1 //===-- CodeGen/AsmPrinter/WinException.cpp - Dwarf Exception Impl ------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file contains support for writing Win64 exception info into asm files. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "WinException.h" 14 #include "llvm/ADT/Twine.h" 15 #include "llvm/BinaryFormat/COFF.h" 16 #include "llvm/BinaryFormat/Dwarf.h" 17 #include "llvm/CodeGen/AsmPrinter.h" 18 #include "llvm/CodeGen/MachineFrameInfo.h" 19 #include "llvm/CodeGen/MachineFunction.h" 20 #include "llvm/CodeGen/MachineModuleInfo.h" 21 #include "llvm/CodeGen/TargetFrameLowering.h" 22 #include "llvm/CodeGen/TargetLowering.h" 23 #include "llvm/CodeGen/TargetSubtargetInfo.h" 24 #include "llvm/CodeGen/WinEHFuncInfo.h" 25 #include "llvm/IR/DataLayout.h" 26 #include "llvm/IR/Mangler.h" 27 #include "llvm/IR/Module.h" 28 #include "llvm/MC/MCAsmInfo.h" 29 #include "llvm/MC/MCContext.h" 30 #include "llvm/MC/MCExpr.h" 31 #include "llvm/MC/MCSection.h" 32 #include "llvm/MC/MCStreamer.h" 33 #include "llvm/MC/MCSymbol.h" 34 #include "llvm/Support/ErrorHandling.h" 35 #include "llvm/Support/FormattedStream.h" 36 #include "llvm/Target/TargetLoweringObjectFile.h" 37 #include "llvm/Target/TargetOptions.h" 38 using namespace llvm; 39 40 WinException::WinException(AsmPrinter *A) : EHStreamer(A) { 41 // MSVC's EH tables are always composed of 32-bit words. All known 64-bit 42 // platforms use an imagerel32 relocation to refer to symbols. 43 useImageRel32 = (A->getDataLayout().getPointerSizeInBits() == 64); 44 isAArch64 = Asm->TM.getTargetTriple().isAArch64(); 45 } 46 47 WinException::~WinException() {} 48 49 /// endModule - Emit all exception information that should come after the 50 /// content. 51 void WinException::endModule() { 52 auto &OS = *Asm->OutStreamer; 53 const Module *M = MMI->getModule(); 54 for (const Function &F : *M) 55 if (F.hasFnAttribute("safeseh")) 56 OS.EmitCOFFSafeSEH(Asm->getSymbol(&F)); 57 } 58 59 void WinException::beginFunction(const MachineFunction *MF) { 60 shouldEmitMoves = shouldEmitPersonality = shouldEmitLSDA = false; 61 62 // If any landing pads survive, we need an EH table. 63 bool hasLandingPads = !MF->getLandingPads().empty(); 64 bool hasEHFunclets = MF->hasEHFunclets(); 65 66 const Function &F = MF->getFunction(); 67 68 shouldEmitMoves = Asm->needsSEHMoves() && MF->hasWinCFI(); 69 70 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 71 unsigned PerEncoding = TLOF.getPersonalityEncoding(); 72 73 EHPersonality Per = EHPersonality::Unknown; 74 const Function *PerFn = nullptr; 75 if (F.hasPersonalityFn()) { 76 PerFn = dyn_cast<Function>(F.getPersonalityFn()->stripPointerCasts()); 77 Per = classifyEHPersonality(PerFn); 78 } 79 80 bool forceEmitPersonality = F.hasPersonalityFn() && 81 !isNoOpWithoutInvoke(Per) && 82 F.needsUnwindTableEntry(); 83 84 shouldEmitPersonality = 85 forceEmitPersonality || ((hasLandingPads || hasEHFunclets) && 86 PerEncoding != dwarf::DW_EH_PE_omit && PerFn); 87 88 unsigned LSDAEncoding = TLOF.getLSDAEncoding(); 89 shouldEmitLSDA = shouldEmitPersonality && 90 LSDAEncoding != dwarf::DW_EH_PE_omit; 91 92 // If we're not using CFI, we don't want the CFI or the personality, but we 93 // might want EH tables if we had EH pads. 94 if (!Asm->MAI->usesWindowsCFI()) { 95 if (Per == EHPersonality::MSVC_X86SEH && !hasEHFunclets) { 96 // If this is 32-bit SEH and we don't have any funclets (really invokes), 97 // make sure we emit the parent offset label. Some unreferenced filter 98 // functions may still refer to it. 99 const WinEHFuncInfo &FuncInfo = *MF->getWinEHFuncInfo(); 100 StringRef FLinkageName = 101 GlobalValue::dropLLVMManglingEscape(MF->getFunction().getName()); 102 emitEHRegistrationOffsetLabel(FuncInfo, FLinkageName); 103 } 104 shouldEmitLSDA = hasEHFunclets; 105 shouldEmitPersonality = false; 106 return; 107 } 108 109 beginFunclet(MF->front(), Asm->CurrentFnSym); 110 } 111 112 /// endFunction - Gather and emit post-function exception information. 113 /// 114 void WinException::endFunction(const MachineFunction *MF) { 115 if (!shouldEmitPersonality && !shouldEmitMoves && !shouldEmitLSDA) 116 return; 117 118 const Function &F = MF->getFunction(); 119 EHPersonality Per = EHPersonality::Unknown; 120 if (F.hasPersonalityFn()) 121 Per = classifyEHPersonality(F.getPersonalityFn()->stripPointerCasts()); 122 123 // Get rid of any dead landing pads if we're not using funclets. In funclet 124 // schemes, the landing pad is not actually reachable. It only exists so 125 // that we can emit the right table data. 126 if (!isFuncletEHPersonality(Per)) { 127 MachineFunction *NonConstMF = const_cast<MachineFunction*>(MF); 128 NonConstMF->tidyLandingPads(); 129 } 130 131 endFunclet(); 132 133 // endFunclet will emit the necessary .xdata tables for x64 SEH. 134 if (Per == EHPersonality::MSVC_Win64SEH && MF->hasEHFunclets()) 135 return; 136 137 if (shouldEmitPersonality || shouldEmitLSDA) { 138 Asm->OutStreamer->PushSection(); 139 140 // Just switch sections to the right xdata section. 141 MCSection *XData = Asm->OutStreamer->getAssociatedXDataSection( 142 Asm->OutStreamer->getCurrentSectionOnly()); 143 Asm->OutStreamer->SwitchSection(XData); 144 145 // Emit the tables appropriate to the personality function in use. If we 146 // don't recognize the personality, assume it uses an Itanium-style LSDA. 147 if (Per == EHPersonality::MSVC_Win64SEH) 148 emitCSpecificHandlerTable(MF); 149 else if (Per == EHPersonality::MSVC_X86SEH) 150 emitExceptHandlerTable(MF); 151 else if (Per == EHPersonality::MSVC_CXX) 152 emitCXXFrameHandler3Table(MF); 153 else if (Per == EHPersonality::CoreCLR) 154 emitCLRExceptionTable(MF); 155 else 156 emitExceptionTable(); 157 158 Asm->OutStreamer->PopSection(); 159 } 160 } 161 162 /// Retrieve the MCSymbol for a GlobalValue or MachineBasicBlock. 163 static MCSymbol *getMCSymbolForMBB(AsmPrinter *Asm, 164 const MachineBasicBlock *MBB) { 165 if (!MBB) 166 return nullptr; 167 168 assert(MBB->isEHFuncletEntry()); 169 170 // Give catches and cleanups a name based off of their parent function and 171 // their funclet entry block's number. 172 const MachineFunction *MF = MBB->getParent(); 173 const Function &F = MF->getFunction(); 174 StringRef FuncLinkageName = GlobalValue::dropLLVMManglingEscape(F.getName()); 175 MCContext &Ctx = MF->getContext(); 176 StringRef HandlerPrefix = MBB->isCleanupFuncletEntry() ? "dtor" : "catch"; 177 return Ctx.getOrCreateSymbol("?" + HandlerPrefix + "$" + 178 Twine(MBB->getNumber()) + "@?0?" + 179 FuncLinkageName + "@4HA"); 180 } 181 182 void WinException::beginFunclet(const MachineBasicBlock &MBB, 183 MCSymbol *Sym) { 184 CurrentFuncletEntry = &MBB; 185 186 const Function &F = Asm->MF->getFunction(); 187 // If a symbol was not provided for the funclet, invent one. 188 if (!Sym) { 189 Sym = getMCSymbolForMBB(Asm, &MBB); 190 191 // Describe our funclet symbol as a function with internal linkage. 192 Asm->OutStreamer->BeginCOFFSymbolDef(Sym); 193 Asm->OutStreamer->EmitCOFFSymbolStorageClass(COFF::IMAGE_SYM_CLASS_STATIC); 194 Asm->OutStreamer->EmitCOFFSymbolType(COFF::IMAGE_SYM_DTYPE_FUNCTION 195 << COFF::SCT_COMPLEX_TYPE_SHIFT); 196 Asm->OutStreamer->EndCOFFSymbolDef(); 197 198 // We want our funclet's entry point to be aligned such that no nops will be 199 // present after the label. 200 Asm->EmitAlignment(std::max(Asm->MF->getAlignment(), MBB.getAlignment()), 201 &F); 202 203 // Now that we've emitted the alignment directive, point at our funclet. 204 Asm->OutStreamer->EmitLabel(Sym); 205 } 206 207 // Mark 'Sym' as starting our funclet. 208 if (shouldEmitMoves || shouldEmitPersonality) { 209 CurrentFuncletTextSection = Asm->OutStreamer->getCurrentSectionOnly(); 210 Asm->OutStreamer->EmitWinCFIStartProc(Sym); 211 } 212 213 if (shouldEmitPersonality) { 214 const TargetLoweringObjectFile &TLOF = Asm->getObjFileLowering(); 215 const Function *PerFn = nullptr; 216 217 // Determine which personality routine we are using for this funclet. 218 if (F.hasPersonalityFn()) 219 PerFn = dyn_cast<Function>(F.getPersonalityFn()->stripPointerCasts()); 220 const MCSymbol *PersHandlerSym = 221 TLOF.getCFIPersonalitySymbol(PerFn, Asm->TM, MMI); 222 223 // Do not emit a .seh_handler directives for cleanup funclets. 224 // FIXME: This means cleanup funclets cannot handle exceptions. Given that 225 // Clang doesn't produce EH constructs inside cleanup funclets and LLVM's 226 // inliner doesn't allow inlining them, this isn't a major problem in 227 // practice. 228 if (!CurrentFuncletEntry->isCleanupFuncletEntry()) 229 Asm->OutStreamer->EmitWinEHHandler(PersHandlerSym, true, true); 230 } 231 } 232 233 void WinException::endFunclet() { 234 // No funclet to process? Great, we have nothing to do. 235 if (!CurrentFuncletEntry) 236 return; 237 238 const MachineFunction *MF = Asm->MF; 239 if (shouldEmitMoves || shouldEmitPersonality) { 240 const Function &F = MF->getFunction(); 241 EHPersonality Per = EHPersonality::Unknown; 242 if (F.hasPersonalityFn()) 243 Per = classifyEHPersonality(F.getPersonalityFn()->stripPointerCasts()); 244 245 // On funclet exit, we emit a fake "function" end marker, so that the call 246 // to EmitWinEHHandlerData below can calculate the size of the funclet or 247 // function. 248 if (isAArch64) { 249 Asm->OutStreamer->SwitchSection(CurrentFuncletTextSection); 250 Asm->OutStreamer->EmitWinCFIFuncletOrFuncEnd(); 251 MCSection *XData = Asm->OutStreamer->getAssociatedXDataSection( 252 Asm->OutStreamer->getCurrentSectionOnly()); 253 Asm->OutStreamer->SwitchSection(XData); 254 } 255 256 // Emit an UNWIND_INFO struct describing the prologue. 257 Asm->OutStreamer->EmitWinEHHandlerData(); 258 259 if (Per == EHPersonality::MSVC_CXX && shouldEmitPersonality && 260 !CurrentFuncletEntry->isCleanupFuncletEntry()) { 261 // If this is a C++ catch funclet (or the parent function), 262 // emit a reference to the LSDA for the parent function. 263 StringRef FuncLinkageName = GlobalValue::dropLLVMManglingEscape(F.getName()); 264 MCSymbol *FuncInfoXData = Asm->OutContext.getOrCreateSymbol( 265 Twine("$cppxdata$", FuncLinkageName)); 266 Asm->OutStreamer->EmitValue(create32bitRef(FuncInfoXData), 4); 267 } else if (Per == EHPersonality::MSVC_Win64SEH && MF->hasEHFunclets() && 268 !CurrentFuncletEntry->isEHFuncletEntry()) { 269 // If this is the parent function in Win64 SEH, emit the LSDA immediately 270 // following .seh_handlerdata. 271 emitCSpecificHandlerTable(MF); 272 } 273 274 // Switch back to the funclet start .text section now that we are done 275 // writing to .xdata, and emit an .seh_endproc directive to mark the end of 276 // the function. 277 Asm->OutStreamer->SwitchSection(CurrentFuncletTextSection); 278 Asm->OutStreamer->EmitWinCFIEndProc(); 279 } 280 281 // Let's make sure we don't try to end the same funclet twice. 282 CurrentFuncletEntry = nullptr; 283 } 284 285 const MCExpr *WinException::create32bitRef(const MCSymbol *Value) { 286 if (!Value) 287 return MCConstantExpr::create(0, Asm->OutContext); 288 return MCSymbolRefExpr::create(Value, useImageRel32 289 ? MCSymbolRefExpr::VK_COFF_IMGREL32 290 : MCSymbolRefExpr::VK_None, 291 Asm->OutContext); 292 } 293 294 const MCExpr *WinException::create32bitRef(const GlobalValue *GV) { 295 if (!GV) 296 return MCConstantExpr::create(0, Asm->OutContext); 297 return create32bitRef(Asm->getSymbol(GV)); 298 } 299 300 const MCExpr *WinException::getLabel(const MCSymbol *Label) { 301 if (isAArch64) 302 return MCSymbolRefExpr::create(Label, MCSymbolRefExpr::VK_COFF_IMGREL32, 303 Asm->OutContext); 304 return MCBinaryExpr::createAdd(create32bitRef(Label), 305 MCConstantExpr::create(1, Asm->OutContext), 306 Asm->OutContext); 307 } 308 309 const MCExpr *WinException::getOffset(const MCSymbol *OffsetOf, 310 const MCSymbol *OffsetFrom) { 311 return MCBinaryExpr::createSub( 312 MCSymbolRefExpr::create(OffsetOf, Asm->OutContext), 313 MCSymbolRefExpr::create(OffsetFrom, Asm->OutContext), Asm->OutContext); 314 } 315 316 const MCExpr *WinException::getOffsetPlusOne(const MCSymbol *OffsetOf, 317 const MCSymbol *OffsetFrom) { 318 return MCBinaryExpr::createAdd(getOffset(OffsetOf, OffsetFrom), 319 MCConstantExpr::create(1, Asm->OutContext), 320 Asm->OutContext); 321 } 322 323 int WinException::getFrameIndexOffset(int FrameIndex, 324 const WinEHFuncInfo &FuncInfo) { 325 const TargetFrameLowering &TFI = *Asm->MF->getSubtarget().getFrameLowering(); 326 unsigned UnusedReg; 327 if (Asm->MAI->usesWindowsCFI()) { 328 int Offset = 329 TFI.getFrameIndexReferencePreferSP(*Asm->MF, FrameIndex, UnusedReg, 330 /*IgnoreSPUpdates*/ true); 331 assert(UnusedReg == 332 Asm->MF->getSubtarget() 333 .getTargetLowering() 334 ->getStackPointerRegisterToSaveRestore()); 335 return Offset; 336 } 337 338 // For 32-bit, offsets should be relative to the end of the EH registration 339 // node. For 64-bit, it's relative to SP at the end of the prologue. 340 assert(FuncInfo.EHRegNodeEndOffset != INT_MAX); 341 int Offset = TFI.getFrameIndexReference(*Asm->MF, FrameIndex, UnusedReg); 342 Offset += FuncInfo.EHRegNodeEndOffset; 343 return Offset; 344 } 345 346 namespace { 347 348 /// Top-level state used to represent unwind to caller 349 const int NullState = -1; 350 351 struct InvokeStateChange { 352 /// EH Label immediately after the last invoke in the previous state, or 353 /// nullptr if the previous state was the null state. 354 const MCSymbol *PreviousEndLabel; 355 356 /// EH label immediately before the first invoke in the new state, or nullptr 357 /// if the new state is the null state. 358 const MCSymbol *NewStartLabel; 359 360 /// State of the invoke following NewStartLabel, or NullState to indicate 361 /// the presence of calls which may unwind to caller. 362 int NewState; 363 }; 364 365 /// Iterator that reports all the invoke state changes in a range of machine 366 /// basic blocks. Changes to the null state are reported whenever a call that 367 /// may unwind to caller is encountered. The MBB range is expected to be an 368 /// entire function or funclet, and the start and end of the range are treated 369 /// as being in the NullState even if there's not an unwind-to-caller call 370 /// before the first invoke or after the last one (i.e., the first state change 371 /// reported is the first change to something other than NullState, and a 372 /// change back to NullState is always reported at the end of iteration). 373 class InvokeStateChangeIterator { 374 InvokeStateChangeIterator(const WinEHFuncInfo &EHInfo, 375 MachineFunction::const_iterator MFI, 376 MachineFunction::const_iterator MFE, 377 MachineBasicBlock::const_iterator MBBI, 378 int BaseState) 379 : EHInfo(EHInfo), MFI(MFI), MFE(MFE), MBBI(MBBI), BaseState(BaseState) { 380 LastStateChange.PreviousEndLabel = nullptr; 381 LastStateChange.NewStartLabel = nullptr; 382 LastStateChange.NewState = BaseState; 383 scan(); 384 } 385 386 public: 387 static iterator_range<InvokeStateChangeIterator> 388 range(const WinEHFuncInfo &EHInfo, MachineFunction::const_iterator Begin, 389 MachineFunction::const_iterator End, int BaseState = NullState) { 390 // Reject empty ranges to simplify bookkeeping by ensuring that we can get 391 // the end of the last block. 392 assert(Begin != End); 393 auto BlockBegin = Begin->begin(); 394 auto BlockEnd = std::prev(End)->end(); 395 return make_range( 396 InvokeStateChangeIterator(EHInfo, Begin, End, BlockBegin, BaseState), 397 InvokeStateChangeIterator(EHInfo, End, End, BlockEnd, BaseState)); 398 } 399 400 // Iterator methods. 401 bool operator==(const InvokeStateChangeIterator &O) const { 402 assert(BaseState == O.BaseState); 403 // Must be visiting same block. 404 if (MFI != O.MFI) 405 return false; 406 // Must be visiting same isntr. 407 if (MBBI != O.MBBI) 408 return false; 409 // At end of block/instr iteration, we can still have two distinct states: 410 // one to report the final EndLabel, and another indicating the end of the 411 // state change iteration. Check for CurrentEndLabel equality to 412 // distinguish these. 413 return CurrentEndLabel == O.CurrentEndLabel; 414 } 415 416 bool operator!=(const InvokeStateChangeIterator &O) const { 417 return !operator==(O); 418 } 419 InvokeStateChange &operator*() { return LastStateChange; } 420 InvokeStateChange *operator->() { return &LastStateChange; } 421 InvokeStateChangeIterator &operator++() { return scan(); } 422 423 private: 424 InvokeStateChangeIterator &scan(); 425 426 const WinEHFuncInfo &EHInfo; 427 const MCSymbol *CurrentEndLabel = nullptr; 428 MachineFunction::const_iterator MFI; 429 MachineFunction::const_iterator MFE; 430 MachineBasicBlock::const_iterator MBBI; 431 InvokeStateChange LastStateChange; 432 bool VisitingInvoke = false; 433 int BaseState; 434 }; 435 436 } // end anonymous namespace 437 438 InvokeStateChangeIterator &InvokeStateChangeIterator::scan() { 439 bool IsNewBlock = false; 440 for (; MFI != MFE; ++MFI, IsNewBlock = true) { 441 if (IsNewBlock) 442 MBBI = MFI->begin(); 443 for (auto MBBE = MFI->end(); MBBI != MBBE; ++MBBI) { 444 const MachineInstr &MI = *MBBI; 445 if (!VisitingInvoke && LastStateChange.NewState != BaseState && 446 MI.isCall() && !EHStreamer::callToNoUnwindFunction(&MI)) { 447 // Indicate a change of state to the null state. We don't have 448 // start/end EH labels handy but the caller won't expect them for 449 // null state regions. 450 LastStateChange.PreviousEndLabel = CurrentEndLabel; 451 LastStateChange.NewStartLabel = nullptr; 452 LastStateChange.NewState = BaseState; 453 CurrentEndLabel = nullptr; 454 // Don't re-visit this instr on the next scan 455 ++MBBI; 456 return *this; 457 } 458 459 // All other state changes are at EH labels before/after invokes. 460 if (!MI.isEHLabel()) 461 continue; 462 MCSymbol *Label = MI.getOperand(0).getMCSymbol(); 463 if (Label == CurrentEndLabel) { 464 VisitingInvoke = false; 465 continue; 466 } 467 auto InvokeMapIter = EHInfo.LabelToStateMap.find(Label); 468 // Ignore EH labels that aren't the ones inserted before an invoke 469 if (InvokeMapIter == EHInfo.LabelToStateMap.end()) 470 continue; 471 auto &StateAndEnd = InvokeMapIter->second; 472 int NewState = StateAndEnd.first; 473 // Keep track of the fact that we're between EH start/end labels so 474 // we know not to treat the inoke we'll see as unwinding to caller. 475 VisitingInvoke = true; 476 if (NewState == LastStateChange.NewState) { 477 // The state isn't actually changing here. Record the new end and 478 // keep going. 479 CurrentEndLabel = StateAndEnd.second; 480 continue; 481 } 482 // Found a state change to report 483 LastStateChange.PreviousEndLabel = CurrentEndLabel; 484 LastStateChange.NewStartLabel = Label; 485 LastStateChange.NewState = NewState; 486 // Start keeping track of the new current end 487 CurrentEndLabel = StateAndEnd.second; 488 // Don't re-visit this instr on the next scan 489 ++MBBI; 490 return *this; 491 } 492 } 493 // Iteration hit the end of the block range. 494 if (LastStateChange.NewState != BaseState) { 495 // Report the end of the last new state 496 LastStateChange.PreviousEndLabel = CurrentEndLabel; 497 LastStateChange.NewStartLabel = nullptr; 498 LastStateChange.NewState = BaseState; 499 // Leave CurrentEndLabel non-null to distinguish this state from end. 500 assert(CurrentEndLabel != nullptr); 501 return *this; 502 } 503 // We've reported all state changes and hit the end state. 504 CurrentEndLabel = nullptr; 505 return *this; 506 } 507 508 /// Emit the language-specific data that __C_specific_handler expects. This 509 /// handler lives in the x64 Microsoft C runtime and allows catching or cleaning 510 /// up after faults with __try, __except, and __finally. The typeinfo values 511 /// are not really RTTI data, but pointers to filter functions that return an 512 /// integer (1, 0, or -1) indicating how to handle the exception. For __finally 513 /// blocks and other cleanups, the landing pad label is zero, and the filter 514 /// function is actually a cleanup handler with the same prototype. A catch-all 515 /// entry is modeled with a null filter function field and a non-zero landing 516 /// pad label. 517 /// 518 /// Possible filter function return values: 519 /// EXCEPTION_EXECUTE_HANDLER (1): 520 /// Jump to the landing pad label after cleanups. 521 /// EXCEPTION_CONTINUE_SEARCH (0): 522 /// Continue searching this table or continue unwinding. 523 /// EXCEPTION_CONTINUE_EXECUTION (-1): 524 /// Resume execution at the trapping PC. 525 /// 526 /// Inferred table structure: 527 /// struct Table { 528 /// int NumEntries; 529 /// struct Entry { 530 /// imagerel32 LabelStart; 531 /// imagerel32 LabelEnd; 532 /// imagerel32 FilterOrFinally; // One means catch-all. 533 /// imagerel32 LabelLPad; // Zero means __finally. 534 /// } Entries[NumEntries]; 535 /// }; 536 void WinException::emitCSpecificHandlerTable(const MachineFunction *MF) { 537 auto &OS = *Asm->OutStreamer; 538 MCContext &Ctx = Asm->OutContext; 539 const WinEHFuncInfo &FuncInfo = *MF->getWinEHFuncInfo(); 540 541 bool VerboseAsm = OS.isVerboseAsm(); 542 auto AddComment = [&](const Twine &Comment) { 543 if (VerboseAsm) 544 OS.AddComment(Comment); 545 }; 546 547 if (!isAArch64) { 548 // Emit a label assignment with the SEH frame offset so we can use it for 549 // llvm.eh.recoverfp. 550 StringRef FLinkageName = 551 GlobalValue::dropLLVMManglingEscape(MF->getFunction().getName()); 552 MCSymbol *ParentFrameOffset = 553 Ctx.getOrCreateParentFrameOffsetSymbol(FLinkageName); 554 const MCExpr *MCOffset = 555 MCConstantExpr::create(FuncInfo.SEHSetFrameOffset, Ctx); 556 Asm->OutStreamer->EmitAssignment(ParentFrameOffset, MCOffset); 557 } 558 559 // Use the assembler to compute the number of table entries through label 560 // difference and division. 561 MCSymbol *TableBegin = 562 Ctx.createTempSymbol("lsda_begin", /*AlwaysAddSuffix=*/true); 563 MCSymbol *TableEnd = 564 Ctx.createTempSymbol("lsda_end", /*AlwaysAddSuffix=*/true); 565 const MCExpr *LabelDiff = getOffset(TableEnd, TableBegin); 566 const MCExpr *EntrySize = MCConstantExpr::create(16, Ctx); 567 const MCExpr *EntryCount = MCBinaryExpr::createDiv(LabelDiff, EntrySize, Ctx); 568 AddComment("Number of call sites"); 569 OS.EmitValue(EntryCount, 4); 570 571 OS.EmitLabel(TableBegin); 572 573 // Iterate over all the invoke try ranges. Unlike MSVC, LLVM currently only 574 // models exceptions from invokes. LLVM also allows arbitrary reordering of 575 // the code, so our tables end up looking a bit different. Rather than 576 // trying to match MSVC's tables exactly, we emit a denormalized table. For 577 // each range of invokes in the same state, we emit table entries for all 578 // the actions that would be taken in that state. This means our tables are 579 // slightly bigger, which is OK. 580 const MCSymbol *LastStartLabel = nullptr; 581 int LastEHState = -1; 582 // Break out before we enter into a finally funclet. 583 // FIXME: We need to emit separate EH tables for cleanups. 584 MachineFunction::const_iterator End = MF->end(); 585 MachineFunction::const_iterator Stop = std::next(MF->begin()); 586 while (Stop != End && !Stop->isEHFuncletEntry()) 587 ++Stop; 588 for (const auto &StateChange : 589 InvokeStateChangeIterator::range(FuncInfo, MF->begin(), Stop)) { 590 // Emit all the actions for the state we just transitioned out of 591 // if it was not the null state 592 if (LastEHState != -1) 593 emitSEHActionsForRange(FuncInfo, LastStartLabel, 594 StateChange.PreviousEndLabel, LastEHState); 595 LastStartLabel = StateChange.NewStartLabel; 596 LastEHState = StateChange.NewState; 597 } 598 599 OS.EmitLabel(TableEnd); 600 } 601 602 void WinException::emitSEHActionsForRange(const WinEHFuncInfo &FuncInfo, 603 const MCSymbol *BeginLabel, 604 const MCSymbol *EndLabel, int State) { 605 auto &OS = *Asm->OutStreamer; 606 MCContext &Ctx = Asm->OutContext; 607 bool VerboseAsm = OS.isVerboseAsm(); 608 auto AddComment = [&](const Twine &Comment) { 609 if (VerboseAsm) 610 OS.AddComment(Comment); 611 }; 612 613 assert(BeginLabel && EndLabel); 614 while (State != -1) { 615 const SEHUnwindMapEntry &UME = FuncInfo.SEHUnwindMap[State]; 616 const MCExpr *FilterOrFinally; 617 const MCExpr *ExceptOrNull; 618 auto *Handler = UME.Handler.get<MachineBasicBlock *>(); 619 if (UME.IsFinally) { 620 FilterOrFinally = create32bitRef(getMCSymbolForMBB(Asm, Handler)); 621 ExceptOrNull = MCConstantExpr::create(0, Ctx); 622 } else { 623 // For an except, the filter can be 1 (catch-all) or a function 624 // label. 625 FilterOrFinally = UME.Filter ? create32bitRef(UME.Filter) 626 : MCConstantExpr::create(1, Ctx); 627 ExceptOrNull = create32bitRef(Handler->getSymbol()); 628 } 629 630 AddComment("LabelStart"); 631 OS.EmitValue(getLabel(BeginLabel), 4); 632 AddComment("LabelEnd"); 633 OS.EmitValue(getLabel(EndLabel), 4); 634 AddComment(UME.IsFinally ? "FinallyFunclet" : UME.Filter ? "FilterFunction" 635 : "CatchAll"); 636 OS.EmitValue(FilterOrFinally, 4); 637 AddComment(UME.IsFinally ? "Null" : "ExceptionHandler"); 638 OS.EmitValue(ExceptOrNull, 4); 639 640 assert(UME.ToState < State && "states should decrease"); 641 State = UME.ToState; 642 } 643 } 644 645 void WinException::emitCXXFrameHandler3Table(const MachineFunction *MF) { 646 const Function &F = MF->getFunction(); 647 auto &OS = *Asm->OutStreamer; 648 const WinEHFuncInfo &FuncInfo = *MF->getWinEHFuncInfo(); 649 650 StringRef FuncLinkageName = GlobalValue::dropLLVMManglingEscape(F.getName()); 651 652 SmallVector<std::pair<const MCExpr *, int>, 4> IPToStateTable; 653 MCSymbol *FuncInfoXData = nullptr; 654 if (shouldEmitPersonality) { 655 // If we're 64-bit, emit a pointer to the C++ EH data, and build a map from 656 // IPs to state numbers. 657 FuncInfoXData = 658 Asm->OutContext.getOrCreateSymbol(Twine("$cppxdata$", FuncLinkageName)); 659 computeIP2StateTable(MF, FuncInfo, IPToStateTable); 660 } else { 661 FuncInfoXData = Asm->OutContext.getOrCreateLSDASymbol(FuncLinkageName); 662 } 663 664 int UnwindHelpOffset = 0; 665 if (Asm->MAI->usesWindowsCFI()) 666 UnwindHelpOffset = 667 getFrameIndexOffset(FuncInfo.UnwindHelpFrameIdx, FuncInfo); 668 669 MCSymbol *UnwindMapXData = nullptr; 670 MCSymbol *TryBlockMapXData = nullptr; 671 MCSymbol *IPToStateXData = nullptr; 672 if (!FuncInfo.CxxUnwindMap.empty()) 673 UnwindMapXData = Asm->OutContext.getOrCreateSymbol( 674 Twine("$stateUnwindMap$", FuncLinkageName)); 675 if (!FuncInfo.TryBlockMap.empty()) 676 TryBlockMapXData = 677 Asm->OutContext.getOrCreateSymbol(Twine("$tryMap$", FuncLinkageName)); 678 if (!IPToStateTable.empty()) 679 IPToStateXData = 680 Asm->OutContext.getOrCreateSymbol(Twine("$ip2state$", FuncLinkageName)); 681 682 bool VerboseAsm = OS.isVerboseAsm(); 683 auto AddComment = [&](const Twine &Comment) { 684 if (VerboseAsm) 685 OS.AddComment(Comment); 686 }; 687 688 // FuncInfo { 689 // uint32_t MagicNumber 690 // int32_t MaxState; 691 // UnwindMapEntry *UnwindMap; 692 // uint32_t NumTryBlocks; 693 // TryBlockMapEntry *TryBlockMap; 694 // uint32_t IPMapEntries; // always 0 for x86 695 // IPToStateMapEntry *IPToStateMap; // always 0 for x86 696 // uint32_t UnwindHelp; // non-x86 only 697 // ESTypeList *ESTypeList; 698 // int32_t EHFlags; 699 // } 700 // EHFlags & 1 -> Synchronous exceptions only, no async exceptions. 701 // EHFlags & 2 -> ??? 702 // EHFlags & 4 -> The function is noexcept(true), unwinding can't continue. 703 OS.EmitValueToAlignment(4); 704 OS.EmitLabel(FuncInfoXData); 705 706 AddComment("MagicNumber"); 707 OS.EmitIntValue(0x19930522, 4); 708 709 AddComment("MaxState"); 710 OS.EmitIntValue(FuncInfo.CxxUnwindMap.size(), 4); 711 712 AddComment("UnwindMap"); 713 OS.EmitValue(create32bitRef(UnwindMapXData), 4); 714 715 AddComment("NumTryBlocks"); 716 OS.EmitIntValue(FuncInfo.TryBlockMap.size(), 4); 717 718 AddComment("TryBlockMap"); 719 OS.EmitValue(create32bitRef(TryBlockMapXData), 4); 720 721 AddComment("IPMapEntries"); 722 OS.EmitIntValue(IPToStateTable.size(), 4); 723 724 AddComment("IPToStateXData"); 725 OS.EmitValue(create32bitRef(IPToStateXData), 4); 726 727 if (Asm->MAI->usesWindowsCFI()) { 728 AddComment("UnwindHelp"); 729 OS.EmitIntValue(UnwindHelpOffset, 4); 730 } 731 732 AddComment("ESTypeList"); 733 OS.EmitIntValue(0, 4); 734 735 AddComment("EHFlags"); 736 OS.EmitIntValue(1, 4); 737 738 // UnwindMapEntry { 739 // int32_t ToState; 740 // void (*Action)(); 741 // }; 742 if (UnwindMapXData) { 743 OS.EmitLabel(UnwindMapXData); 744 for (const CxxUnwindMapEntry &UME : FuncInfo.CxxUnwindMap) { 745 MCSymbol *CleanupSym = 746 getMCSymbolForMBB(Asm, UME.Cleanup.dyn_cast<MachineBasicBlock *>()); 747 AddComment("ToState"); 748 OS.EmitIntValue(UME.ToState, 4); 749 750 AddComment("Action"); 751 OS.EmitValue(create32bitRef(CleanupSym), 4); 752 } 753 } 754 755 // TryBlockMap { 756 // int32_t TryLow; 757 // int32_t TryHigh; 758 // int32_t CatchHigh; 759 // int32_t NumCatches; 760 // HandlerType *HandlerArray; 761 // }; 762 if (TryBlockMapXData) { 763 OS.EmitLabel(TryBlockMapXData); 764 SmallVector<MCSymbol *, 1> HandlerMaps; 765 for (size_t I = 0, E = FuncInfo.TryBlockMap.size(); I != E; ++I) { 766 const WinEHTryBlockMapEntry &TBME = FuncInfo.TryBlockMap[I]; 767 768 MCSymbol *HandlerMapXData = nullptr; 769 if (!TBME.HandlerArray.empty()) 770 HandlerMapXData = 771 Asm->OutContext.getOrCreateSymbol(Twine("$handlerMap$") 772 .concat(Twine(I)) 773 .concat("$") 774 .concat(FuncLinkageName)); 775 HandlerMaps.push_back(HandlerMapXData); 776 777 // TBMEs should form intervals. 778 assert(0 <= TBME.TryLow && "bad trymap interval"); 779 assert(TBME.TryLow <= TBME.TryHigh && "bad trymap interval"); 780 assert(TBME.TryHigh < TBME.CatchHigh && "bad trymap interval"); 781 assert(TBME.CatchHigh < int(FuncInfo.CxxUnwindMap.size()) && 782 "bad trymap interval"); 783 784 AddComment("TryLow"); 785 OS.EmitIntValue(TBME.TryLow, 4); 786 787 AddComment("TryHigh"); 788 OS.EmitIntValue(TBME.TryHigh, 4); 789 790 AddComment("CatchHigh"); 791 OS.EmitIntValue(TBME.CatchHigh, 4); 792 793 AddComment("NumCatches"); 794 OS.EmitIntValue(TBME.HandlerArray.size(), 4); 795 796 AddComment("HandlerArray"); 797 OS.EmitValue(create32bitRef(HandlerMapXData), 4); 798 } 799 800 // All funclets use the same parent frame offset currently. 801 unsigned ParentFrameOffset = 0; 802 if (shouldEmitPersonality) { 803 const TargetFrameLowering *TFI = MF->getSubtarget().getFrameLowering(); 804 ParentFrameOffset = TFI->getWinEHParentFrameOffset(*MF); 805 } 806 807 for (size_t I = 0, E = FuncInfo.TryBlockMap.size(); I != E; ++I) { 808 const WinEHTryBlockMapEntry &TBME = FuncInfo.TryBlockMap[I]; 809 MCSymbol *HandlerMapXData = HandlerMaps[I]; 810 if (!HandlerMapXData) 811 continue; 812 // HandlerType { 813 // int32_t Adjectives; 814 // TypeDescriptor *Type; 815 // int32_t CatchObjOffset; 816 // void (*Handler)(); 817 // int32_t ParentFrameOffset; // x64 and AArch64 only 818 // }; 819 OS.EmitLabel(HandlerMapXData); 820 for (const WinEHHandlerType &HT : TBME.HandlerArray) { 821 // Get the frame escape label with the offset of the catch object. If 822 // the index is INT_MAX, then there is no catch object, and we should 823 // emit an offset of zero, indicating that no copy will occur. 824 const MCExpr *FrameAllocOffsetRef = nullptr; 825 if (HT.CatchObj.FrameIndex != INT_MAX) { 826 int Offset = getFrameIndexOffset(HT.CatchObj.FrameIndex, FuncInfo); 827 assert(Offset != 0 && "Illegal offset for catch object!"); 828 FrameAllocOffsetRef = MCConstantExpr::create(Offset, Asm->OutContext); 829 } else { 830 FrameAllocOffsetRef = MCConstantExpr::create(0, Asm->OutContext); 831 } 832 833 MCSymbol *HandlerSym = 834 getMCSymbolForMBB(Asm, HT.Handler.dyn_cast<MachineBasicBlock *>()); 835 836 AddComment("Adjectives"); 837 OS.EmitIntValue(HT.Adjectives, 4); 838 839 AddComment("Type"); 840 OS.EmitValue(create32bitRef(HT.TypeDescriptor), 4); 841 842 AddComment("CatchObjOffset"); 843 OS.EmitValue(FrameAllocOffsetRef, 4); 844 845 AddComment("Handler"); 846 OS.EmitValue(create32bitRef(HandlerSym), 4); 847 848 if (shouldEmitPersonality) { 849 AddComment("ParentFrameOffset"); 850 OS.EmitIntValue(ParentFrameOffset, 4); 851 } 852 } 853 } 854 } 855 856 // IPToStateMapEntry { 857 // void *IP; 858 // int32_t State; 859 // }; 860 if (IPToStateXData) { 861 OS.EmitLabel(IPToStateXData); 862 for (auto &IPStatePair : IPToStateTable) { 863 AddComment("IP"); 864 OS.EmitValue(IPStatePair.first, 4); 865 AddComment("ToState"); 866 OS.EmitIntValue(IPStatePair.second, 4); 867 } 868 } 869 } 870 871 void WinException::computeIP2StateTable( 872 const MachineFunction *MF, const WinEHFuncInfo &FuncInfo, 873 SmallVectorImpl<std::pair<const MCExpr *, int>> &IPToStateTable) { 874 875 for (MachineFunction::const_iterator FuncletStart = MF->begin(), 876 FuncletEnd = MF->begin(), 877 End = MF->end(); 878 FuncletStart != End; FuncletStart = FuncletEnd) { 879 // Find the end of the funclet 880 while (++FuncletEnd != End) { 881 if (FuncletEnd->isEHFuncletEntry()) { 882 break; 883 } 884 } 885 886 // Don't emit ip2state entries for cleanup funclets. Any interesting 887 // exceptional actions in cleanups must be handled in a separate IR 888 // function. 889 if (FuncletStart->isCleanupFuncletEntry()) 890 continue; 891 892 MCSymbol *StartLabel; 893 int BaseState; 894 if (FuncletStart == MF->begin()) { 895 BaseState = NullState; 896 StartLabel = Asm->getFunctionBegin(); 897 } else { 898 auto *FuncletPad = 899 cast<FuncletPadInst>(FuncletStart->getBasicBlock()->getFirstNonPHI()); 900 assert(FuncInfo.FuncletBaseStateMap.count(FuncletPad) != 0); 901 BaseState = FuncInfo.FuncletBaseStateMap.find(FuncletPad)->second; 902 StartLabel = getMCSymbolForMBB(Asm, &*FuncletStart); 903 } 904 assert(StartLabel && "need local function start label"); 905 IPToStateTable.push_back( 906 std::make_pair(create32bitRef(StartLabel), BaseState)); 907 908 for (const auto &StateChange : InvokeStateChangeIterator::range( 909 FuncInfo, FuncletStart, FuncletEnd, BaseState)) { 910 // Compute the label to report as the start of this entry; use the EH 911 // start label for the invoke if we have one, otherwise (this is a call 912 // which may unwind to our caller and does not have an EH start label, so) 913 // use the previous end label. 914 const MCSymbol *ChangeLabel = StateChange.NewStartLabel; 915 if (!ChangeLabel) 916 ChangeLabel = StateChange.PreviousEndLabel; 917 // Emit an entry indicating that PCs after 'Label' have this EH state. 918 IPToStateTable.push_back( 919 std::make_pair(getLabel(ChangeLabel), StateChange.NewState)); 920 // FIXME: assert that NewState is between CatchLow and CatchHigh. 921 } 922 } 923 } 924 925 void WinException::emitEHRegistrationOffsetLabel(const WinEHFuncInfo &FuncInfo, 926 StringRef FLinkageName) { 927 // Outlined helpers called by the EH runtime need to know the offset of the EH 928 // registration in order to recover the parent frame pointer. Now that we know 929 // we've code generated the parent, we can emit the label assignment that 930 // those helpers use to get the offset of the registration node. 931 932 // Compute the parent frame offset. The EHRegNodeFrameIndex will be invalid if 933 // after optimization all the invokes were eliminated. We still need to emit 934 // the parent frame offset label, but it should be garbage and should never be 935 // used. 936 int64_t Offset = 0; 937 int FI = FuncInfo.EHRegNodeFrameIndex; 938 if (FI != INT_MAX) { 939 const TargetFrameLowering *TFI = Asm->MF->getSubtarget().getFrameLowering(); 940 unsigned UnusedReg; 941 // FIXME: getFrameIndexReference needs to match the behavior of 942 // AArch64RegisterInfo::hasBasePointer in which one of the scenarios where 943 // SP is used is if frame size >= 256. 944 Offset = TFI->getFrameIndexReference(*Asm->MF, FI, UnusedReg); 945 } 946 947 MCContext &Ctx = Asm->OutContext; 948 MCSymbol *ParentFrameOffset = 949 Ctx.getOrCreateParentFrameOffsetSymbol(FLinkageName); 950 Asm->OutStreamer->EmitAssignment(ParentFrameOffset, 951 MCConstantExpr::create(Offset, Ctx)); 952 } 953 954 /// Emit the language-specific data that _except_handler3 and 4 expect. This is 955 /// functionally equivalent to the __C_specific_handler table, except it is 956 /// indexed by state number instead of IP. 957 void WinException::emitExceptHandlerTable(const MachineFunction *MF) { 958 MCStreamer &OS = *Asm->OutStreamer; 959 const Function &F = MF->getFunction(); 960 StringRef FLinkageName = GlobalValue::dropLLVMManglingEscape(F.getName()); 961 962 bool VerboseAsm = OS.isVerboseAsm(); 963 auto AddComment = [&](const Twine &Comment) { 964 if (VerboseAsm) 965 OS.AddComment(Comment); 966 }; 967 968 const WinEHFuncInfo &FuncInfo = *MF->getWinEHFuncInfo(); 969 emitEHRegistrationOffsetLabel(FuncInfo, FLinkageName); 970 971 // Emit the __ehtable label that we use for llvm.x86.seh.lsda. 972 MCSymbol *LSDALabel = Asm->OutContext.getOrCreateLSDASymbol(FLinkageName); 973 OS.EmitValueToAlignment(4); 974 OS.EmitLabel(LSDALabel); 975 976 const Function *Per = 977 dyn_cast<Function>(F.getPersonalityFn()->stripPointerCasts()); 978 StringRef PerName = Per->getName(); 979 int BaseState = -1; 980 if (PerName == "_except_handler4") { 981 // The LSDA for _except_handler4 starts with this struct, followed by the 982 // scope table: 983 // 984 // struct EH4ScopeTable { 985 // int32_t GSCookieOffset; 986 // int32_t GSCookieXOROffset; 987 // int32_t EHCookieOffset; 988 // int32_t EHCookieXOROffset; 989 // ScopeTableEntry ScopeRecord[]; 990 // }; 991 // 992 // Offsets are %ebp relative. 993 // 994 // The GS cookie is present only if the function needs stack protection. 995 // GSCookieOffset = -2 means that GS cookie is not used. 996 // 997 // The EH cookie is always present. 998 // 999 // Check is done the following way: 1000 // (ebp+CookieXOROffset) ^ [ebp+CookieOffset] == _security_cookie 1001 1002 // Retrieve the Guard Stack slot. 1003 int GSCookieOffset = -2; 1004 const MachineFrameInfo &MFI = MF->getFrameInfo(); 1005 if (MFI.hasStackProtectorIndex()) { 1006 unsigned UnusedReg; 1007 const TargetFrameLowering *TFI = MF->getSubtarget().getFrameLowering(); 1008 int SSPIdx = MFI.getStackProtectorIndex(); 1009 GSCookieOffset = TFI->getFrameIndexReference(*MF, SSPIdx, UnusedReg); 1010 } 1011 1012 // Retrieve the EH Guard slot. 1013 // TODO(etienneb): Get rid of this value and change it for and assertion. 1014 int EHCookieOffset = 9999; 1015 if (FuncInfo.EHGuardFrameIndex != INT_MAX) { 1016 unsigned UnusedReg; 1017 const TargetFrameLowering *TFI = MF->getSubtarget().getFrameLowering(); 1018 int EHGuardIdx = FuncInfo.EHGuardFrameIndex; 1019 EHCookieOffset = TFI->getFrameIndexReference(*MF, EHGuardIdx, UnusedReg); 1020 } 1021 1022 AddComment("GSCookieOffset"); 1023 OS.EmitIntValue(GSCookieOffset, 4); 1024 AddComment("GSCookieXOROffset"); 1025 OS.EmitIntValue(0, 4); 1026 AddComment("EHCookieOffset"); 1027 OS.EmitIntValue(EHCookieOffset, 4); 1028 AddComment("EHCookieXOROffset"); 1029 OS.EmitIntValue(0, 4); 1030 BaseState = -2; 1031 } 1032 1033 assert(!FuncInfo.SEHUnwindMap.empty()); 1034 for (const SEHUnwindMapEntry &UME : FuncInfo.SEHUnwindMap) { 1035 auto *Handler = UME.Handler.get<MachineBasicBlock *>(); 1036 const MCSymbol *ExceptOrFinally = 1037 UME.IsFinally ? getMCSymbolForMBB(Asm, Handler) : Handler->getSymbol(); 1038 // -1 is usually the base state for "unwind to caller", but for 1039 // _except_handler4 it's -2. Do that replacement here if necessary. 1040 int ToState = UME.ToState == -1 ? BaseState : UME.ToState; 1041 AddComment("ToState"); 1042 OS.EmitIntValue(ToState, 4); 1043 AddComment(UME.IsFinally ? "Null" : "FilterFunction"); 1044 OS.EmitValue(create32bitRef(UME.Filter), 4); 1045 AddComment(UME.IsFinally ? "FinallyFunclet" : "ExceptionHandler"); 1046 OS.EmitValue(create32bitRef(ExceptOrFinally), 4); 1047 } 1048 } 1049 1050 static int getTryRank(const WinEHFuncInfo &FuncInfo, int State) { 1051 int Rank = 0; 1052 while (State != -1) { 1053 ++Rank; 1054 State = FuncInfo.ClrEHUnwindMap[State].TryParentState; 1055 } 1056 return Rank; 1057 } 1058 1059 static int getTryAncestor(const WinEHFuncInfo &FuncInfo, int Left, int Right) { 1060 int LeftRank = getTryRank(FuncInfo, Left); 1061 int RightRank = getTryRank(FuncInfo, Right); 1062 1063 while (LeftRank < RightRank) { 1064 Right = FuncInfo.ClrEHUnwindMap[Right].TryParentState; 1065 --RightRank; 1066 } 1067 1068 while (RightRank < LeftRank) { 1069 Left = FuncInfo.ClrEHUnwindMap[Left].TryParentState; 1070 --LeftRank; 1071 } 1072 1073 while (Left != Right) { 1074 Left = FuncInfo.ClrEHUnwindMap[Left].TryParentState; 1075 Right = FuncInfo.ClrEHUnwindMap[Right].TryParentState; 1076 } 1077 1078 return Left; 1079 } 1080 1081 void WinException::emitCLRExceptionTable(const MachineFunction *MF) { 1082 // CLR EH "states" are really just IDs that identify handlers/funclets; 1083 // states, handlers, and funclets all have 1:1 mappings between them, and a 1084 // handler/funclet's "state" is its index in the ClrEHUnwindMap. 1085 MCStreamer &OS = *Asm->OutStreamer; 1086 const WinEHFuncInfo &FuncInfo = *MF->getWinEHFuncInfo(); 1087 MCSymbol *FuncBeginSym = Asm->getFunctionBegin(); 1088 MCSymbol *FuncEndSym = Asm->getFunctionEnd(); 1089 1090 // A ClrClause describes a protected region. 1091 struct ClrClause { 1092 const MCSymbol *StartLabel; // Start of protected region 1093 const MCSymbol *EndLabel; // End of protected region 1094 int State; // Index of handler protecting the protected region 1095 int EnclosingState; // Index of funclet enclosing the protected region 1096 }; 1097 SmallVector<ClrClause, 8> Clauses; 1098 1099 // Build a map from handler MBBs to their corresponding states (i.e. their 1100 // indices in the ClrEHUnwindMap). 1101 int NumStates = FuncInfo.ClrEHUnwindMap.size(); 1102 assert(NumStates > 0 && "Don't need exception table!"); 1103 DenseMap<const MachineBasicBlock *, int> HandlerStates; 1104 for (int State = 0; State < NumStates; ++State) { 1105 MachineBasicBlock *HandlerBlock = 1106 FuncInfo.ClrEHUnwindMap[State].Handler.get<MachineBasicBlock *>(); 1107 HandlerStates[HandlerBlock] = State; 1108 // Use this loop through all handlers to verify our assumption (used in 1109 // the MinEnclosingState computation) that enclosing funclets have lower 1110 // state numbers than their enclosed funclets. 1111 assert(FuncInfo.ClrEHUnwindMap[State].HandlerParentState < State && 1112 "ill-formed state numbering"); 1113 } 1114 // Map the main function to the NullState. 1115 HandlerStates[&MF->front()] = NullState; 1116 1117 // Write out a sentinel indicating the end of the standard (Windows) xdata 1118 // and the start of the additional (CLR) info. 1119 OS.EmitIntValue(0xffffffff, 4); 1120 // Write out the number of funclets 1121 OS.EmitIntValue(NumStates, 4); 1122 1123 // Walk the machine blocks/instrs, computing and emitting a few things: 1124 // 1. Emit a list of the offsets to each handler entry, in lexical order. 1125 // 2. Compute a map (EndSymbolMap) from each funclet to the symbol at its end. 1126 // 3. Compute the list of ClrClauses, in the required order (inner before 1127 // outer, earlier before later; the order by which a forward scan with 1128 // early termination will find the innermost enclosing clause covering 1129 // a given address). 1130 // 4. A map (MinClauseMap) from each handler index to the index of the 1131 // outermost funclet/function which contains a try clause targeting the 1132 // key handler. This will be used to determine IsDuplicate-ness when 1133 // emitting ClrClauses. The NullState value is used to indicate that the 1134 // top-level function contains a try clause targeting the key handler. 1135 // HandlerStack is a stack of (PendingStartLabel, PendingState) pairs for 1136 // try regions we entered before entering the PendingState try but which 1137 // we haven't yet exited. 1138 SmallVector<std::pair<const MCSymbol *, int>, 4> HandlerStack; 1139 // EndSymbolMap and MinClauseMap are maps described above. 1140 std::unique_ptr<MCSymbol *[]> EndSymbolMap(new MCSymbol *[NumStates]); 1141 SmallVector<int, 4> MinClauseMap((size_t)NumStates, NumStates); 1142 1143 // Visit the root function and each funclet. 1144 for (MachineFunction::const_iterator FuncletStart = MF->begin(), 1145 FuncletEnd = MF->begin(), 1146 End = MF->end(); 1147 FuncletStart != End; FuncletStart = FuncletEnd) { 1148 int FuncletState = HandlerStates[&*FuncletStart]; 1149 // Find the end of the funclet 1150 MCSymbol *EndSymbol = FuncEndSym; 1151 while (++FuncletEnd != End) { 1152 if (FuncletEnd->isEHFuncletEntry()) { 1153 EndSymbol = getMCSymbolForMBB(Asm, &*FuncletEnd); 1154 break; 1155 } 1156 } 1157 // Emit the function/funclet end and, if this is a funclet (and not the 1158 // root function), record it in the EndSymbolMap. 1159 OS.EmitValue(getOffset(EndSymbol, FuncBeginSym), 4); 1160 if (FuncletState != NullState) { 1161 // Record the end of the handler. 1162 EndSymbolMap[FuncletState] = EndSymbol; 1163 } 1164 1165 // Walk the state changes in this function/funclet and compute its clauses. 1166 // Funclets always start in the null state. 1167 const MCSymbol *CurrentStartLabel = nullptr; 1168 int CurrentState = NullState; 1169 assert(HandlerStack.empty()); 1170 for (const auto &StateChange : 1171 InvokeStateChangeIterator::range(FuncInfo, FuncletStart, FuncletEnd)) { 1172 // Close any try regions we're not still under 1173 int StillPendingState = 1174 getTryAncestor(FuncInfo, CurrentState, StateChange.NewState); 1175 while (CurrentState != StillPendingState) { 1176 assert(CurrentState != NullState && 1177 "Failed to find still-pending state!"); 1178 // Close the pending clause 1179 Clauses.push_back({CurrentStartLabel, StateChange.PreviousEndLabel, 1180 CurrentState, FuncletState}); 1181 // Now the next-outer try region is current 1182 CurrentState = FuncInfo.ClrEHUnwindMap[CurrentState].TryParentState; 1183 // Pop the new start label from the handler stack if we've exited all 1184 // inner try regions of the corresponding try region. 1185 if (HandlerStack.back().second == CurrentState) 1186 CurrentStartLabel = HandlerStack.pop_back_val().first; 1187 } 1188 1189 if (StateChange.NewState != CurrentState) { 1190 // For each clause we're starting, update the MinClauseMap so we can 1191 // know which is the topmost funclet containing a clause targeting 1192 // it. 1193 for (int EnteredState = StateChange.NewState; 1194 EnteredState != CurrentState; 1195 EnteredState = 1196 FuncInfo.ClrEHUnwindMap[EnteredState].TryParentState) { 1197 int &MinEnclosingState = MinClauseMap[EnteredState]; 1198 if (FuncletState < MinEnclosingState) 1199 MinEnclosingState = FuncletState; 1200 } 1201 // Save the previous current start/label on the stack and update to 1202 // the newly-current start/state. 1203 HandlerStack.emplace_back(CurrentStartLabel, CurrentState); 1204 CurrentStartLabel = StateChange.NewStartLabel; 1205 CurrentState = StateChange.NewState; 1206 } 1207 } 1208 assert(HandlerStack.empty()); 1209 } 1210 1211 // Now emit the clause info, starting with the number of clauses. 1212 OS.EmitIntValue(Clauses.size(), 4); 1213 for (ClrClause &Clause : Clauses) { 1214 // Emit a CORINFO_EH_CLAUSE : 1215 /* 1216 struct CORINFO_EH_CLAUSE 1217 { 1218 CORINFO_EH_CLAUSE_FLAGS Flags; // actually a CorExceptionFlag 1219 DWORD TryOffset; 1220 DWORD TryLength; // actually TryEndOffset 1221 DWORD HandlerOffset; 1222 DWORD HandlerLength; // actually HandlerEndOffset 1223 union 1224 { 1225 DWORD ClassToken; // use for catch clauses 1226 DWORD FilterOffset; // use for filter clauses 1227 }; 1228 }; 1229 1230 enum CORINFO_EH_CLAUSE_FLAGS 1231 { 1232 CORINFO_EH_CLAUSE_NONE = 0, 1233 CORINFO_EH_CLAUSE_FILTER = 0x0001, // This clause is for a filter 1234 CORINFO_EH_CLAUSE_FINALLY = 0x0002, // This clause is a finally clause 1235 CORINFO_EH_CLAUSE_FAULT = 0x0004, // This clause is a fault clause 1236 }; 1237 typedef enum CorExceptionFlag 1238 { 1239 COR_ILEXCEPTION_CLAUSE_NONE, 1240 COR_ILEXCEPTION_CLAUSE_FILTER = 0x0001, // This is a filter clause 1241 COR_ILEXCEPTION_CLAUSE_FINALLY = 0x0002, // This is a finally clause 1242 COR_ILEXCEPTION_CLAUSE_FAULT = 0x0004, // This is a fault clause 1243 COR_ILEXCEPTION_CLAUSE_DUPLICATED = 0x0008, // duplicated clause. This 1244 // clause was duplicated 1245 // to a funclet which was 1246 // pulled out of line 1247 } CorExceptionFlag; 1248 */ 1249 // Add 1 to the start/end of the EH clause; the IP associated with a 1250 // call when the runtime does its scan is the IP of the next instruction 1251 // (the one to which control will return after the call), so we need 1252 // to add 1 to the end of the clause to cover that offset. We also add 1253 // 1 to the start of the clause to make sure that the ranges reported 1254 // for all clauses are disjoint. Note that we'll need some additional 1255 // logic when machine traps are supported, since in that case the IP 1256 // that the runtime uses is the offset of the faulting instruction 1257 // itself; if such an instruction immediately follows a call but the 1258 // two belong to different clauses, we'll need to insert a nop between 1259 // them so the runtime can distinguish the point to which the call will 1260 // return from the point at which the fault occurs. 1261 1262 const MCExpr *ClauseBegin = 1263 getOffsetPlusOne(Clause.StartLabel, FuncBeginSym); 1264 const MCExpr *ClauseEnd = getOffsetPlusOne(Clause.EndLabel, FuncBeginSym); 1265 1266 const ClrEHUnwindMapEntry &Entry = FuncInfo.ClrEHUnwindMap[Clause.State]; 1267 MachineBasicBlock *HandlerBlock = Entry.Handler.get<MachineBasicBlock *>(); 1268 MCSymbol *BeginSym = getMCSymbolForMBB(Asm, HandlerBlock); 1269 const MCExpr *HandlerBegin = getOffset(BeginSym, FuncBeginSym); 1270 MCSymbol *EndSym = EndSymbolMap[Clause.State]; 1271 const MCExpr *HandlerEnd = getOffset(EndSym, FuncBeginSym); 1272 1273 uint32_t Flags = 0; 1274 switch (Entry.HandlerType) { 1275 case ClrHandlerType::Catch: 1276 // Leaving bits 0-2 clear indicates catch. 1277 break; 1278 case ClrHandlerType::Filter: 1279 Flags |= 1; 1280 break; 1281 case ClrHandlerType::Finally: 1282 Flags |= 2; 1283 break; 1284 case ClrHandlerType::Fault: 1285 Flags |= 4; 1286 break; 1287 } 1288 if (Clause.EnclosingState != MinClauseMap[Clause.State]) { 1289 // This is a "duplicate" clause; the handler needs to be entered from a 1290 // frame above the one holding the invoke. 1291 assert(Clause.EnclosingState > MinClauseMap[Clause.State]); 1292 Flags |= 8; 1293 } 1294 OS.EmitIntValue(Flags, 4); 1295 1296 // Write the clause start/end 1297 OS.EmitValue(ClauseBegin, 4); 1298 OS.EmitValue(ClauseEnd, 4); 1299 1300 // Write out the handler start/end 1301 OS.EmitValue(HandlerBegin, 4); 1302 OS.EmitValue(HandlerEnd, 4); 1303 1304 // Write out the type token or filter offset 1305 assert(Entry.HandlerType != ClrHandlerType::Filter && "NYI: filters"); 1306 OS.EmitIntValue(Entry.TypeToken, 4); 1307 } 1308 } 1309