1 //===------------------------- UnwindCursor.hpp ---------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is dual licensed under the MIT and the University of Illinois Open 6 // Source Licenses. See LICENSE.TXT for details. 7 // 8 // 9 // C++ interface to lower levels of libuwind 10 //===----------------------------------------------------------------------===// 11 12 #ifndef __UNWINDCURSOR_HPP__ 13 #define __UNWINDCURSOR_HPP__ 14 15 #include <algorithm> 16 #include <stdint.h> 17 #include <stdio.h> 18 #include <stdlib.h> 19 #include <pthread.h> 20 #include <unwind.h> 21 22 #ifdef __APPLE__ 23 #include <mach-o/dyld.h> 24 #endif 25 26 #include "config.h" 27 28 #include "AddressSpace.hpp" 29 #include "CompactUnwinder.hpp" 30 #include "config.h" 31 #include "DwarfInstructions.hpp" 32 #include "EHHeaderParser.hpp" 33 #include "libunwind.h" 34 #include "Registers.hpp" 35 #include "Unwind-EHABI.h" 36 37 namespace libunwind { 38 39 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 40 /// Cache of recently found FDEs. 41 template <typename A> 42 class _LIBUNWIND_HIDDEN DwarfFDECache { 43 typedef typename A::pint_t pint_t; 44 public: 45 static pint_t findFDE(pint_t mh, pint_t pc); 46 static void add(pint_t mh, pint_t ip_start, pint_t ip_end, pint_t fde); 47 static void removeAllIn(pint_t mh); 48 static void iterateCacheEntries(void (*func)(unw_word_t ip_start, 49 unw_word_t ip_end, 50 unw_word_t fde, unw_word_t mh)); 51 52 private: 53 54 struct entry { 55 pint_t mh; 56 pint_t ip_start; 57 pint_t ip_end; 58 pint_t fde; 59 }; 60 61 // These fields are all static to avoid needing an initializer. 62 // There is only one instance of this class per process. 63 static pthread_rwlock_t _lock; 64 #ifdef __APPLE__ 65 static void dyldUnloadHook(const struct mach_header *mh, intptr_t slide); 66 static bool _registeredForDyldUnloads; 67 #endif 68 // Can't use std::vector<> here because this code is below libc++. 69 static entry *_buffer; 70 static entry *_bufferUsed; 71 static entry *_bufferEnd; 72 static entry _initialBuffer[64]; 73 }; 74 75 template <typename A> 76 typename DwarfFDECache<A>::entry * 77 DwarfFDECache<A>::_buffer = _initialBuffer; 78 79 template <typename A> 80 typename DwarfFDECache<A>::entry * 81 DwarfFDECache<A>::_bufferUsed = _initialBuffer; 82 83 template <typename A> 84 typename DwarfFDECache<A>::entry * 85 DwarfFDECache<A>::_bufferEnd = &_initialBuffer[64]; 86 87 template <typename A> 88 typename DwarfFDECache<A>::entry DwarfFDECache<A>::_initialBuffer[64]; 89 90 template <typename A> 91 pthread_rwlock_t DwarfFDECache<A>::_lock = PTHREAD_RWLOCK_INITIALIZER; 92 93 #ifdef __APPLE__ 94 template <typename A> 95 bool DwarfFDECache<A>::_registeredForDyldUnloads = false; 96 #endif 97 98 template <typename A> 99 typename A::pint_t DwarfFDECache<A>::findFDE(pint_t mh, pint_t pc) { 100 pint_t result = 0; 101 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_rdlock(&_lock)); 102 for (entry *p = _buffer; p < _bufferUsed; ++p) { 103 if ((mh == p->mh) || (mh == 0)) { 104 if ((p->ip_start <= pc) && (pc < p->ip_end)) { 105 result = p->fde; 106 break; 107 } 108 } 109 } 110 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_unlock(&_lock)); 111 return result; 112 } 113 114 template <typename A> 115 void DwarfFDECache<A>::add(pint_t mh, pint_t ip_start, pint_t ip_end, 116 pint_t fde) { 117 #if !defined(_LIBUNWIND_NO_HEAP) 118 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_wrlock(&_lock)); 119 if (_bufferUsed >= _bufferEnd) { 120 size_t oldSize = (size_t)(_bufferEnd - _buffer); 121 size_t newSize = oldSize * 4; 122 // Can't use operator new (we are below it). 123 entry *newBuffer = (entry *)malloc(newSize * sizeof(entry)); 124 memcpy(newBuffer, _buffer, oldSize * sizeof(entry)); 125 if (_buffer != _initialBuffer) 126 free(_buffer); 127 _buffer = newBuffer; 128 _bufferUsed = &newBuffer[oldSize]; 129 _bufferEnd = &newBuffer[newSize]; 130 } 131 _bufferUsed->mh = mh; 132 _bufferUsed->ip_start = ip_start; 133 _bufferUsed->ip_end = ip_end; 134 _bufferUsed->fde = fde; 135 ++_bufferUsed; 136 #ifdef __APPLE__ 137 if (!_registeredForDyldUnloads) { 138 _dyld_register_func_for_remove_image(&dyldUnloadHook); 139 _registeredForDyldUnloads = true; 140 } 141 #endif 142 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_unlock(&_lock)); 143 #endif 144 } 145 146 template <typename A> 147 void DwarfFDECache<A>::removeAllIn(pint_t mh) { 148 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_wrlock(&_lock)); 149 entry *d = _buffer; 150 for (const entry *s = _buffer; s < _bufferUsed; ++s) { 151 if (s->mh != mh) { 152 if (d != s) 153 *d = *s; 154 ++d; 155 } 156 } 157 _bufferUsed = d; 158 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_unlock(&_lock)); 159 } 160 161 #ifdef __APPLE__ 162 template <typename A> 163 void DwarfFDECache<A>::dyldUnloadHook(const struct mach_header *mh, intptr_t ) { 164 removeAllIn((pint_t) mh); 165 } 166 #endif 167 168 template <typename A> 169 void DwarfFDECache<A>::iterateCacheEntries(void (*func)( 170 unw_word_t ip_start, unw_word_t ip_end, unw_word_t fde, unw_word_t mh)) { 171 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_wrlock(&_lock)); 172 for (entry *p = _buffer; p < _bufferUsed; ++p) { 173 (*func)(p->ip_start, p->ip_end, p->fde, p->mh); 174 } 175 _LIBUNWIND_LOG_NON_ZERO(::pthread_rwlock_unlock(&_lock)); 176 } 177 #endif // _LIBUNWIND_SUPPORT_DWARF_UNWIND 178 179 180 #define arrayoffsetof(type, index, field) ((size_t)(&((type *)0)[index].field)) 181 182 #if _LIBUNWIND_SUPPORT_COMPACT_UNWIND 183 template <typename A> class UnwindSectionHeader { 184 public: 185 UnwindSectionHeader(A &addressSpace, typename A::pint_t addr) 186 : _addressSpace(addressSpace), _addr(addr) {} 187 188 uint32_t version() const { 189 return _addressSpace.get32(_addr + 190 offsetof(unwind_info_section_header, version)); 191 } 192 uint32_t commonEncodingsArraySectionOffset() const { 193 return _addressSpace.get32(_addr + 194 offsetof(unwind_info_section_header, 195 commonEncodingsArraySectionOffset)); 196 } 197 uint32_t commonEncodingsArrayCount() const { 198 return _addressSpace.get32(_addr + offsetof(unwind_info_section_header, 199 commonEncodingsArrayCount)); 200 } 201 uint32_t personalityArraySectionOffset() const { 202 return _addressSpace.get32(_addr + offsetof(unwind_info_section_header, 203 personalityArraySectionOffset)); 204 } 205 uint32_t personalityArrayCount() const { 206 return _addressSpace.get32( 207 _addr + offsetof(unwind_info_section_header, personalityArrayCount)); 208 } 209 uint32_t indexSectionOffset() const { 210 return _addressSpace.get32( 211 _addr + offsetof(unwind_info_section_header, indexSectionOffset)); 212 } 213 uint32_t indexCount() const { 214 return _addressSpace.get32( 215 _addr + offsetof(unwind_info_section_header, indexCount)); 216 } 217 218 private: 219 A &_addressSpace; 220 typename A::pint_t _addr; 221 }; 222 223 template <typename A> class UnwindSectionIndexArray { 224 public: 225 UnwindSectionIndexArray(A &addressSpace, typename A::pint_t addr) 226 : _addressSpace(addressSpace), _addr(addr) {} 227 228 uint32_t functionOffset(uint32_t index) const { 229 return _addressSpace.get32( 230 _addr + arrayoffsetof(unwind_info_section_header_index_entry, index, 231 functionOffset)); 232 } 233 uint32_t secondLevelPagesSectionOffset(uint32_t index) const { 234 return _addressSpace.get32( 235 _addr + arrayoffsetof(unwind_info_section_header_index_entry, index, 236 secondLevelPagesSectionOffset)); 237 } 238 uint32_t lsdaIndexArraySectionOffset(uint32_t index) const { 239 return _addressSpace.get32( 240 _addr + arrayoffsetof(unwind_info_section_header_index_entry, index, 241 lsdaIndexArraySectionOffset)); 242 } 243 244 private: 245 A &_addressSpace; 246 typename A::pint_t _addr; 247 }; 248 249 template <typename A> class UnwindSectionRegularPageHeader { 250 public: 251 UnwindSectionRegularPageHeader(A &addressSpace, typename A::pint_t addr) 252 : _addressSpace(addressSpace), _addr(addr) {} 253 254 uint32_t kind() const { 255 return _addressSpace.get32( 256 _addr + offsetof(unwind_info_regular_second_level_page_header, kind)); 257 } 258 uint16_t entryPageOffset() const { 259 return _addressSpace.get16( 260 _addr + offsetof(unwind_info_regular_second_level_page_header, 261 entryPageOffset)); 262 } 263 uint16_t entryCount() const { 264 return _addressSpace.get16( 265 _addr + 266 offsetof(unwind_info_regular_second_level_page_header, entryCount)); 267 } 268 269 private: 270 A &_addressSpace; 271 typename A::pint_t _addr; 272 }; 273 274 template <typename A> class UnwindSectionRegularArray { 275 public: 276 UnwindSectionRegularArray(A &addressSpace, typename A::pint_t addr) 277 : _addressSpace(addressSpace), _addr(addr) {} 278 279 uint32_t functionOffset(uint32_t index) const { 280 return _addressSpace.get32( 281 _addr + arrayoffsetof(unwind_info_regular_second_level_entry, index, 282 functionOffset)); 283 } 284 uint32_t encoding(uint32_t index) const { 285 return _addressSpace.get32( 286 _addr + 287 arrayoffsetof(unwind_info_regular_second_level_entry, index, encoding)); 288 } 289 290 private: 291 A &_addressSpace; 292 typename A::pint_t _addr; 293 }; 294 295 template <typename A> class UnwindSectionCompressedPageHeader { 296 public: 297 UnwindSectionCompressedPageHeader(A &addressSpace, typename A::pint_t addr) 298 : _addressSpace(addressSpace), _addr(addr) {} 299 300 uint32_t kind() const { 301 return _addressSpace.get32( 302 _addr + 303 offsetof(unwind_info_compressed_second_level_page_header, kind)); 304 } 305 uint16_t entryPageOffset() const { 306 return _addressSpace.get16( 307 _addr + offsetof(unwind_info_compressed_second_level_page_header, 308 entryPageOffset)); 309 } 310 uint16_t entryCount() const { 311 return _addressSpace.get16( 312 _addr + 313 offsetof(unwind_info_compressed_second_level_page_header, entryCount)); 314 } 315 uint16_t encodingsPageOffset() const { 316 return _addressSpace.get16( 317 _addr + offsetof(unwind_info_compressed_second_level_page_header, 318 encodingsPageOffset)); 319 } 320 uint16_t encodingsCount() const { 321 return _addressSpace.get16( 322 _addr + offsetof(unwind_info_compressed_second_level_page_header, 323 encodingsCount)); 324 } 325 326 private: 327 A &_addressSpace; 328 typename A::pint_t _addr; 329 }; 330 331 template <typename A> class UnwindSectionCompressedArray { 332 public: 333 UnwindSectionCompressedArray(A &addressSpace, typename A::pint_t addr) 334 : _addressSpace(addressSpace), _addr(addr) {} 335 336 uint32_t functionOffset(uint32_t index) const { 337 return UNWIND_INFO_COMPRESSED_ENTRY_FUNC_OFFSET( 338 _addressSpace.get32(_addr + index * sizeof(uint32_t))); 339 } 340 uint16_t encodingIndex(uint32_t index) const { 341 return UNWIND_INFO_COMPRESSED_ENTRY_ENCODING_INDEX( 342 _addressSpace.get32(_addr + index * sizeof(uint32_t))); 343 } 344 345 private: 346 A &_addressSpace; 347 typename A::pint_t _addr; 348 }; 349 350 template <typename A> class UnwindSectionLsdaArray { 351 public: 352 UnwindSectionLsdaArray(A &addressSpace, typename A::pint_t addr) 353 : _addressSpace(addressSpace), _addr(addr) {} 354 355 uint32_t functionOffset(uint32_t index) const { 356 return _addressSpace.get32( 357 _addr + arrayoffsetof(unwind_info_section_header_lsda_index_entry, 358 index, functionOffset)); 359 } 360 uint32_t lsdaOffset(uint32_t index) const { 361 return _addressSpace.get32( 362 _addr + arrayoffsetof(unwind_info_section_header_lsda_index_entry, 363 index, lsdaOffset)); 364 } 365 366 private: 367 A &_addressSpace; 368 typename A::pint_t _addr; 369 }; 370 #endif // _LIBUNWIND_SUPPORT_COMPACT_UNWIND 371 372 class _LIBUNWIND_HIDDEN AbstractUnwindCursor { 373 public: 374 // NOTE: provide a class specific placement deallocation function (S5.3.4 p20) 375 // This avoids an unnecessary dependency to libc++abi. 376 void operator delete(void *, size_t) {} 377 378 virtual ~AbstractUnwindCursor() {} 379 virtual bool validReg(int) { _LIBUNWIND_ABORT("validReg not implemented"); } 380 virtual unw_word_t getReg(int) { _LIBUNWIND_ABORT("getReg not implemented"); } 381 virtual void setReg(int, unw_word_t) { 382 _LIBUNWIND_ABORT("setReg not implemented"); 383 } 384 virtual bool validFloatReg(int) { 385 _LIBUNWIND_ABORT("validFloatReg not implemented"); 386 } 387 virtual unw_fpreg_t getFloatReg(int) { 388 _LIBUNWIND_ABORT("getFloatReg not implemented"); 389 } 390 virtual void setFloatReg(int, unw_fpreg_t) { 391 _LIBUNWIND_ABORT("setFloatReg not implemented"); 392 } 393 virtual int step() { _LIBUNWIND_ABORT("step not implemented"); } 394 virtual void getInfo(unw_proc_info_t *) { 395 _LIBUNWIND_ABORT("getInfo not implemented"); 396 } 397 virtual void jumpto() { _LIBUNWIND_ABORT("jumpto not implemented"); } 398 virtual bool isSignalFrame() { 399 _LIBUNWIND_ABORT("isSignalFrame not implemented"); 400 } 401 virtual bool getFunctionName(char *, size_t, unw_word_t *) { 402 _LIBUNWIND_ABORT("getFunctionName not implemented"); 403 } 404 virtual void setInfoBasedOnIPRegister(bool = false) { 405 _LIBUNWIND_ABORT("setInfoBasedOnIPRegister not implemented"); 406 } 407 virtual const char *getRegisterName(int) { 408 _LIBUNWIND_ABORT("getRegisterName not implemented"); 409 } 410 #ifdef __arm__ 411 virtual void saveVFPAsX() { _LIBUNWIND_ABORT("saveVFPAsX not implemented"); } 412 #endif 413 }; 414 415 /// UnwindCursor contains all state (including all register values) during 416 /// an unwind. This is normally stack allocated inside a unw_cursor_t. 417 template <typename A, typename R> 418 class UnwindCursor : public AbstractUnwindCursor{ 419 typedef typename A::pint_t pint_t; 420 public: 421 UnwindCursor(unw_context_t *context, A &as); 422 UnwindCursor(A &as, void *threadArg); 423 virtual ~UnwindCursor() {} 424 virtual bool validReg(int); 425 virtual unw_word_t getReg(int); 426 virtual void setReg(int, unw_word_t); 427 virtual bool validFloatReg(int); 428 virtual unw_fpreg_t getFloatReg(int); 429 virtual void setFloatReg(int, unw_fpreg_t); 430 virtual int step(); 431 virtual void getInfo(unw_proc_info_t *); 432 virtual void jumpto(); 433 virtual bool isSignalFrame(); 434 virtual bool getFunctionName(char *buf, size_t len, unw_word_t *off); 435 virtual void setInfoBasedOnIPRegister(bool isReturnAddress = false); 436 virtual const char *getRegisterName(int num); 437 #ifdef __arm__ 438 virtual void saveVFPAsX(); 439 #endif 440 441 private: 442 443 #if _LIBUNWIND_ARM_EHABI 444 bool getInfoFromEHABISection(pint_t pc, const UnwindInfoSections §s); 445 446 int stepWithEHABI() { 447 size_t len = 0; 448 size_t off = 0; 449 // FIXME: Calling decode_eht_entry() here is violating the libunwind 450 // abstraction layer. 451 const uint32_t *ehtp = 452 decode_eht_entry(reinterpret_cast<const uint32_t *>(_info.unwind_info), 453 &off, &len); 454 if (_Unwind_VRS_Interpret((_Unwind_Context *)this, ehtp, off, len) != 455 _URC_CONTINUE_UNWIND) 456 return UNW_STEP_END; 457 return UNW_STEP_SUCCESS; 458 } 459 #endif 460 461 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 462 bool getInfoFromDwarfSection(pint_t pc, const UnwindInfoSections §s, 463 uint32_t fdeSectionOffsetHint=0); 464 int stepWithDwarfFDE() { 465 return DwarfInstructions<A, R>::stepWithDwarf(_addressSpace, 466 (pint_t)this->getReg(UNW_REG_IP), 467 (pint_t)_info.unwind_info, 468 _registers); 469 } 470 #endif 471 472 #if _LIBUNWIND_SUPPORT_COMPACT_UNWIND 473 bool getInfoFromCompactEncodingSection(pint_t pc, 474 const UnwindInfoSections §s); 475 int stepWithCompactEncoding() { 476 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 477 if ( compactSaysUseDwarf() ) 478 return stepWithDwarfFDE(); 479 #endif 480 R dummy; 481 return stepWithCompactEncoding(dummy); 482 } 483 484 #if defined(_LIBUNWIND_TARGET_X86_64) 485 int stepWithCompactEncoding(Registers_x86_64 &) { 486 return CompactUnwinder_x86_64<A>::stepWithCompactEncoding( 487 _info.format, _info.start_ip, _addressSpace, _registers); 488 } 489 #endif 490 491 #if defined(_LIBUNWIND_TARGET_I386) 492 int stepWithCompactEncoding(Registers_x86 &) { 493 return CompactUnwinder_x86<A>::stepWithCompactEncoding( 494 _info.format, (uint32_t)_info.start_ip, _addressSpace, _registers); 495 } 496 #endif 497 498 #if defined(_LIBUNWIND_TARGET_PPC) 499 int stepWithCompactEncoding(Registers_ppc &) { 500 return UNW_EINVAL; 501 } 502 #endif 503 504 #if defined(_LIBUNWIND_TARGET_AARCH64) 505 int stepWithCompactEncoding(Registers_arm64 &) { 506 return CompactUnwinder_arm64<A>::stepWithCompactEncoding( 507 _info.format, _info.start_ip, _addressSpace, _registers); 508 } 509 #endif 510 511 bool compactSaysUseDwarf(uint32_t *offset=NULL) const { 512 R dummy; 513 return compactSaysUseDwarf(dummy, offset); 514 } 515 516 #if defined(_LIBUNWIND_TARGET_X86_64) 517 bool compactSaysUseDwarf(Registers_x86_64 &, uint32_t *offset) const { 518 if ((_info.format & UNWIND_X86_64_MODE_MASK) == UNWIND_X86_64_MODE_DWARF) { 519 if (offset) 520 *offset = (_info.format & UNWIND_X86_64_DWARF_SECTION_OFFSET); 521 return true; 522 } 523 return false; 524 } 525 #endif 526 527 #if defined(_LIBUNWIND_TARGET_I386) 528 bool compactSaysUseDwarf(Registers_x86 &, uint32_t *offset) const { 529 if ((_info.format & UNWIND_X86_MODE_MASK) == UNWIND_X86_MODE_DWARF) { 530 if (offset) 531 *offset = (_info.format & UNWIND_X86_DWARF_SECTION_OFFSET); 532 return true; 533 } 534 return false; 535 } 536 #endif 537 538 #if defined(_LIBUNWIND_TARGET_PPC) 539 bool compactSaysUseDwarf(Registers_ppc &, uint32_t *) const { 540 return true; 541 } 542 #endif 543 544 #if defined(_LIBUNWIND_TARGET_AARCH64) 545 bool compactSaysUseDwarf(Registers_arm64 &, uint32_t *offset) const { 546 if ((_info.format & UNWIND_ARM64_MODE_MASK) == UNWIND_ARM64_MODE_DWARF) { 547 if (offset) 548 *offset = (_info.format & UNWIND_ARM64_DWARF_SECTION_OFFSET); 549 return true; 550 } 551 return false; 552 } 553 #endif 554 #endif // _LIBUNWIND_SUPPORT_COMPACT_UNWIND 555 556 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 557 compact_unwind_encoding_t dwarfEncoding() const { 558 R dummy; 559 return dwarfEncoding(dummy); 560 } 561 562 #if defined(_LIBUNWIND_TARGET_X86_64) 563 compact_unwind_encoding_t dwarfEncoding(Registers_x86_64 &) const { 564 return UNWIND_X86_64_MODE_DWARF; 565 } 566 #endif 567 568 #if defined(_LIBUNWIND_TARGET_I386) 569 compact_unwind_encoding_t dwarfEncoding(Registers_x86 &) const { 570 return UNWIND_X86_MODE_DWARF; 571 } 572 #endif 573 574 #if defined(_LIBUNWIND_TARGET_PPC) 575 compact_unwind_encoding_t dwarfEncoding(Registers_ppc &) const { 576 return 0; 577 } 578 #endif 579 580 #if defined(_LIBUNWIND_TARGET_AARCH64) 581 compact_unwind_encoding_t dwarfEncoding(Registers_arm64 &) const { 582 return UNWIND_ARM64_MODE_DWARF; 583 } 584 #endif 585 586 #if defined (_LIBUNWIND_TARGET_OR1K) 587 compact_unwind_encoding_t dwarfEncoding(Registers_or1k &) const { 588 return 0; 589 } 590 #endif 591 #endif // _LIBUNWIND_SUPPORT_DWARF_UNWIND 592 593 594 A &_addressSpace; 595 R _registers; 596 unw_proc_info_t _info; 597 bool _unwindInfoMissing; 598 bool _isSignalFrame; 599 }; 600 601 602 template <typename A, typename R> 603 UnwindCursor<A, R>::UnwindCursor(unw_context_t *context, A &as) 604 : _addressSpace(as), _registers(context), _unwindInfoMissing(false), 605 _isSignalFrame(false) { 606 static_assert((check_fit<UnwindCursor<A, R>, unw_cursor_t>::does_fit), 607 "UnwindCursor<> does not fit in unw_cursor_t"); 608 memset(&_info, 0, sizeof(_info)); 609 } 610 611 template <typename A, typename R> 612 UnwindCursor<A, R>::UnwindCursor(A &as, void *) 613 : _addressSpace(as), _unwindInfoMissing(false), _isSignalFrame(false) { 614 memset(&_info, 0, sizeof(_info)); 615 // FIXME 616 // fill in _registers from thread arg 617 } 618 619 620 template <typename A, typename R> 621 bool UnwindCursor<A, R>::validReg(int regNum) { 622 return _registers.validRegister(regNum); 623 } 624 625 template <typename A, typename R> 626 unw_word_t UnwindCursor<A, R>::getReg(int regNum) { 627 return _registers.getRegister(regNum); 628 } 629 630 template <typename A, typename R> 631 void UnwindCursor<A, R>::setReg(int regNum, unw_word_t value) { 632 _registers.setRegister(regNum, (typename A::pint_t)value); 633 } 634 635 template <typename A, typename R> 636 bool UnwindCursor<A, R>::validFloatReg(int regNum) { 637 return _registers.validFloatRegister(regNum); 638 } 639 640 template <typename A, typename R> 641 unw_fpreg_t UnwindCursor<A, R>::getFloatReg(int regNum) { 642 return _registers.getFloatRegister(regNum); 643 } 644 645 template <typename A, typename R> 646 void UnwindCursor<A, R>::setFloatReg(int regNum, unw_fpreg_t value) { 647 _registers.setFloatRegister(regNum, value); 648 } 649 650 template <typename A, typename R> void UnwindCursor<A, R>::jumpto() { 651 _registers.jumpto(); 652 } 653 654 #ifdef __arm__ 655 template <typename A, typename R> void UnwindCursor<A, R>::saveVFPAsX() { 656 _registers.saveVFPAsX(); 657 } 658 #endif 659 660 template <typename A, typename R> 661 const char *UnwindCursor<A, R>::getRegisterName(int regNum) { 662 return _registers.getRegisterName(regNum); 663 } 664 665 template <typename A, typename R> bool UnwindCursor<A, R>::isSignalFrame() { 666 return _isSignalFrame; 667 } 668 669 #if _LIBUNWIND_ARM_EHABI 670 struct EHABIIndexEntry { 671 uint32_t functionOffset; 672 uint32_t data; 673 }; 674 675 template<typename A> 676 struct EHABISectionIterator { 677 typedef EHABISectionIterator _Self; 678 679 typedef std::random_access_iterator_tag iterator_category; 680 typedef typename A::pint_t value_type; 681 typedef typename A::pint_t* pointer; 682 typedef typename A::pint_t& reference; 683 typedef size_t size_type; 684 typedef size_t difference_type; 685 686 static _Self begin(A& addressSpace, const UnwindInfoSections& sects) { 687 return _Self(addressSpace, sects, 0); 688 } 689 static _Self end(A& addressSpace, const UnwindInfoSections& sects) { 690 return _Self(addressSpace, sects, sects.arm_section_length); 691 } 692 693 EHABISectionIterator(A& addressSpace, const UnwindInfoSections& sects, size_t i) 694 : _i(i), _addressSpace(&addressSpace), _sects(§s) {} 695 696 _Self& operator++() { ++_i; return *this; } 697 _Self& operator+=(size_t a) { _i += a; return *this; } 698 _Self& operator--() { assert(_i > 0); --_i; return *this; } 699 _Self& operator-=(size_t a) { assert(_i >= a); _i -= a; return *this; } 700 701 _Self operator+(size_t a) { _Self out = *this; out._i += a; return out; } 702 _Self operator-(size_t a) { assert(_i >= a); _Self out = *this; out._i -= a; return out; } 703 704 size_t operator-(const _Self& other) { return _i - other._i; } 705 706 bool operator==(const _Self& other) const { 707 assert(_addressSpace == other._addressSpace); 708 assert(_sects == other._sects); 709 return _i == other._i; 710 } 711 712 typename A::pint_t operator*() const { return functionAddress(); } 713 714 typename A::pint_t functionAddress() const { 715 typename A::pint_t indexAddr = _sects->arm_section + arrayoffsetof( 716 EHABIIndexEntry, _i, functionOffset); 717 return indexAddr + signExtendPrel31(_addressSpace->get32(indexAddr)); 718 } 719 720 typename A::pint_t dataAddress() { 721 typename A::pint_t indexAddr = _sects->arm_section + arrayoffsetof( 722 EHABIIndexEntry, _i, data); 723 return indexAddr; 724 } 725 726 private: 727 size_t _i; 728 A* _addressSpace; 729 const UnwindInfoSections* _sects; 730 }; 731 732 template <typename A, typename R> 733 bool UnwindCursor<A, R>::getInfoFromEHABISection( 734 pint_t pc, 735 const UnwindInfoSections §s) { 736 EHABISectionIterator<A> begin = 737 EHABISectionIterator<A>::begin(_addressSpace, sects); 738 EHABISectionIterator<A> end = 739 EHABISectionIterator<A>::end(_addressSpace, sects); 740 741 EHABISectionIterator<A> itNextPC = std::upper_bound(begin, end, pc); 742 if (itNextPC == begin || itNextPC == end) 743 return false; 744 EHABISectionIterator<A> itThisPC = itNextPC - 1; 745 746 pint_t thisPC = itThisPC.functionAddress(); 747 pint_t nextPC = itNextPC.functionAddress(); 748 pint_t indexDataAddr = itThisPC.dataAddress(); 749 750 if (indexDataAddr == 0) 751 return false; 752 753 uint32_t indexData = _addressSpace.get32(indexDataAddr); 754 if (indexData == UNW_EXIDX_CANTUNWIND) 755 return false; 756 757 // If the high bit is set, the exception handling table entry is inline inside 758 // the index table entry on the second word (aka |indexDataAddr|). Otherwise, 759 // the table points at an offset in the exception handling table (section 5 EHABI). 760 pint_t exceptionTableAddr; 761 uint32_t exceptionTableData; 762 bool isSingleWordEHT; 763 if (indexData & 0x80000000) { 764 exceptionTableAddr = indexDataAddr; 765 // TODO(ajwong): Should this data be 0? 766 exceptionTableData = indexData; 767 isSingleWordEHT = true; 768 } else { 769 exceptionTableAddr = indexDataAddr + signExtendPrel31(indexData); 770 exceptionTableData = _addressSpace.get32(exceptionTableAddr); 771 isSingleWordEHT = false; 772 } 773 774 // Now we know the 3 things: 775 // exceptionTableAddr -- exception handler table entry. 776 // exceptionTableData -- the data inside the first word of the eht entry. 777 // isSingleWordEHT -- whether the entry is in the index. 778 unw_word_t personalityRoutine = 0xbadf00d; 779 bool scope32 = false; 780 uintptr_t lsda; 781 782 // If the high bit in the exception handling table entry is set, the entry is 783 // in compact form (section 6.3 EHABI). 784 if (exceptionTableData & 0x80000000) { 785 // Grab the index of the personality routine from the compact form. 786 uint32_t choice = (exceptionTableData & 0x0f000000) >> 24; 787 uint32_t extraWords = 0; 788 switch (choice) { 789 case 0: 790 personalityRoutine = (unw_word_t) &__aeabi_unwind_cpp_pr0; 791 extraWords = 0; 792 scope32 = false; 793 lsda = isSingleWordEHT ? 0 : (exceptionTableAddr + 4); 794 break; 795 case 1: 796 personalityRoutine = (unw_word_t) &__aeabi_unwind_cpp_pr1; 797 extraWords = (exceptionTableData & 0x00ff0000) >> 16; 798 scope32 = false; 799 lsda = exceptionTableAddr + (extraWords + 1) * 4; 800 break; 801 case 2: 802 personalityRoutine = (unw_word_t) &__aeabi_unwind_cpp_pr2; 803 extraWords = (exceptionTableData & 0x00ff0000) >> 16; 804 scope32 = true; 805 lsda = exceptionTableAddr + (extraWords + 1) * 4; 806 break; 807 default: 808 _LIBUNWIND_ABORT("unknown personality routine"); 809 return false; 810 } 811 812 if (isSingleWordEHT) { 813 if (extraWords != 0) { 814 _LIBUNWIND_ABORT("index inlined table detected but pr function " 815 "requires extra words"); 816 return false; 817 } 818 } 819 } else { 820 pint_t personalityAddr = 821 exceptionTableAddr + signExtendPrel31(exceptionTableData); 822 personalityRoutine = personalityAddr; 823 824 // ARM EHABI # 6.2, # 9.2 825 // 826 // +---- ehtp 827 // v 828 // +--------------------------------------+ 829 // | +--------+--------+--------+-------+ | 830 // | |0| prel31 to personalityRoutine | | 831 // | +--------+--------+--------+-------+ | 832 // | | N | unwind opcodes | | <-- UnwindData 833 // | +--------+--------+--------+-------+ | 834 // | | Word 2 unwind opcodes | | 835 // | +--------+--------+--------+-------+ | 836 // | ... | 837 // | +--------+--------+--------+-------+ | 838 // | | Word N unwind opcodes | | 839 // | +--------+--------+--------+-------+ | 840 // | | LSDA | | <-- lsda 841 // | | ... | | 842 // | +--------+--------+--------+-------+ | 843 // +--------------------------------------+ 844 845 uint32_t *UnwindData = reinterpret_cast<uint32_t*>(exceptionTableAddr) + 1; 846 uint32_t FirstDataWord = *UnwindData; 847 size_t N = ((FirstDataWord >> 24) & 0xff); 848 size_t NDataWords = N + 1; 849 lsda = reinterpret_cast<uintptr_t>(UnwindData + NDataWords); 850 } 851 852 _info.start_ip = thisPC; 853 _info.end_ip = nextPC; 854 _info.handler = personalityRoutine; 855 _info.unwind_info = exceptionTableAddr; 856 _info.lsda = lsda; 857 // flags is pr_cache.additional. See EHABI #7.2 for definition of bit 0. 858 _info.flags = isSingleWordEHT ? 1 : 0 | scope32 ? 0x2 : 0; // Use enum? 859 860 return true; 861 } 862 #endif 863 864 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 865 template <typename A, typename R> 866 bool UnwindCursor<A, R>::getInfoFromDwarfSection(pint_t pc, 867 const UnwindInfoSections §s, 868 uint32_t fdeSectionOffsetHint) { 869 typename CFI_Parser<A>::FDE_Info fdeInfo; 870 typename CFI_Parser<A>::CIE_Info cieInfo; 871 bool foundFDE = false; 872 bool foundInCache = false; 873 // If compact encoding table gave offset into dwarf section, go directly there 874 if (fdeSectionOffsetHint != 0) { 875 foundFDE = CFI_Parser<A>::findFDE(_addressSpace, pc, sects.dwarf_section, 876 (uint32_t)sects.dwarf_section_length, 877 sects.dwarf_section + fdeSectionOffsetHint, 878 &fdeInfo, &cieInfo); 879 } 880 #if _LIBUNWIND_SUPPORT_DWARF_INDEX 881 if (!foundFDE && (sects.dwarf_index_section != 0)) { 882 foundFDE = EHHeaderParser<A>::findFDE( 883 _addressSpace, pc, sects.dwarf_index_section, 884 (uint32_t)sects.dwarf_index_section_length, &fdeInfo, &cieInfo); 885 } 886 #endif 887 if (!foundFDE) { 888 // otherwise, search cache of previously found FDEs. 889 pint_t cachedFDE = DwarfFDECache<A>::findFDE(sects.dso_base, pc); 890 if (cachedFDE != 0) { 891 foundFDE = 892 CFI_Parser<A>::findFDE(_addressSpace, pc, sects.dwarf_section, 893 (uint32_t)sects.dwarf_section_length, 894 cachedFDE, &fdeInfo, &cieInfo); 895 foundInCache = foundFDE; 896 } 897 } 898 if (!foundFDE) { 899 // Still not found, do full scan of __eh_frame section. 900 foundFDE = CFI_Parser<A>::findFDE(_addressSpace, pc, sects.dwarf_section, 901 (uint32_t)sects.dwarf_section_length, 0, 902 &fdeInfo, &cieInfo); 903 } 904 if (foundFDE) { 905 typename CFI_Parser<A>::PrologInfo prolog; 906 if (CFI_Parser<A>::parseFDEInstructions(_addressSpace, fdeInfo, cieInfo, pc, 907 &prolog)) { 908 // Save off parsed FDE info 909 _info.start_ip = fdeInfo.pcStart; 910 _info.end_ip = fdeInfo.pcEnd; 911 _info.lsda = fdeInfo.lsda; 912 _info.handler = cieInfo.personality; 913 _info.gp = prolog.spExtraArgSize; 914 _info.flags = 0; 915 _info.format = dwarfEncoding(); 916 _info.unwind_info = fdeInfo.fdeStart; 917 _info.unwind_info_size = (uint32_t)fdeInfo.fdeLength; 918 _info.extra = (unw_word_t) sects.dso_base; 919 920 // Add to cache (to make next lookup faster) if we had no hint 921 // and there was no index. 922 if (!foundInCache && (fdeSectionOffsetHint == 0)) { 923 #if _LIBUNWIND_SUPPORT_DWARF_INDEX 924 if (sects.dwarf_index_section == 0) 925 #endif 926 DwarfFDECache<A>::add(sects.dso_base, fdeInfo.pcStart, fdeInfo.pcEnd, 927 fdeInfo.fdeStart); 928 } 929 return true; 930 } 931 } 932 //_LIBUNWIND_DEBUG_LOG("can't find/use FDE for pc=0x%llX\n", (uint64_t)pc); 933 return false; 934 } 935 #endif // _LIBUNWIND_SUPPORT_DWARF_UNWIND 936 937 938 #if _LIBUNWIND_SUPPORT_COMPACT_UNWIND 939 template <typename A, typename R> 940 bool UnwindCursor<A, R>::getInfoFromCompactEncodingSection(pint_t pc, 941 const UnwindInfoSections §s) { 942 const bool log = false; 943 if (log) 944 fprintf(stderr, "getInfoFromCompactEncodingSection(pc=0x%llX, mh=0x%llX)\n", 945 (uint64_t)pc, (uint64_t)sects.dso_base); 946 947 const UnwindSectionHeader<A> sectionHeader(_addressSpace, 948 sects.compact_unwind_section); 949 if (sectionHeader.version() != UNWIND_SECTION_VERSION) 950 return false; 951 952 // do a binary search of top level index to find page with unwind info 953 pint_t targetFunctionOffset = pc - sects.dso_base; 954 const UnwindSectionIndexArray<A> topIndex(_addressSpace, 955 sects.compact_unwind_section 956 + sectionHeader.indexSectionOffset()); 957 uint32_t low = 0; 958 uint32_t high = sectionHeader.indexCount(); 959 uint32_t last = high - 1; 960 while (low < high) { 961 uint32_t mid = (low + high) / 2; 962 //if ( log ) fprintf(stderr, "\tmid=%d, low=%d, high=%d, *mid=0x%08X\n", 963 //mid, low, high, topIndex.functionOffset(mid)); 964 if (topIndex.functionOffset(mid) <= targetFunctionOffset) { 965 if ((mid == last) || 966 (topIndex.functionOffset(mid + 1) > targetFunctionOffset)) { 967 low = mid; 968 break; 969 } else { 970 low = mid + 1; 971 } 972 } else { 973 high = mid; 974 } 975 } 976 const uint32_t firstLevelFunctionOffset = topIndex.functionOffset(low); 977 const uint32_t firstLevelNextPageFunctionOffset = 978 topIndex.functionOffset(low + 1); 979 const pint_t secondLevelAddr = 980 sects.compact_unwind_section + topIndex.secondLevelPagesSectionOffset(low); 981 const pint_t lsdaArrayStartAddr = 982 sects.compact_unwind_section + topIndex.lsdaIndexArraySectionOffset(low); 983 const pint_t lsdaArrayEndAddr = 984 sects.compact_unwind_section + topIndex.lsdaIndexArraySectionOffset(low+1); 985 if (log) 986 fprintf(stderr, "\tfirst level search for result index=%d " 987 "to secondLevelAddr=0x%llX\n", 988 low, (uint64_t) secondLevelAddr); 989 // do a binary search of second level page index 990 uint32_t encoding = 0; 991 pint_t funcStart = 0; 992 pint_t funcEnd = 0; 993 pint_t lsda = 0; 994 pint_t personality = 0; 995 uint32_t pageKind = _addressSpace.get32(secondLevelAddr); 996 if (pageKind == UNWIND_SECOND_LEVEL_REGULAR) { 997 // regular page 998 UnwindSectionRegularPageHeader<A> pageHeader(_addressSpace, 999 secondLevelAddr); 1000 UnwindSectionRegularArray<A> pageIndex( 1001 _addressSpace, secondLevelAddr + pageHeader.entryPageOffset()); 1002 // binary search looks for entry with e where index[e].offset <= pc < 1003 // index[e+1].offset 1004 if (log) 1005 fprintf(stderr, "\tbinary search for targetFunctionOffset=0x%08llX in " 1006 "regular page starting at secondLevelAddr=0x%llX\n", 1007 (uint64_t) targetFunctionOffset, (uint64_t) secondLevelAddr); 1008 low = 0; 1009 high = pageHeader.entryCount(); 1010 while (low < high) { 1011 uint32_t mid = (low + high) / 2; 1012 if (pageIndex.functionOffset(mid) <= targetFunctionOffset) { 1013 if (mid == (uint32_t)(pageHeader.entryCount() - 1)) { 1014 // at end of table 1015 low = mid; 1016 funcEnd = firstLevelNextPageFunctionOffset + sects.dso_base; 1017 break; 1018 } else if (pageIndex.functionOffset(mid + 1) > targetFunctionOffset) { 1019 // next is too big, so we found it 1020 low = mid; 1021 funcEnd = pageIndex.functionOffset(low + 1) + sects.dso_base; 1022 break; 1023 } else { 1024 low = mid + 1; 1025 } 1026 } else { 1027 high = mid; 1028 } 1029 } 1030 encoding = pageIndex.encoding(low); 1031 funcStart = pageIndex.functionOffset(low) + sects.dso_base; 1032 if (pc < funcStart) { 1033 if (log) 1034 fprintf( 1035 stderr, 1036 "\tpc not in table, pc=0x%llX, funcStart=0x%llX, funcEnd=0x%llX\n", 1037 (uint64_t) pc, (uint64_t) funcStart, (uint64_t) funcEnd); 1038 return false; 1039 } 1040 if (pc > funcEnd) { 1041 if (log) 1042 fprintf( 1043 stderr, 1044 "\tpc not in table, pc=0x%llX, funcStart=0x%llX, funcEnd=0x%llX\n", 1045 (uint64_t) pc, (uint64_t) funcStart, (uint64_t) funcEnd); 1046 return false; 1047 } 1048 } else if (pageKind == UNWIND_SECOND_LEVEL_COMPRESSED) { 1049 // compressed page 1050 UnwindSectionCompressedPageHeader<A> pageHeader(_addressSpace, 1051 secondLevelAddr); 1052 UnwindSectionCompressedArray<A> pageIndex( 1053 _addressSpace, secondLevelAddr + pageHeader.entryPageOffset()); 1054 const uint32_t targetFunctionPageOffset = 1055 (uint32_t)(targetFunctionOffset - firstLevelFunctionOffset); 1056 // binary search looks for entry with e where index[e].offset <= pc < 1057 // index[e+1].offset 1058 if (log) 1059 fprintf(stderr, "\tbinary search of compressed page starting at " 1060 "secondLevelAddr=0x%llX\n", 1061 (uint64_t) secondLevelAddr); 1062 low = 0; 1063 last = pageHeader.entryCount() - 1; 1064 high = pageHeader.entryCount(); 1065 while (low < high) { 1066 uint32_t mid = (low + high) / 2; 1067 if (pageIndex.functionOffset(mid) <= targetFunctionPageOffset) { 1068 if ((mid == last) || 1069 (pageIndex.functionOffset(mid + 1) > targetFunctionPageOffset)) { 1070 low = mid; 1071 break; 1072 } else { 1073 low = mid + 1; 1074 } 1075 } else { 1076 high = mid; 1077 } 1078 } 1079 funcStart = pageIndex.functionOffset(low) + firstLevelFunctionOffset 1080 + sects.dso_base; 1081 if (low < last) 1082 funcEnd = 1083 pageIndex.functionOffset(low + 1) + firstLevelFunctionOffset 1084 + sects.dso_base; 1085 else 1086 funcEnd = firstLevelNextPageFunctionOffset + sects.dso_base; 1087 if (pc < funcStart) { 1088 _LIBUNWIND_DEBUG_LOG("malformed __unwind_info, pc=0x%llX not in second " 1089 "level compressed unwind table. funcStart=0x%llX\n", 1090 (uint64_t) pc, (uint64_t) funcStart); 1091 return false; 1092 } 1093 if (pc > funcEnd) { 1094 _LIBUNWIND_DEBUG_LOG("malformed __unwind_info, pc=0x%llX not in second " 1095 "level compressed unwind table. funcEnd=0x%llX\n", 1096 (uint64_t) pc, (uint64_t) funcEnd); 1097 return false; 1098 } 1099 uint16_t encodingIndex = pageIndex.encodingIndex(low); 1100 if (encodingIndex < sectionHeader.commonEncodingsArrayCount()) { 1101 // encoding is in common table in section header 1102 encoding = _addressSpace.get32( 1103 sects.compact_unwind_section + 1104 sectionHeader.commonEncodingsArraySectionOffset() + 1105 encodingIndex * sizeof(uint32_t)); 1106 } else { 1107 // encoding is in page specific table 1108 uint16_t pageEncodingIndex = 1109 encodingIndex - (uint16_t)sectionHeader.commonEncodingsArrayCount(); 1110 encoding = _addressSpace.get32(secondLevelAddr + 1111 pageHeader.encodingsPageOffset() + 1112 pageEncodingIndex * sizeof(uint32_t)); 1113 } 1114 } else { 1115 _LIBUNWIND_DEBUG_LOG("malformed __unwind_info at 0x%0llX bad second " 1116 "level page\n", 1117 (uint64_t) sects.compact_unwind_section); 1118 return false; 1119 } 1120 1121 // look up LSDA, if encoding says function has one 1122 if (encoding & UNWIND_HAS_LSDA) { 1123 UnwindSectionLsdaArray<A> lsdaIndex(_addressSpace, lsdaArrayStartAddr); 1124 uint32_t funcStartOffset = (uint32_t)(funcStart - sects.dso_base); 1125 low = 0; 1126 high = (uint32_t)(lsdaArrayEndAddr - lsdaArrayStartAddr) / 1127 sizeof(unwind_info_section_header_lsda_index_entry); 1128 // binary search looks for entry with exact match for functionOffset 1129 if (log) 1130 fprintf(stderr, 1131 "\tbinary search of lsda table for targetFunctionOffset=0x%08X\n", 1132 funcStartOffset); 1133 while (low < high) { 1134 uint32_t mid = (low + high) / 2; 1135 if (lsdaIndex.functionOffset(mid) == funcStartOffset) { 1136 lsda = lsdaIndex.lsdaOffset(mid) + sects.dso_base; 1137 break; 1138 } else if (lsdaIndex.functionOffset(mid) < funcStartOffset) { 1139 low = mid + 1; 1140 } else { 1141 high = mid; 1142 } 1143 } 1144 if (lsda == 0) { 1145 _LIBUNWIND_DEBUG_LOG("found encoding 0x%08X with HAS_LSDA bit set for " 1146 "pc=0x%0llX, but lsda table has no entry\n", 1147 encoding, (uint64_t) pc); 1148 return false; 1149 } 1150 } 1151 1152 // extact personality routine, if encoding says function has one 1153 uint32_t personalityIndex = (encoding & UNWIND_PERSONALITY_MASK) >> 1154 (__builtin_ctz(UNWIND_PERSONALITY_MASK)); 1155 if (personalityIndex != 0) { 1156 --personalityIndex; // change 1-based to zero-based index 1157 if (personalityIndex > sectionHeader.personalityArrayCount()) { 1158 _LIBUNWIND_DEBUG_LOG("found encoding 0x%08X with personality index %d, " 1159 "but personality table has only %d entires\n", 1160 encoding, personalityIndex, 1161 sectionHeader.personalityArrayCount()); 1162 return false; 1163 } 1164 int32_t personalityDelta = (int32_t)_addressSpace.get32( 1165 sects.compact_unwind_section + 1166 sectionHeader.personalityArraySectionOffset() + 1167 personalityIndex * sizeof(uint32_t)); 1168 pint_t personalityPointer = sects.dso_base + (pint_t)personalityDelta; 1169 personality = _addressSpace.getP(personalityPointer); 1170 if (log) 1171 fprintf(stderr, "getInfoFromCompactEncodingSection(pc=0x%llX), " 1172 "personalityDelta=0x%08X, personality=0x%08llX\n", 1173 (uint64_t) pc, personalityDelta, (uint64_t) personality); 1174 } 1175 1176 if (log) 1177 fprintf(stderr, "getInfoFromCompactEncodingSection(pc=0x%llX), " 1178 "encoding=0x%08X, lsda=0x%08llX for funcStart=0x%llX\n", 1179 (uint64_t) pc, encoding, (uint64_t) lsda, (uint64_t) funcStart); 1180 _info.start_ip = funcStart; 1181 _info.end_ip = funcEnd; 1182 _info.lsda = lsda; 1183 _info.handler = personality; 1184 _info.gp = 0; 1185 _info.flags = 0; 1186 _info.format = encoding; 1187 _info.unwind_info = 0; 1188 _info.unwind_info_size = 0; 1189 _info.extra = sects.dso_base; 1190 return true; 1191 } 1192 #endif // _LIBUNWIND_SUPPORT_COMPACT_UNWIND 1193 1194 1195 template <typename A, typename R> 1196 void UnwindCursor<A, R>::setInfoBasedOnIPRegister(bool isReturnAddress) { 1197 pint_t pc = (pint_t)this->getReg(UNW_REG_IP); 1198 #if _LIBUNWIND_ARM_EHABI 1199 // Remove the thumb bit so the IP represents the actual instruction address. 1200 // This matches the behaviour of _Unwind_GetIP on arm. 1201 pc &= (pint_t)~0x1; 1202 #endif 1203 1204 // If the last line of a function is a "throw" the compiler sometimes 1205 // emits no instructions after the call to __cxa_throw. This means 1206 // the return address is actually the start of the next function. 1207 // To disambiguate this, back up the pc when we know it is a return 1208 // address. 1209 if (isReturnAddress) 1210 --pc; 1211 1212 // Ask address space object to find unwind sections for this pc. 1213 UnwindInfoSections sects; 1214 if (_addressSpace.findUnwindSections(pc, sects)) { 1215 #if _LIBUNWIND_SUPPORT_COMPACT_UNWIND 1216 // If there is a compact unwind encoding table, look there first. 1217 if (sects.compact_unwind_section != 0) { 1218 if (this->getInfoFromCompactEncodingSection(pc, sects)) { 1219 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 1220 // Found info in table, done unless encoding says to use dwarf. 1221 uint32_t dwarfOffset; 1222 if ((sects.dwarf_section != 0) && compactSaysUseDwarf(&dwarfOffset)) { 1223 if (this->getInfoFromDwarfSection(pc, sects, dwarfOffset)) { 1224 // found info in dwarf, done 1225 return; 1226 } 1227 } 1228 #endif 1229 // If unwind table has entry, but entry says there is no unwind info, 1230 // record that we have no unwind info. 1231 if (_info.format == 0) 1232 _unwindInfoMissing = true; 1233 return; 1234 } 1235 } 1236 #endif // _LIBUNWIND_SUPPORT_COMPACT_UNWIND 1237 1238 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 1239 // If there is dwarf unwind info, look there next. 1240 if (sects.dwarf_section != 0) { 1241 if (this->getInfoFromDwarfSection(pc, sects)) { 1242 // found info in dwarf, done 1243 return; 1244 } 1245 } 1246 #endif 1247 1248 #if _LIBUNWIND_ARM_EHABI 1249 // If there is ARM EHABI unwind info, look there next. 1250 if (sects.arm_section != 0 && this->getInfoFromEHABISection(pc, sects)) 1251 return; 1252 #endif 1253 } 1254 1255 #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 1256 // There is no static unwind info for this pc. Look to see if an FDE was 1257 // dynamically registered for it. 1258 pint_t cachedFDE = DwarfFDECache<A>::findFDE(0, pc); 1259 if (cachedFDE != 0) { 1260 CFI_Parser<LocalAddressSpace>::FDE_Info fdeInfo; 1261 CFI_Parser<LocalAddressSpace>::CIE_Info cieInfo; 1262 const char *msg = CFI_Parser<A>::decodeFDE(_addressSpace, 1263 cachedFDE, &fdeInfo, &cieInfo); 1264 if (msg == NULL) { 1265 typename CFI_Parser<A>::PrologInfo prolog; 1266 if (CFI_Parser<A>::parseFDEInstructions(_addressSpace, fdeInfo, cieInfo, 1267 pc, &prolog)) { 1268 // save off parsed FDE info 1269 _info.start_ip = fdeInfo.pcStart; 1270 _info.end_ip = fdeInfo.pcEnd; 1271 _info.lsda = fdeInfo.lsda; 1272 _info.handler = cieInfo.personality; 1273 _info.gp = prolog.spExtraArgSize; 1274 // Some frameless functions need SP 1275 // altered when resuming in function. 1276 _info.flags = 0; 1277 _info.format = dwarfEncoding(); 1278 _info.unwind_info = fdeInfo.fdeStart; 1279 _info.unwind_info_size = (uint32_t)fdeInfo.fdeLength; 1280 _info.extra = 0; 1281 return; 1282 } 1283 } 1284 } 1285 1286 // Lastly, ask AddressSpace object about platform specific ways to locate 1287 // other FDEs. 1288 pint_t fde; 1289 if (_addressSpace.findOtherFDE(pc, fde)) { 1290 CFI_Parser<LocalAddressSpace>::FDE_Info fdeInfo; 1291 CFI_Parser<LocalAddressSpace>::CIE_Info cieInfo; 1292 if (!CFI_Parser<A>::decodeFDE(_addressSpace, fde, &fdeInfo, &cieInfo)) { 1293 // Double check this FDE is for a function that includes the pc. 1294 if ((fdeInfo.pcStart <= pc) && (pc < fdeInfo.pcEnd)) { 1295 typename CFI_Parser<A>::PrologInfo prolog; 1296 if (CFI_Parser<A>::parseFDEInstructions(_addressSpace, fdeInfo, 1297 cieInfo, pc, &prolog)) { 1298 // save off parsed FDE info 1299 _info.start_ip = fdeInfo.pcStart; 1300 _info.end_ip = fdeInfo.pcEnd; 1301 _info.lsda = fdeInfo.lsda; 1302 _info.handler = cieInfo.personality; 1303 _info.gp = prolog.spExtraArgSize; 1304 _info.flags = 0; 1305 _info.format = dwarfEncoding(); 1306 _info.unwind_info = fdeInfo.fdeStart; 1307 _info.unwind_info_size = (uint32_t)fdeInfo.fdeLength; 1308 _info.extra = 0; 1309 return; 1310 } 1311 } 1312 } 1313 } 1314 #endif // #if _LIBUNWIND_SUPPORT_DWARF_UNWIND 1315 1316 // no unwind info, flag that we can't reliably unwind 1317 _unwindInfoMissing = true; 1318 } 1319 1320 template <typename A, typename R> 1321 int UnwindCursor<A, R>::step() { 1322 // Bottom of stack is defined is when unwind info cannot be found. 1323 if (_unwindInfoMissing) 1324 return UNW_STEP_END; 1325 1326 // Use unwinding info to modify register set as if function returned. 1327 int result; 1328 #if _LIBUNWIND_SUPPORT_COMPACT_UNWIND 1329 result = this->stepWithCompactEncoding(); 1330 #elif _LIBUNWIND_SUPPORT_DWARF_UNWIND 1331 result = this->stepWithDwarfFDE(); 1332 #elif _LIBUNWIND_ARM_EHABI 1333 result = this->stepWithEHABI(); 1334 #else 1335 #error Need _LIBUNWIND_SUPPORT_COMPACT_UNWIND or \ 1336 _LIBUNWIND_SUPPORT_DWARF_UNWIND or \ 1337 _LIBUNWIND_ARM_EHABI 1338 #endif 1339 1340 // update info based on new PC 1341 if (result == UNW_STEP_SUCCESS) { 1342 this->setInfoBasedOnIPRegister(true); 1343 if (_unwindInfoMissing) 1344 return UNW_STEP_END; 1345 if (_info.gp) 1346 setReg(UNW_REG_SP, getReg(UNW_REG_SP) + _info.gp); 1347 } 1348 1349 return result; 1350 } 1351 1352 template <typename A, typename R> 1353 void UnwindCursor<A, R>::getInfo(unw_proc_info_t *info) { 1354 *info = _info; 1355 } 1356 1357 template <typename A, typename R> 1358 bool UnwindCursor<A, R>::getFunctionName(char *buf, size_t bufLen, 1359 unw_word_t *offset) { 1360 return _addressSpace.findFunctionName((pint_t)this->getReg(UNW_REG_IP), 1361 buf, bufLen, offset); 1362 } 1363 1364 } // namespace libunwind 1365 1366 #endif // __UNWINDCURSOR_HPP__ 1367