1 //===- CodeGen/AsmPrinter/EHStreamer.cpp - Exception Directive Streamer ---===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file contains support for writing exception info into assembly files. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "EHStreamer.h" 15 #include "llvm/ADT/SmallVector.h" 16 #include "llvm/ADT/Twine.h" 17 #include "llvm/ADT/iterator_range.h" 18 #include "llvm/BinaryFormat/Dwarf.h" 19 #include "llvm/CodeGen/AsmPrinter.h" 20 #include "llvm/CodeGen/MachineFunction.h" 21 #include "llvm/CodeGen/MachineInstr.h" 22 #include "llvm/CodeGen/MachineOperand.h" 23 #include "llvm/IR/DataLayout.h" 24 #include "llvm/IR/Function.h" 25 #include "llvm/MC/MCAsmInfo.h" 26 #include "llvm/MC/MCContext.h" 27 #include "llvm/MC/MCStreamer.h" 28 #include "llvm/MC/MCSymbol.h" 29 #include "llvm/MC/MCTargetOptions.h" 30 #include "llvm/Support/Casting.h" 31 #include "llvm/Support/LEB128.h" 32 #include "llvm/Target/TargetLoweringObjectFile.h" 33 #include <algorithm> 34 #include <cassert> 35 #include <cstdint> 36 #include <vector> 37 38 using namespace llvm; 39 40 EHStreamer::EHStreamer(AsmPrinter *A) : Asm(A), MMI(Asm->MMI) {} 41 42 EHStreamer::~EHStreamer() = default; 43 44 /// How many leading type ids two landing pads have in common. 45 unsigned EHStreamer::sharedTypeIDs(const LandingPadInfo *L, 46 const LandingPadInfo *R) { 47 const std::vector<int> &LIds = L->TypeIds, &RIds = R->TypeIds; 48 unsigned LSize = LIds.size(), RSize = RIds.size(); 49 unsigned MinSize = LSize < RSize ? LSize : RSize; 50 unsigned Count = 0; 51 52 for (; Count != MinSize; ++Count) 53 if (LIds[Count] != RIds[Count]) 54 return Count; 55 56 return Count; 57 } 58 59 /// Compute the actions table and gather the first action index for each landing 60 /// pad site. 61 void EHStreamer::computeActionsTable( 62 const SmallVectorImpl<const LandingPadInfo *> &LandingPads, 63 SmallVectorImpl<ActionEntry> &Actions, 64 SmallVectorImpl<unsigned> &FirstActions) { 65 // The action table follows the call-site table in the LSDA. The individual 66 // records are of two types: 67 // 68 // * Catch clause 69 // * Exception specification 70 // 71 // The two record kinds have the same format, with only small differences. 72 // They are distinguished by the "switch value" field: Catch clauses 73 // (TypeInfos) have strictly positive switch values, and exception 74 // specifications (FilterIds) have strictly negative switch values. Value 0 75 // indicates a catch-all clause. 76 // 77 // Negative type IDs index into FilterIds. Positive type IDs index into 78 // TypeInfos. The value written for a positive type ID is just the type ID 79 // itself. For a negative type ID, however, the value written is the 80 // (negative) byte offset of the corresponding FilterIds entry. The byte 81 // offset is usually equal to the type ID (because the FilterIds entries are 82 // written using a variable width encoding, which outputs one byte per entry 83 // as long as the value written is not too large) but can differ. This kind 84 // of complication does not occur for positive type IDs because type infos are 85 // output using a fixed width encoding. FilterOffsets[i] holds the byte 86 // offset corresponding to FilterIds[i]. 87 88 const std::vector<unsigned> &FilterIds = Asm->MF->getFilterIds(); 89 SmallVector<int, 16> FilterOffsets; 90 FilterOffsets.reserve(FilterIds.size()); 91 int Offset = -1; 92 93 for (std::vector<unsigned>::const_iterator 94 I = FilterIds.begin(), E = FilterIds.end(); I != E; ++I) { 95 FilterOffsets.push_back(Offset); 96 Offset -= getULEB128Size(*I); 97 } 98 99 FirstActions.reserve(LandingPads.size()); 100 101 int FirstAction = 0; 102 unsigned SizeActions = 0; // Total size of all action entries for a function 103 const LandingPadInfo *PrevLPI = nullptr; 104 105 for (SmallVectorImpl<const LandingPadInfo *>::const_iterator 106 I = LandingPads.begin(), E = LandingPads.end(); I != E; ++I) { 107 const LandingPadInfo *LPI = *I; 108 const std::vector<int> &TypeIds = LPI->TypeIds; 109 unsigned NumShared = PrevLPI ? sharedTypeIDs(LPI, PrevLPI) : 0; 110 unsigned SizeSiteActions = 0; // Total size of all entries for a landingpad 111 112 if (NumShared < TypeIds.size()) { 113 // Size of one action entry (typeid + next action) 114 unsigned SizeActionEntry = 0; 115 unsigned PrevAction = (unsigned)-1; 116 117 if (NumShared) { 118 unsigned SizePrevIds = PrevLPI->TypeIds.size(); 119 assert(Actions.size()); 120 PrevAction = Actions.size() - 1; 121 SizeActionEntry = getSLEB128Size(Actions[PrevAction].NextAction) + 122 getSLEB128Size(Actions[PrevAction].ValueForTypeID); 123 124 for (unsigned j = NumShared; j != SizePrevIds; ++j) { 125 assert(PrevAction != (unsigned)-1 && "PrevAction is invalid!"); 126 SizeActionEntry -= getSLEB128Size(Actions[PrevAction].ValueForTypeID); 127 SizeActionEntry += -Actions[PrevAction].NextAction; 128 PrevAction = Actions[PrevAction].Previous; 129 } 130 } 131 132 // Compute the actions. 133 for (unsigned J = NumShared, M = TypeIds.size(); J != M; ++J) { 134 int TypeID = TypeIds[J]; 135 assert(-1 - TypeID < (int)FilterOffsets.size() && "Unknown filter id!"); 136 int ValueForTypeID = 137 isFilterEHSelector(TypeID) ? FilterOffsets[-1 - TypeID] : TypeID; 138 unsigned SizeTypeID = getSLEB128Size(ValueForTypeID); 139 140 int NextAction = SizeActionEntry ? -(SizeActionEntry + SizeTypeID) : 0; 141 SizeActionEntry = SizeTypeID + getSLEB128Size(NextAction); 142 SizeSiteActions += SizeActionEntry; 143 144 ActionEntry Action = { ValueForTypeID, NextAction, PrevAction }; 145 Actions.push_back(Action); 146 PrevAction = Actions.size() - 1; 147 } 148 149 // Record the first action of the landing pad site. 150 FirstAction = SizeActions + SizeSiteActions - SizeActionEntry + 1; 151 } // else identical - re-use previous FirstAction 152 153 // Information used when creating the call-site table. The action record 154 // field of the call site record is the offset of the first associated 155 // action record, relative to the start of the actions table. This value is 156 // biased by 1 (1 indicating the start of the actions table), and 0 157 // indicates that there are no actions. 158 FirstActions.push_back(FirstAction); 159 160 // Compute this sites contribution to size. 161 SizeActions += SizeSiteActions; 162 163 PrevLPI = LPI; 164 } 165 } 166 167 /// Return `true' if this is a call to a function marked `nounwind'. Return 168 /// `false' otherwise. 169 bool EHStreamer::callToNoUnwindFunction(const MachineInstr *MI) { 170 assert(MI->isCall() && "This should be a call instruction!"); 171 172 bool MarkedNoUnwind = false; 173 bool SawFunc = false; 174 175 for (unsigned I = 0, E = MI->getNumOperands(); I != E; ++I) { 176 const MachineOperand &MO = MI->getOperand(I); 177 178 if (!MO.isGlobal()) continue; 179 180 const Function *F = dyn_cast<Function>(MO.getGlobal()); 181 if (!F) continue; 182 183 if (SawFunc) { 184 // Be conservative. If we have more than one function operand for this 185 // call, then we can't make the assumption that it's the callee and 186 // not a parameter to the call. 187 // 188 // FIXME: Determine if there's a way to say that `F' is the callee or 189 // parameter. 190 MarkedNoUnwind = false; 191 break; 192 } 193 194 MarkedNoUnwind = F->doesNotThrow(); 195 SawFunc = true; 196 } 197 198 return MarkedNoUnwind; 199 } 200 201 void EHStreamer::computePadMap( 202 const SmallVectorImpl<const LandingPadInfo *> &LandingPads, 203 RangeMapType &PadMap) { 204 // Invokes and nounwind calls have entries in PadMap (due to being bracketed 205 // by try-range labels when lowered). Ordinary calls do not, so appropriate 206 // try-ranges for them need be deduced so we can put them in the LSDA. 207 for (unsigned i = 0, N = LandingPads.size(); i != N; ++i) { 208 const LandingPadInfo *LandingPad = LandingPads[i]; 209 for (unsigned j = 0, E = LandingPad->BeginLabels.size(); j != E; ++j) { 210 MCSymbol *BeginLabel = LandingPad->BeginLabels[j]; 211 assert(!PadMap.count(BeginLabel) && "Duplicate landing pad labels!"); 212 PadRange P = { i, j }; 213 PadMap[BeginLabel] = P; 214 } 215 } 216 } 217 218 /// Compute the call-site table. The entry for an invoke has a try-range 219 /// containing the call, a non-zero landing pad, and an appropriate action. The 220 /// entry for an ordinary call has a try-range containing the call and zero for 221 /// the landing pad and the action. Calls marked 'nounwind' have no entry and 222 /// must not be contained in the try-range of any entry - they form gaps in the 223 /// table. Entries must be ordered by try-range address. 224 void EHStreamer:: 225 computeCallSiteTable(SmallVectorImpl<CallSiteEntry> &CallSites, 226 const SmallVectorImpl<const LandingPadInfo *> &LandingPads, 227 const SmallVectorImpl<unsigned> &FirstActions) { 228 RangeMapType PadMap; 229 computePadMap(LandingPads, PadMap); 230 231 // The end label of the previous invoke or nounwind try-range. 232 MCSymbol *LastLabel = nullptr; 233 234 // Whether there is a potentially throwing instruction (currently this means 235 // an ordinary call) between the end of the previous try-range and now. 236 bool SawPotentiallyThrowing = false; 237 238 // Whether the last CallSite entry was for an invoke. 239 bool PreviousIsInvoke = false; 240 241 bool IsSJLJ = Asm->MAI->getExceptionHandlingType() == ExceptionHandling::SjLj; 242 243 // Visit all instructions in order of address. 244 for (const auto &MBB : *Asm->MF) { 245 for (const auto &MI : MBB) { 246 if (!MI.isEHLabel()) { 247 if (MI.isCall()) 248 SawPotentiallyThrowing |= !callToNoUnwindFunction(&MI); 249 continue; 250 } 251 252 // End of the previous try-range? 253 MCSymbol *BeginLabel = MI.getOperand(0).getMCSymbol(); 254 if (BeginLabel == LastLabel) 255 SawPotentiallyThrowing = false; 256 257 // Beginning of a new try-range? 258 RangeMapType::const_iterator L = PadMap.find(BeginLabel); 259 if (L == PadMap.end()) 260 // Nope, it was just some random label. 261 continue; 262 263 const PadRange &P = L->second; 264 const LandingPadInfo *LandingPad = LandingPads[P.PadIndex]; 265 assert(BeginLabel == LandingPad->BeginLabels[P.RangeIndex] && 266 "Inconsistent landing pad map!"); 267 268 // For Dwarf exception handling (SjLj handling doesn't use this). If some 269 // instruction between the previous try-range and this one may throw, 270 // create a call-site entry with no landing pad for the region between the 271 // try-ranges. 272 if (SawPotentiallyThrowing && Asm->MAI->usesCFIForEH()) { 273 CallSiteEntry Site = { LastLabel, BeginLabel, nullptr, 0 }; 274 CallSites.push_back(Site); 275 PreviousIsInvoke = false; 276 } 277 278 LastLabel = LandingPad->EndLabels[P.RangeIndex]; 279 assert(BeginLabel && LastLabel && "Invalid landing pad!"); 280 281 if (!LandingPad->LandingPadLabel) { 282 // Create a gap. 283 PreviousIsInvoke = false; 284 } else { 285 // This try-range is for an invoke. 286 CallSiteEntry Site = { 287 BeginLabel, 288 LastLabel, 289 LandingPad, 290 FirstActions[P.PadIndex] 291 }; 292 293 // Try to merge with the previous call-site. SJLJ doesn't do this 294 if (PreviousIsInvoke && !IsSJLJ) { 295 CallSiteEntry &Prev = CallSites.back(); 296 if (Site.LPad == Prev.LPad && Site.Action == Prev.Action) { 297 // Extend the range of the previous entry. 298 Prev.EndLabel = Site.EndLabel; 299 continue; 300 } 301 } 302 303 // Otherwise, create a new call-site. 304 if (!IsSJLJ) 305 CallSites.push_back(Site); 306 else { 307 // SjLj EH must maintain the call sites in the order assigned 308 // to them by the SjLjPrepare pass. 309 unsigned SiteNo = Asm->MF->getCallSiteBeginLabel(BeginLabel); 310 if (CallSites.size() < SiteNo) 311 CallSites.resize(SiteNo); 312 CallSites[SiteNo - 1] = Site; 313 } 314 PreviousIsInvoke = true; 315 } 316 } 317 } 318 319 // If some instruction between the previous try-range and the end of the 320 // function may throw, create a call-site entry with no landing pad for the 321 // region following the try-range. 322 if (SawPotentiallyThrowing && !IsSJLJ) { 323 CallSiteEntry Site = { LastLabel, nullptr, nullptr, 0 }; 324 CallSites.push_back(Site); 325 } 326 } 327 328 /// Emit landing pads and actions. 329 /// 330 /// The general organization of the table is complex, but the basic concepts are 331 /// easy. First there is a header which describes the location and organization 332 /// of the three components that follow. 333 /// 334 /// 1. The landing pad site information describes the range of code covered by 335 /// the try. In our case it's an accumulation of the ranges covered by the 336 /// invokes in the try. There is also a reference to the landing pad that 337 /// handles the exception once processed. Finally an index into the actions 338 /// table. 339 /// 2. The action table, in our case, is composed of pairs of type IDs and next 340 /// action offset. Starting with the action index from the landing pad 341 /// site, each type ID is checked for a match to the current exception. If 342 /// it matches then the exception and type id are passed on to the landing 343 /// pad. Otherwise the next action is looked up. This chain is terminated 344 /// with a next action of zero. If no type id is found then the frame is 345 /// unwound and handling continues. 346 /// 3. Type ID table contains references to all the C++ typeinfo for all 347 /// catches in the function. This tables is reverse indexed base 1. 348 /// 349 /// Returns the starting symbol of an exception table. 350 MCSymbol *EHStreamer::emitExceptionTable() { 351 const MachineFunction *MF = Asm->MF; 352 const std::vector<const GlobalValue *> &TypeInfos = MF->getTypeInfos(); 353 const std::vector<unsigned> &FilterIds = MF->getFilterIds(); 354 const std::vector<LandingPadInfo> &PadInfos = MF->getLandingPads(); 355 356 // Sort the landing pads in order of their type ids. This is used to fold 357 // duplicate actions. 358 SmallVector<const LandingPadInfo *, 64> LandingPads; 359 LandingPads.reserve(PadInfos.size()); 360 361 for (unsigned i = 0, N = PadInfos.size(); i != N; ++i) 362 LandingPads.push_back(&PadInfos[i]); 363 364 // Order landing pads lexicographically by type id. 365 llvm::sort(LandingPads, [](const LandingPadInfo *L, const LandingPadInfo *R) { 366 return L->TypeIds < R->TypeIds; 367 }); 368 369 // Compute the actions table and gather the first action index for each 370 // landing pad site. 371 SmallVector<ActionEntry, 32> Actions; 372 SmallVector<unsigned, 64> FirstActions; 373 computeActionsTable(LandingPads, Actions, FirstActions); 374 375 // Compute the call-site table. 376 SmallVector<CallSiteEntry, 64> CallSites; 377 computeCallSiteTable(CallSites, LandingPads, FirstActions); 378 379 bool IsSJLJ = Asm->MAI->getExceptionHandlingType() == ExceptionHandling::SjLj; 380 bool IsWasm = Asm->MAI->getExceptionHandlingType() == ExceptionHandling::Wasm; 381 unsigned CallSiteEncoding = 382 IsSJLJ ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_uleb128; 383 bool HaveTTData = !TypeInfos.empty() || !FilterIds.empty(); 384 385 // Type infos. 386 MCSection *LSDASection = Asm->getObjFileLowering().getLSDASection(); 387 unsigned TTypeEncoding; 388 389 if (!HaveTTData) { 390 // If there is no TypeInfo, then we just explicitly say that we're omitting 391 // that bit. 392 TTypeEncoding = dwarf::DW_EH_PE_omit; 393 } else { 394 // Okay, we have actual filters or typeinfos to emit. As such, we need to 395 // pick a type encoding for them. We're about to emit a list of pointers to 396 // typeinfo objects at the end of the LSDA. However, unless we're in static 397 // mode, this reference will require a relocation by the dynamic linker. 398 // 399 // Because of this, we have a couple of options: 400 // 401 // 1) If we are in -static mode, we can always use an absolute reference 402 // from the LSDA, because the static linker will resolve it. 403 // 404 // 2) Otherwise, if the LSDA section is writable, we can output the direct 405 // reference to the typeinfo and allow the dynamic linker to relocate 406 // it. Since it is in a writable section, the dynamic linker won't 407 // have a problem. 408 // 409 // 3) Finally, if we're in PIC mode and the LDSA section isn't writable, 410 // we need to use some form of indirection. For example, on Darwin, 411 // we can output a statically-relocatable reference to a dyld stub. The 412 // offset to the stub is constant, but the contents are in a section 413 // that is updated by the dynamic linker. This is easy enough, but we 414 // need to tell the personality function of the unwinder to indirect 415 // through the dyld stub. 416 // 417 // FIXME: When (3) is actually implemented, we'll have to emit the stubs 418 // somewhere. This predicate should be moved to a shared location that is 419 // in target-independent code. 420 // 421 TTypeEncoding = Asm->getObjFileLowering().getTTypeEncoding(); 422 } 423 424 // Begin the exception table. 425 // Sometimes we want not to emit the data into separate section (e.g. ARM 426 // EHABI). In this case LSDASection will be NULL. 427 if (LSDASection) 428 Asm->OutStreamer->SwitchSection(LSDASection); 429 Asm->EmitAlignment(2); 430 431 // Emit the LSDA. 432 MCSymbol *GCCETSym = 433 Asm->OutContext.getOrCreateSymbol(Twine("GCC_except_table")+ 434 Twine(Asm->getFunctionNumber())); 435 Asm->OutStreamer->EmitLabel(GCCETSym); 436 Asm->OutStreamer->EmitLabel(Asm->getCurExceptionSym()); 437 438 // Emit the LSDA header. 439 Asm->EmitEncodingByte(dwarf::DW_EH_PE_omit, "@LPStart"); 440 Asm->EmitEncodingByte(TTypeEncoding, "@TType"); 441 442 MCSymbol *TTBaseLabel = nullptr; 443 if (HaveTTData) { 444 // N.B.: There is a dependency loop between the size of the TTBase uleb128 445 // here and the amount of padding before the aligned type table. The 446 // assembler must sometimes pad this uleb128 or insert extra padding before 447 // the type table. See PR35809 or GNU as bug 4029. 448 MCSymbol *TTBaseRefLabel = Asm->createTempSymbol("ttbaseref"); 449 TTBaseLabel = Asm->createTempSymbol("ttbase"); 450 Asm->EmitLabelDifferenceAsULEB128(TTBaseLabel, TTBaseRefLabel); 451 Asm->OutStreamer->EmitLabel(TTBaseRefLabel); 452 } 453 454 bool VerboseAsm = Asm->OutStreamer->isVerboseAsm(); 455 456 // Emit the landing pad call site table. 457 MCSymbol *CstBeginLabel = Asm->createTempSymbol("cst_begin"); 458 MCSymbol *CstEndLabel = Asm->createTempSymbol("cst_end"); 459 Asm->EmitEncodingByte(CallSiteEncoding, "Call site"); 460 Asm->EmitLabelDifferenceAsULEB128(CstEndLabel, CstBeginLabel); 461 Asm->OutStreamer->EmitLabel(CstBeginLabel); 462 463 // SjLj / Wasm Exception handling 464 if (IsSJLJ || IsWasm) { 465 unsigned idx = 0; 466 for (SmallVectorImpl<CallSiteEntry>::const_iterator 467 I = CallSites.begin(), E = CallSites.end(); I != E; ++I, ++idx) { 468 const CallSiteEntry &S = *I; 469 470 // Index of the call site entry. 471 if (VerboseAsm) { 472 Asm->OutStreamer->AddComment(">> Call Site " + Twine(idx) + " <<"); 473 Asm->OutStreamer->AddComment(" On exception at call site "+Twine(idx)); 474 } 475 Asm->EmitULEB128(idx); 476 477 // Offset of the first associated action record, relative to the start of 478 // the action table. This value is biased by 1 (1 indicates the start of 479 // the action table), and 0 indicates that there are no actions. 480 if (VerboseAsm) { 481 if (S.Action == 0) 482 Asm->OutStreamer->AddComment(" Action: cleanup"); 483 else 484 Asm->OutStreamer->AddComment(" Action: " + 485 Twine((S.Action - 1) / 2 + 1)); 486 } 487 Asm->EmitULEB128(S.Action); 488 } 489 } else { 490 // Itanium LSDA exception handling 491 492 // The call-site table is a list of all call sites that may throw an 493 // exception (including C++ 'throw' statements) in the procedure 494 // fragment. It immediately follows the LSDA header. Each entry indicates, 495 // for a given call, the first corresponding action record and corresponding 496 // landing pad. 497 // 498 // The table begins with the number of bytes, stored as an LEB128 499 // compressed, unsigned integer. The records immediately follow the record 500 // count. They are sorted in increasing call-site address. Each record 501 // indicates: 502 // 503 // * The position of the call-site. 504 // * The position of the landing pad. 505 // * The first action record for that call site. 506 // 507 // A missing entry in the call-site table indicates that a call is not 508 // supposed to throw. 509 510 unsigned Entry = 0; 511 for (SmallVectorImpl<CallSiteEntry>::const_iterator 512 I = CallSites.begin(), E = CallSites.end(); I != E; ++I) { 513 const CallSiteEntry &S = *I; 514 515 MCSymbol *EHFuncBeginSym = Asm->getFunctionBegin(); 516 517 MCSymbol *BeginLabel = S.BeginLabel; 518 if (!BeginLabel) 519 BeginLabel = EHFuncBeginSym; 520 MCSymbol *EndLabel = S.EndLabel; 521 if (!EndLabel) 522 EndLabel = Asm->getFunctionEnd(); 523 524 // Offset of the call site relative to the start of the procedure. 525 if (VerboseAsm) 526 Asm->OutStreamer->AddComment(">> Call Site " + Twine(++Entry) + " <<"); 527 Asm->EmitLabelDifferenceAsULEB128(BeginLabel, EHFuncBeginSym); 528 if (VerboseAsm) 529 Asm->OutStreamer->AddComment(Twine(" Call between ") + 530 BeginLabel->getName() + " and " + 531 EndLabel->getName()); 532 Asm->EmitLabelDifferenceAsULEB128(EndLabel, BeginLabel); 533 534 // Offset of the landing pad relative to the start of the procedure. 535 if (!S.LPad) { 536 if (VerboseAsm) 537 Asm->OutStreamer->AddComment(" has no landing pad"); 538 Asm->EmitULEB128(0); 539 } else { 540 if (VerboseAsm) 541 Asm->OutStreamer->AddComment(Twine(" jumps to ") + 542 S.LPad->LandingPadLabel->getName()); 543 Asm->EmitLabelDifferenceAsULEB128(S.LPad->LandingPadLabel, 544 EHFuncBeginSym); 545 } 546 547 // Offset of the first associated action record, relative to the start of 548 // the action table. This value is biased by 1 (1 indicates the start of 549 // the action table), and 0 indicates that there are no actions. 550 if (VerboseAsm) { 551 if (S.Action == 0) 552 Asm->OutStreamer->AddComment(" On action: cleanup"); 553 else 554 Asm->OutStreamer->AddComment(" On action: " + 555 Twine((S.Action - 1) / 2 + 1)); 556 } 557 Asm->EmitULEB128(S.Action); 558 } 559 } 560 Asm->OutStreamer->EmitLabel(CstEndLabel); 561 562 // Emit the Action Table. 563 int Entry = 0; 564 for (SmallVectorImpl<ActionEntry>::const_iterator 565 I = Actions.begin(), E = Actions.end(); I != E; ++I) { 566 const ActionEntry &Action = *I; 567 568 if (VerboseAsm) { 569 // Emit comments that decode the action table. 570 Asm->OutStreamer->AddComment(">> Action Record " + Twine(++Entry) + " <<"); 571 } 572 573 // Type Filter 574 // 575 // Used by the runtime to match the type of the thrown exception to the 576 // type of the catch clauses or the types in the exception specification. 577 if (VerboseAsm) { 578 if (Action.ValueForTypeID > 0) 579 Asm->OutStreamer->AddComment(" Catch TypeInfo " + 580 Twine(Action.ValueForTypeID)); 581 else if (Action.ValueForTypeID < 0) 582 Asm->OutStreamer->AddComment(" Filter TypeInfo " + 583 Twine(Action.ValueForTypeID)); 584 else 585 Asm->OutStreamer->AddComment(" Cleanup"); 586 } 587 Asm->EmitSLEB128(Action.ValueForTypeID); 588 589 // Action Record 590 // 591 // Self-relative signed displacement in bytes of the next action record, 592 // or 0 if there is no next action record. 593 if (VerboseAsm) { 594 if (Action.NextAction == 0) { 595 Asm->OutStreamer->AddComment(" No further actions"); 596 } else { 597 unsigned NextAction = Entry + (Action.NextAction + 1) / 2; 598 Asm->OutStreamer->AddComment(" Continue to action "+Twine(NextAction)); 599 } 600 } 601 Asm->EmitSLEB128(Action.NextAction); 602 } 603 604 if (HaveTTData) { 605 Asm->EmitAlignment(2); 606 emitTypeInfos(TTypeEncoding, TTBaseLabel); 607 } 608 609 Asm->EmitAlignment(2); 610 return GCCETSym; 611 } 612 613 void EHStreamer::emitTypeInfos(unsigned TTypeEncoding, MCSymbol *TTBaseLabel) { 614 const MachineFunction *MF = Asm->MF; 615 const std::vector<const GlobalValue *> &TypeInfos = MF->getTypeInfos(); 616 const std::vector<unsigned> &FilterIds = MF->getFilterIds(); 617 618 bool VerboseAsm = Asm->OutStreamer->isVerboseAsm(); 619 620 int Entry = 0; 621 // Emit the Catch TypeInfos. 622 if (VerboseAsm && !TypeInfos.empty()) { 623 Asm->OutStreamer->AddComment(">> Catch TypeInfos <<"); 624 Asm->OutStreamer->AddBlankLine(); 625 Entry = TypeInfos.size(); 626 } 627 628 for (const GlobalValue *GV : make_range(TypeInfos.rbegin(), 629 TypeInfos.rend())) { 630 if (VerboseAsm) 631 Asm->OutStreamer->AddComment("TypeInfo " + Twine(Entry--)); 632 Asm->EmitTTypeReference(GV, TTypeEncoding); 633 } 634 635 Asm->OutStreamer->EmitLabel(TTBaseLabel); 636 637 // Emit the Exception Specifications. 638 if (VerboseAsm && !FilterIds.empty()) { 639 Asm->OutStreamer->AddComment(">> Filter TypeInfos <<"); 640 Asm->OutStreamer->AddBlankLine(); 641 Entry = 0; 642 } 643 for (std::vector<unsigned>::const_iterator 644 I = FilterIds.begin(), E = FilterIds.end(); I < E; ++I) { 645 unsigned TypeID = *I; 646 if (VerboseAsm) { 647 --Entry; 648 if (isFilterEHSelector(TypeID)) 649 Asm->OutStreamer->AddComment("FilterInfo " + Twine(Entry)); 650 } 651 652 Asm->EmitULEB128(TypeID); 653 } 654 } 655