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Alexander Kornienko04970842015-08-19 09:11:46 +00001//===--- LoopConvertUtils.cpp - clang-tidy --------------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10#include "LoopConvertUtils.h"
11
12using namespace clang::ast_matchers;
13using namespace clang::tooling;
14using namespace clang;
15using namespace llvm;
16
17namespace clang {
18namespace tidy {
19namespace modernize {
20
21/// \brief Tracks a stack of parent statements during traversal.
22///
23/// All this really does is inject push_back() before running
24/// RecursiveASTVisitor::TraverseStmt() and pop_back() afterwards. The Stmt atop
25/// the stack is the parent of the current statement (NULL for the topmost
26/// statement).
27bool StmtAncestorASTVisitor::TraverseStmt(Stmt *Statement) {
28 StmtAncestors.insert(std::make_pair(Statement, StmtStack.back()));
29 StmtStack.push_back(Statement);
30 RecursiveASTVisitor<StmtAncestorASTVisitor>::TraverseStmt(Statement);
31 StmtStack.pop_back();
32 return true;
33}
34
35/// \brief Keep track of the DeclStmt associated with each VarDecl.
36///
37/// Combined with StmtAncestors, this provides roughly the same information as
38/// Scope, as we can map a VarDecl to its DeclStmt, then walk up the parent tree
39/// using StmtAncestors.
40bool StmtAncestorASTVisitor::VisitDeclStmt(DeclStmt *Decls) {
41 for (const auto *decl : Decls->decls()) {
42 if (const auto *V = dyn_cast<VarDecl>(decl))
43 DeclParents.insert(std::make_pair(V, Decls));
44 }
45 return true;
46}
47
48/// \brief record the DeclRefExpr as part of the parent expression.
49bool ComponentFinderASTVisitor::VisitDeclRefExpr(DeclRefExpr *E) {
50 Components.push_back(E);
51 return true;
52}
53
54/// \brief record the MemberExpr as part of the parent expression.
55bool ComponentFinderASTVisitor::VisitMemberExpr(MemberExpr *Member) {
56 Components.push_back(Member);
57 return true;
58}
59
60/// \brief Forward any DeclRefExprs to a check on the referenced variable
61/// declaration.
62bool DependencyFinderASTVisitor::VisitDeclRefExpr(DeclRefExpr *DeclRef) {
63 if (auto *V = dyn_cast_or_null<VarDecl>(DeclRef->getDecl()))
64 return VisitVarDecl(V);
65 return true;
66}
67
68/// \brief Determine if any this variable is declared inside the ContainingStmt.
69bool DependencyFinderASTVisitor::VisitVarDecl(VarDecl *V) {
70 const Stmt *Curr = DeclParents->lookup(V);
71 // First, see if the variable was declared within an inner scope of the loop.
72 while (Curr != nullptr) {
73 if (Curr == ContainingStmt) {
74 DependsOnInsideVariable = true;
75 return false;
76 }
77 Curr = StmtParents->lookup(Curr);
78 }
79
80 // Next, check if the variable was removed from existence by an earlier
81 // iteration.
82 for (const auto &I : *ReplacedVars) {
83 if (I.second == V) {
84 DependsOnInsideVariable = true;
85 return false;
86 }
87 }
88 return true;
89}
90
91/// \brief If we already created a variable for TheLoop, check to make sure
92/// that the name was not already taken.
93bool DeclFinderASTVisitor::VisitForStmt(ForStmt *TheLoop) {
94 StmtGeneratedVarNameMap::const_iterator I = GeneratedDecls->find(TheLoop);
95 if (I != GeneratedDecls->end() && I->second == Name) {
96 Found = true;
97 return false;
98 }
99 return true;
100}
101
102/// \brief If any named declaration within the AST subtree has the same name,
103/// then consider Name already taken.
104bool DeclFinderASTVisitor::VisitNamedDecl(NamedDecl *D) {
105 const IdentifierInfo *Ident = D->getIdentifier();
106 if (Ident && Ident->getName() == Name) {
107 Found = true;
108 return false;
109 }
110 return true;
111}
112
113/// \brief Forward any declaration references to the actual check on the
114/// referenced declaration.
115bool DeclFinderASTVisitor::VisitDeclRefExpr(DeclRefExpr *DeclRef) {
116 if (auto *D = dyn_cast<NamedDecl>(DeclRef->getDecl()))
117 return VisitNamedDecl(D);
118 return true;
119}
120
121/// \brief If the new variable name conflicts with any type used in the loop,
122/// then we mark that variable name as taken.
123bool DeclFinderASTVisitor::VisitTypeLoc(TypeLoc TL) {
124 QualType QType = TL.getType();
125
126 // Check if our name conflicts with a type, to handle for typedefs.
127 if (QType.getAsString() == Name) {
128 Found = true;
129 return false;
130 }
131 // Check for base type conflicts. For example, when a struct is being
132 // referenced in the body of the loop, the above getAsString() will return the
133 // whole type (ex. "struct s"), but will be caught here.
134 if (const IdentifierInfo *Ident = QType.getBaseTypeIdentifier()) {
135 if (Ident->getName() == Name) {
136 Found = true;
137 return false;
138 }
139 }
140 return true;
141}
142
143/// \brief Look through conversion/copy constructors to find the explicit
144/// initialization expression, returning it is found.
145///
146/// The main idea is that given
147/// vector<int> v;
148/// we consider either of these initializations
149/// vector<int>::iterator it = v.begin();
150/// vector<int>::iterator it(v.begin());
151/// and retrieve `v.begin()` as the expression used to initialize `it` but do
152/// not include
153/// vector<int>::iterator it;
154/// vector<int>::iterator it(v.begin(), 0); // if this constructor existed
155/// as being initialized from `v.begin()`
156const Expr *digThroughConstructors(const Expr *E) {
157 if (!E)
158 return nullptr;
159 E = E->IgnoreParenImpCasts();
160 if (const auto *ConstructExpr = dyn_cast<CXXConstructExpr>(E)) {
161 // The initial constructor must take exactly one parameter, but base class
162 // and deferred constructors can take more.
163 if (ConstructExpr->getNumArgs() != 1 ||
164 ConstructExpr->getConstructionKind() != CXXConstructExpr::CK_Complete)
165 return nullptr;
166 E = ConstructExpr->getArg(0);
167 if (const auto *Temp = dyn_cast<MaterializeTemporaryExpr>(E))
168 E = Temp->GetTemporaryExpr();
169 return digThroughConstructors(E);
170 }
171 return E;
172}
173
174/// \brief Returns true when two Exprs are equivalent.
175bool areSameExpr(ASTContext *Context, const Expr *First, const Expr *Second) {
176 if (!First || !Second)
177 return false;
178
179 llvm::FoldingSetNodeID FirstID, SecondID;
180 First->Profile(FirstID, *Context, true);
181 Second->Profile(SecondID, *Context, true);
182 return FirstID == SecondID;
183}
184
185/// \brief Returns the DeclRefExpr represented by E, or NULL if there isn't one.
186const DeclRefExpr *getDeclRef(const Expr *E) {
187 return dyn_cast<DeclRefExpr>(E->IgnoreParenImpCasts());
188}
189
190/// \brief Returns true when two ValueDecls are the same variable.
191bool areSameVariable(const ValueDecl *First, const ValueDecl *Second) {
192 return First && Second &&
193 First->getCanonicalDecl() == Second->getCanonicalDecl();
194}
195
196/// \brief Determines if an expression is a declaration reference to a
197/// particular variable.
198static bool exprReferencesVariable(const ValueDecl *Target, const Expr *E) {
199 if (!Target || !E)
200 return false;
201 const DeclRefExpr *Decl = getDeclRef(E);
202 return Decl && areSameVariable(Target, Decl->getDecl());
203}
204
205/// \brief If the expression is a dereference or call to operator*(), return the
206/// operand. Otherwise, return NULL.
207static const Expr *getDereferenceOperand(const Expr *E) {
208 if (const auto *Uop = dyn_cast<UnaryOperator>(E))
209 return Uop->getOpcode() == UO_Deref ? Uop->getSubExpr() : nullptr;
210
211 if (const auto *OpCall = dyn_cast<CXXOperatorCallExpr>(E)) {
212 return OpCall->getOperator() == OO_Star && OpCall->getNumArgs() == 1
213 ? OpCall->getArg(0)
214 : nullptr;
215 }
216
217 return nullptr;
218}
219
220/// \brief Returns true when the Container contains an Expr equivalent to E.
221template <typename ContainerT>
222static bool containsExpr(ASTContext *Context, const ContainerT *Container,
223 const Expr *E) {
224 llvm::FoldingSetNodeID ID;
225 E->Profile(ID, *Context, true);
226 for (const auto &I : *Container) {
227 if (ID == I.second)
228 return true;
229 }
230 return false;
231}
232
233/// \brief Returns true when the index expression is a declaration reference to
234/// IndexVar.
235///
236/// If the index variable is `index`, this function returns true on
237/// arrayExpression[index];
238/// containerExpression[index];
239/// but not
240/// containerExpression[notIndex];
241static bool isIndexInSubscriptExpr(const Expr *IndexExpr,
242 const VarDecl *IndexVar) {
243 const DeclRefExpr *Idx = getDeclRef(IndexExpr);
244 return Idx && Idx->getType()->isIntegerType() &&
245 areSameVariable(IndexVar, Idx->getDecl());
246}
247
248/// \brief Returns true when the index expression is a declaration reference to
249/// IndexVar, Obj is the same expression as SourceExpr after all parens and
250/// implicit casts are stripped off.
251///
252/// If PermitDeref is true, IndexExpression may
253/// be a dereference (overloaded or builtin operator*).
254///
255/// This function is intended for array-like containers, as it makes sure that
256/// both the container and the index match.
257/// If the loop has index variable `index` and iterates over `container`, then
258/// isIndexInSubscriptExpr returns true for
259/// \code
260/// container[index]
261/// container.at(index)
262/// container->at(index)
263/// \endcode
264/// but not for
265/// \code
266/// container[notIndex]
267/// notContainer[index]
268/// \endcode
269/// If PermitDeref is true, then isIndexInSubscriptExpr additionally returns
270/// true on these expressions:
271/// \code
272/// (*container)[index]
273/// (*container).at(index)
274/// \endcode
275static bool isIndexInSubscriptExpr(ASTContext *Context, const Expr *IndexExpr,
276 const VarDecl *IndexVar, const Expr *Obj,
277 const Expr *SourceExpr, bool PermitDeref) {
278 if (!SourceExpr || !Obj || !isIndexInSubscriptExpr(IndexExpr, IndexVar))
279 return false;
280
281 if (areSameExpr(Context, SourceExpr->IgnoreParenImpCasts(),
282 Obj->IgnoreParenImpCasts()))
283 return true;
284
285 if (const Expr *InnerObj = getDereferenceOperand(Obj->IgnoreParenImpCasts()))
286 if (PermitDeref && areSameExpr(Context, SourceExpr->IgnoreParenImpCasts(),
287 InnerObj->IgnoreParenImpCasts()))
288 return true;
289
290 return false;
291}
292
293/// \brief Returns true when Opcall is a call a one-parameter dereference of
294/// IndexVar.
295///
296/// For example, if the index variable is `index`, returns true for
297/// *index
298/// but not
299/// index
300/// *notIndex
301static bool isDereferenceOfOpCall(const CXXOperatorCallExpr *OpCall,
302 const VarDecl *IndexVar) {
303 return OpCall->getOperator() == OO_Star && OpCall->getNumArgs() == 1 &&
304 exprReferencesVariable(IndexVar, OpCall->getArg(0));
305}
306
307/// \brief Returns true when Uop is a dereference of IndexVar.
308///
309/// For example, if the index variable is `index`, returns true for
310/// *index
311/// but not
312/// index
313/// *notIndex
314static bool isDereferenceOfUop(const UnaryOperator *Uop,
315 const VarDecl *IndexVar) {
316 return Uop->getOpcode() == UO_Deref &&
317 exprReferencesVariable(IndexVar, Uop->getSubExpr());
318}
319
320/// \brief Determines whether the given Decl defines a variable initialized to
321/// the loop object.
322///
323/// This is intended to find cases such as
324/// \code
325/// for (int i = 0; i < arraySize(arr); ++i) {
326/// T t = arr[i];
327/// // use t, do not use i
328/// }
329/// \endcode
330/// and
331/// \code
332/// for (iterator i = container.begin(), e = container.end(); i != e; ++i) {
333/// T t = *i;
334/// // use t, do not use i
335/// }
336/// \endcode
Angel Garcia Gomez8d017722015-09-03 12:28:11 +0000337static bool isAliasDecl(ASTContext *Context, const Decl *TheDecl,
338 const VarDecl *IndexVar) {
Alexander Kornienko04970842015-08-19 09:11:46 +0000339 const auto *VDecl = dyn_cast<VarDecl>(TheDecl);
340 if (!VDecl)
341 return false;
342 if (!VDecl->hasInit())
343 return false;
344
345 const Expr *Init =
346 digThroughConstructors(VDecl->getInit()->IgnoreParenImpCasts());
347 if (!Init)
348 return false;
349
Angel Garcia Gomez8d017722015-09-03 12:28:11 +0000350 // Check that the declared type is the same as (or a reference to) the
351 // container type.
352 QualType DeclarationType = VDecl->getType();
353 if (DeclarationType->isReferenceType())
354 DeclarationType = DeclarationType.getNonReferenceType();
355 QualType InitType = Init->getType();
356 if (!Context->hasSameUnqualifiedType(DeclarationType, InitType))
357 return false;
358
Alexander Kornienko04970842015-08-19 09:11:46 +0000359 switch (Init->getStmtClass()) {
360 case Stmt::ArraySubscriptExprClass: {
361 const auto *E = cast<ArraySubscriptExpr>(Init);
362 // We don't really care which array is used here. We check to make sure
363 // it was the correct one later, since the AST will traverse it next.
364 return isIndexInSubscriptExpr(E->getIdx(), IndexVar);
365 }
366
367 case Stmt::UnaryOperatorClass:
368 return isDereferenceOfUop(cast<UnaryOperator>(Init), IndexVar);
369
370 case Stmt::CXXOperatorCallExprClass: {
371 const auto *OpCall = cast<CXXOperatorCallExpr>(Init);
372 if (OpCall->getOperator() == OO_Star)
373 return isDereferenceOfOpCall(OpCall, IndexVar);
374 if (OpCall->getOperator() == OO_Subscript) {
375 assert(OpCall->getNumArgs() == 2);
Angel Garcia Gomez446fe8d2015-08-26 14:51:11 +0000376 return isIndexInSubscriptExpr(OpCall->getArg(1), IndexVar);
Alexander Kornienko04970842015-08-19 09:11:46 +0000377 }
378 break;
379 }
380
Angel Garcia Gomez8409e882015-08-26 17:08:24 +0000381 case Stmt::CXXMemberCallExprClass: {
382 const auto *MemCall = cast<CXXMemberCallExpr>(Init);
Angel Garcia Gomez84754662015-09-02 14:25:08 +0000383 // This check is needed because getMethodDecl can return nullptr if the
384 // callee is a member function pointer.
385 if (MemCall->getMethodDecl() &&
386 MemCall->getMethodDecl()->getName() == "at") {
Angel Garcia Gomez8409e882015-08-26 17:08:24 +0000387 assert(MemCall->getNumArgs() == 1);
388 return isIndexInSubscriptExpr(MemCall->getArg(0), IndexVar);
389 }
390 return false;
391 }
Alexander Kornienko04970842015-08-19 09:11:46 +0000392
393 default:
394 break;
395 }
396 return false;
397}
398
399/// \brief Determines whether the bound of a for loop condition expression is
400/// the same as the statically computable size of ArrayType.
401///
402/// Given
403/// \code
404/// const int N = 5;
405/// int arr[N];
406/// \endcode
407/// This is intended to permit
408/// \code
409/// for (int i = 0; i < N; ++i) { /* use arr[i] */ }
410/// for (int i = 0; i < arraysize(arr); ++i) { /* use arr[i] */ }
411/// \endcode
412static bool arrayMatchesBoundExpr(ASTContext *Context,
413 const QualType &ArrayType,
414 const Expr *ConditionExpr) {
415 if (!ConditionExpr || ConditionExpr->isValueDependent())
416 return false;
417 const ConstantArrayType *ConstType =
418 Context->getAsConstantArrayType(ArrayType);
419 if (!ConstType)
420 return false;
421 llvm::APSInt ConditionSize;
422 if (!ConditionExpr->isIntegerConstantExpr(ConditionSize, *Context))
423 return false;
424 llvm::APSInt ArraySize(ConstType->getSize());
425 return llvm::APSInt::isSameValue(ConditionSize, ArraySize);
426}
427
428ForLoopIndexUseVisitor::ForLoopIndexUseVisitor(ASTContext *Context,
429 const VarDecl *IndexVar,
430 const VarDecl *EndVar,
431 const Expr *ContainerExpr,
432 const Expr *ArrayBoundExpr,
433 bool ContainerNeedsDereference)
434 : Context(Context), IndexVar(IndexVar), EndVar(EndVar),
435 ContainerExpr(ContainerExpr), ArrayBoundExpr(ArrayBoundExpr),
436 ContainerNeedsDereference(ContainerNeedsDereference),
437 OnlyUsedAsIndex(true), AliasDecl(nullptr),
438 ConfidenceLevel(Confidence::CL_Safe), NextStmtParent(nullptr),
439 CurrStmtParent(nullptr), ReplaceWithAliasUse(false),
440 AliasFromForInit(false) {
Angel Garcia Gomez692cbb52015-09-01 15:05:15 +0000441 if (ContainerExpr)
Alexander Kornienko04970842015-08-19 09:11:46 +0000442 addComponent(ContainerExpr);
Alexander Kornienko04970842015-08-19 09:11:46 +0000443}
444
445bool ForLoopIndexUseVisitor::findAndVerifyUsages(const Stmt *Body) {
446 TraverseStmt(const_cast<Stmt *>(Body));
447 return OnlyUsedAsIndex && ContainerExpr;
448}
449
450void ForLoopIndexUseVisitor::addComponents(const ComponentVector &Components) {
451 // FIXME: add sort(on ID)+unique to avoid extra work.
452 for (const auto &I : Components)
453 addComponent(I);
454}
455
456void ForLoopIndexUseVisitor::addComponent(const Expr *E) {
457 FoldingSetNodeID ID;
458 const Expr *Node = E->IgnoreParenImpCasts();
459 Node->Profile(ID, *Context, true);
460 DependentExprs.push_back(std::make_pair(Node, ID));
461}
462
463/// \brief If the unary operator is a dereference of IndexVar, include it
464/// as a valid usage and prune the traversal.
465///
466/// For example, if container.begin() and container.end() both return pointers
467/// to int, this makes sure that the initialization for `k` is not counted as an
468/// unconvertible use of the iterator `i`.
469/// \code
470/// for (int *i = container.begin(), *e = container.end(); i != e; ++i) {
471/// int k = *i + 2;
472/// }
473/// \endcode
474bool ForLoopIndexUseVisitor::TraverseUnaryDeref(UnaryOperator *Uop) {
475 // If we dereference an iterator that's actually a pointer, count the
476 // occurrence.
477 if (isDereferenceOfUop(Uop, IndexVar)) {
478 Usages.push_back(Usage(Uop));
479 return true;
480 }
481
482 return VisitorBase::TraverseUnaryOperator(Uop);
483}
484
485/// \brief If the member expression is operator-> (overloaded or not) on
486/// IndexVar, include it as a valid usage and prune the traversal.
487///
488/// For example, given
489/// \code
490/// struct Foo { int bar(); int x; };
491/// vector<Foo> v;
492/// \endcode
493/// the following uses will be considered convertible:
494/// \code
495/// for (vector<Foo>::iterator i = v.begin(), e = v.end(); i != e; ++i) {
496/// int b = i->bar();
497/// int k = i->x + 1;
498/// }
499/// \endcode
500/// though
501/// \code
502/// for (vector<Foo>::iterator i = v.begin(), e = v.end(); i != e; ++i) {
503/// int k = i.insert(1);
504/// }
505/// for (vector<Foo>::iterator i = v.begin(), e = v.end(); i != e; ++i) {
506/// int b = e->bar();
507/// }
508/// \endcode
509/// will not.
510bool ForLoopIndexUseVisitor::TraverseMemberExpr(MemberExpr *Member) {
511 const Expr *Base = Member->getBase();
512 const DeclRefExpr *Obj = getDeclRef(Base);
513 const Expr *ResultExpr = Member;
514 QualType ExprType;
515 if (const auto *Call =
516 dyn_cast<CXXOperatorCallExpr>(Base->IgnoreParenImpCasts())) {
517 // If operator->() is a MemberExpr containing a CXXOperatorCallExpr, then
518 // the MemberExpr does not have the expression we want. We therefore catch
519 // that instance here.
520 // For example, if vector<Foo>::iterator defines operator->(), then the
521 // example `i->bar()` at the top of this function is a CXXMemberCallExpr
522 // referring to `i->` as the member function called. We want just `i`, so
523 // we take the argument to operator->() as the base object.
524 if (Call->getOperator() == OO_Arrow) {
525 assert(Call->getNumArgs() == 1 &&
526 "Operator-> takes more than one argument");
527 Obj = getDeclRef(Call->getArg(0));
528 ResultExpr = Obj;
529 ExprType = Call->getCallReturnType(*Context);
530 }
531 }
532
Angel Garcia Gomez692cbb52015-09-01 15:05:15 +0000533 if (Obj && exprReferencesVariable(IndexVar, Obj)) {
534 // Member calls on the iterator with '.' are not allowed.
535 if (!Member->isArrow()) {
536 OnlyUsedAsIndex = false;
537 return true;
538 }
539
Alexander Kornienko04970842015-08-19 09:11:46 +0000540 if (ExprType.isNull())
541 ExprType = Obj->getType();
542
543 assert(ExprType->isPointerType() && "Operator-> returned non-pointer type");
544 // FIXME: This works around not having the location of the arrow operator.
545 // Consider adding OperatorLoc to MemberExpr?
546 SourceLocation ArrowLoc = Lexer::getLocForEndOfToken(
547 Base->getExprLoc(), 0, Context->getSourceManager(),
548 Context->getLangOpts());
549 // If something complicated is happening (i.e. the next token isn't an
550 // arrow), give up on making this work.
551 if (!ArrowLoc.isInvalid()) {
552 Usages.push_back(Usage(ResultExpr, /*IsArrow=*/true,
553 SourceRange(Base->getExprLoc(), ArrowLoc)));
554 return true;
555 }
556 }
Angel Garcia Gomez692cbb52015-09-01 15:05:15 +0000557 return VisitorBase::TraverseMemberExpr(Member);
Alexander Kornienko04970842015-08-19 09:11:46 +0000558}
559
560/// \brief If a member function call is the at() accessor on the container with
561/// IndexVar as the single argument, include it as a valid usage and prune
562/// the traversal.
563///
564/// Member calls on other objects will not be permitted.
565/// Calls on the iterator object are not permitted, unless done through
566/// operator->(). The one exception is allowing vector::at() for pseudoarrays.
567bool ForLoopIndexUseVisitor::TraverseCXXMemberCallExpr(
568 CXXMemberCallExpr *MemberCall) {
569 auto *Member =
570 dyn_cast<MemberExpr>(MemberCall->getCallee()->IgnoreParenImpCasts());
571 if (!Member)
572 return VisitorBase::TraverseCXXMemberCallExpr(MemberCall);
573
574 // We specifically allow an accessor named "at" to let STL in, though
575 // this is restricted to pseudo-arrays by requiring a single, integer
576 // argument.
577 const IdentifierInfo *Ident = Member->getMemberDecl()->getIdentifier();
578 if (Ident && Ident->isStr("at") && MemberCall->getNumArgs() == 1) {
579 if (isIndexInSubscriptExpr(Context, MemberCall->getArg(0), IndexVar,
580 Member->getBase(), ContainerExpr,
581 ContainerNeedsDereference)) {
582 Usages.push_back(Usage(MemberCall));
583 return true;
584 }
585 }
586
587 if (containsExpr(Context, &DependentExprs, Member->getBase()))
588 ConfidenceLevel.lowerTo(Confidence::CL_Risky);
589
590 return VisitorBase::TraverseCXXMemberCallExpr(MemberCall);
591}
592
593/// \brief If an overloaded operator call is a dereference of IndexVar or
Angel Garcia Gomez692cbb52015-09-01 15:05:15 +0000594/// a subscript of the container with IndexVar as the single argument,
Alexander Kornienko04970842015-08-19 09:11:46 +0000595/// include it as a valid usage and prune the traversal.
596///
597/// For example, given
598/// \code
599/// struct Foo { int bar(); int x; };
600/// vector<Foo> v;
601/// void f(Foo);
602/// \endcode
603/// the following uses will be considered convertible:
604/// \code
605/// for (vector<Foo>::iterator i = v.begin(), e = v.end(); i != e; ++i) {
606/// f(*i);
607/// }
608/// for (int i = 0; i < v.size(); ++i) {
609/// int i = v[i] + 1;
610/// }
611/// \endcode
612bool ForLoopIndexUseVisitor::TraverseCXXOperatorCallExpr(
613 CXXOperatorCallExpr *OpCall) {
614 switch (OpCall->getOperator()) {
615 case OO_Star:
616 if (isDereferenceOfOpCall(OpCall, IndexVar)) {
617 Usages.push_back(Usage(OpCall));
618 return true;
619 }
620 break;
621
622 case OO_Subscript:
623 if (OpCall->getNumArgs() != 2)
624 break;
625 if (isIndexInSubscriptExpr(Context, OpCall->getArg(1), IndexVar,
626 OpCall->getArg(0), ContainerExpr,
627 ContainerNeedsDereference)) {
628 Usages.push_back(Usage(OpCall));
629 return true;
630 }
631 break;
632
633 default:
634 break;
635 }
636 return VisitorBase::TraverseCXXOperatorCallExpr(OpCall);
637}
638
639/// \brief If we encounter an array with IndexVar as the index of an
640/// ArraySubsriptExpression, note it as a consistent usage and prune the
641/// AST traversal.
642///
643/// For example, given
644/// \code
645/// const int N = 5;
646/// int arr[N];
647/// \endcode
648/// This is intended to permit
649/// \code
650/// for (int i = 0; i < N; ++i) { /* use arr[i] */ }
651/// \endcode
652/// but not
653/// \code
654/// for (int i = 0; i < N; ++i) { /* use notArr[i] */ }
655/// \endcode
656/// and further checking needs to be done later to ensure that exactly one array
657/// is referenced.
658bool ForLoopIndexUseVisitor::TraverseArraySubscriptExpr(ArraySubscriptExpr *E) {
659 Expr *Arr = E->getBase();
660 if (!isIndexInSubscriptExpr(E->getIdx(), IndexVar))
661 return VisitorBase::TraverseArraySubscriptExpr(E);
662
663 if ((ContainerExpr &&
664 !areSameExpr(Context, Arr->IgnoreParenImpCasts(),
665 ContainerExpr->IgnoreParenImpCasts())) ||
666 !arrayMatchesBoundExpr(Context, Arr->IgnoreImpCasts()->getType(),
667 ArrayBoundExpr)) {
668 // If we have already discovered the array being indexed and this isn't it
669 // or this array doesn't match, mark this loop as unconvertible.
670 OnlyUsedAsIndex = false;
671 return VisitorBase::TraverseArraySubscriptExpr(E);
672 }
673
674 if (!ContainerExpr)
675 ContainerExpr = Arr;
676
677 Usages.push_back(Usage(E));
678 return true;
679}
680
681/// \brief If we encounter a reference to IndexVar in an unpruned branch of the
682/// traversal, mark this loop as unconvertible.
683///
684/// This implements the whitelist for convertible loops: any usages of IndexVar
685/// not explicitly considered convertible by this traversal will be caught by
686/// this function.
687///
688/// Additionally, if the container expression is more complex than just a
689/// DeclRefExpr, and some part of it is appears elsewhere in the loop, lower
690/// our confidence in the transformation.
691///
692/// For example, these are not permitted:
693/// \code
694/// for (int i = 0; i < N; ++i) { printf("arr[%d] = %d", i, arr[i]); }
695/// for (vector<int>::iterator i = container.begin(), e = container.end();
696/// i != e; ++i)
697/// i.insert(0);
698/// for (vector<int>::iterator i = container.begin(), e = container.end();
699/// i != e; ++i)
Alexander Kornienko04970842015-08-19 09:11:46 +0000700/// if (i + 1 != e)
701/// printf("%d", *i);
702/// \endcode
703///
704/// And these will raise the risk level:
705/// \code
706/// int arr[10][20];
707/// int l = 5;
708/// for (int j = 0; j < 20; ++j)
709/// int k = arr[l][j] + l; // using l outside arr[l] is considered risky
710/// for (int i = 0; i < obj.getVector().size(); ++i)
711/// obj.foo(10); // using `obj` is considered risky
712/// \endcode
713bool ForLoopIndexUseVisitor::VisitDeclRefExpr(DeclRefExpr *E) {
714 const ValueDecl *TheDecl = E->getDecl();
Angel Garcia Gomez692cbb52015-09-01 15:05:15 +0000715 if (areSameVariable(IndexVar, TheDecl) ||
716 exprReferencesVariable(IndexVar, E) || areSameVariable(EndVar, TheDecl) ||
717 exprReferencesVariable(EndVar, E))
Alexander Kornienko04970842015-08-19 09:11:46 +0000718 OnlyUsedAsIndex = false;
719 if (containsExpr(Context, &DependentExprs, E))
720 ConfidenceLevel.lowerTo(Confidence::CL_Risky);
721 return true;
722}
723
Angel Garcia Gomez8d017722015-09-03 12:28:11 +0000724/// \brief If the loop index is captured by a lambda, replace this capture
725/// by the range-for loop variable.
726///
727/// For example:
728/// \code
729/// for (int i = 0; i < N; ++i) {
730/// auto f = [v, i](int k) {
731/// printf("%d\n", v[i] + k);
732/// };
733/// f(v[i]);
734/// }
735/// \endcode
736///
737/// Will be replaced by:
738/// \code
739/// for (auto & elem : v) {
740/// auto f = [v, elem](int k) {
741/// printf("%d\n", elem + k);
742/// };
743/// f(elem);
744/// }
745/// \endcode
746bool ForLoopIndexUseVisitor::TraverseLambdaCapture(LambdaExpr *LE,
747 const LambdaCapture *C) {
748 if (C->capturesVariable()) {
749 const VarDecl* VDecl = C->getCapturedVar();
750 if (areSameVariable(IndexVar, cast<ValueDecl>(VDecl))) {
751 // FIXME: if the index is captured, it will count as an usage and the
752 // alias (if any) won't work, because it is only used in case of having
753 // exactly one usage.
754 Usages.push_back(Usage(nullptr, false, C->getLocation()));
755 }
756 }
757 return VisitorBase::TraverseLambdaCapture(LE, C);
758}
759
Alexander Kornienko04970842015-08-19 09:11:46 +0000760/// \brief If we find that another variable is created just to refer to the loop
761/// element, note it for reuse as the loop variable.
762///
763/// See the comments for isAliasDecl.
764bool ForLoopIndexUseVisitor::VisitDeclStmt(DeclStmt *S) {
765 if (!AliasDecl && S->isSingleDecl() &&
Angel Garcia Gomez8d017722015-09-03 12:28:11 +0000766 isAliasDecl(Context, S->getSingleDecl(), IndexVar)) {
Alexander Kornienko04970842015-08-19 09:11:46 +0000767 AliasDecl = S;
768 if (CurrStmtParent) {
769 if (isa<IfStmt>(CurrStmtParent) || isa<WhileStmt>(CurrStmtParent) ||
770 isa<SwitchStmt>(CurrStmtParent))
771 ReplaceWithAliasUse = true;
772 else if (isa<ForStmt>(CurrStmtParent)) {
773 if (cast<ForStmt>(CurrStmtParent)->getConditionVariableDeclStmt() == S)
774 ReplaceWithAliasUse = true;
775 else
776 // It's assumed S came the for loop's init clause.
777 AliasFromForInit = true;
778 }
779 }
780 }
781
782 return true;
783}
784
785bool ForLoopIndexUseVisitor::TraverseStmt(Stmt *S) {
786 // All this pointer swapping is a mechanism for tracking immediate parentage
787 // of Stmts.
788 const Stmt *OldNextParent = NextStmtParent;
789 CurrStmtParent = NextStmtParent;
790 NextStmtParent = S;
791 bool Result = VisitorBase::TraverseStmt(S);
792 NextStmtParent = OldNextParent;
793 return Result;
794}
795
796std::string VariableNamer::createIndexName() {
797 // FIXME: Add in naming conventions to handle:
798 // - Uppercase/lowercase indices.
799 // - How to handle conflicts.
800 // - An interactive process for naming.
801 std::string IteratorName;
802 std::string ContainerName;
803 if (TheContainer)
804 ContainerName = TheContainer->getName().str();
805
806 size_t Len = ContainerName.length();
807 if (Len > 1 && ContainerName[Len - 1] == 's')
808 IteratorName = ContainerName.substr(0, Len - 1);
809 else
810 IteratorName = "elem";
811
812 if (!declarationExists(IteratorName))
813 return IteratorName;
814
815 IteratorName = ContainerName + "_" + OldIndex->getName().str();
816 if (!declarationExists(IteratorName))
817 return IteratorName;
818
819 IteratorName = ContainerName + "_elem";
820 if (!declarationExists(IteratorName))
821 return IteratorName;
822
823 IteratorName += "_elem";
824 if (!declarationExists(IteratorName))
825 return IteratorName;
826
827 IteratorName = "_elem_";
828
829 // Someone defeated my naming scheme...
830 while (declarationExists(IteratorName))
831 IteratorName += "i";
832 return IteratorName;
833}
834
835/// \brief Determines whether or not the the name \a Symbol conflicts with
836/// language keywords or defined macros. Also checks if the name exists in
837/// LoopContext, any of its parent contexts, or any of its child statements.
838///
839/// We also check to see if the same identifier was generated by this loop
840/// converter in a loop nested within SourceStmt.
841bool VariableNamer::declarationExists(StringRef Symbol) {
842 assert(Context != nullptr && "Expected an ASTContext");
843 IdentifierInfo &Ident = Context->Idents.get(Symbol);
844
845 // Check if the symbol is not an identifier (ie. is a keyword or alias).
846 if (!isAnyIdentifier(Ident.getTokenID()))
847 return true;
848
849 // Check for conflicting macro definitions.
850 if (Ident.hasMacroDefinition())
851 return true;
852
853 // Determine if the symbol was generated in a parent context.
854 for (const Stmt *S = SourceStmt; S != nullptr; S = ReverseAST->lookup(S)) {
855 StmtGeneratedVarNameMap::const_iterator I = GeneratedDecls->find(S);
856 if (I != GeneratedDecls->end() && I->second == Symbol)
857 return true;
858 }
859
860 // FIXME: Rather than detecting conflicts at their usages, we should check the
861 // parent context.
862 // For some reason, lookup() always returns the pair (NULL, NULL) because its
863 // StoredDeclsMap is not initialized (i.e. LookupPtr.getInt() is false inside
864 // of DeclContext::lookup()). Why is this?
865
866 // Finally, determine if the symbol was used in the loop or a child context.
867 DeclFinderASTVisitor DeclFinder(Symbol, GeneratedDecls);
868 return DeclFinder.findUsages(SourceStmt);
869}
870
871} // namespace modernize
872} // namespace tidy
873} // namespace clang