 873 } 874 875 // The wipe_block_device function in ext4_utils returns 0 on success and 1 876 // for failure. 877 int status = wipe_block_device(fd, len); 878 return StringValue((status == 0) ? "t" : ""); 879 } 880 881 Value* EnableRebootFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 882 if (!argv.empty()) { 883 return ErrorAbort(state, kArgsParsingFailure, "%s() expects no args, got %zu", name, 884 argv.size()); 885 } 886 UpdaterInfo* ui = static_cast<UpdaterInfo*>(state->cookie); 887 fprintf(ui->cmd_pipe, "enable_reboot\n"); 888 return StringValue("t"); 889 } 890 891 Value* Tune2FsFn(const char* name, State* state, const std::vector<std::unique_ptr<Expr>>& argv) { 892 if (argv.empty()) { 893 return ErrorAbort(state, kArgsParsingFailure, "%s() expects args, got %zu", name, argv.size()); 894 } 895 896 std::vector<std::string> args; 897 if (!ReadArgs(state, argv, &args)) { 898 return ErrorAbort(state, kArgsParsingFailure, "%s() could not read args", name); 899 } 900 901 // tune2fs expects the program name as its first arg. 902 args.insert(args.begin(), "tune2fs"); 903 auto tune2fs_args = StringVectorToNullTerminatedArray(args); 904 905 // tune2fs changes the filesystem parameters on an ext2 filesystem; it returns 0 on success. 906 if (auto result = tune2fs_main(tune2fs_args.size() - 1, tune2fs_args.data()); result != 0) { 907 return ErrorAbort(state, kTune2FsFailure, "%s() returned error code %d", name, result); 908 } 909 return StringValue("t"); 910 } 911 912 void RegisterInstallFunctions() { 913 RegisterFunction("mount", MountFn); 914 RegisterFunction("is_mounted", IsMountedFn); 915 RegisterFunction("unmount", UnmountFn); 916 RegisterFunction("format", FormatFn); 917 RegisterFunction("show_progress", ShowProgressFn); 918 RegisterFunction("set_progress", SetProgressFn); 919 RegisterFunction("package_extract_file", PackageExtractFileFn); 920 921 RegisterFunction("getprop", GetPropFn); 922 RegisterFunction("file_getprop", FileGetPropFn); 923 924 RegisterFunction("apply_patch_space", ApplyPatchSpaceFn); 925 RegisterFunction("patch_partition", PatchPartitionFn); 926 RegisterFunction("patch_partition_check", PatchPartitionCheckFn); 927 928 RegisterFunction("wipe_block_device", WipeBlockDeviceFn); 929 930 RegisterFunction("read_file", ReadFileFn); 931 RegisterFunction("write_value", WriteValueFn); 932 933 RegisterFunction("wipe_cache", WipeCacheFn); 934 935 RegisterFunction("ui_print", UIPrintFn); 936 937 RegisterFunction("run_program", RunProgramFn); 938 939 RegisterFunction("reboot_now", RebootNowFn); 940 RegisterFunction("get_stage", GetStageFn); 941 RegisterFunction("set_stage", SetStageFn); 942 943 RegisterFunction("enable_reboot", EnableRebootFn); 944 RegisterFunction("tune2fs", Tune2FsFn); 945 } 946