1 /* 2 * Copyright (C) 2015 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 #ifndef ART_CMDLINE_CMDLINE_TYPES_H_ 17 #define ART_CMDLINE_CMDLINE_TYPES_H_ 18 19 #define CMDLINE_NDEBUG 1 // Do not output any debugging information for parsing. 20 21 #include <list> 22 23 #include "cmdline_type_parser.h" 24 #include "detail/cmdline_debug_detail.h" 25 #include "memory_representation.h" 26 27 #include "android-base/logging.h" 28 #include "android-base/strings.h" 29 30 // Includes for the types that are being specialized 31 #include <string> 32 #include "base/time_utils.h" 33 #include "experimental_flags.h" 34 #include "gc/collector_type.h" 35 #include "gc/space/large_object_space.h" 36 #include "jdwp/jdwp.h" 37 #include "jdwp_provider.h" 38 #include "jit/profile_saver_options.h" 39 #include "plugin.h" 40 #include "read_barrier_config.h" 41 #include "ti/agent.h" 42 #include "unit.h" 43 44 namespace art { 45 46 // The default specialization will always fail parsing the type from a string. 47 // Provide your own specialization that inherits from CmdlineTypeParser<T> 48 // and implements either Parse or ParseAndAppend 49 // (only if the argument was defined with ::AppendValues()) but not both. 50 template <typename T> 51 struct CmdlineType : CmdlineTypeParser<T> { 52 }; 53 54 // Specializations for CmdlineType<T> follow: 55 56 // Parse argument definitions for Unit-typed arguments. 57 template <> 58 struct CmdlineType<Unit> : CmdlineTypeParser<Unit> { 59 Result Parse(const std::string& args) { 60 if (args == "") { 61 return Result::Success(Unit{}); 62 } 63 return Result::Failure("Unexpected extra characters " + args); 64 } 65 }; 66 67 template <> 68 struct CmdlineType<JdwpProvider> : CmdlineTypeParser<JdwpProvider> { 69 /* 70 * Handle a single JDWP provider name. Must be either 'internal', 'default', or the file name of 71 * an agent. A plugin will make use of this and the jdwpOptions to set up jdwp when appropriate. 72 */ 73 Result Parse(const std::string& option) { 74 if (option == "help") { 75 return Result::Usage( 76 "Example: -XjdwpProvider:none to disable JDWP\n" 77 "Example: -XjdwpProvider:internal for internal jdwp implementation\n" 78 "Example: -XjdwpProvider:adbconnection for adb connection mediated jdwp implementation\n" 79 "Example: -XjdwpProvider:default for the default jdwp implementation\n"); 80 } else if (option == "default") { 81 return Result::Success(JdwpProvider::kDefaultJdwpProvider); 82 } else if (option == "internal") { 83 return Result::Success(JdwpProvider::kInternal); 84 } else if (option == "adbconnection") { 85 return Result::Success(JdwpProvider::kAdbConnection); 86 } else if (option == "none") { 87 return Result::Success(JdwpProvider::kNone); 88 } else { 89 return Result::Failure(std::string("not a valid jdwp provider: ") + option); 90 } 91 } 92 static const char* Name() { return "JdwpProvider"; } 93 }; 94 95 template <size_t Divisor> 96 struct CmdlineType<Memory<Divisor>> : CmdlineTypeParser<Memory<Divisor>> { 97 using typename CmdlineTypeParser<Memory<Divisor>>::Result; 98 99 Result Parse(const std::string& arg) { 100 CMDLINE_DEBUG_LOG << "Parsing memory: " << arg << std::endl; 101 size_t val = ParseMemoryOption(arg.c_str(), Divisor); 102 CMDLINE_DEBUG_LOG << "Memory parsed to size_t value: " << val << std::endl; 103 104 if (val == 0) { 105 return Result::Failure(std::string("not a valid memory value, or not divisible by ") 106 + std::to_string(Divisor)); 107 } 108 109 return Result::Success(Memory<Divisor>(val)); 110 } 111 112 // Parse a string of the form /[0-9]+[kKmMgG]?/, which is used to specify 113 // memory sizes. [kK] indicates kilobytes, [mM] megabytes, and 114 // [gG] gigabytes. 115 // 116 // "s" should point just past the "-Xm?" part of the string. 117 // "div" specifies a divisor, e.g. 1024 if the value must be a multiple 118 // of 1024. 119 // 120 // The spec says the -Xmx and -Xms options must be multiples of 1024. It 121 // doesn't say anything about -Xss. 122 // 123 // Returns 0 (a useless size) if "s" is malformed or specifies a low or 124 // non-evenly-divisible value. 125 // 126 static size_t ParseMemoryOption(const char* s, size_t div) { 127 // strtoul accepts a leading [+-], which we don't want, 128 // so make sure our string starts with a decimal digit. 129 if (isdigit(*s)) { 130 char* s2; 131 size_t val = strtoul(s, &s2, 10); 132 if (s2 != s) { 133 // s2 should be pointing just after the number. 134 // If this is the end of the string, the user 135 // has specified a number of bytes. Otherwise, 136 // there should be exactly one more character 137 // that specifies a multiplier. 138 if (*s2 != '\0') { 139 // The remainder of the string is either a single multiplier 140 // character, or nothing to indicate that the value is in 141 // bytes. 142 char c = *s2++; 143 if (*s2 == '\0') { 144 size_t mul; 145 if (c == '\0') { 146 mul = 1; 147 } else if (c == 'k' || c == 'K') { 148 mul = KB; 149 } else if (c == 'm' || c == 'M') { 150 mul = MB; 151 } else if (c == 'g' || c == 'G') { 152 mul = GB; 153 } else { 154 // Unknown multiplier character. 155 return 0; 156 } 157 158 if (val <= std::numeric_limits<size_t>::max() / mul) { 159 val *= mul; 160 } else { 161 // Clamp to a multiple of 1024. 162 val = std::numeric_limits<size_t>::max() & ~(1024-1); 163 } 164 } else { 165 // There's more than one character after the numeric part. 166 return 0; 167 } 168 } 169 // The man page says that a -Xm value must be a multiple of 1024. 170 if (val % div == 0) { 171 return val; 172 } 173 } 174 } 175 return 0; 176 } 177 178 static const char* Name() { return Memory<Divisor>::Name(); } 179 }; 180 181 template <> 182 struct CmdlineType<double> : CmdlineTypeParser<double> { 183 Result Parse(const std::string& str) { 184 char* end = nullptr; 185 errno = 0; 186 double value = strtod(str.c_str(), &end); 187 188 if (*end != '\0') { 189 return Result::Failure("Failed to parse double from " + str); 190 } 191 if (errno == ERANGE) { 192 return Result::OutOfRange( 193 "Failed to parse double from " + str + "; overflow/underflow occurred"); 194 } 195 196 return Result::Success(value); 197 } 198 199 static const char* Name() { return "double"; } 200 }; 201 202 template <typename T> 203 static inline CmdlineParseResult<T> ParseNumeric(const std::string& str) { 204 static_assert(sizeof(T) < sizeof(long long int), // NOLINT [runtime/int] [4] 205 "Current support is restricted."); 206 207 const char* begin = str.c_str(); 208 char* end; 209 210 // Parse into a larger type (long long) because we can't use strtoul 211 // since it silently converts negative values into unsigned long and doesn't set errno. 212 errno = 0; 213 long long int result = strtoll(begin, &end, 10); // NOLINT [runtime/int] [4] 214 if (begin == end || *end != '\0' || errno == EINVAL) { 215 return CmdlineParseResult<T>::Failure("Failed to parse integer from " + str); 216 } else if ((errno == ERANGE) || // NOLINT [runtime/int] [4] 217 result < std::numeric_limits<T>::min() || result > std::numeric_limits<T>::max()) { 218 return CmdlineParseResult<T>::OutOfRange( 219 "Failed to parse integer from " + str + "; out of range"); 220 } 221 222 return CmdlineParseResult<T>::Success(static_cast<T>(result)); 223 } 224 225 template <> 226 struct CmdlineType<unsigned int> : CmdlineTypeParser<unsigned int> { 227 Result Parse(const std::string& str) { 228 return ParseNumeric<unsigned int>(str); 229 } 230 231 static const char* Name() { return "unsigned integer"; } 232 }; 233 234 template <> 235 struct CmdlineType<int> : CmdlineTypeParser<int> { 236 Result Parse(const std::string& str) { 237 return ParseNumeric<int>(str); 238 } 239 240 static const char* Name() { return "integer"; } 241 }; 242 243 // Lightweight nanosecond value type. Allows parser to convert user-input from milliseconds 244 // to nanoseconds automatically after parsing. 245 // 246 // All implicit conversion from uint64_t uses nanoseconds. 247 struct MillisecondsToNanoseconds { 248 // Create from nanoseconds. 249 MillisecondsToNanoseconds(uint64_t nanoseconds) : nanoseconds_(nanoseconds) { // NOLINT [runtime/explicit] [5] 250 } 251 252 // Create from milliseconds. 253 static MillisecondsToNanoseconds FromMilliseconds(unsigned int milliseconds) { 254 return MillisecondsToNanoseconds(MsToNs(milliseconds)); 255 } 256 257 // Get the underlying nanoseconds value. 258 uint64_t GetNanoseconds() const { 259 return nanoseconds_; 260 } 261 262 // Get the milliseconds value [via a conversion]. Loss of precision will occur. 263 uint64_t GetMilliseconds() const { 264 return NsToMs(nanoseconds_); 265 } 266 267 // Get the underlying nanoseconds value. 268 operator uint64_t() const { 269 return GetNanoseconds(); 270 } 271 272 // Default constructors/copy-constructors. 273 MillisecondsToNanoseconds() : nanoseconds_(0ul) {} 274 MillisecondsToNanoseconds(const MillisecondsToNanoseconds&) = default; 275 MillisecondsToNanoseconds(MillisecondsToNanoseconds&&) = default; 276 277 private: 278 uint64_t nanoseconds_; 279 }; 280 281 template <> 282 struct CmdlineType<MillisecondsToNanoseconds> : CmdlineTypeParser<MillisecondsToNanoseconds> { 283 Result Parse(const std::string& str) { 284 CmdlineType<unsigned int> uint_parser; 285 CmdlineParseResult<unsigned int> res = uint_parser.Parse(str); 286 287 if (res.IsSuccess()) { 288 return Result::Success(MillisecondsToNanoseconds::FromMilliseconds(res.GetValue())); 289 } else { 290 return Result::CastError(res); 291 } 292 } 293 294 static const char* Name() { return "MillisecondsToNanoseconds"; } 295 }; 296 297 template <> 298 struct CmdlineType<std::string> : CmdlineTypeParser<std::string> { 299 Result Parse(const std::string& args) { 300 return Result::Success(args); 301 } 302 303 Result ParseAndAppend(const std::string& args, 304 std::string& existing_value) { 305 if (existing_value.empty()) { 306 existing_value = args; 307 } else { 308 existing_value += ' '; 309 existing_value += args; 310 } 311 return Result::SuccessNoValue(); 312 } 313 }; 314 315 template <> 316 struct CmdlineType<std::vector<Plugin>> : CmdlineTypeParser<std::vector<Plugin>> { 317 Result Parse(const std::string& args) { 318 assert(false && "Use AppendValues() for a Plugin vector type"); 319 return Result::Failure("Unconditional failure: Plugin vector must be appended: " + args); 320 } 321 322 Result ParseAndAppend(const std::string& args, 323 std::vector<Plugin>& existing_value) { 324 existing_value.push_back(Plugin::Create(args)); 325 return Result::SuccessNoValue(); 326 } 327 328 static const char* Name() { return "std::vector<Plugin>"; } 329 }; 330 331 template <> 332 struct CmdlineType<std::list<ti::AgentSpec>> : CmdlineTypeParser<std::list<ti::AgentSpec>> { 333 Result Parse(const std::string& args) { 334 assert(false && "Use AppendValues() for an Agent list type"); 335 return Result::Failure("Unconditional failure: Agent list must be appended: " + args); 336 } 337 338 Result ParseAndAppend(const std::string& args, 339 std::list<ti::AgentSpec>& existing_value) { 340 existing_value.emplace_back(args); 341 return Result::SuccessNoValue(); 342 } 343 344 static const char* Name() { return "std::list<ti::AgentSpec>"; } 345 }; 346 347 template <> 348 struct CmdlineType<std::vector<std::string>> : CmdlineTypeParser<std::vector<std::string>> { 349 Result Parse(const std::string& args) { 350 assert(false && "Use AppendValues() for a string vector type"); 351 return Result::Failure("Unconditional failure: string vector must be appended: " + args); 352 } 353 354 Result ParseAndAppend(const std::string& args, 355 std::vector<std::string>& existing_value) { 356 existing_value.push_back(args); 357 return Result::SuccessNoValue(); 358 } 359 360 static const char* Name() { return "std::vector<std::string>"; } 361 }; 362 363 template <char Separator> 364 struct ParseStringList { 365 explicit ParseStringList(std::vector<std::string>&& list) : list_(list) {} 366 367 operator std::vector<std::string>() const { 368 return list_; 369 } 370 371 operator std::vector<std::string>&&() && { 372 return std::move(list_); 373 } 374 375 size_t Size() const { 376 return list_.size(); 377 } 378 379 std::string Join() const { 380 return android::base::Join(list_, Separator); 381 } 382 383 static ParseStringList<Separator> Split(const std::string& str) { 384 std::vector<std::string> list; 385 art::Split(str, Separator, &list); 386 return ParseStringList<Separator>(std::move(list)); 387 } 388 389 ParseStringList() = default; 390 ParseStringList(const ParseStringList&) = default; 391 ParseStringList(ParseStringList&&) = default; 392 393 private: 394 std::vector<std::string> list_; 395 }; 396 397 template <char Separator> 398 struct CmdlineType<ParseStringList<Separator>> : CmdlineTypeParser<ParseStringList<Separator>> { 399 using Result = CmdlineParseResult<ParseStringList<Separator>>; 400 401 Result Parse(const std::string& args) { 402 return Result::Success(ParseStringList<Separator>::Split(args)); 403 } 404 405 static const char* Name() { return "ParseStringList<Separator>"; } 406 }; 407 408 static gc::CollectorType ParseCollectorType(const std::string& option) { 409 if (option == "MS" || option == "nonconcurrent") { 410 return gc::kCollectorTypeMS; 411 } else if (option == "CMS" || option == "concurrent") { 412 return gc::kCollectorTypeCMS; 413 } else if (option == "SS") { 414 return gc::kCollectorTypeSS; 415 } else if (option == "GSS") { 416 return gc::kCollectorTypeGSS; 417 } else if (option == "CC") { 418 return gc::kCollectorTypeCC; 419 } else { 420 return gc::kCollectorTypeNone; 421 } 422 } 423 424 struct XGcOption { 425 // These defaults are used when the command line arguments for -Xgc: 426 // are either omitted completely or partially. 427 gc::CollectorType collector_type_ = gc::kCollectorTypeDefault; 428 bool verify_pre_gc_heap_ = false; 429 bool verify_pre_sweeping_heap_ = kIsDebugBuild; 430 bool generational_cc = kEnableGenerationalCCByDefault; 431 bool verify_post_gc_heap_ = false; 432 bool verify_pre_gc_rosalloc_ = kIsDebugBuild; 433 bool verify_pre_sweeping_rosalloc_ = false; 434 bool verify_post_gc_rosalloc_ = false; 435 // Do no measurements for kUseTableLookupReadBarrier to avoid test timeouts. b/31679493 436 bool measure_ = kIsDebugBuild && !kUseTableLookupReadBarrier; 437 bool gcstress_ = false; 438 }; 439 440 template <> 441 struct CmdlineType<XGcOption> : CmdlineTypeParser<XGcOption> { 442 Result Parse(const std::string& option) { // -Xgc: already stripped 443 XGcOption xgc{}; 444 445 std::vector<std::string> gc_options; 446 Split(option, ',', &gc_options); 447 for (const std::string& gc_option : gc_options) { 448 gc::CollectorType collector_type = ParseCollectorType(gc_option); 449 if (collector_type != gc::kCollectorTypeNone) { 450 xgc.collector_type_ = collector_type; 451 } else if (gc_option == "preverify") { 452 xgc.verify_pre_gc_heap_ = true; 453 } else if (gc_option == "nopreverify") { 454 xgc.verify_pre_gc_heap_ = false; 455 } else if (gc_option == "presweepingverify") { 456 xgc.verify_pre_sweeping_heap_ = true; 457 } else if (gc_option == "nopresweepingverify") { 458 xgc.verify_pre_sweeping_heap_ = false; 459 } else if (gc_option == "generational_cc") { 460 // Note: Option "-Xgc:generational_cc" can be passed directly by 461 // app_process/zygote (see `android::AndroidRuntime::startVm`). If this 462 // option is ever deprecated, it should still be accepted (but ignored) 463 // for compatibility reasons (this should not prevent the runtime from 464 // starting up). 465 xgc.generational_cc = true; 466 } else if (gc_option == "nogenerational_cc") { 467 // Note: Option "-Xgc:nogenerational_cc" can be passed directly by 468 // app_process/zygote (see `android::AndroidRuntime::startVm`). If this 469 // option is ever deprecated, it should still be accepted (but ignored) 470 // for compatibility reasons (this should not prevent the runtime from 471 // starting up). 472 xgc.generational_cc = false; 473 } else if (gc_option == "postverify") { 474 xgc.verify_post_gc_heap_ = true; 475 } else if (gc_option == "nopostverify") { 476 xgc.verify_post_gc_heap_ = false; 477 } else if (gc_option == "preverify_rosalloc") { 478 xgc.verify_pre_gc_rosalloc_ = true; 479 } else if (gc_option == "nopreverify_rosalloc") { 480 xgc.verify_pre_gc_rosalloc_ = false; 481 } else if (gc_option == "presweepingverify_rosalloc") { 482 xgc.verify_pre_sweeping_rosalloc_ = true; 483 } else if (gc_option == "nopresweepingverify_rosalloc") { 484 xgc.verify_pre_sweeping_rosalloc_ = false; 485 } else if (gc_option == "postverify_rosalloc") { 486 xgc.verify_post_gc_rosalloc_ = true; 487 } else if (gc_option == "nopostverify_rosalloc") { 488 xgc.verify_post_gc_rosalloc_ = false; 489 } else if (gc_option == "gcstress") { 490 xgc.gcstress_ = true; 491 } else if (gc_option == "nogcstress") { 492 xgc.gcstress_ = false; 493 } else if (gc_option == "measure") { 494 xgc.measure_ = true; 495 } else if ((gc_option == "precise") || 496 (gc_option == "noprecise") || 497 (gc_option == "verifycardtable") || 498 (gc_option == "noverifycardtable")) { 499 // Ignored for backwards compatibility. 500 } else { 501 return Result::Usage(std::string("Unknown -Xgc option ") + gc_option); 502 } 503 } 504 505 return Result::Success(std::move(xgc)); 506 } 507 508 static const char* Name() { return "XgcOption"; } 509 }; 510 511 struct BackgroundGcOption { 512 // If background_collector_type_ is kCollectorTypeNone, it defaults to the 513 // XGcOption::collector_type_ after parsing options. If you set this to 514 // kCollectorTypeHSpaceCompact then we will do an hspace compaction when 515 // we transition to background instead of a normal collector transition. 516 gc::CollectorType background_collector_type_; 517 518 BackgroundGcOption(gc::CollectorType background_collector_type) // NOLINT [runtime/explicit] [5] 519 : background_collector_type_(background_collector_type) {} 520 BackgroundGcOption() 521 : background_collector_type_(gc::kCollectorTypeNone) { 522 } 523 524 operator gc::CollectorType() const { return background_collector_type_; } 525 }; 526 527 template<> 528 struct CmdlineType<BackgroundGcOption> 529 : CmdlineTypeParser<BackgroundGcOption>, private BackgroundGcOption { 530 Result Parse(const std::string& substring) { 531 // Special handling for HSpaceCompact since this is only valid as a background GC type. 532 if (substring == "HSpaceCompact") { 533 background_collector_type_ = gc::kCollectorTypeHomogeneousSpaceCompact; 534 } else { 535 gc::CollectorType collector_type = ParseCollectorType(substring); 536 if (collector_type != gc::kCollectorTypeNone) { 537 background_collector_type_ = collector_type; 538 } else { 539 return Result::Failure(); 540 } 541 } 542 543 BackgroundGcOption res = *this; 544 return Result::Success(res); 545 } 546 547 static const char* Name() { return "BackgroundGcOption"; } 548 }; 549 550 template <> 551 struct CmdlineType<LogVerbosity> : CmdlineTypeParser<LogVerbosity> { 552 Result Parse(const std::string& options) { 553 LogVerbosity log_verbosity = LogVerbosity(); 554 555 std::vector<std::string> verbose_options; 556 Split(options, ',', &verbose_options); 557 for (size_t j = 0; j < verbose_options.size(); ++j) { 558 if (verbose_options[j] == "class") { 559 log_verbosity.class_linker = true; 560 } else if (verbose_options[j] == "collector") { 561 log_verbosity.collector = true; 562 } else if (verbose_options[j] == "compiler") { 563 log_verbosity.compiler = true; 564 } else if (verbose_options[j] == "deopt") { 565 log_verbosity.deopt = true; 566 } else if (verbose_options[j] == "gc") { 567 log_verbosity.gc = true; 568 } else if (verbose_options[j] == "heap") { 569 log_verbosity.heap = true; 570 } else if (verbose_options[j] == "jdwp") { 571 log_verbosity.jdwp = true; 572 } else if (verbose_options[j] == "jit") { 573 log_verbosity.jit = true; 574 } else if (verbose_options[j] == "jni") { 575 log_verbosity.jni = true; 576 } else if (verbose_options[j] == "monitor") { 577 log_verbosity.monitor = true; 578 } else if (verbose_options[j] == "oat") { 579 log_verbosity.oat = true; 580 } else if (verbose_options[j] == "profiler") { 581 log_verbosity.profiler = true; 582 } else if (verbose_options[j] == "signals") { 583 log_verbosity.signals = true; 584 } else if (verbose_options[j] == "simulator") { 585 log_verbosity.simulator = true; 586 } else if (verbose_options[j] == "startup") { 587 log_verbosity.startup = true; 588 } else if (verbose_options[j] == "third-party-jni") { 589 log_verbosity.third_party_jni = true; 590 } else if (verbose_options[j] == "threads") { 591 log_verbosity.threads = true; 592 } else if (verbose_options[j] == "verifier") { 593 log_verbosity.verifier = true; 594 } else if (verbose_options[j] == "verifier-debug") { 595 log_verbosity.verifier_debug = true; 596 } else if (verbose_options[j] == "image") { 597 log_verbosity.image = true; 598 } else if (verbose_options[j] == "systrace-locks") { 599 log_verbosity.systrace_lock_logging = true; 600 } else if (verbose_options[j] == "agents") { 601 log_verbosity.agents = true; 602 } else if (verbose_options[j] == "dex") { 603 log_verbosity.dex = true; 604 } else { 605 return Result::Usage(std::string("Unknown -verbose option ") + verbose_options[j]); 606 } 607 } 608 609 return Result::Success(log_verbosity); 610 } 611 612 static const char* Name() { return "LogVerbosity"; } 613 }; 614 615 template <> 616 struct CmdlineType<ProfileSaverOptions> : CmdlineTypeParser<ProfileSaverOptions> { 617 using Result = CmdlineParseResult<ProfileSaverOptions>; 618 619 private: 620 using StringResult = CmdlineParseResult<std::string>; 621 using DoubleResult = CmdlineParseResult<double>; 622 623 template <typename T> 624 static Result ParseInto(ProfileSaverOptions& options, 625 T ProfileSaverOptions::*pField, 626 CmdlineParseResult<T>&& result) { 627 assert(pField != nullptr); 628 629 if (result.IsSuccess()) { 630 options.*pField = result.ReleaseValue(); 631 return Result::SuccessNoValue(); 632 } 633 634 return Result::CastError(result); 635 } 636 637 static std::string RemovePrefix(const std::string& source) { 638 size_t prefix_idx = source.find(':'); 639 640 if (prefix_idx == std::string::npos) { 641 return ""; 642 } 643 644 return source.substr(prefix_idx + 1); 645 } 646 647 public: 648 Result ParseAndAppend(const std::string& option, ProfileSaverOptions& existing) { 649 // Special case which doesn't include a wildcard argument definition. 650 // We pass-it through as-is. 651 if (option == "-Xjitsaveprofilinginfo") { 652 existing.enabled_ = true; 653 return Result::SuccessNoValue(); 654 } 655 656 if (option == "profile-boot-class-path") { 657 existing.profile_boot_class_path_ = true; 658 return Result::SuccessNoValue(); 659 } 660 661 if (option == "profile-aot-code") { 662 existing.profile_aot_code_ = true; 663 return Result::SuccessNoValue(); 664 } 665 666 if (option == "save-without-jit-notifications") { 667 existing.wait_for_jit_notifications_to_save_ = false; 668 return Result::SuccessNoValue(); 669 } 670 671 // The rest of these options are always the wildcard from '-Xps-*' 672 std::string suffix = RemovePrefix(option); 673 674 if (android::base::StartsWith(option, "min-save-period-ms:")) { 675 CmdlineType<unsigned int> type_parser; 676 return ParseInto(existing, 677 &ProfileSaverOptions::min_save_period_ms_, 678 type_parser.Parse(suffix)); 679 } 680 if (android::base::StartsWith(option, "save-resolved-classes-delay-ms:")) { 681 CmdlineType<unsigned int> type_parser; 682 return ParseInto(existing, 683 &ProfileSaverOptions::save_resolved_classes_delay_ms_, 684 type_parser.Parse(suffix)); 685 } 686 if (android::base::StartsWith(option, "hot-startup-method-samples:")) { 687 CmdlineType<unsigned int> type_parser; 688 return ParseInto(existing, 689 &ProfileSaverOptions::hot_startup_method_samples_, 690 type_parser.Parse(suffix)); 691 } 692 if (android::base::StartsWith(option, "min-methods-to-save:")) { 693 CmdlineType<unsigned int> type_parser; 694 return ParseInto(existing, 695 &ProfileSaverOptions::min_methods_to_save_, 696 type_parser.Parse(suffix)); 697 } 698 if (android::base::StartsWith(option, "min-classes-to-save:")) { 699 CmdlineType<unsigned int> type_parser; 700 return ParseInto(existing, 701 &ProfileSaverOptions::min_classes_to_save_, 702 type_parser.Parse(suffix)); 703 } 704 if (android::base::StartsWith(option, "min-notification-before-wake:")) { 705 CmdlineType<unsigned int> type_parser; 706 return ParseInto(existing, 707 &ProfileSaverOptions::min_notification_before_wake_, 708 type_parser.Parse(suffix)); 709 } 710 if (android::base::StartsWith(option, "max-notification-before-wake:")) { 711 CmdlineType<unsigned int> type_parser; 712 return ParseInto(existing, 713 &ProfileSaverOptions::max_notification_before_wake_, 714 type_parser.Parse(suffix)); 715 } 716 if (android::base::StartsWith(option, "profile-path:")) { 717 existing.profile_path_ = suffix; 718 return Result::SuccessNoValue(); 719 } 720 721 return Result::Failure(std::string("Invalid suboption '") + option + "'"); 722 } 723 724 static const char* Name() { return "ProfileSaverOptions"; } 725 static constexpr bool kCanParseBlankless = true; 726 }; 727 728 template<> 729 struct CmdlineType<ExperimentalFlags> : CmdlineTypeParser<ExperimentalFlags> { 730 Result ParseAndAppend(const std::string& option, ExperimentalFlags& existing) { 731 if (option == "none") { 732 existing = ExperimentalFlags::kNone; 733 } else { 734 return Result::Failure(std::string("Unknown option '") + option + "'"); 735 } 736 return Result::SuccessNoValue(); 737 } 738 739 static const char* Name() { return "ExperimentalFlags"; } 740 }; 741 } // namespace art 742 #endif // ART_CMDLINE_CMDLINE_TYPES_H_ 743