1 //===--- CGException.cpp - Emit LLVM Code for C++ exceptions ----*- C++ -*-===//
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
7 //===----------------------------------------------------------------------===//
9 // This contains code dealing with C++ exception related code generation.
11 //===----------------------------------------------------------------------===//
14 #include "CGCleanup.h"
15 #include "CGObjCRuntime.h"
16 #include "CodeGenFunction.h"
17 #include "ConstantEmitter.h"
18 #include "TargetInfo.h"
19 #include "clang/AST/Mangle.h"
20 #include "clang/AST/StmtCXX.h"
21 #include "clang/AST/StmtObjC.h"
22 #include "clang/AST/StmtVisitor.h"
23 #include "clang/Basic/DiagnosticSema.h"
24 #include "llvm/IR/IntrinsicInst.h"
25 #include "llvm/IR/Intrinsics.h"
26 #include "llvm/IR/IntrinsicsWebAssembly.h"
27 #include "llvm/Support/SaveAndRestore.h"
29 using namespace clang
;
30 using namespace CodeGen
;
32 static llvm::FunctionCallee
getFreeExceptionFn(CodeGenModule
&CGM
) {
33 // void __cxa_free_exception(void *thrown_exception);
35 llvm::FunctionType
*FTy
=
36 llvm::FunctionType::get(CGM
.VoidTy
, CGM
.Int8PtrTy
, /*isVarArg=*/false);
38 return CGM
.CreateRuntimeFunction(FTy
, "__cxa_free_exception");
41 static llvm::FunctionCallee
getSehTryBeginFn(CodeGenModule
&CGM
) {
42 llvm::FunctionType
*FTy
=
43 llvm::FunctionType::get(CGM
.VoidTy
, /*isVarArg=*/false);
44 return CGM
.CreateRuntimeFunction(FTy
, "llvm.seh.try.begin");
47 static llvm::FunctionCallee
getSehTryEndFn(CodeGenModule
&CGM
) {
48 llvm::FunctionType
*FTy
=
49 llvm::FunctionType::get(CGM
.VoidTy
, /*isVarArg=*/false);
50 return CGM
.CreateRuntimeFunction(FTy
, "llvm.seh.try.end");
53 static llvm::FunctionCallee
getUnexpectedFn(CodeGenModule
&CGM
) {
54 // void __cxa_call_unexpected(void *thrown_exception);
56 llvm::FunctionType
*FTy
=
57 llvm::FunctionType::get(CGM
.VoidTy
, CGM
.Int8PtrTy
, /*isVarArg=*/false);
59 return CGM
.CreateRuntimeFunction(FTy
, "__cxa_call_unexpected");
62 llvm::FunctionCallee
CodeGenModule::getTerminateFn() {
63 // void __terminate();
65 llvm::FunctionType
*FTy
=
66 llvm::FunctionType::get(VoidTy
, /*isVarArg=*/false);
70 // In C++, use std::terminate().
71 if (getLangOpts().CPlusPlus
&&
72 getTarget().getCXXABI().isItaniumFamily()) {
73 name
= "_ZSt9terminatev";
74 } else if (getLangOpts().CPlusPlus
&&
75 getTarget().getCXXABI().isMicrosoft()) {
76 if (getLangOpts().isCompatibleWithMSVC(LangOptions::MSVC2015
))
77 name
= "__std_terminate";
79 name
= "?terminate@@YAXXZ";
80 } else if (getLangOpts().ObjC
&&
81 getLangOpts().ObjCRuntime
.hasTerminate())
82 name
= "objc_terminate";
85 return CreateRuntimeFunction(FTy
, name
);
88 static llvm::FunctionCallee
getCatchallRethrowFn(CodeGenModule
&CGM
,
90 llvm::FunctionType
*FTy
=
91 llvm::FunctionType::get(CGM
.VoidTy
, CGM
.Int8PtrTy
, /*isVarArg=*/false);
93 return CGM
.CreateRuntimeFunction(FTy
, Name
);
96 const EHPersonality
EHPersonality::GNU_C
= { "__gcc_personality_v0", nullptr };
98 EHPersonality::GNU_C_SJLJ
= { "__gcc_personality_sj0", nullptr };
100 EHPersonality::GNU_C_SEH
= { "__gcc_personality_seh0", nullptr };
102 EHPersonality::NeXT_ObjC
= { "__objc_personality_v0", nullptr };
104 EHPersonality::GNU_CPlusPlus
= { "__gxx_personality_v0", nullptr };
106 EHPersonality::GNU_CPlusPlus_SJLJ
= { "__gxx_personality_sj0", nullptr };
108 EHPersonality::GNU_CPlusPlus_SEH
= { "__gxx_personality_seh0", nullptr };
110 EHPersonality::GNU_ObjC
= {"__gnu_objc_personality_v0", "objc_exception_throw"};
112 EHPersonality::GNU_ObjC_SJLJ
= {"__gnu_objc_personality_sj0", "objc_exception_throw"};
114 EHPersonality::GNU_ObjC_SEH
= {"__gnu_objc_personality_seh0", "objc_exception_throw"};
116 EHPersonality::GNU_ObjCXX
= { "__gnustep_objcxx_personality_v0", nullptr };
118 EHPersonality::GNUstep_ObjC
= { "__gnustep_objc_personality_v0", nullptr };
120 EHPersonality::MSVC_except_handler
= { "_except_handler3", nullptr };
122 EHPersonality::MSVC_C_specific_handler
= { "__C_specific_handler", nullptr };
124 EHPersonality::MSVC_CxxFrameHandler3
= { "__CxxFrameHandler3", nullptr };
126 EHPersonality::GNU_Wasm_CPlusPlus
= { "__gxx_wasm_personality_v0", nullptr };
127 const EHPersonality
EHPersonality::XL_CPlusPlus
= {"__xlcxx_personality_v1",
129 const EHPersonality
EHPersonality::ZOS_CPlusPlus
= {"__zos_cxx_personality_v2",
132 static const EHPersonality
&getCPersonality(const TargetInfo
&Target
,
133 const LangOptions
&L
) {
134 const llvm::Triple
&T
= Target
.getTriple();
135 if (T
.isWindowsMSVCEnvironment())
136 return EHPersonality::MSVC_CxxFrameHandler3
;
137 if (L
.hasSjLjExceptions())
138 return EHPersonality::GNU_C_SJLJ
;
139 if (L
.hasDWARFExceptions())
140 return EHPersonality::GNU_C
;
141 if (L
.hasSEHExceptions())
142 return EHPersonality::GNU_C_SEH
;
143 return EHPersonality::GNU_C
;
146 static const EHPersonality
&getObjCPersonality(const TargetInfo
&Target
,
147 const LangOptions
&L
) {
148 const llvm::Triple
&T
= Target
.getTriple();
149 if (T
.isWindowsMSVCEnvironment())
150 return EHPersonality::MSVC_CxxFrameHandler3
;
152 switch (L
.ObjCRuntime
.getKind()) {
153 case ObjCRuntime::FragileMacOSX
:
154 return getCPersonality(Target
, L
);
155 case ObjCRuntime::MacOSX
:
156 case ObjCRuntime::iOS
:
157 case ObjCRuntime::WatchOS
:
158 return EHPersonality::NeXT_ObjC
;
159 case ObjCRuntime::GNUstep
:
161 return EHPersonality::GNU_CPlusPlus_SEH
;
162 else if (L
.ObjCRuntime
.getVersion() >= VersionTuple(1, 7))
163 return EHPersonality::GNUstep_ObjC
;
165 case ObjCRuntime::GCC
:
166 case ObjCRuntime::ObjFW
:
167 if (L
.hasSjLjExceptions())
168 return EHPersonality::GNU_ObjC_SJLJ
;
169 if (L
.hasSEHExceptions())
170 return EHPersonality::GNU_ObjC_SEH
;
171 return EHPersonality::GNU_ObjC
;
173 llvm_unreachable("bad runtime kind");
176 static const EHPersonality
&getCXXPersonality(const TargetInfo
&Target
,
177 const LangOptions
&L
) {
178 const llvm::Triple
&T
= Target
.getTriple();
179 if (T
.isWindowsMSVCEnvironment())
180 return EHPersonality::MSVC_CxxFrameHandler3
;
182 return EHPersonality::XL_CPlusPlus
;
183 if (L
.hasSjLjExceptions())
184 return EHPersonality::GNU_CPlusPlus_SJLJ
;
185 if (L
.hasDWARFExceptions())
186 return EHPersonality::GNU_CPlusPlus
;
187 if (L
.hasSEHExceptions())
188 return EHPersonality::GNU_CPlusPlus_SEH
;
189 if (L
.hasWasmExceptions())
190 return EHPersonality::GNU_Wasm_CPlusPlus
;
192 return EHPersonality::ZOS_CPlusPlus
;
193 return EHPersonality::GNU_CPlusPlus
;
196 /// Determines the personality function to use when both C++
197 /// and Objective-C exceptions are being caught.
198 static const EHPersonality
&getObjCXXPersonality(const TargetInfo
&Target
,
199 const LangOptions
&L
) {
200 if (Target
.getTriple().isWindowsMSVCEnvironment())
201 return EHPersonality::MSVC_CxxFrameHandler3
;
203 switch (L
.ObjCRuntime
.getKind()) {
204 // In the fragile ABI, just use C++ exception handling and hope
205 // they're not doing crazy exception mixing.
206 case ObjCRuntime::FragileMacOSX
:
207 return getCXXPersonality(Target
, L
);
209 // The ObjC personality defers to the C++ personality for non-ObjC
210 // handlers. Unlike the C++ case, we use the same personality
211 // function on targets using (backend-driven) SJLJ EH.
212 case ObjCRuntime::MacOSX
:
213 case ObjCRuntime::iOS
:
214 case ObjCRuntime::WatchOS
:
215 return getObjCPersonality(Target
, L
);
217 case ObjCRuntime::GNUstep
:
218 return Target
.getTriple().isOSCygMing() ? EHPersonality::GNU_CPlusPlus_SEH
219 : EHPersonality::GNU_ObjCXX
;
221 // The GCC runtime's personality function inherently doesn't support
222 // mixed EH. Use the ObjC personality just to avoid returning null.
223 case ObjCRuntime::GCC
:
224 case ObjCRuntime::ObjFW
:
225 return getObjCPersonality(Target
, L
);
227 llvm_unreachable("bad runtime kind");
230 static const EHPersonality
&getSEHPersonalityMSVC(const llvm::Triple
&T
) {
231 if (T
.getArch() == llvm::Triple::x86
)
232 return EHPersonality::MSVC_except_handler
;
233 return EHPersonality::MSVC_C_specific_handler
;
236 const EHPersonality
&EHPersonality::get(CodeGenModule
&CGM
,
237 const FunctionDecl
*FD
) {
238 const llvm::Triple
&T
= CGM
.getTarget().getTriple();
239 const LangOptions
&L
= CGM
.getLangOpts();
240 const TargetInfo
&Target
= CGM
.getTarget();
242 // Functions using SEH get an SEH personality.
243 if (FD
&& FD
->usesSEHTry())
244 return getSEHPersonalityMSVC(T
);
247 return L
.CPlusPlus
? getObjCXXPersonality(Target
, L
)
248 : getObjCPersonality(Target
, L
);
249 return L
.CPlusPlus
? getCXXPersonality(Target
, L
)
250 : getCPersonality(Target
, L
);
253 const EHPersonality
&EHPersonality::get(CodeGenFunction
&CGF
) {
254 const auto *FD
= CGF
.CurCodeDecl
;
255 // For outlined finallys and filters, use the SEH personality in case they
256 // contain more SEH. This mostly only affects finallys. Filters could
257 // hypothetically use gnu statement expressions to sneak in nested SEH.
258 FD
= FD
? FD
: CGF
.CurSEHParent
.getDecl();
259 return get(CGF
.CGM
, dyn_cast_or_null
<FunctionDecl
>(FD
));
262 static llvm::FunctionCallee
getPersonalityFn(CodeGenModule
&CGM
,
263 const EHPersonality
&Personality
) {
264 return CGM
.CreateRuntimeFunction(llvm::FunctionType::get(CGM
.Int32Ty
, true),
265 Personality
.PersonalityFn
,
266 llvm::AttributeList(), /*Local=*/true);
269 static llvm::Constant
*getOpaquePersonalityFn(CodeGenModule
&CGM
,
270 const EHPersonality
&Personality
) {
271 llvm::FunctionCallee Fn
= getPersonalityFn(CGM
, Personality
);
272 return cast
<llvm::Constant
>(Fn
.getCallee());
275 /// Check whether a landingpad instruction only uses C++ features.
276 static bool LandingPadHasOnlyCXXUses(llvm::LandingPadInst
*LPI
) {
277 for (unsigned I
= 0, E
= LPI
->getNumClauses(); I
!= E
; ++I
) {
278 // Look for something that would've been returned by the ObjC
279 // runtime's GetEHType() method.
280 llvm::Value
*Val
= LPI
->getClause(I
)->stripPointerCasts();
281 if (LPI
->isCatch(I
)) {
282 // Check if the catch value has the ObjC prefix.
283 if (llvm::GlobalVariable
*GV
= dyn_cast
<llvm::GlobalVariable
>(Val
))
284 // ObjC EH selector entries are always global variables with
285 // names starting like this.
286 if (GV
->getName().starts_with("OBJC_EHTYPE"))
289 // Check if any of the filter values have the ObjC prefix.
290 llvm::Constant
*CVal
= cast
<llvm::Constant
>(Val
);
291 for (llvm::User::op_iterator
292 II
= CVal
->op_begin(), IE
= CVal
->op_end(); II
!= IE
; ++II
) {
293 if (llvm::GlobalVariable
*GV
=
294 cast
<llvm::GlobalVariable
>((*II
)->stripPointerCasts()))
295 // ObjC EH selector entries are always global variables with
296 // names starting like this.
297 if (GV
->getName().starts_with("OBJC_EHTYPE"))
305 /// Check whether a personality function could reasonably be swapped
306 /// for a C++ personality function.
307 static bool PersonalityHasOnlyCXXUses(llvm::Constant
*Fn
) {
308 for (llvm::User
*U
: Fn
->users()) {
309 // Conditionally white-list bitcasts.
310 if (llvm::ConstantExpr
*CE
= dyn_cast
<llvm::ConstantExpr
>(U
)) {
311 if (CE
->getOpcode() != llvm::Instruction::BitCast
) return false;
312 if (!PersonalityHasOnlyCXXUses(CE
))
317 // Otherwise it must be a function.
318 llvm::Function
*F
= dyn_cast
<llvm::Function
>(U
);
319 if (!F
) return false;
321 for (auto BB
= F
->begin(), E
= F
->end(); BB
!= E
; ++BB
) {
322 if (BB
->isLandingPad())
323 if (!LandingPadHasOnlyCXXUses(BB
->getLandingPadInst()))
331 /// Try to use the C++ personality function in ObjC++. Not doing this
332 /// can cause some incompatibilities with gcc, which is more
333 /// aggressive about only using the ObjC++ personality in a function
334 /// when it really needs it.
335 void CodeGenModule::SimplifyPersonality() {
336 // If we're not in ObjC++ -fexceptions, there's nothing to do.
337 if (!LangOpts
.CPlusPlus
|| !LangOpts
.ObjC
|| !LangOpts
.Exceptions
)
340 // Both the problem this endeavors to fix and the way the logic
341 // above works is specific to the NeXT runtime.
342 if (!LangOpts
.ObjCRuntime
.isNeXTFamily())
345 const EHPersonality
&ObjCXX
= EHPersonality::get(*this, /*FD=*/nullptr);
346 const EHPersonality
&CXX
= getCXXPersonality(getTarget(), LangOpts
);
350 assert(std::strcmp(ObjCXX
.PersonalityFn
, CXX
.PersonalityFn
) != 0 &&
351 "Different EHPersonalities using the same personality function.");
353 llvm::Function
*Fn
= getModule().getFunction(ObjCXX
.PersonalityFn
);
355 // Nothing to do if it's unused.
356 if (!Fn
|| Fn
->use_empty()) return;
358 // Can't do the optimization if it has non-C++ uses.
359 if (!PersonalityHasOnlyCXXUses(Fn
)) return;
361 // Create the C++ personality function and kill off the old
363 llvm::FunctionCallee CXXFn
= getPersonalityFn(*this, CXX
);
365 // This can happen if the user is screwing with us.
366 if (Fn
->getType() != CXXFn
.getCallee()->getType())
369 Fn
->replaceAllUsesWith(CXXFn
.getCallee());
370 Fn
->eraseFromParent();
373 /// Returns the value to inject into a selector to indicate the
374 /// presence of a catch-all.
375 static llvm::Constant
*getCatchAllValue(CodeGenFunction
&CGF
) {
376 // Possibly we should use @llvm.eh.catch.all.value here.
377 return llvm::ConstantPointerNull::get(CGF
.Int8PtrTy
);
381 /// A cleanup to free the exception object if its initialization
383 struct FreeException final
: EHScopeStack::Cleanup
{
385 FreeException(llvm::Value
*exn
) : exn(exn
) {}
386 void Emit(CodeGenFunction
&CGF
, Flags flags
) override
{
387 CGF
.EmitNounwindRuntimeCall(getFreeExceptionFn(CGF
.CGM
), exn
);
390 } // end anonymous namespace
392 // Emits an exception expression into the given location. This
393 // differs from EmitAnyExprToMem only in that, if a final copy-ctor
394 // call is required, an exception within that copy ctor causes
395 // std::terminate to be invoked.
396 void CodeGenFunction::EmitAnyExprToExn(const Expr
*e
, Address addr
) {
397 // Make sure the exception object is cleaned up if there's an
398 // exception during initialization.
399 pushFullExprCleanup
<FreeException
>(EHCleanup
, addr
.emitRawPointer(*this));
400 EHScopeStack::stable_iterator cleanup
= EHStack
.stable_begin();
402 // __cxa_allocate_exception returns a void*; we need to cast this
403 // to the appropriate type for the object.
404 llvm::Type
*ty
= ConvertTypeForMem(e
->getType());
405 Address typedAddr
= addr
.withElementType(ty
);
407 // FIXME: this isn't quite right! If there's a final unelided call
408 // to a copy constructor, then according to [except.terminate]p1 we
409 // must call std::terminate() if that constructor throws, because
410 // technically that copy occurs after the exception expression is
411 // evaluated but before the exception is caught. But the best way
412 // to handle that is to teach EmitAggExpr to do the final copy
413 // differently if it can't be elided.
414 EmitAnyExprToMem(e
, typedAddr
, e
->getType().getQualifiers(),
417 // Deactivate the cleanup block.
418 DeactivateCleanupBlock(
419 cleanup
, cast
<llvm::Instruction
>(typedAddr
.emitRawPointer(*this)));
422 Address
CodeGenFunction::getExceptionSlot() {
424 ExceptionSlot
= CreateTempAlloca(Int8PtrTy
, "exn.slot");
425 return Address(ExceptionSlot
, Int8PtrTy
, getPointerAlign());
428 Address
CodeGenFunction::getEHSelectorSlot() {
430 EHSelectorSlot
= CreateTempAlloca(Int32Ty
, "ehselector.slot");
431 return Address(EHSelectorSlot
, Int32Ty
, CharUnits::fromQuantity(4));
434 llvm::Value
*CodeGenFunction::getExceptionFromSlot() {
435 return Builder
.CreateLoad(getExceptionSlot(), "exn");
438 llvm::Value
*CodeGenFunction::getSelectorFromSlot() {
439 return Builder
.CreateLoad(getEHSelectorSlot(), "sel");
442 void CodeGenFunction::EmitCXXThrowExpr(const CXXThrowExpr
*E
,
443 bool KeepInsertionPoint
) {
444 // If the exception is being emitted in an OpenMP target region,
445 // and the target is a GPU, we do not support exception handling.
446 // Therefore, we emit a trap which will abort the program, and
447 // prompt a warning indicating that a trap will be emitted.
448 const llvm::Triple
&T
= Target
.getTriple();
449 if (CGM
.getLangOpts().OpenMPIsTargetDevice
&& (T
.isNVPTX() || T
.isAMDGCN())) {
450 EmitTrapCall(llvm::Intrinsic::trap
);
453 if (const Expr
*SubExpr
= E
->getSubExpr()) {
454 QualType ThrowType
= SubExpr
->getType();
455 if (ThrowType
->isObjCObjectPointerType()) {
456 const Stmt
*ThrowStmt
= E
->getSubExpr();
457 const ObjCAtThrowStmt
S(E
->getExprLoc(), const_cast<Stmt
*>(ThrowStmt
));
458 CGM
.getObjCRuntime().EmitThrowStmt(*this, S
, false);
460 CGM
.getCXXABI().emitThrow(*this, E
);
463 CGM
.getCXXABI().emitRethrow(*this, /*isNoReturn=*/true);
466 // throw is an expression, and the expression emitters expect us
467 // to leave ourselves at a valid insertion point.
468 if (KeepInsertionPoint
)
469 EmitBlock(createBasicBlock("throw.cont"));
472 void CodeGenFunction::EmitStartEHSpec(const Decl
*D
) {
473 if (!CGM
.getLangOpts().CXXExceptions
)
476 const FunctionDecl
* FD
= dyn_cast_or_null
<FunctionDecl
>(D
);
478 // Check if CapturedDecl is nothrow and create terminate scope for it.
479 if (const CapturedDecl
* CD
= dyn_cast_or_null
<CapturedDecl
>(D
)) {
481 EHStack
.pushTerminate();
485 const FunctionProtoType
*Proto
= FD
->getType()->getAs
<FunctionProtoType
>();
489 ExceptionSpecificationType EST
= Proto
->getExceptionSpecType();
490 // In C++17 and later, 'throw()' aka EST_DynamicNone is treated the same way
491 // as noexcept. In earlier standards, it is handled in this block, along with
493 if (EST
== EST_Dynamic
||
494 (EST
== EST_DynamicNone
&& !getLangOpts().CPlusPlus17
)) {
495 // TODO: Revisit exception specifications for the MS ABI. There is a way to
496 // encode these in an object file but MSVC doesn't do anything with it.
497 if (getTarget().getCXXABI().isMicrosoft())
499 // In Wasm EH we currently treat 'throw()' in the same way as 'noexcept'. In
500 // case of throw with types, we ignore it and print a warning for now.
501 // TODO Correctly handle exception specification in Wasm EH
502 if (CGM
.getLangOpts().hasWasmExceptions()) {
503 if (EST
== EST_DynamicNone
)
504 EHStack
.pushTerminate();
506 CGM
.getDiags().Report(D
->getLocation(),
507 diag::warn_wasm_dynamic_exception_spec_ignored
)
508 << FD
->getExceptionSpecSourceRange();
511 // Currently Emscripten EH only handles 'throw()' but not 'throw' with
512 // types. 'throw()' handling will be done in JS glue code so we don't need
513 // to do anything in that case. Just print a warning message in case of
515 // TODO Correctly handle exception specification in Emscripten EH
516 if (getTarget().getCXXABI() == TargetCXXABI::WebAssembly
&&
517 CGM
.getLangOpts().getExceptionHandling() ==
518 LangOptions::ExceptionHandlingKind::None
&&
520 CGM
.getDiags().Report(D
->getLocation(),
521 diag::warn_wasm_dynamic_exception_spec_ignored
)
522 << FD
->getExceptionSpecSourceRange();
524 unsigned NumExceptions
= Proto
->getNumExceptions();
525 EHFilterScope
*Filter
= EHStack
.pushFilter(NumExceptions
);
527 for (unsigned I
= 0; I
!= NumExceptions
; ++I
) {
528 QualType Ty
= Proto
->getExceptionType(I
);
529 QualType ExceptType
= Ty
.getNonReferenceType().getUnqualifiedType();
530 llvm::Value
*EHType
= CGM
.GetAddrOfRTTIDescriptor(ExceptType
,
532 Filter
->setFilter(I
, EHType
);
534 } else if (Proto
->canThrow() == CT_Cannot
) {
535 // noexcept functions are simple terminate scopes.
536 if (!getLangOpts().EHAsynch
) // -EHa: HW exception still can occur
537 EHStack
.pushTerminate();
541 /// Emit the dispatch block for a filter scope if necessary.
542 static void emitFilterDispatchBlock(CodeGenFunction
&CGF
,
543 EHFilterScope
&filterScope
) {
544 llvm::BasicBlock
*dispatchBlock
= filterScope
.getCachedEHDispatchBlock();
545 if (!dispatchBlock
) return;
546 if (dispatchBlock
->use_empty()) {
547 delete dispatchBlock
;
551 CGF
.EmitBlockAfterUses(dispatchBlock
);
553 // If this isn't a catch-all filter, we need to check whether we got
554 // here because the filter triggered.
555 if (filterScope
.getNumFilters()) {
556 // Load the selector value.
557 llvm::Value
*selector
= CGF
.getSelectorFromSlot();
558 llvm::BasicBlock
*unexpectedBB
= CGF
.createBasicBlock("ehspec.unexpected");
560 llvm::Value
*zero
= CGF
.Builder
.getInt32(0);
561 llvm::Value
*failsFilter
=
562 CGF
.Builder
.CreateICmpSLT(selector
, zero
, "ehspec.fails");
563 CGF
.Builder
.CreateCondBr(failsFilter
, unexpectedBB
,
564 CGF
.getEHResumeBlock(false));
566 CGF
.EmitBlock(unexpectedBB
);
569 // Call __cxa_call_unexpected. This doesn't need to be an invoke
570 // because __cxa_call_unexpected magically filters exceptions
571 // according to the last landing pad the exception was thrown
573 llvm::Value
*exn
= CGF
.getExceptionFromSlot();
574 CGF
.EmitRuntimeCall(getUnexpectedFn(CGF
.CGM
), exn
)
575 ->setDoesNotReturn();
576 CGF
.Builder
.CreateUnreachable();
579 void CodeGenFunction::EmitEndEHSpec(const Decl
*D
) {
580 if (!CGM
.getLangOpts().CXXExceptions
)
583 const FunctionDecl
* FD
= dyn_cast_or_null
<FunctionDecl
>(D
);
585 // Check if CapturedDecl is nothrow and pop terminate scope for it.
586 if (const CapturedDecl
* CD
= dyn_cast_or_null
<CapturedDecl
>(D
)) {
587 if (CD
->isNothrow() && !EHStack
.empty())
588 EHStack
.popTerminate();
592 const FunctionProtoType
*Proto
= FD
->getType()->getAs
<FunctionProtoType
>();
596 ExceptionSpecificationType EST
= Proto
->getExceptionSpecType();
597 if (EST
== EST_Dynamic
||
598 (EST
== EST_DynamicNone
&& !getLangOpts().CPlusPlus17
)) {
599 // TODO: Revisit exception specifications for the MS ABI. There is a way to
600 // encode these in an object file but MSVC doesn't do anything with it.
601 if (getTarget().getCXXABI().isMicrosoft())
603 // In wasm we currently treat 'throw()' in the same way as 'noexcept'. In
604 // case of throw with types, we ignore it and print a warning for now.
605 // TODO Correctly handle exception specification in wasm
606 if (CGM
.getLangOpts().hasWasmExceptions()) {
607 if (EST
== EST_DynamicNone
)
608 EHStack
.popTerminate();
611 EHFilterScope
&filterScope
= cast
<EHFilterScope
>(*EHStack
.begin());
612 emitFilterDispatchBlock(*this, filterScope
);
614 } else if (Proto
->canThrow() == CT_Cannot
&&
615 /* possible empty when under async exceptions */
617 EHStack
.popTerminate();
621 void CodeGenFunction::EmitCXXTryStmt(const CXXTryStmt
&S
) {
622 const llvm::Triple
&T
= Target
.getTriple();
623 // If we encounter a try statement on in an OpenMP target region offloaded to
624 // a GPU, we treat it as a basic block.
625 const bool IsTargetDevice
=
626 (CGM
.getLangOpts().OpenMPIsTargetDevice
&& (T
.isNVPTX() || T
.isAMDGCN()));
629 EmitStmt(S
.getTryBlock());
634 void CodeGenFunction::EnterCXXTryStmt(const CXXTryStmt
&S
, bool IsFnTryBlock
) {
635 unsigned NumHandlers
= S
.getNumHandlers();
636 EHCatchScope
*CatchScope
= EHStack
.pushCatch(NumHandlers
);
638 for (unsigned I
= 0; I
!= NumHandlers
; ++I
) {
639 const CXXCatchStmt
*C
= S
.getHandler(I
);
641 llvm::BasicBlock
*Handler
= createBasicBlock("catch");
642 if (C
->getExceptionDecl()) {
643 // FIXME: Dropping the reference type on the type into makes it
644 // impossible to correctly implement catch-by-reference
645 // semantics for pointers. Unfortunately, this is what all
646 // existing compilers do, and it's not clear that the standard
647 // personality routine is capable of doing this right. See C++ DR 388:
648 // http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#388
649 Qualifiers CaughtTypeQuals
;
650 QualType CaughtType
= CGM
.getContext().getUnqualifiedArrayType(
651 C
->getCaughtType().getNonReferenceType(), CaughtTypeQuals
);
653 CatchTypeInfo TypeInfo
{nullptr, 0};
654 if (CaughtType
->isObjCObjectPointerType())
655 TypeInfo
.RTTI
= CGM
.getObjCRuntime().GetEHType(CaughtType
);
657 TypeInfo
= CGM
.getCXXABI().getAddrOfCXXCatchHandlerType(
658 CaughtType
, C
->getCaughtType());
659 CatchScope
->setHandler(I
, TypeInfo
, Handler
);
661 // No exception decl indicates '...', a catch-all.
662 CatchScope
->setHandler(I
, CGM
.getCXXABI().getCatchAllTypeInfo(), Handler
);
663 // Under async exceptions, catch(...) need to catch HW exception too
664 // Mark scope with SehTryBegin as a SEH __try scope
665 if (getLangOpts().EHAsynch
)
666 EmitSehTryScopeBegin();
672 CodeGenFunction::getEHDispatchBlock(EHScopeStack::stable_iterator si
) {
673 if (EHPersonality::get(*this).usesFuncletPads())
674 return getFuncletEHDispatchBlock(si
);
676 // The dispatch block for the end of the scope chain is a block that
677 // just resumes unwinding.
678 if (si
== EHStack
.stable_end())
679 return getEHResumeBlock(true);
681 // Otherwise, we should look at the actual scope.
682 EHScope
&scope
= *EHStack
.find(si
);
684 llvm::BasicBlock
*dispatchBlock
= scope
.getCachedEHDispatchBlock();
685 if (!dispatchBlock
) {
686 switch (scope
.getKind()) {
687 case EHScope::Catch
: {
688 // Apply a special case to a single catch-all.
689 EHCatchScope
&catchScope
= cast
<EHCatchScope
>(scope
);
690 if (catchScope
.getNumHandlers() == 1 &&
691 catchScope
.getHandler(0).isCatchAll()) {
692 dispatchBlock
= catchScope
.getHandler(0).Block
;
694 // Otherwise, make a dispatch block.
696 dispatchBlock
= createBasicBlock("catch.dispatch");
701 case EHScope::Cleanup
:
702 dispatchBlock
= createBasicBlock("ehcleanup");
705 case EHScope::Filter
:
706 dispatchBlock
= createBasicBlock("filter.dispatch");
709 case EHScope::Terminate
:
710 dispatchBlock
= getTerminateHandler();
713 scope
.setCachedEHDispatchBlock(dispatchBlock
);
715 return dispatchBlock
;
719 CodeGenFunction::getFuncletEHDispatchBlock(EHScopeStack::stable_iterator SI
) {
720 // Returning nullptr indicates that the previous dispatch block should unwind
722 if (SI
== EHStack
.stable_end())
725 // Otherwise, we should look at the actual scope.
726 EHScope
&EHS
= *EHStack
.find(SI
);
728 llvm::BasicBlock
*DispatchBlock
= EHS
.getCachedEHDispatchBlock();
730 return DispatchBlock
;
732 if (EHS
.getKind() == EHScope::Terminate
)
733 DispatchBlock
= getTerminateFunclet();
735 DispatchBlock
= createBasicBlock();
736 CGBuilderTy
Builder(*this, DispatchBlock
);
738 switch (EHS
.getKind()) {
740 DispatchBlock
->setName("catch.dispatch");
743 case EHScope::Cleanup
:
744 DispatchBlock
->setName("ehcleanup");
747 case EHScope::Filter
:
748 llvm_unreachable("exception specifications not handled yet!");
750 case EHScope::Terminate
:
751 DispatchBlock
->setName("terminate");
754 EHS
.setCachedEHDispatchBlock(DispatchBlock
);
755 return DispatchBlock
;
758 /// Check whether this is a non-EH scope, i.e. a scope which doesn't
759 /// affect exception handling. Currently, the only non-EH scopes are
760 /// normal-only cleanup scopes.
761 static bool isNonEHScope(const EHScope
&S
) {
762 switch (S
.getKind()) {
763 case EHScope::Cleanup
:
764 return !cast
<EHCleanupScope
>(S
).isEHCleanup();
765 case EHScope::Filter
:
767 case EHScope::Terminate
:
771 llvm_unreachable("Invalid EHScope Kind!");
774 llvm::BasicBlock
*CodeGenFunction::getInvokeDestImpl() {
775 assert(EHStack
.requiresLandingPad());
776 assert(!EHStack
.empty());
778 // If exceptions are disabled/ignored and SEH is not in use, then there is no
779 // invoke destination. SEH "works" even if exceptions are off. In practice,
780 // this means that C++ destructors and other EH cleanups don't run, which is
781 // consistent with MSVC's behavior, except in the presence of -EHa
782 const LangOptions
&LO
= CGM
.getLangOpts();
783 if (!LO
.Exceptions
|| LO
.IgnoreExceptions
) {
784 if (!LO
.Borland
&& !LO
.MicrosoftExt
)
786 if (!currentFunctionUsesSEHTry())
790 // CUDA device code doesn't have exceptions.
791 if (LO
.CUDA
&& LO
.CUDAIsDevice
)
794 // Check the innermost scope for a cached landing pad. If this is
795 // a non-EH cleanup, we'll check enclosing scopes in EmitLandingPad.
796 llvm::BasicBlock
*LP
= EHStack
.begin()->getCachedLandingPad();
799 const EHPersonality
&Personality
= EHPersonality::get(*this);
801 if (!CurFn
->hasPersonalityFn())
802 CurFn
->setPersonalityFn(getOpaquePersonalityFn(CGM
, Personality
));
804 if (Personality
.usesFuncletPads()) {
805 // We don't need separate landing pads in the funclet model.
806 LP
= getEHDispatchBlock(EHStack
.getInnermostEHScope());
808 // Build the landing pad for this scope.
809 LP
= EmitLandingPad();
814 // Cache the landing pad on the innermost scope. If this is a
815 // non-EH scope, cache the landing pad on the enclosing scope, too.
816 for (EHScopeStack::iterator ir
= EHStack
.begin(); true; ++ir
) {
817 ir
->setCachedLandingPad(LP
);
818 if (!isNonEHScope(*ir
)) break;
824 llvm::BasicBlock
*CodeGenFunction::EmitLandingPad() {
825 assert(EHStack
.requiresLandingPad());
826 assert(!CGM
.getLangOpts().IgnoreExceptions
&&
827 "LandingPad should not be emitted when -fignore-exceptions are in "
829 EHScope
&innermostEHScope
= *EHStack
.find(EHStack
.getInnermostEHScope());
830 switch (innermostEHScope
.getKind()) {
831 case EHScope::Terminate
:
832 return getTerminateLandingPad();
835 case EHScope::Cleanup
:
836 case EHScope::Filter
:
837 if (llvm::BasicBlock
*lpad
= innermostEHScope
.getCachedLandingPad())
841 // Save the current IR generation state.
842 CGBuilderTy::InsertPoint savedIP
= Builder
.saveAndClearIP();
843 auto DL
= ApplyDebugLocation::CreateDefaultArtificial(*this, CurEHLocation
);
845 // Create and configure the landing pad.
846 llvm::BasicBlock
*lpad
= createBasicBlock("lpad");
849 llvm::LandingPadInst
*LPadInst
=
850 Builder
.CreateLandingPad(llvm::StructType::get(Int8PtrTy
, Int32Ty
), 0);
852 llvm::Value
*LPadExn
= Builder
.CreateExtractValue(LPadInst
, 0);
853 Builder
.CreateStore(LPadExn
, getExceptionSlot());
854 llvm::Value
*LPadSel
= Builder
.CreateExtractValue(LPadInst
, 1);
855 Builder
.CreateStore(LPadSel
, getEHSelectorSlot());
857 // Save the exception pointer. It's safe to use a single exception
858 // pointer per function because EH cleanups can never have nested
860 // Build the landingpad instruction.
862 // Accumulate all the handlers in scope.
863 bool hasCatchAll
= false;
864 bool hasCleanup
= false;
865 bool hasFilter
= false;
866 SmallVector
<llvm::Value
*, 4> filterTypes
;
867 llvm::SmallPtrSet
<llvm::Value
*, 4> catchTypes
;
868 for (EHScopeStack::iterator I
= EHStack
.begin(), E
= EHStack
.end(); I
!= E
;
871 switch (I
->getKind()) {
872 case EHScope::Cleanup
:
873 // If we have a cleanup, remember that.
874 hasCleanup
= (hasCleanup
|| cast
<EHCleanupScope
>(*I
).isEHCleanup());
877 case EHScope::Filter
: {
878 assert(I
.next() == EHStack
.end() && "EH filter is not end of EH stack");
879 assert(!hasCatchAll
&& "EH filter reached after catch-all");
881 // Filter scopes get added to the landingpad in weird ways.
882 EHFilterScope
&filter
= cast
<EHFilterScope
>(*I
);
885 // Add all the filter values.
886 for (unsigned i
= 0, e
= filter
.getNumFilters(); i
!= e
; ++i
)
887 filterTypes
.push_back(filter
.getFilter(i
));
891 case EHScope::Terminate
:
892 // Terminate scopes are basically catch-alls.
893 assert(!hasCatchAll
);
901 EHCatchScope
&catchScope
= cast
<EHCatchScope
>(*I
);
902 for (unsigned hi
= 0, he
= catchScope
.getNumHandlers(); hi
!= he
; ++hi
) {
903 EHCatchScope::Handler handler
= catchScope
.getHandler(hi
);
904 assert(handler
.Type
.Flags
== 0 &&
905 "landingpads do not support catch handler flags");
907 // If this is a catch-all, register that and abort.
908 if (!handler
.Type
.RTTI
) {
909 assert(!hasCatchAll
);
914 // Check whether we already have a handler for this type.
915 if (catchTypes
.insert(handler
.Type
.RTTI
).second
)
916 // If not, add it directly to the landingpad.
917 LPadInst
->addClause(handler
.Type
.RTTI
);
922 // If we have a catch-all, add null to the landingpad.
923 assert(!(hasCatchAll
&& hasFilter
));
925 LPadInst
->addClause(getCatchAllValue(*this));
927 // If we have an EH filter, we need to add those handlers in the
928 // right place in the landingpad, which is to say, at the end.
929 } else if (hasFilter
) {
930 // Create a filter expression: a constant array indicating which filter
931 // types there are. The personality routine only lands here if the filter
933 SmallVector
<llvm::Constant
*, 8> Filters
;
934 llvm::ArrayType
*AType
=
935 llvm::ArrayType::get(!filterTypes
.empty() ?
936 filterTypes
[0]->getType() : Int8PtrTy
,
939 for (unsigned i
= 0, e
= filterTypes
.size(); i
!= e
; ++i
)
940 Filters
.push_back(cast
<llvm::Constant
>(filterTypes
[i
]));
941 llvm::Constant
*FilterArray
= llvm::ConstantArray::get(AType
, Filters
);
942 LPadInst
->addClause(FilterArray
);
944 // Also check whether we need a cleanup.
946 LPadInst
->setCleanup(true);
948 // Otherwise, signal that we at least have cleanups.
949 } else if (hasCleanup
) {
950 LPadInst
->setCleanup(true);
953 assert((LPadInst
->getNumClauses() > 0 || LPadInst
->isCleanup()) &&
954 "landingpad instruction has no clauses!");
956 // Tell the backend how to generate the landing pad.
957 Builder
.CreateBr(getEHDispatchBlock(EHStack
.getInnermostEHScope()));
959 // Restore the old IR generation state.
960 Builder
.restoreIP(savedIP
);
965 static void emitCatchPadBlock(CodeGenFunction
&CGF
, EHCatchScope
&CatchScope
) {
966 llvm::BasicBlock
*DispatchBlock
= CatchScope
.getCachedEHDispatchBlock();
967 assert(DispatchBlock
);
969 CGBuilderTy::InsertPoint SavedIP
= CGF
.Builder
.saveIP();
970 CGF
.EmitBlockAfterUses(DispatchBlock
);
972 llvm::Value
*ParentPad
= CGF
.CurrentFuncletPad
;
974 ParentPad
= llvm::ConstantTokenNone::get(CGF
.getLLVMContext());
975 llvm::BasicBlock
*UnwindBB
=
976 CGF
.getEHDispatchBlock(CatchScope
.getEnclosingEHScope());
978 unsigned NumHandlers
= CatchScope
.getNumHandlers();
979 llvm::CatchSwitchInst
*CatchSwitch
=
980 CGF
.Builder
.CreateCatchSwitch(ParentPad
, UnwindBB
, NumHandlers
);
982 // Test against each of the exception types we claim to catch.
983 for (unsigned I
= 0; I
< NumHandlers
; ++I
) {
984 const EHCatchScope::Handler
&Handler
= CatchScope
.getHandler(I
);
986 CatchTypeInfo TypeInfo
= Handler
.Type
;
988 TypeInfo
.RTTI
= llvm::Constant::getNullValue(CGF
.VoidPtrTy
);
990 CGF
.Builder
.SetInsertPoint(Handler
.Block
);
992 if (EHPersonality::get(CGF
).isMSVCXXPersonality()) {
993 CGF
.Builder
.CreateCatchPad(
994 CatchSwitch
, {TypeInfo
.RTTI
, CGF
.Builder
.getInt32(TypeInfo
.Flags
),
995 llvm::Constant::getNullValue(CGF
.VoidPtrTy
)});
997 CGF
.Builder
.CreateCatchPad(CatchSwitch
, {TypeInfo
.RTTI
});
1000 CatchSwitch
->addHandler(Handler
.Block
);
1002 CGF
.Builder
.restoreIP(SavedIP
);
1005 // Wasm uses Windows-style EH instructions, but it merges all catch clauses into
1006 // one big catchpad, within which we use Itanium's landingpad-style selector
1007 // comparison instructions.
1008 static void emitWasmCatchPadBlock(CodeGenFunction
&CGF
,
1009 EHCatchScope
&CatchScope
) {
1010 llvm::BasicBlock
*DispatchBlock
= CatchScope
.getCachedEHDispatchBlock();
1011 assert(DispatchBlock
);
1013 CGBuilderTy::InsertPoint SavedIP
= CGF
.Builder
.saveIP();
1014 CGF
.EmitBlockAfterUses(DispatchBlock
);
1016 llvm::Value
*ParentPad
= CGF
.CurrentFuncletPad
;
1018 ParentPad
= llvm::ConstantTokenNone::get(CGF
.getLLVMContext());
1019 llvm::BasicBlock
*UnwindBB
=
1020 CGF
.getEHDispatchBlock(CatchScope
.getEnclosingEHScope());
1022 unsigned NumHandlers
= CatchScope
.getNumHandlers();
1023 llvm::CatchSwitchInst
*CatchSwitch
=
1024 CGF
.Builder
.CreateCatchSwitch(ParentPad
, UnwindBB
, NumHandlers
);
1026 // We don't use a landingpad instruction, so generate intrinsic calls to
1027 // provide exception and selector values.
1028 llvm::BasicBlock
*WasmCatchStartBlock
= CGF
.createBasicBlock("catch.start");
1029 CatchSwitch
->addHandler(WasmCatchStartBlock
);
1030 CGF
.EmitBlockAfterUses(WasmCatchStartBlock
);
1032 // Create a catchpad instruction.
1033 SmallVector
<llvm::Value
*, 4> CatchTypes
;
1034 for (unsigned I
= 0, E
= NumHandlers
; I
< E
; ++I
) {
1035 const EHCatchScope::Handler
&Handler
= CatchScope
.getHandler(I
);
1036 CatchTypeInfo TypeInfo
= Handler
.Type
;
1038 TypeInfo
.RTTI
= llvm::Constant::getNullValue(CGF
.VoidPtrTy
);
1039 CatchTypes
.push_back(TypeInfo
.RTTI
);
1041 auto *CPI
= CGF
.Builder
.CreateCatchPad(CatchSwitch
, CatchTypes
);
1043 // Create calls to wasm.get.exception and wasm.get.ehselector intrinsics.
1044 // Before they are lowered appropriately later, they provide values for the
1045 // exception and selector.
1046 llvm::Function
*GetExnFn
=
1047 CGF
.CGM
.getIntrinsic(llvm::Intrinsic::wasm_get_exception
);
1048 llvm::Function
*GetSelectorFn
=
1049 CGF
.CGM
.getIntrinsic(llvm::Intrinsic::wasm_get_ehselector
);
1050 llvm::CallInst
*Exn
= CGF
.Builder
.CreateCall(GetExnFn
, CPI
);
1051 CGF
.Builder
.CreateStore(Exn
, CGF
.getExceptionSlot());
1052 llvm::CallInst
*Selector
= CGF
.Builder
.CreateCall(GetSelectorFn
, CPI
);
1054 llvm::Function
*TypeIDFn
=
1055 CGF
.CGM
.getIntrinsic(llvm::Intrinsic::eh_typeid_for
, {CGF
.VoidPtrTy
});
1057 // If there's only a single catch-all, branch directly to its handler.
1058 if (CatchScope
.getNumHandlers() == 1 &&
1059 CatchScope
.getHandler(0).isCatchAll()) {
1060 CGF
.Builder
.CreateBr(CatchScope
.getHandler(0).Block
);
1061 CGF
.Builder
.restoreIP(SavedIP
);
1065 // Test against each of the exception types we claim to catch.
1066 for (unsigned I
= 0, E
= NumHandlers
;; ++I
) {
1067 assert(I
< E
&& "ran off end of handlers!");
1068 const EHCatchScope::Handler
&Handler
= CatchScope
.getHandler(I
);
1069 CatchTypeInfo TypeInfo
= Handler
.Type
;
1071 TypeInfo
.RTTI
= llvm::Constant::getNullValue(CGF
.VoidPtrTy
);
1073 // Figure out the next block.
1074 llvm::BasicBlock
*NextBlock
;
1076 bool EmitNextBlock
= false, NextIsEnd
= false;
1078 // If this is the last handler, we're at the end, and the next block is a
1079 // block that contains a call to the rethrow function, so we can unwind to
1080 // the enclosing EH scope. The call itself will be generated later.
1082 NextBlock
= CGF
.createBasicBlock("rethrow");
1083 EmitNextBlock
= true;
1086 // If the next handler is a catch-all, we're at the end, and the
1087 // next block is that handler.
1088 } else if (CatchScope
.getHandler(I
+ 1).isCatchAll()) {
1089 NextBlock
= CatchScope
.getHandler(I
+ 1).Block
;
1092 // Otherwise, we're not at the end and we need a new block.
1094 NextBlock
= CGF
.createBasicBlock("catch.fallthrough");
1095 EmitNextBlock
= true;
1098 // Figure out the catch type's index in the LSDA's type table.
1099 llvm::CallInst
*TypeIndex
= CGF
.Builder
.CreateCall(TypeIDFn
, TypeInfo
.RTTI
);
1100 TypeIndex
->setDoesNotThrow();
1102 llvm::Value
*MatchesTypeIndex
=
1103 CGF
.Builder
.CreateICmpEQ(Selector
, TypeIndex
, "matches");
1104 CGF
.Builder
.CreateCondBr(MatchesTypeIndex
, Handler
.Block
, NextBlock
);
1107 CGF
.EmitBlock(NextBlock
);
1112 CGF
.Builder
.restoreIP(SavedIP
);
1115 /// Emit the structure of the dispatch block for the given catch scope.
1116 /// It is an invariant that the dispatch block already exists.
1117 static void emitCatchDispatchBlock(CodeGenFunction
&CGF
,
1118 EHCatchScope
&catchScope
) {
1119 if (EHPersonality::get(CGF
).isWasmPersonality())
1120 return emitWasmCatchPadBlock(CGF
, catchScope
);
1121 if (EHPersonality::get(CGF
).usesFuncletPads())
1122 return emitCatchPadBlock(CGF
, catchScope
);
1124 llvm::BasicBlock
*dispatchBlock
= catchScope
.getCachedEHDispatchBlock();
1125 assert(dispatchBlock
);
1127 // If there's only a single catch-all, getEHDispatchBlock returned
1128 // that catch-all as the dispatch block.
1129 if (catchScope
.getNumHandlers() == 1 &&
1130 catchScope
.getHandler(0).isCatchAll()) {
1131 assert(dispatchBlock
== catchScope
.getHandler(0).Block
);
1135 CGBuilderTy::InsertPoint savedIP
= CGF
.Builder
.saveIP();
1136 CGF
.EmitBlockAfterUses(dispatchBlock
);
1138 // Select the right handler.
1139 llvm::Function
*llvm_eh_typeid_for
=
1140 CGF
.CGM
.getIntrinsic(llvm::Intrinsic::eh_typeid_for
, {CGF
.VoidPtrTy
});
1141 llvm::Type
*argTy
= llvm_eh_typeid_for
->getArg(0)->getType();
1142 LangAS globAS
= CGF
.CGM
.GetGlobalVarAddressSpace(nullptr);
1144 // Load the selector value.
1145 llvm::Value
*selector
= CGF
.getSelectorFromSlot();
1147 // Test against each of the exception types we claim to catch.
1148 for (unsigned i
= 0, e
= catchScope
.getNumHandlers(); ; ++i
) {
1149 assert(i
< e
&& "ran off end of handlers!");
1150 const EHCatchScope::Handler
&handler
= catchScope
.getHandler(i
);
1152 llvm::Value
*typeValue
= handler
.Type
.RTTI
;
1153 assert(handler
.Type
.Flags
== 0 &&
1154 "landingpads do not support catch handler flags");
1155 assert(typeValue
&& "fell into catch-all case!");
1156 // With opaque ptrs, only the address space can be a mismatch.
1157 if (typeValue
->getType() != argTy
)
1159 CGF
.getTargetHooks().performAddrSpaceCast(CGF
, typeValue
, globAS
,
1160 LangAS::Default
, argTy
);
1162 // Figure out the next block.
1164 llvm::BasicBlock
*nextBlock
;
1166 // If this is the last handler, we're at the end, and the next
1167 // block is the block for the enclosing EH scope.
1169 nextBlock
= CGF
.getEHDispatchBlock(catchScope
.getEnclosingEHScope());
1172 // If the next handler is a catch-all, we're at the end, and the
1173 // next block is that handler.
1174 } else if (catchScope
.getHandler(i
+1).isCatchAll()) {
1175 nextBlock
= catchScope
.getHandler(i
+1).Block
;
1178 // Otherwise, we're not at the end and we need a new block.
1180 nextBlock
= CGF
.createBasicBlock("catch.fallthrough");
1184 // Figure out the catch type's index in the LSDA's type table.
1185 llvm::CallInst
*typeIndex
=
1186 CGF
.Builder
.CreateCall(llvm_eh_typeid_for
, typeValue
);
1187 typeIndex
->setDoesNotThrow();
1189 llvm::Value
*matchesTypeIndex
=
1190 CGF
.Builder
.CreateICmpEQ(selector
, typeIndex
, "matches");
1191 CGF
.Builder
.CreateCondBr(matchesTypeIndex
, handler
.Block
, nextBlock
);
1193 // If the next handler is a catch-all, we're completely done.
1195 CGF
.Builder
.restoreIP(savedIP
);
1198 // Otherwise we need to emit and continue at that block.
1199 CGF
.EmitBlock(nextBlock
);
1203 void CodeGenFunction::popCatchScope() {
1204 EHCatchScope
&catchScope
= cast
<EHCatchScope
>(*EHStack
.begin());
1205 if (catchScope
.hasEHBranches())
1206 emitCatchDispatchBlock(*this, catchScope
);
1210 void CodeGenFunction::ExitCXXTryStmt(const CXXTryStmt
&S
, bool IsFnTryBlock
) {
1211 unsigned NumHandlers
= S
.getNumHandlers();
1212 EHCatchScope
&CatchScope
= cast
<EHCatchScope
>(*EHStack
.begin());
1213 assert(CatchScope
.getNumHandlers() == NumHandlers
);
1214 llvm::BasicBlock
*DispatchBlock
= CatchScope
.getCachedEHDispatchBlock();
1216 // If the catch was not required, bail out now.
1217 if (!CatchScope
.hasEHBranches()) {
1218 CatchScope
.clearHandlerBlocks();
1223 // Emit the structure of the EH dispatch for this catch.
1224 emitCatchDispatchBlock(*this, CatchScope
);
1226 // Copy the handler blocks off before we pop the EH stack. Emitting
1227 // the handlers might scribble on this memory.
1228 SmallVector
<EHCatchScope::Handler
, 8> Handlers(
1229 CatchScope
.begin(), CatchScope
.begin() + NumHandlers
);
1233 // The fall-through block.
1234 llvm::BasicBlock
*ContBB
= createBasicBlock("try.cont");
1236 // We just emitted the body of the try; jump to the continue block.
1237 if (HaveInsertPoint())
1238 Builder
.CreateBr(ContBB
);
1240 // Determine if we need an implicit rethrow for all these catch handlers;
1241 // see the comment below.
1242 bool doImplicitRethrow
= false;
1244 doImplicitRethrow
= isa
<CXXDestructorDecl
>(CurCodeDecl
) ||
1245 isa
<CXXConstructorDecl
>(CurCodeDecl
);
1247 // Wasm uses Windows-style EH instructions, but merges all catch clauses into
1248 // one big catchpad. So we save the old funclet pad here before we traverse
1249 // each catch handler.
1250 SaveAndRestore
RestoreCurrentFuncletPad(CurrentFuncletPad
);
1251 llvm::BasicBlock
*WasmCatchStartBlock
= nullptr;
1252 if (EHPersonality::get(*this).isWasmPersonality()) {
1254 cast
<llvm::CatchSwitchInst
>(DispatchBlock
->getFirstNonPHI());
1255 WasmCatchStartBlock
= CatchSwitch
->hasUnwindDest()
1256 ? CatchSwitch
->getSuccessor(1)
1257 : CatchSwitch
->getSuccessor(0);
1258 auto *CPI
= cast
<llvm::CatchPadInst
>(WasmCatchStartBlock
->getFirstNonPHI());
1259 CurrentFuncletPad
= CPI
;
1262 // Perversely, we emit the handlers backwards precisely because we
1263 // want them to appear in source order. In all of these cases, the
1264 // catch block will have exactly one predecessor, which will be a
1265 // particular block in the catch dispatch. However, in the case of
1266 // a catch-all, one of the dispatch blocks will branch to two
1267 // different handlers, and EmitBlockAfterUses will cause the second
1268 // handler to be moved before the first.
1269 bool HasCatchAll
= false;
1270 for (unsigned I
= NumHandlers
; I
!= 0; --I
) {
1271 HasCatchAll
|= Handlers
[I
- 1].isCatchAll();
1272 llvm::BasicBlock
*CatchBlock
= Handlers
[I
-1].Block
;
1273 EmitBlockAfterUses(CatchBlock
);
1275 // Catch the exception if this isn't a catch-all.
1276 const CXXCatchStmt
*C
= S
.getHandler(I
-1);
1278 // Enter a cleanup scope, including the catch variable and the
1280 RunCleanupsScope
CatchScope(*this);
1282 // Initialize the catch variable and set up the cleanups.
1283 SaveAndRestore
RestoreCurrentFuncletPad(CurrentFuncletPad
);
1284 CGM
.getCXXABI().emitBeginCatch(*this, C
);
1286 // Emit the PGO counter increment.
1287 incrementProfileCounter(C
);
1289 // Perform the body of the catch.
1290 EmitStmt(C
->getHandlerBlock());
1292 // [except.handle]p11:
1293 // The currently handled exception is rethrown if control
1294 // reaches the end of a handler of the function-try-block of a
1295 // constructor or destructor.
1297 // It is important that we only do this on fallthrough and not on
1298 // return. Note that it's illegal to put a return in a
1299 // constructor function-try-block's catch handler (p14), so this
1300 // really only applies to destructors.
1301 if (doImplicitRethrow
&& HaveInsertPoint()) {
1302 CGM
.getCXXABI().emitRethrow(*this, /*isNoReturn*/false);
1303 Builder
.CreateUnreachable();
1304 Builder
.ClearInsertionPoint();
1307 // Fall out through the catch cleanups.
1308 CatchScope
.ForceCleanup();
1310 // Branch out of the try.
1311 if (HaveInsertPoint())
1312 Builder
.CreateBr(ContBB
);
1315 // Because in wasm we merge all catch clauses into one big catchpad, in case
1316 // none of the types in catch handlers matches after we test against each of
1317 // them, we should unwind to the next EH enclosing scope. We generate a call
1318 // to rethrow function here to do that.
1319 if (EHPersonality::get(*this).isWasmPersonality() && !HasCatchAll
) {
1320 assert(WasmCatchStartBlock
);
1321 // Navigate for the "rethrow" block we created in emitWasmCatchPadBlock().
1322 // Wasm uses landingpad-style conditional branches to compare selectors, so
1323 // we follow the false destination for each of the cond branches to reach
1324 // the rethrow block.
1325 llvm::BasicBlock
*RethrowBlock
= WasmCatchStartBlock
;
1326 while (llvm::Instruction
*TI
= RethrowBlock
->getTerminator()) {
1327 auto *BI
= cast
<llvm::BranchInst
>(TI
);
1328 assert(BI
->isConditional());
1329 RethrowBlock
= BI
->getSuccessor(1);
1331 assert(RethrowBlock
!= WasmCatchStartBlock
&& RethrowBlock
->empty());
1332 Builder
.SetInsertPoint(RethrowBlock
);
1333 llvm::Function
*RethrowInCatchFn
=
1334 CGM
.getIntrinsic(llvm::Intrinsic::wasm_rethrow
);
1335 EmitNoreturnRuntimeCallOrInvoke(RethrowInCatchFn
, {});
1339 incrementProfileCounter(&S
);
1343 struct CallEndCatchForFinally final
: EHScopeStack::Cleanup
{
1344 llvm::Value
*ForEHVar
;
1345 llvm::FunctionCallee EndCatchFn
;
1346 CallEndCatchForFinally(llvm::Value
*ForEHVar
,
1347 llvm::FunctionCallee EndCatchFn
)
1348 : ForEHVar(ForEHVar
), EndCatchFn(EndCatchFn
) {}
1350 void Emit(CodeGenFunction
&CGF
, Flags flags
) override
{
1351 llvm::BasicBlock
*EndCatchBB
= CGF
.createBasicBlock("finally.endcatch");
1352 llvm::BasicBlock
*CleanupContBB
=
1353 CGF
.createBasicBlock("finally.cleanup.cont");
1355 llvm::Value
*ShouldEndCatch
=
1356 CGF
.Builder
.CreateFlagLoad(ForEHVar
, "finally.endcatch");
1357 CGF
.Builder
.CreateCondBr(ShouldEndCatch
, EndCatchBB
, CleanupContBB
);
1358 CGF
.EmitBlock(EndCatchBB
);
1359 CGF
.EmitRuntimeCallOrInvoke(EndCatchFn
); // catch-all, so might throw
1360 CGF
.EmitBlock(CleanupContBB
);
1364 struct PerformFinally final
: EHScopeStack::Cleanup
{
1366 llvm::Value
*ForEHVar
;
1367 llvm::FunctionCallee EndCatchFn
;
1368 llvm::FunctionCallee RethrowFn
;
1369 llvm::Value
*SavedExnVar
;
1371 PerformFinally(const Stmt
*Body
, llvm::Value
*ForEHVar
,
1372 llvm::FunctionCallee EndCatchFn
,
1373 llvm::FunctionCallee RethrowFn
, llvm::Value
*SavedExnVar
)
1374 : Body(Body
), ForEHVar(ForEHVar
), EndCatchFn(EndCatchFn
),
1375 RethrowFn(RethrowFn
), SavedExnVar(SavedExnVar
) {}
1377 void Emit(CodeGenFunction
&CGF
, Flags flags
) override
{
1378 // Enter a cleanup to call the end-catch function if one was provided.
1380 CGF
.EHStack
.pushCleanup
<CallEndCatchForFinally
>(NormalAndEHCleanup
,
1381 ForEHVar
, EndCatchFn
);
1383 // Save the current cleanup destination in case there are
1384 // cleanups in the finally block.
1385 llvm::Value
*SavedCleanupDest
=
1386 CGF
.Builder
.CreateLoad(CGF
.getNormalCleanupDestSlot(),
1387 "cleanup.dest.saved");
1389 // Emit the finally block.
1392 // If the end of the finally is reachable, check whether this was
1393 // for EH. If so, rethrow.
1394 if (CGF
.HaveInsertPoint()) {
1395 llvm::BasicBlock
*RethrowBB
= CGF
.createBasicBlock("finally.rethrow");
1396 llvm::BasicBlock
*ContBB
= CGF
.createBasicBlock("finally.cont");
1398 llvm::Value
*ShouldRethrow
=
1399 CGF
.Builder
.CreateFlagLoad(ForEHVar
, "finally.shouldthrow");
1400 CGF
.Builder
.CreateCondBr(ShouldRethrow
, RethrowBB
, ContBB
);
1402 CGF
.EmitBlock(RethrowBB
);
1404 CGF
.EmitRuntimeCallOrInvoke(RethrowFn
,
1405 CGF
.Builder
.CreateAlignedLoad(CGF
.Int8PtrTy
, SavedExnVar
,
1406 CGF
.getPointerAlign()));
1408 CGF
.EmitRuntimeCallOrInvoke(RethrowFn
);
1410 CGF
.Builder
.CreateUnreachable();
1412 CGF
.EmitBlock(ContBB
);
1414 // Restore the cleanup destination.
1415 CGF
.Builder
.CreateStore(SavedCleanupDest
,
1416 CGF
.getNormalCleanupDestSlot());
1419 // Leave the end-catch cleanup. As an optimization, pretend that
1420 // the fallthrough path was inaccessible; we've dynamically proven
1421 // that we're not in the EH case along that path.
1423 CGBuilderTy::InsertPoint SavedIP
= CGF
.Builder
.saveAndClearIP();
1424 CGF
.PopCleanupBlock();
1425 CGF
.Builder
.restoreIP(SavedIP
);
1428 // Now make sure we actually have an insertion point or the
1429 // cleanup gods will hate us.
1430 CGF
.EnsureInsertPoint();
1433 } // end anonymous namespace
1435 /// Enters a finally block for an implementation using zero-cost
1436 /// exceptions. This is mostly general, but hard-codes some
1437 /// language/ABI-specific behavior in the catch-all sections.
1438 void CodeGenFunction::FinallyInfo::enter(CodeGenFunction
&CGF
, const Stmt
*body
,
1439 llvm::FunctionCallee beginCatchFn
,
1440 llvm::FunctionCallee endCatchFn
,
1441 llvm::FunctionCallee rethrowFn
) {
1442 assert((!!beginCatchFn
) == (!!endCatchFn
) &&
1443 "begin/end catch functions not paired");
1444 assert(rethrowFn
&& "rethrow function is required");
1446 BeginCatchFn
= beginCatchFn
;
1448 // The rethrow function has one of the following two types:
1451 // In the latter case we need to pass it the exception object.
1452 // But we can't use the exception slot because the @finally might
1453 // have a landing pad (which would overwrite the exception slot).
1454 llvm::FunctionType
*rethrowFnTy
= rethrowFn
.getFunctionType();
1455 SavedExnVar
= nullptr;
1456 if (rethrowFnTy
->getNumParams())
1457 SavedExnVar
= CGF
.CreateTempAlloca(CGF
.Int8PtrTy
, "finally.exn");
1459 // A finally block is a statement which must be executed on any edge
1460 // out of a given scope. Unlike a cleanup, the finally block may
1461 // contain arbitrary control flow leading out of itself. In
1462 // addition, finally blocks should always be executed, even if there
1463 // are no catch handlers higher on the stack. Therefore, we
1464 // surround the protected scope with a combination of a normal
1465 // cleanup (to catch attempts to break out of the block via normal
1466 // control flow) and an EH catch-all (semantically "outside" any try
1467 // statement to which the finally block might have been attached).
1468 // The finally block itself is generated in the context of a cleanup
1469 // which conditionally leaves the catch-all.
1471 // Jump destination for performing the finally block on an exception
1472 // edge. We'll never actually reach this block, so unreachable is
1474 RethrowDest
= CGF
.getJumpDestInCurrentScope(CGF
.getUnreachableBlock());
1476 // Whether the finally block is being executed for EH purposes.
1477 ForEHVar
= CGF
.CreateTempAlloca(CGF
.Builder
.getInt1Ty(), "finally.for-eh");
1478 CGF
.Builder
.CreateFlagStore(false, ForEHVar
);
1480 // Enter a normal cleanup which will perform the @finally block.
1481 CGF
.EHStack
.pushCleanup
<PerformFinally
>(NormalCleanup
, body
,
1482 ForEHVar
, endCatchFn
,
1483 rethrowFn
, SavedExnVar
);
1485 // Enter a catch-all scope.
1486 llvm::BasicBlock
*catchBB
= CGF
.createBasicBlock("finally.catchall");
1487 EHCatchScope
*catchScope
= CGF
.EHStack
.pushCatch(1);
1488 catchScope
->setCatchAllHandler(0, catchBB
);
1491 void CodeGenFunction::FinallyInfo::exit(CodeGenFunction
&CGF
) {
1492 // Leave the finally catch-all.
1493 EHCatchScope
&catchScope
= cast
<EHCatchScope
>(*CGF
.EHStack
.begin());
1494 llvm::BasicBlock
*catchBB
= catchScope
.getHandler(0).Block
;
1496 CGF
.popCatchScope();
1498 // If there are any references to the catch-all block, emit it.
1499 if (catchBB
->use_empty()) {
1502 CGBuilderTy::InsertPoint savedIP
= CGF
.Builder
.saveAndClearIP();
1503 CGF
.EmitBlock(catchBB
);
1505 llvm::Value
*exn
= nullptr;
1507 // If there's a begin-catch function, call it.
1509 exn
= CGF
.getExceptionFromSlot();
1510 CGF
.EmitNounwindRuntimeCall(BeginCatchFn
, exn
);
1513 // If we need to remember the exception pointer to rethrow later, do so.
1515 if (!exn
) exn
= CGF
.getExceptionFromSlot();
1516 CGF
.Builder
.CreateAlignedStore(exn
, SavedExnVar
, CGF
.getPointerAlign());
1519 // Tell the cleanups in the finally block that we're do this for EH.
1520 CGF
.Builder
.CreateFlagStore(true, ForEHVar
);
1522 // Thread a jump through the finally cleanup.
1523 CGF
.EmitBranchThroughCleanup(RethrowDest
);
1525 CGF
.Builder
.restoreIP(savedIP
);
1528 // Finally, leave the @finally cleanup.
1529 CGF
.PopCleanupBlock();
1532 llvm::BasicBlock
*CodeGenFunction::getTerminateLandingPad() {
1533 if (TerminateLandingPad
)
1534 return TerminateLandingPad
;
1536 CGBuilderTy::InsertPoint SavedIP
= Builder
.saveAndClearIP();
1538 // This will get inserted at the end of the function.
1539 TerminateLandingPad
= createBasicBlock("terminate.lpad");
1540 Builder
.SetInsertPoint(TerminateLandingPad
);
1542 // Tell the backend that this is a landing pad.
1543 const EHPersonality
&Personality
= EHPersonality::get(*this);
1545 if (!CurFn
->hasPersonalityFn())
1546 CurFn
->setPersonalityFn(getOpaquePersonalityFn(CGM
, Personality
));
1548 llvm::LandingPadInst
*LPadInst
=
1549 Builder
.CreateLandingPad(llvm::StructType::get(Int8PtrTy
, Int32Ty
), 0);
1550 LPadInst
->addClause(getCatchAllValue(*this));
1552 llvm::Value
*Exn
= nullptr;
1553 if (getLangOpts().CPlusPlus
)
1554 Exn
= Builder
.CreateExtractValue(LPadInst
, 0);
1555 llvm::CallInst
*terminateCall
=
1556 CGM
.getCXXABI().emitTerminateForUnexpectedException(*this, Exn
);
1557 terminateCall
->setDoesNotReturn();
1558 Builder
.CreateUnreachable();
1560 // Restore the saved insertion state.
1561 Builder
.restoreIP(SavedIP
);
1563 return TerminateLandingPad
;
1566 llvm::BasicBlock
*CodeGenFunction::getTerminateHandler() {
1567 if (TerminateHandler
)
1568 return TerminateHandler
;
1570 // Set up the terminate handler. This block is inserted at the very
1571 // end of the function by FinishFunction.
1572 TerminateHandler
= createBasicBlock("terminate.handler");
1573 CGBuilderTy::InsertPoint SavedIP
= Builder
.saveAndClearIP();
1574 Builder
.SetInsertPoint(TerminateHandler
);
1576 llvm::Value
*Exn
= nullptr;
1577 if (getLangOpts().CPlusPlus
)
1578 Exn
= getExceptionFromSlot();
1579 llvm::CallInst
*terminateCall
=
1580 CGM
.getCXXABI().emitTerminateForUnexpectedException(*this, Exn
);
1581 terminateCall
->setDoesNotReturn();
1582 Builder
.CreateUnreachable();
1584 // Restore the saved insertion state.
1585 Builder
.restoreIP(SavedIP
);
1587 return TerminateHandler
;
1590 llvm::BasicBlock
*CodeGenFunction::getTerminateFunclet() {
1591 assert(EHPersonality::get(*this).usesFuncletPads() &&
1592 "use getTerminateLandingPad for non-funclet EH");
1594 llvm::BasicBlock
*&TerminateFunclet
= TerminateFunclets
[CurrentFuncletPad
];
1595 if (TerminateFunclet
)
1596 return TerminateFunclet
;
1598 CGBuilderTy::InsertPoint SavedIP
= Builder
.saveAndClearIP();
1600 // Set up the terminate handler. This block is inserted at the very
1601 // end of the function by FinishFunction.
1602 TerminateFunclet
= createBasicBlock("terminate.handler");
1603 Builder
.SetInsertPoint(TerminateFunclet
);
1605 // Create the cleanuppad using the current parent pad as its token. Use 'none'
1606 // if this is a top-level terminate scope, which is the common case.
1607 SaveAndRestore
RestoreCurrentFuncletPad(CurrentFuncletPad
);
1608 llvm::Value
*ParentPad
= CurrentFuncletPad
;
1610 ParentPad
= llvm::ConstantTokenNone::get(CGM
.getLLVMContext());
1611 CurrentFuncletPad
= Builder
.CreateCleanupPad(ParentPad
);
1613 // Emit the __std_terminate call.
1614 llvm::CallInst
*terminateCall
=
1615 CGM
.getCXXABI().emitTerminateForUnexpectedException(*this, nullptr);
1616 terminateCall
->setDoesNotReturn();
1617 Builder
.CreateUnreachable();
1619 // Restore the saved insertion state.
1620 Builder
.restoreIP(SavedIP
);
1622 return TerminateFunclet
;
1625 llvm::BasicBlock
*CodeGenFunction::getEHResumeBlock(bool isCleanup
) {
1626 if (EHResumeBlock
) return EHResumeBlock
;
1628 CGBuilderTy::InsertPoint SavedIP
= Builder
.saveIP();
1630 // We emit a jump to a notional label at the outermost unwind state.
1631 EHResumeBlock
= createBasicBlock("eh.resume");
1632 Builder
.SetInsertPoint(EHResumeBlock
);
1634 const EHPersonality
&Personality
= EHPersonality::get(*this);
1636 // This can always be a call because we necessarily didn't find
1637 // anything on the EH stack which needs our help.
1638 const char *RethrowName
= Personality
.CatchallRethrowFn
;
1639 if (RethrowName
!= nullptr && !isCleanup
) {
1640 EmitRuntimeCall(getCatchallRethrowFn(CGM
, RethrowName
),
1641 getExceptionFromSlot())->setDoesNotReturn();
1642 Builder
.CreateUnreachable();
1643 Builder
.restoreIP(SavedIP
);
1644 return EHResumeBlock
;
1647 // Recreate the landingpad's return value for the 'resume' instruction.
1648 llvm::Value
*Exn
= getExceptionFromSlot();
1649 llvm::Value
*Sel
= getSelectorFromSlot();
1651 llvm::Type
*LPadType
= llvm::StructType::get(Exn
->getType(), Sel
->getType());
1652 llvm::Value
*LPadVal
= llvm::PoisonValue::get(LPadType
);
1653 LPadVal
= Builder
.CreateInsertValue(LPadVal
, Exn
, 0, "lpad.val");
1654 LPadVal
= Builder
.CreateInsertValue(LPadVal
, Sel
, 1, "lpad.val");
1656 Builder
.CreateResume(LPadVal
);
1657 Builder
.restoreIP(SavedIP
);
1658 return EHResumeBlock
;
1661 void CodeGenFunction::EmitSEHTryStmt(const SEHTryStmt
&S
) {
1664 JumpDest TryExit
= getJumpDestInCurrentScope("__try.__leave");
1666 SEHTryEpilogueStack
.push_back(&TryExit
);
1668 llvm::BasicBlock
*TryBB
= nullptr;
1669 // IsEHa: emit an invoke to _seh_try_begin() runtime for -EHa
1670 if (getLangOpts().EHAsynch
) {
1671 EmitRuntimeCallOrInvoke(getSehTryBeginFn(CGM
));
1672 if (SEHTryEpilogueStack
.size() == 1) // outermost only
1673 TryBB
= Builder
.GetInsertBlock();
1676 EmitStmt(S
.getTryBlock());
1678 // Volatilize all blocks in Try, till current insert point
1680 llvm::SmallPtrSet
<llvm::BasicBlock
*, 10> Visited
;
1681 VolatilizeTryBlocks(TryBB
, Visited
);
1684 SEHTryEpilogueStack
.pop_back();
1686 if (!TryExit
.getBlock()->use_empty())
1687 EmitBlock(TryExit
.getBlock(), /*IsFinished=*/true);
1689 delete TryExit
.getBlock();
1694 // Recursively walk through blocks in a _try
1695 // and make all memory instructions volatile
1696 void CodeGenFunction::VolatilizeTryBlocks(
1697 llvm::BasicBlock
*BB
, llvm::SmallPtrSet
<llvm::BasicBlock
*, 10> &V
) {
1698 if (BB
== SEHTryEpilogueStack
.back()->getBlock() /* end of Try */ ||
1699 !V
.insert(BB
).second
/* already visited */ ||
1700 !BB
->getParent() /* not emitted */ || BB
->empty())
1703 if (!BB
->isEHPad()) {
1704 for (llvm::BasicBlock::iterator J
= BB
->begin(), JE
= BB
->end(); J
!= JE
;
1706 if (auto LI
= dyn_cast
<llvm::LoadInst
>(J
)) {
1707 LI
->setVolatile(true);
1708 } else if (auto SI
= dyn_cast
<llvm::StoreInst
>(J
)) {
1709 SI
->setVolatile(true);
1710 } else if (auto* MCI
= dyn_cast
<llvm::MemIntrinsic
>(J
)) {
1711 MCI
->setVolatile(llvm::ConstantInt::get(Builder
.getInt1Ty(), 1));
1715 const llvm::Instruction
*TI
= BB
->getTerminator();
1717 unsigned N
= TI
->getNumSuccessors();
1718 for (unsigned I
= 0; I
< N
; I
++)
1719 VolatilizeTryBlocks(TI
->getSuccessor(I
), V
);
1724 struct PerformSEHFinally final
: EHScopeStack::Cleanup
{
1725 llvm::Function
*OutlinedFinally
;
1726 PerformSEHFinally(llvm::Function
*OutlinedFinally
)
1727 : OutlinedFinally(OutlinedFinally
) {}
1729 void Emit(CodeGenFunction
&CGF
, Flags F
) override
{
1730 ASTContext
&Context
= CGF
.getContext();
1731 CodeGenModule
&CGM
= CGF
.CGM
;
1735 // Compute the two argument values.
1736 QualType ArgTys
[2] = {Context
.UnsignedCharTy
, Context
.VoidPtrTy
};
1737 llvm::Value
*FP
= nullptr;
1738 // If CFG.IsOutlinedSEHHelper is true, then we are within a finally block.
1739 if (CGF
.IsOutlinedSEHHelper
) {
1740 FP
= &CGF
.CurFn
->arg_begin()[1];
1742 llvm::Function
*LocalAddrFn
=
1743 CGM
.getIntrinsic(llvm::Intrinsic::localaddress
);
1744 FP
= CGF
.Builder
.CreateCall(LocalAddrFn
);
1747 llvm::Value
*IsForEH
=
1748 llvm::ConstantInt::get(CGF
.ConvertType(ArgTys
[0]), F
.isForEHCleanup());
1750 // Except _leave and fall-through at the end, all other exits in a _try
1751 // (return/goto/continue/break) are considered as abnormal terminations
1752 // since _leave/fall-through is always Indexed 0,
1753 // just use NormalCleanupDestSlot (>= 1 for goto/return/..),
1754 // as 1st Arg to indicate abnormal termination
1755 if (!F
.isForEHCleanup() && F
.hasExitSwitch()) {
1756 Address Addr
= CGF
.getNormalCleanupDestSlot();
1757 llvm::Value
*Load
= CGF
.Builder
.CreateLoad(Addr
, "cleanup.dest");
1758 llvm::Value
*Zero
= llvm::Constant::getNullValue(CGM
.Int32Ty
);
1759 IsForEH
= CGF
.Builder
.CreateICmpNE(Load
, Zero
);
1762 Args
.add(RValue::get(IsForEH
), ArgTys
[0]);
1763 Args
.add(RValue::get(FP
), ArgTys
[1]);
1765 // Arrange a two-arg function info and type.
1766 const CGFunctionInfo
&FnInfo
=
1767 CGM
.getTypes().arrangeBuiltinFunctionCall(Context
.VoidTy
, Args
);
1769 auto Callee
= CGCallee::forDirect(OutlinedFinally
);
1770 CGF
.EmitCall(FnInfo
, Callee
, ReturnValueSlot(), Args
);
1773 } // end anonymous namespace
1776 /// Find all local variable captures in the statement.
1777 struct CaptureFinder
: ConstStmtVisitor
<CaptureFinder
> {
1778 CodeGenFunction
&ParentCGF
;
1779 const VarDecl
*ParentThis
;
1780 llvm::SmallSetVector
<const VarDecl
*, 4> Captures
;
1781 Address SEHCodeSlot
= Address::invalid();
1782 CaptureFinder(CodeGenFunction
&ParentCGF
, const VarDecl
*ParentThis
)
1783 : ParentCGF(ParentCGF
), ParentThis(ParentThis
) {}
1785 // Return true if we need to do any capturing work.
1786 bool foundCaptures() {
1787 return !Captures
.empty() || SEHCodeSlot
.isValid();
1790 void Visit(const Stmt
*S
) {
1791 // See if this is a capture, then recurse.
1792 ConstStmtVisitor
<CaptureFinder
>::Visit(S
);
1793 for (const Stmt
*Child
: S
->children())
1798 void VisitDeclRefExpr(const DeclRefExpr
*E
) {
1799 // If this is already a capture, just make sure we capture 'this'.
1800 if (E
->refersToEnclosingVariableOrCapture())
1801 Captures
.insert(ParentThis
);
1803 const auto *D
= dyn_cast
<VarDecl
>(E
->getDecl());
1804 if (D
&& D
->isLocalVarDeclOrParm() && D
->hasLocalStorage())
1808 void VisitCXXThisExpr(const CXXThisExpr
*E
) {
1809 Captures
.insert(ParentThis
);
1812 void VisitCallExpr(const CallExpr
*E
) {
1813 // We only need to add parent frame allocations for these builtins in x86.
1814 if (ParentCGF
.getTarget().getTriple().getArch() != llvm::Triple::x86
)
1817 unsigned ID
= E
->getBuiltinCallee();
1819 case Builtin::BI__exception_code
:
1820 case Builtin::BI_exception_code
:
1821 // This is the simple case where we are the outermost finally. All we
1822 // have to do here is make sure we escape this and recover it in the
1823 // outlined handler.
1824 if (!SEHCodeSlot
.isValid())
1825 SEHCodeSlot
= ParentCGF
.SEHCodeSlotStack
.back();
1830 } // end anonymous namespace
1832 Address
CodeGenFunction::recoverAddrOfEscapedLocal(CodeGenFunction
&ParentCGF
,
1834 llvm::Value
*ParentFP
) {
1835 llvm::CallInst
*RecoverCall
= nullptr;
1836 CGBuilderTy
Builder(*this, AllocaInsertPt
);
1837 if (auto *ParentAlloca
=
1838 dyn_cast_or_null
<llvm::AllocaInst
>(ParentVar
.getBasePointer())) {
1839 // Mark the variable escaped if nobody else referenced it and compute the
1840 // localescape index.
1841 auto InsertPair
= ParentCGF
.EscapedLocals
.insert(
1842 std::make_pair(ParentAlloca
, ParentCGF
.EscapedLocals
.size()));
1843 int FrameEscapeIdx
= InsertPair
.first
->second
;
1844 // call ptr @llvm.localrecover(ptr @parentFn, ptr %fp, i32 N)
1845 llvm::Function
*FrameRecoverFn
= llvm::Intrinsic::getOrInsertDeclaration(
1846 &CGM
.getModule(), llvm::Intrinsic::localrecover
);
1847 RecoverCall
= Builder
.CreateCall(
1848 FrameRecoverFn
, {ParentCGF
.CurFn
, ParentFP
,
1849 llvm::ConstantInt::get(Int32Ty
, FrameEscapeIdx
)});
1852 // If the parent didn't have an alloca, we're doing some nested outlining.
1853 // Just clone the existing localrecover call, but tweak the FP argument to
1854 // use our FP value. All other arguments are constants.
1855 auto *ParentRecover
= cast
<llvm::IntrinsicInst
>(
1856 ParentVar
.emitRawPointer(*this)->stripPointerCasts());
1857 assert(ParentRecover
->getIntrinsicID() == llvm::Intrinsic::localrecover
&&
1858 "expected alloca or localrecover in parent LocalDeclMap");
1859 RecoverCall
= cast
<llvm::CallInst
>(ParentRecover
->clone());
1860 RecoverCall
->setArgOperand(1, ParentFP
);
1861 RecoverCall
->insertBefore(AllocaInsertPt
);
1864 // Bitcast the variable, rename it, and insert it in the local decl map.
1865 llvm::Value
*ChildVar
=
1866 Builder
.CreateBitCast(RecoverCall
, ParentVar
.getType());
1867 ChildVar
->setName(ParentVar
.getName());
1868 return ParentVar
.withPointer(ChildVar
, KnownNonNull
);
1871 void CodeGenFunction::EmitCapturedLocals(CodeGenFunction
&ParentCGF
,
1872 const Stmt
*OutlinedStmt
,
1874 // Find all captures in the Stmt.
1875 CaptureFinder
Finder(ParentCGF
, ParentCGF
.CXXABIThisDecl
);
1876 Finder
.Visit(OutlinedStmt
);
1878 // We can exit early on x86_64 when there are no captures. We just have to
1879 // save the exception code in filters so that __exception_code() works.
1880 if (!Finder
.foundCaptures() &&
1881 CGM
.getTarget().getTriple().getArch() != llvm::Triple::x86
) {
1883 EmitSEHExceptionCodeSave(ParentCGF
, nullptr, nullptr);
1887 llvm::Value
*EntryFP
= nullptr;
1888 CGBuilderTy
Builder(CGM
, AllocaInsertPt
);
1889 if (IsFilter
&& CGM
.getTarget().getTriple().getArch() == llvm::Triple::x86
) {
1890 // 32-bit SEH filters need to be careful about FP recovery. The end of the
1891 // EH registration is passed in as the EBP physical register. We can
1892 // recover that with llvm.frameaddress(1).
1893 EntryFP
= Builder
.CreateCall(
1894 CGM
.getIntrinsic(llvm::Intrinsic::frameaddress
, AllocaInt8PtrTy
),
1895 {Builder
.getInt32(1)});
1897 // Otherwise, for x64 and 32-bit finally functions, the parent FP is the
1898 // second parameter.
1899 auto AI
= CurFn
->arg_begin();
1904 llvm::Value
*ParentFP
= EntryFP
;
1906 // Given whatever FP the runtime provided us in EntryFP, recover the true
1907 // frame pointer of the parent function. We only need to do this in filters,
1908 // since finally funclets recover the parent FP for us.
1909 llvm::Function
*RecoverFPIntrin
=
1910 CGM
.getIntrinsic(llvm::Intrinsic::eh_recoverfp
);
1911 ParentFP
= Builder
.CreateCall(RecoverFPIntrin
, {ParentCGF
.CurFn
, EntryFP
});
1913 // if the parent is a _finally, the passed-in ParentFP is the FP
1914 // of parent _finally, not Establisher's FP (FP of outermost function).
1915 // Establkisher FP is 2nd paramenter passed into parent _finally.
1916 // Fortunately, it's always saved in parent's frame. The following
1917 // code retrieves it, and escapes it so that spill instruction won't be
1919 if (ParentCGF
.ParentCGF
!= nullptr) {
1920 // Locate and escape Parent's frame_pointer.addr alloca
1921 // Depending on target, should be 1st/2nd one in LocalDeclMap.
1922 // Let's just scan for ImplicitParamDecl with VoidPtrTy.
1923 llvm::AllocaInst
*FramePtrAddrAlloca
= nullptr;
1924 for (auto &I
: ParentCGF
.LocalDeclMap
) {
1925 const VarDecl
*D
= cast
<VarDecl
>(I
.first
);
1926 if (isa
<ImplicitParamDecl
>(D
) &&
1927 D
->getType() == getContext().VoidPtrTy
) {
1928 assert(D
->getName().starts_with("frame_pointer"));
1929 FramePtrAddrAlloca
=
1930 cast
<llvm::AllocaInst
>(I
.second
.getBasePointer());
1934 assert(FramePtrAddrAlloca
);
1935 auto InsertPair
= ParentCGF
.EscapedLocals
.insert(
1936 std::make_pair(FramePtrAddrAlloca
, ParentCGF
.EscapedLocals
.size()));
1937 int FrameEscapeIdx
= InsertPair
.first
->second
;
1939 // an example of a filter's prolog::
1940 // %0 = call ptr @llvm.eh.recoverfp(@"?fin$0@0@main@@",..)
1941 // %1 = call ptr @llvm.localrecover(@"?fin$0@0@main@@",..)
1942 // %2 = load ptr, ptr %1, align 8
1943 // ==> %2 is the frame-pointer of outermost host function
1944 llvm::Function
*FrameRecoverFn
= llvm::Intrinsic::getOrInsertDeclaration(
1945 &CGM
.getModule(), llvm::Intrinsic::localrecover
);
1946 ParentFP
= Builder
.CreateCall(
1947 FrameRecoverFn
, {ParentCGF
.CurFn
, ParentFP
,
1948 llvm::ConstantInt::get(Int32Ty
, FrameEscapeIdx
)});
1949 ParentFP
= Builder
.CreateLoad(
1950 Address(ParentFP
, CGM
.VoidPtrTy
, getPointerAlign()));
1954 // Create llvm.localrecover calls for all captures.
1955 for (const VarDecl
*VD
: Finder
.Captures
) {
1956 if (VD
->getType()->isVariablyModifiedType()) {
1957 CGM
.ErrorUnsupported(VD
, "VLA captured by SEH");
1960 assert((isa
<ImplicitParamDecl
>(VD
) || VD
->isLocalVarDeclOrParm()) &&
1961 "captured non-local variable");
1963 auto L
= ParentCGF
.LambdaCaptureFields
.find(VD
);
1964 if (L
!= ParentCGF
.LambdaCaptureFields
.end()) {
1965 LambdaCaptureFields
[VD
] = L
->second
;
1969 // If this decl hasn't been declared yet, it will be declared in the
1971 auto I
= ParentCGF
.LocalDeclMap
.find(VD
);
1972 if (I
== ParentCGF
.LocalDeclMap
.end())
1975 Address ParentVar
= I
->second
;
1977 recoverAddrOfEscapedLocal(ParentCGF
, ParentVar
, ParentFP
);
1978 setAddrOfLocalVar(VD
, Recovered
);
1980 if (isa
<ImplicitParamDecl
>(VD
)) {
1981 CXXABIThisAlignment
= ParentCGF
.CXXABIThisAlignment
;
1982 CXXThisAlignment
= ParentCGF
.CXXThisAlignment
;
1983 CXXABIThisValue
= Builder
.CreateLoad(Recovered
, "this");
1984 if (ParentCGF
.LambdaThisCaptureField
) {
1985 LambdaThisCaptureField
= ParentCGF
.LambdaThisCaptureField
;
1986 // We are in a lambda function where "this" is captured so the
1987 // CXXThisValue need to be loaded from the lambda capture
1988 LValue ThisFieldLValue
=
1989 EmitLValueForLambdaField(LambdaThisCaptureField
);
1990 if (!LambdaThisCaptureField
->getType()->isPointerType()) {
1991 CXXThisValue
= ThisFieldLValue
.getAddress().emitRawPointer(*this);
1993 CXXThisValue
= EmitLoadOfLValue(ThisFieldLValue
, SourceLocation())
1997 CXXThisValue
= CXXABIThisValue
;
2002 if (Finder
.SEHCodeSlot
.isValid()) {
2003 SEHCodeSlotStack
.push_back(
2004 recoverAddrOfEscapedLocal(ParentCGF
, Finder
.SEHCodeSlot
, ParentFP
));
2008 EmitSEHExceptionCodeSave(ParentCGF
, ParentFP
, EntryFP
);
2011 /// Arrange a function prototype that can be called by Windows exception
2012 /// handling personalities. On Win64, the prototype looks like:
2013 /// RetTy func(void *EHPtrs, void *ParentFP);
2014 void CodeGenFunction::startOutlinedSEHHelper(CodeGenFunction
&ParentCGF
,
2016 const Stmt
*OutlinedStmt
) {
2017 SourceLocation StartLoc
= OutlinedStmt
->getBeginLoc();
2019 // Get the mangled function name.
2020 SmallString
<128> Name
;
2022 llvm::raw_svector_ostream
OS(Name
);
2023 GlobalDecl ParentSEHFn
= ParentCGF
.CurSEHParent
;
2024 assert(ParentSEHFn
&& "No CurSEHParent!");
2025 MangleContext
&Mangler
= CGM
.getCXXABI().getMangleContext();
2027 Mangler
.mangleSEHFilterExpression(ParentSEHFn
, OS
);
2029 Mangler
.mangleSEHFinallyBlock(ParentSEHFn
, OS
);
2032 FunctionArgList Args
;
2033 if (CGM
.getTarget().getTriple().getArch() != llvm::Triple::x86
|| !IsFilter
) {
2034 // All SEH finally functions take two parameters. Win64 filters take two
2035 // parameters. Win32 filters take no parameters.
2037 Args
.push_back(ImplicitParamDecl::Create(
2038 getContext(), /*DC=*/nullptr, StartLoc
,
2039 &getContext().Idents
.get("exception_pointers"),
2040 getContext().VoidPtrTy
, ImplicitParamKind::Other
));
2042 Args
.push_back(ImplicitParamDecl::Create(
2043 getContext(), /*DC=*/nullptr, StartLoc
,
2044 &getContext().Idents
.get("abnormal_termination"),
2045 getContext().UnsignedCharTy
, ImplicitParamKind::Other
));
2047 Args
.push_back(ImplicitParamDecl::Create(
2048 getContext(), /*DC=*/nullptr, StartLoc
,
2049 &getContext().Idents
.get("frame_pointer"), getContext().VoidPtrTy
,
2050 ImplicitParamKind::Other
));
2053 QualType RetTy
= IsFilter
? getContext().LongTy
: getContext().VoidTy
;
2055 const CGFunctionInfo
&FnInfo
=
2056 CGM
.getTypes().arrangeBuiltinFunctionDeclaration(RetTy
, Args
);
2058 llvm::FunctionType
*FnTy
= CGM
.getTypes().GetFunctionType(FnInfo
);
2059 llvm::Function
*Fn
= llvm::Function::Create(
2060 FnTy
, llvm::GlobalValue::InternalLinkage
, Name
.str(), &CGM
.getModule());
2062 IsOutlinedSEHHelper
= true;
2064 StartFunction(GlobalDecl(), RetTy
, Fn
, FnInfo
, Args
,
2065 OutlinedStmt
->getBeginLoc(), OutlinedStmt
->getBeginLoc());
2066 CurSEHParent
= ParentCGF
.CurSEHParent
;
2068 CGM
.SetInternalFunctionAttributes(GlobalDecl(), CurFn
, FnInfo
);
2069 EmitCapturedLocals(ParentCGF
, OutlinedStmt
, IsFilter
);
2072 /// Create a stub filter function that will ultimately hold the code of the
2073 /// filter expression. The EH preparation passes in LLVM will outline the code
2074 /// from the main function body into this stub.
2076 CodeGenFunction::GenerateSEHFilterFunction(CodeGenFunction
&ParentCGF
,
2077 const SEHExceptStmt
&Except
) {
2078 const Expr
*FilterExpr
= Except
.getFilterExpr();
2079 startOutlinedSEHHelper(ParentCGF
, true, FilterExpr
);
2081 // Emit the original filter expression, convert to i32, and return.
2082 llvm::Value
*R
= EmitScalarExpr(FilterExpr
);
2083 R
= Builder
.CreateIntCast(R
, ConvertType(getContext().LongTy
),
2084 FilterExpr
->getType()->isSignedIntegerType());
2085 Builder
.CreateStore(R
, ReturnValue
);
2087 FinishFunction(FilterExpr
->getEndLoc());
2093 CodeGenFunction::GenerateSEHFinallyFunction(CodeGenFunction
&ParentCGF
,
2094 const SEHFinallyStmt
&Finally
) {
2095 const Stmt
*FinallyBlock
= Finally
.getBlock();
2096 startOutlinedSEHHelper(ParentCGF
, false, FinallyBlock
);
2098 // Emit the original filter expression, convert to i32, and return.
2099 EmitStmt(FinallyBlock
);
2101 FinishFunction(FinallyBlock
->getEndLoc());
2106 void CodeGenFunction::EmitSEHExceptionCodeSave(CodeGenFunction
&ParentCGF
,
2107 llvm::Value
*ParentFP
,
2108 llvm::Value
*EntryFP
) {
2109 // Get the pointer to the EXCEPTION_POINTERS struct. This is returned by the
2110 // __exception_info intrinsic.
2111 if (CGM
.getTarget().getTriple().getArch() != llvm::Triple::x86
) {
2112 // On Win64, the info is passed as the first parameter to the filter.
2113 SEHInfo
= &*CurFn
->arg_begin();
2114 SEHCodeSlotStack
.push_back(
2115 CreateMemTemp(getContext().IntTy
, "__exception_code"));
2117 // On Win32, the EBP on entry to the filter points to the end of an
2118 // exception registration object. It contains 6 32-bit fields, and the info
2119 // pointer is stored in the second field. So, GEP 20 bytes backwards and
2120 // load the pointer.
2121 SEHInfo
= Builder
.CreateConstInBoundsGEP1_32(Int8Ty
, EntryFP
, -20);
2122 SEHInfo
= Builder
.CreateAlignedLoad(Int8PtrTy
, SEHInfo
, getPointerAlign());
2123 SEHCodeSlotStack
.push_back(recoverAddrOfEscapedLocal(
2124 ParentCGF
, ParentCGF
.SEHCodeSlotStack
.back(), ParentFP
));
2127 // Save the exception code in the exception slot to unify exception access in
2128 // the filter function and the landing pad.
2129 // struct EXCEPTION_POINTERS {
2130 // EXCEPTION_RECORD *ExceptionRecord;
2131 // CONTEXT *ContextRecord;
2133 // int exceptioncode = exception_pointers->ExceptionRecord->ExceptionCode;
2134 llvm::Type
*RecordTy
= llvm::PointerType::getUnqual(getLLVMContext());
2135 llvm::Type
*PtrsTy
= llvm::StructType::get(RecordTy
, CGM
.VoidPtrTy
);
2136 llvm::Value
*Rec
= Builder
.CreateStructGEP(PtrsTy
, SEHInfo
, 0);
2137 Rec
= Builder
.CreateAlignedLoad(RecordTy
, Rec
, getPointerAlign());
2138 llvm::Value
*Code
= Builder
.CreateAlignedLoad(Int32Ty
, Rec
, getIntAlign());
2139 assert(!SEHCodeSlotStack
.empty() && "emitting EH code outside of __except");
2140 Builder
.CreateStore(Code
, SEHCodeSlotStack
.back());
2143 llvm::Value
*CodeGenFunction::EmitSEHExceptionInfo() {
2144 // Sema should diagnose calling this builtin outside of a filter context, but
2145 // don't crash if we screw up.
2147 return llvm::UndefValue::get(Int8PtrTy
);
2148 assert(SEHInfo
->getType() == Int8PtrTy
);
2152 llvm::Value
*CodeGenFunction::EmitSEHExceptionCode() {
2153 assert(!SEHCodeSlotStack
.empty() && "emitting EH code outside of __except");
2154 return Builder
.CreateLoad(SEHCodeSlotStack
.back());
2157 llvm::Value
*CodeGenFunction::EmitSEHAbnormalTermination() {
2158 // Abnormal termination is just the first parameter to the outlined finally
2160 auto AI
= CurFn
->arg_begin();
2161 return Builder
.CreateZExt(&*AI
, Int32Ty
);
2164 void CodeGenFunction::pushSEHCleanup(CleanupKind Kind
,
2165 llvm::Function
*FinallyFunc
) {
2166 EHStack
.pushCleanup
<PerformSEHFinally
>(Kind
, FinallyFunc
);
2169 void CodeGenFunction::EnterSEHTryStmt(const SEHTryStmt
&S
) {
2170 CodeGenFunction
HelperCGF(CGM
, /*suppressNewContext=*/true);
2171 HelperCGF
.ParentCGF
= this;
2172 if (const SEHFinallyStmt
*Finally
= S
.getFinallyHandler()) {
2173 // Outline the finally block.
2174 llvm::Function
*FinallyFunc
=
2175 HelperCGF
.GenerateSEHFinallyFunction(*this, *Finally
);
2177 // Push a cleanup for __finally blocks.
2178 EHStack
.pushCleanup
<PerformSEHFinally
>(NormalAndEHCleanup
, FinallyFunc
);
2182 // Otherwise, we must have an __except block.
2183 const SEHExceptStmt
*Except
= S
.getExceptHandler();
2185 EHCatchScope
*CatchScope
= EHStack
.pushCatch(1);
2186 SEHCodeSlotStack
.push_back(
2187 CreateMemTemp(getContext().IntTy
, "__exception_code"));
2189 // If the filter is known to evaluate to 1, then we can use the clause
2190 // "catch i8* null". We can't do this on x86 because the filter has to save
2191 // the exception code.
2193 ConstantEmitter(*this).tryEmitAbstract(Except
->getFilterExpr(),
2194 getContext().IntTy
);
2195 if (CGM
.getTarget().getTriple().getArch() != llvm::Triple::x86
&& C
&&
2197 CatchScope
->setCatchAllHandler(0, createBasicBlock("__except"));
2201 // In general, we have to emit an outlined filter function. Use the function
2202 // in place of the RTTI typeinfo global that C++ EH uses.
2203 llvm::Function
*FilterFunc
=
2204 HelperCGF
.GenerateSEHFilterFunction(*this, *Except
);
2205 CatchScope
->setHandler(0, FilterFunc
, createBasicBlock("__except.ret"));
2208 void CodeGenFunction::ExitSEHTryStmt(const SEHTryStmt
&S
) {
2209 // Just pop the cleanup if it's a __finally block.
2210 if (S
.getFinallyHandler()) {
2215 // IsEHa: emit an invoke _seh_try_end() to mark end of FT flow
2216 if (getLangOpts().EHAsynch
&& Builder
.GetInsertBlock()) {
2217 llvm::FunctionCallee SehTryEnd
= getSehTryEndFn(CGM
);
2218 EmitRuntimeCallOrInvoke(SehTryEnd
);
2221 // Otherwise, we must have an __except block.
2222 const SEHExceptStmt
*Except
= S
.getExceptHandler();
2223 assert(Except
&& "__try must have __finally xor __except");
2224 EHCatchScope
&CatchScope
= cast
<EHCatchScope
>(*EHStack
.begin());
2226 // Don't emit the __except block if the __try block lacked invokes.
2227 // TODO: Model unwind edges from instructions, either with iload / istore or
2228 // a try body function.
2229 if (!CatchScope
.hasEHBranches()) {
2230 CatchScope
.clearHandlerBlocks();
2232 SEHCodeSlotStack
.pop_back();
2236 // The fall-through block.
2237 llvm::BasicBlock
*ContBB
= createBasicBlock("__try.cont");
2239 // We just emitted the body of the __try; jump to the continue block.
2240 if (HaveInsertPoint())
2241 Builder
.CreateBr(ContBB
);
2243 // Check if our filter function returned true.
2244 emitCatchDispatchBlock(*this, CatchScope
);
2246 // Grab the block before we pop the handler.
2247 llvm::BasicBlock
*CatchPadBB
= CatchScope
.getHandler(0).Block
;
2250 EmitBlockAfterUses(CatchPadBB
);
2252 // __except blocks don't get outlined into funclets, so immediately do a
2254 llvm::CatchPadInst
*CPI
=
2255 cast
<llvm::CatchPadInst
>(CatchPadBB
->getFirstNonPHI());
2256 llvm::BasicBlock
*ExceptBB
= createBasicBlock("__except");
2257 Builder
.CreateCatchRet(CPI
, ExceptBB
);
2258 EmitBlock(ExceptBB
);
2260 // On Win64, the exception code is returned in EAX. Copy it into the slot.
2261 if (CGM
.getTarget().getTriple().getArch() != llvm::Triple::x86
) {
2262 llvm::Function
*SEHCodeIntrin
=
2263 CGM
.getIntrinsic(llvm::Intrinsic::eh_exceptioncode
);
2264 llvm::Value
*Code
= Builder
.CreateCall(SEHCodeIntrin
, {CPI
});
2265 Builder
.CreateStore(Code
, SEHCodeSlotStack
.back());
2268 // Emit the __except body.
2269 EmitStmt(Except
->getBlock());
2271 // End the lifetime of the exception code.
2272 SEHCodeSlotStack
.pop_back();
2274 if (HaveInsertPoint())
2275 Builder
.CreateBr(ContBB
);
2280 void CodeGenFunction::EmitSEHLeaveStmt(const SEHLeaveStmt
&S
) {
2281 // If this code is reachable then emit a stop point (if generating
2282 // debug info). We have to do this ourselves because we are on the
2283 // "simple" statement path.
2284 if (HaveInsertPoint())
2287 // This must be a __leave from a __finally block, which we warn on and is UB.
2288 // Just emit unreachable.
2289 if (!isSEHTryScope()) {
2290 Builder
.CreateUnreachable();
2291 Builder
.ClearInsertionPoint();
2295 EmitBranchThroughCleanup(*SEHTryEpilogueStack
.back());