Local variable initialization was previously being ignored. This change adds support for initialization of scalar variables with constant values and introduces the constant emitter framework.
273 lines
9.7 KiB
C++
273 lines
9.7 KiB
C++
//===----------------------------------------------------------------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This contains code to emit Decl nodes as CIR code.
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//
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//===----------------------------------------------------------------------===//
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#include "CIRGenConstantEmitter.h"
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#include "CIRGenFunction.h"
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#include "mlir/IR/Location.h"
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#include "clang/AST/Attr.h"
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#include "clang/AST/Decl.h"
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#include "clang/AST/Expr.h"
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#include "clang/AST/ExprCXX.h"
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#include "clang/CIR/MissingFeatures.h"
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using namespace clang;
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using namespace clang::CIRGen;
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CIRGenFunction::AutoVarEmission
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CIRGenFunction::emitAutoVarAlloca(const VarDecl &d) {
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QualType ty = d.getType();
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if (ty.getAddressSpace() != LangAS::Default)
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarAlloca: address space");
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mlir::Location loc = getLoc(d.getSourceRange());
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CIRGenFunction::AutoVarEmission emission(d);
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emission.IsEscapingByRef = d.isEscapingByref();
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if (emission.IsEscapingByRef)
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cgm.errorNYI(d.getSourceRange(),
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"emitAutoVarDecl: decl escaping by reference");
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CharUnits alignment = getContext().getDeclAlign(&d);
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// If the type is variably-modified, emit all the VLA sizes for it.
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if (ty->isVariablyModifiedType())
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarDecl: variably modified type");
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Address address = Address::invalid();
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if (!ty->isConstantSizeType())
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarDecl: non-constant size type");
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// A normal fixed sized variable becomes an alloca in the entry block,
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mlir::Type allocaTy = convertTypeForMem(ty);
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// Create the temp alloca and declare variable using it.
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address = createTempAlloca(allocaTy, alignment, loc, d.getName());
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declare(address.getPointer(), &d, ty, getLoc(d.getSourceRange()), alignment);
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emission.Addr = address;
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setAddrOfLocalVar(&d, address);
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return emission;
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}
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/// Determine whether the given initializer is trivial in the sense
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/// that it requires no code to be generated.
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bool CIRGenFunction::isTrivialInitializer(const Expr *init) {
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if (!init)
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return true;
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if (const CXXConstructExpr *construct = dyn_cast<CXXConstructExpr>(init))
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if (CXXConstructorDecl *constructor = construct->getConstructor())
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if (constructor->isTrivial() && constructor->isDefaultConstructor() &&
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!construct->requiresZeroInitialization())
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return true;
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return false;
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}
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void CIRGenFunction::emitAutoVarInit(
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const CIRGenFunction::AutoVarEmission &emission) {
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assert(emission.Variable && "emission was not valid!");
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// If this was emitted as a global constant, we're done.
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if (emission.wasEmittedAsGlobal())
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return;
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const VarDecl &d = *emission.Variable;
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QualType type = d.getType();
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// If this local has an initializer, emit it now.
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const Expr *init = d.getInit();
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if (!type.isPODType(getContext())) {
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarInit: non-POD type");
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return;
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}
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const Address addr = emission.Addr;
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// Check whether this is a byref variable that's potentially
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// captured and moved by its own initializer. If so, we'll need to
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// emit the initializer first, then copy into the variable.
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assert(!cir::MissingFeatures::opAllocaCaptureByInit());
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// Note: constexpr already initializes everything correctly.
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LangOptions::TrivialAutoVarInitKind trivialAutoVarInit =
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(d.isConstexpr()
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? LangOptions::TrivialAutoVarInitKind::Uninitialized
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: (d.getAttr<UninitializedAttr>()
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? LangOptions::TrivialAutoVarInitKind::Uninitialized
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: getContext().getLangOpts().getTrivialAutoVarInit()));
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auto initializeWhatIsTechnicallyUninitialized = [&](Address addr) {
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if (trivialAutoVarInit ==
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LangOptions::TrivialAutoVarInitKind::Uninitialized)
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return;
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarInit: trivial initialization");
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};
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if (isTrivialInitializer(init)) {
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initializeWhatIsTechnicallyUninitialized(addr);
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return;
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}
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mlir::Attribute constant;
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if (emission.IsConstantAggregate ||
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d.mightBeUsableInConstantExpressions(getContext())) {
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// FIXME: Differently from LLVM we try not to emit / lower too much
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// here for CIR since we are interested in seeing the ctor in some
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// analysis later on. So CIR's implementation of ConstantEmitter will
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// frequently return an empty Attribute, to signal we want to codegen
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// some trivial ctor calls and whatnots.
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constant = ConstantEmitter(*this).tryEmitAbstractForInitializer(d);
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if (constant && !mlir::isa<cir::ZeroAttr>(constant) &&
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(trivialAutoVarInit !=
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LangOptions::TrivialAutoVarInitKind::Uninitialized)) {
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarInit: constant aggregate");
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return;
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}
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}
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// NOTE(cir): In case we have a constant initializer, we can just emit a
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// store. But, in CIR, we wish to retain any ctor calls, so if it is a
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// CXX temporary object creation, we ensure the ctor call is used deferring
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// its removal/optimization to the CIR lowering.
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if (!constant || isa<CXXTemporaryObjectExpr>(init)) {
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initializeWhatIsTechnicallyUninitialized(addr);
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LValue lv = LValue::makeAddr(addr, type);
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emitExprAsInit(init, &d, lv);
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// In case lv has uses it means we indeed initialized something
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// out of it while trying to build the expression, mark it as such.
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mlir::Value val = lv.getAddress().getPointer();
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assert(val && "Should have an address");
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auto allocaOp = dyn_cast_or_null<cir::AllocaOp>(val.getDefiningOp());
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assert(allocaOp && "Address should come straight out of the alloca");
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if (!allocaOp.use_empty())
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allocaOp.setInitAttr(mlir::UnitAttr::get(&getMLIRContext()));
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return;
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}
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// FIXME(cir): migrate most of this file to use mlir::TypedAttr directly.
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auto typedConstant = mlir::dyn_cast<mlir::TypedAttr>(constant);
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assert(typedConstant && "expected typed attribute");
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if (!emission.IsConstantAggregate) {
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// For simple scalar/complex initialization, store the value directly.
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LValue lv = LValue::makeAddr(addr, type);
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assert(init && "expected initializer");
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mlir::Location initLoc = getLoc(init->getSourceRange());
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// lv.setNonGC(true);
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return emitStoreThroughLValue(
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RValue::get(builder.getConstant(initLoc, typedConstant)), lv);
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}
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}
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void CIRGenFunction::emitAutoVarCleanups(
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const CIRGenFunction::AutoVarEmission &emission) {
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const VarDecl &d = *emission.Variable;
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// Check the type for a cleanup.
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if (d.needsDestruction(getContext()))
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarCleanups: type cleanup");
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assert(!cir::MissingFeatures::opAllocaPreciseLifetime());
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// Handle the cleanup attribute.
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if (d.hasAttr<CleanupAttr>())
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cgm.errorNYI(d.getSourceRange(), "emitAutoVarCleanups: CleanupAttr");
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}
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/// Emit code and set up symbol table for a variable declaration with auto,
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/// register, or no storage class specifier. These turn into simple stack
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/// objects, globals depending on target.
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void CIRGenFunction::emitAutoVarDecl(const VarDecl &d) {
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CIRGenFunction::AutoVarEmission emission = emitAutoVarAlloca(d);
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emitAutoVarInit(emission);
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emitAutoVarCleanups(emission);
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}
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void CIRGenFunction::emitVarDecl(const VarDecl &d) {
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// If the declaration has external storage, don't emit it now, allow it to be
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// emitted lazily on its first use.
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if (d.hasExternalStorage())
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return;
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if (d.getStorageDuration() != SD_Automatic)
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cgm.errorNYI(d.getSourceRange(), "emitVarDecl automatic storage duration");
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if (d.getType().getAddressSpace() == LangAS::opencl_local)
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cgm.errorNYI(d.getSourceRange(), "emitVarDecl openCL address space");
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assert(d.hasLocalStorage());
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CIRGenFunction::VarDeclContext varDeclCtx{*this, &d};
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return emitAutoVarDecl(d);
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}
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void CIRGenFunction::emitScalarInit(const Expr *init, mlir::Location loc,
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LValue lvalue, bool capturedByInit) {
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assert(!cir::MissingFeatures::objCLifetime());
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SourceLocRAIIObject locRAII{*this, loc};
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mlir::Value value = emitScalarExpr(init);
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if (capturedByInit) {
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cgm.errorNYI(init->getSourceRange(), "emitScalarInit: captured by init");
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return;
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}
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assert(!cir::MissingFeatures::emitNullabilityCheck());
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emitStoreThroughLValue(RValue::get(value), lvalue, true);
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return;
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}
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void CIRGenFunction::emitExprAsInit(const Expr *init, const ValueDecl *d,
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LValue lvalue, bool capturedByInit) {
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SourceLocRAIIObject loc{*this, getLoc(init->getSourceRange())};
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if (capturedByInit) {
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cgm.errorNYI(init->getSourceRange(), "emitExprAsInit: captured by init");
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return;
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}
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QualType type = d->getType();
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if (type->isReferenceType()) {
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cgm.errorNYI(init->getSourceRange(), "emitExprAsInit: reference type");
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return;
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}
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switch (CIRGenFunction::getEvaluationKind(type)) {
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case cir::TEK_Scalar:
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emitScalarInit(init, getLoc(d->getSourceRange()), lvalue);
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return;
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case cir::TEK_Complex: {
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cgm.errorNYI(init->getSourceRange(), "emitExprAsInit: complex type");
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return;
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}
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case cir::TEK_Aggregate:
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cgm.errorNYI(init->getSourceRange(), "emitExprAsInit: aggregate type");
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return;
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}
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llvm_unreachable("bad evaluation kind");
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}
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void CIRGenFunction::emitDecl(const Decl &d) {
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switch (d.getKind()) {
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case Decl::Var: {
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const VarDecl &vd = cast<VarDecl>(d);
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assert(vd.isLocalVarDecl() &&
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"Should not see file-scope variables inside a function!");
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emitVarDecl(vd);
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return;
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}
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default:
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cgm.errorNYI(d.getSourceRange(), "emitDecl: unhandled decl type");
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}
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}
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