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805 lines
30 KiB
C++
805 lines
30 KiB
C++
/* This Source Code Form is subject to the terms of the Mozilla Public
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* License, v. 2.0. If a copy of the MPL was not distributed with this
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* file, You can obtain one at http://mozilla.org/MPL/2.0/. */
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#include "clang/AST/ASTConsumer.h"
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#include "clang/AST/ASTContext.h"
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#include "clang/AST/RecursiveASTVisitor.h"
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#include "clang/ASTMatchers/ASTMatchers.h"
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#include "clang/ASTMatchers/ASTMatchFinder.h"
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#include "clang/Basic/Version.h"
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#include "clang/Frontend/CompilerInstance.h"
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#include "clang/Frontend/FrontendPluginRegistry.h"
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#include "clang/Frontend/MultiplexConsumer.h"
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#include "clang/Sema/Sema.h"
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#include "llvm/ADT/DenseMap.h"
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#include "llvm/Support/FileSystem.h"
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#include "llvm/Support/Path.h"
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#include <memory>
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#define CLANG_VERSION_FULL (CLANG_VERSION_MAJOR * 100 + CLANG_VERSION_MINOR)
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using namespace llvm;
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using namespace clang;
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#if CLANG_VERSION_FULL >= 306
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typedef std::unique_ptr<ASTConsumer> ASTConsumerPtr;
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#else
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typedef ASTConsumer *ASTConsumerPtr;
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#endif
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namespace {
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using namespace clang::ast_matchers;
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class DiagnosticsMatcher {
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public:
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DiagnosticsMatcher();
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ASTConsumerPtr makeASTConsumer() {
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return astMatcher.newASTConsumer();
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}
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private:
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class ScopeChecker : public MatchFinder::MatchCallback {
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public:
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enum Scope {
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eLocal,
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eGlobal
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};
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ScopeChecker(Scope scope_) :
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scope(scope_) {}
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virtual void run(const MatchFinder::MatchResult &Result);
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void noteInferred(QualType T, DiagnosticsEngine &Diag);
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private:
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Scope scope;
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};
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class NonHeapClassChecker : public MatchFinder::MatchCallback {
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public:
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virtual void run(const MatchFinder::MatchResult &Result);
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void noteInferred(QualType T, DiagnosticsEngine &Diag);
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};
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class ArithmeticArgChecker : public MatchFinder::MatchCallback {
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public:
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virtual void run(const MatchFinder::MatchResult &Result);
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};
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class TrivialCtorDtorChecker : public MatchFinder::MatchCallback {
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public:
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virtual void run(const MatchFinder::MatchResult &Result);
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};
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class NaNExprChecker : public MatchFinder::MatchCallback {
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public:
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virtual void run(const MatchFinder::MatchResult &Result);
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};
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class NoAddRefReleaseOnReturnChecker : public MatchFinder::MatchCallback {
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public:
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virtual void run(const MatchFinder::MatchResult &Result);
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};
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ScopeChecker stackClassChecker;
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ScopeChecker globalClassChecker;
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NonHeapClassChecker nonheapClassChecker;
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ArithmeticArgChecker arithmeticArgChecker;
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TrivialCtorDtorChecker trivialCtorDtorChecker;
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NaNExprChecker nanExprChecker;
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NoAddRefReleaseOnReturnChecker noAddRefReleaseOnReturnChecker;
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MatchFinder astMatcher;
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};
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namespace {
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bool isInIgnoredNamespace(const Decl *decl) {
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const DeclContext *DC = decl->getDeclContext()->getEnclosingNamespaceContext();
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const NamespaceDecl *ND = dyn_cast<NamespaceDecl>(DC);
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if (!ND) {
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return false;
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}
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while (const DeclContext *ParentDC = ND->getParent()) {
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if (!isa<NamespaceDecl>(ParentDC)) {
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break;
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}
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ND = cast<NamespaceDecl>(ParentDC);
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}
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const auto& name = ND->getName();
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// namespace std and icu are ignored for now
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return name == "std" || // standard C++ lib
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name == "__gnu_cxx" || // gnu C++ lib
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name == "boost" || // boost
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name == "webrtc" || // upstream webrtc
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name == "icu_52" || // icu
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name == "google" || // protobuf
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name == "google_breakpad" || // breakpad
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name == "soundtouch" || // libsoundtouch
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name == "stagefright" || // libstagefright
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name == "MacFileUtilities" || // MacFileUtilities
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name == "dwarf2reader" || // dwarf2reader
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name == "arm_ex_to_module" || // arm_ex_to_module
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name == "testing"; // gtest
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}
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bool isIgnoredPath(const Decl *decl) {
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decl = decl->getCanonicalDecl();
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SourceLocation Loc = decl->getLocation();
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const SourceManager &SM = decl->getASTContext().getSourceManager();
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SmallString<1024> FileName = SM.getFilename(Loc);
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llvm::sys::fs::make_absolute(FileName);
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llvm::sys::path::reverse_iterator begin = llvm::sys::path::rbegin(FileName),
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end = llvm::sys::path::rend(FileName);
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for (; begin != end; ++begin) {
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if (begin->compare_lower(StringRef("skia")) == 0 ||
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begin->compare_lower(StringRef("angle")) == 0 ||
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begin->compare_lower(StringRef("harfbuzz")) == 0 ||
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begin->compare_lower(StringRef("hunspell")) == 0 ||
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begin->compare_lower(StringRef("scoped_ptr.h")) == 0 ||
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begin->compare_lower(StringRef("graphite2")) == 0) {
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return true;
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}
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}
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return false;
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}
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bool isInterestingDecl(const Decl *decl) {
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return !isInIgnoredNamespace(decl) &&
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!isIgnoredPath(decl);
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}
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}
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class MozChecker : public ASTConsumer, public RecursiveASTVisitor<MozChecker> {
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DiagnosticsEngine &Diag;
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const CompilerInstance &CI;
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DiagnosticsMatcher matcher;
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public:
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MozChecker(const CompilerInstance &CI) : Diag(CI.getDiagnostics()), CI(CI) {}
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ASTConsumerPtr getOtherConsumer() {
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return matcher.makeASTConsumer();
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}
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virtual void HandleTranslationUnit(ASTContext &ctx) {
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TraverseDecl(ctx.getTranslationUnitDecl());
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}
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static bool hasCustomAnnotation(const Decl *d, const char *spelling) {
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AnnotateAttr *attr = d->getAttr<AnnotateAttr>();
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if (!attr)
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return false;
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return attr->getAnnotation() == spelling;
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}
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bool VisitCXXRecordDecl(CXXRecordDecl *d) {
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// We need definitions, not declarations
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if (!d->isThisDeclarationADefinition()) return true;
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// Look through all of our immediate bases to find methods that need to be
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// overridden
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typedef std::vector<CXXMethodDecl *> OverridesVector;
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OverridesVector must_overrides;
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for (CXXRecordDecl::base_class_iterator base = d->bases_begin(),
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e = d->bases_end(); base != e; ++base) {
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// The base is either a class (CXXRecordDecl) or it's a templated class...
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CXXRecordDecl *parent = base->getType()
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.getDesugaredType(d->getASTContext())->getAsCXXRecordDecl();
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// The parent might not be resolved to a type yet. In this case, we can't
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// do any checking here. For complete correctness, we should visit
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// template instantiations, but this case is likely to be rare, so we will
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// ignore it until it becomes important.
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if (!parent) {
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continue;
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}
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parent = parent->getDefinition();
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for (CXXRecordDecl::method_iterator M = parent->method_begin();
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M != parent->method_end(); ++M) {
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if (hasCustomAnnotation(*M, "moz_must_override"))
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must_overrides.push_back(*M);
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}
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}
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for (OverridesVector::iterator it = must_overrides.begin();
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it != must_overrides.end(); ++it) {
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bool overridden = false;
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for (CXXRecordDecl::method_iterator M = d->method_begin();
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!overridden && M != d->method_end(); ++M) {
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// The way that Clang checks if a method M overrides its parent method
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// is if the method has the same name but would not overload.
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if (M->getName() == (*it)->getName() &&
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!CI.getSema().IsOverload(*M, (*it), false)) {
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overridden = true;
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break;
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}
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}
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if (!overridden) {
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unsigned overrideID = Diag.getDiagnosticIDs()->getCustomDiagID(
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DiagnosticIDs::Error, "%0 must override %1");
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unsigned overrideNote = Diag.getDiagnosticIDs()->getCustomDiagID(
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DiagnosticIDs::Note, "function to override is here");
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Diag.Report(d->getLocation(), overrideID) << d->getDeclName() <<
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(*it)->getDeclName();
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Diag.Report((*it)->getLocation(), overrideNote);
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}
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}
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if (!d->isAbstract() && isInterestingDecl(d)) {
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for (CXXRecordDecl::ctor_iterator ctor = d->ctor_begin(),
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e = d->ctor_end(); ctor != e; ++ctor) {
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// Ignore non-converting ctors
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if (!ctor->isConvertingConstructor(false)) {
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continue;
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}
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// Ignore copy or move constructors
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if (ctor->isCopyOrMoveConstructor()) {
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continue;
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}
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// Ignore deleted constructors
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if (ctor->isDeleted()) {
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continue;
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}
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// Ignore whitelisted constructors
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if (MozChecker::hasCustomAnnotation(*ctor, "moz_implicit")) {
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continue;
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}
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unsigned ctorID = Diag.getDiagnosticIDs()->getCustomDiagID(
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DiagnosticIDs::Error, "bad implicit conversion constructor for %0");
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unsigned noteID = Diag.getDiagnosticIDs()->getCustomDiagID(
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DiagnosticIDs::Note, "consider adding the explicit keyword to the constructor");
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Diag.Report(ctor->getLocation(), ctorID) << d->getDeclName();
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Diag.Report(ctor->getLocation(), noteID);
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}
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}
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return true;
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}
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};
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/**
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* Where classes may be allocated. Regular classes can be allocated anywhere,
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* non-heap classes on the stack or as static variables, and stack classes only
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* on the stack. Note that stack classes subsumes non-heap classes.
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*/
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enum ClassAllocationNature {
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RegularClass = 0,
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NonHeapClass = 1,
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StackClass = 2,
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GlobalClass = 3
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};
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/// A cached data of whether classes are stack classes, non-heap classes, or
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/// neither.
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DenseMap<const CXXRecordDecl *,
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std::pair<const Decl *, ClassAllocationNature> > inferredAllocCauses;
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ClassAllocationNature getClassAttrs(QualType T);
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ClassAllocationNature getClassAttrs(CXXRecordDecl *D) {
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// Normalize so that D points to the definition if it exists. If it doesn't,
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// then we can't allocate it anyways.
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if (!D->hasDefinition())
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return RegularClass;
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D = D->getDefinition();
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// Base class: anyone with this annotation is obviously a stack class
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if (MozChecker::hasCustomAnnotation(D, "moz_stack_class"))
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return StackClass;
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// Base class: anyone with this annotation is obviously a global class
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if (MozChecker::hasCustomAnnotation(D, "moz_global_class"))
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return GlobalClass;
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// See if we cached the result.
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DenseMap<const CXXRecordDecl *,
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std::pair<const Decl *, ClassAllocationNature> >::iterator it =
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inferredAllocCauses.find(D);
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if (it != inferredAllocCauses.end()) {
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return it->second.second;
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}
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// Continue looking, we might be a stack class yet. Even if we're a nonheap
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// class, it might be possible that we've inferred to be a stack class.
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ClassAllocationNature type = RegularClass;
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if (MozChecker::hasCustomAnnotation(D, "moz_nonheap_class")) {
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type = NonHeapClass;
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}
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inferredAllocCauses.insert(std::make_pair(D,
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std::make_pair((const Decl *)0, type)));
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// Look through all base cases to figure out if the parent is a stack class or
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// a non-heap class. Since we might later infer to also be a stack class, keep
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// going.
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for (CXXRecordDecl::base_class_iterator base = D->bases_begin(),
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e = D->bases_end(); base != e; ++base) {
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ClassAllocationNature super = getClassAttrs(base->getType());
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if (super == StackClass) {
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inferredAllocCauses[D] = std::make_pair(
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base->getType()->getAsCXXRecordDecl(), StackClass);
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return StackClass;
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} else if (super == GlobalClass) {
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inferredAllocCauses[D] = std::make_pair(
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base->getType()->getAsCXXRecordDecl(), GlobalClass);
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return GlobalClass;
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} else if (super == NonHeapClass) {
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inferredAllocCauses[D] = std::make_pair(
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base->getType()->getAsCXXRecordDecl(), NonHeapClass);
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type = NonHeapClass;
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}
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}
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// Maybe it has a member which is a stack class.
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for (RecordDecl::field_iterator field = D->field_begin(), e = D->field_end();
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field != e; ++field) {
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ClassAllocationNature fieldType = getClassAttrs(field->getType());
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if (fieldType == StackClass) {
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inferredAllocCauses[D] = std::make_pair(*field, StackClass);
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return StackClass;
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} else if (fieldType == GlobalClass) {
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inferredAllocCauses[D] = std::make_pair(*field, GlobalClass);
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return GlobalClass;
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} else if (fieldType == NonHeapClass) {
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inferredAllocCauses[D] = std::make_pair(*field, NonHeapClass);
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type = NonHeapClass;
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}
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}
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return type;
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}
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ClassAllocationNature getClassAttrs(QualType T) {
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while (const ArrayType *arrTy = T->getAsArrayTypeUnsafe())
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T = arrTy->getElementType();
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CXXRecordDecl *clazz = T->getAsCXXRecordDecl();
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return clazz ? getClassAttrs(clazz) : RegularClass;
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}
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}
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namespace clang {
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namespace ast_matchers {
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/// This matcher will match any class with the stack class assertion or an
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/// array of such classes.
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AST_MATCHER(QualType, stackClassAggregate) {
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return getClassAttrs(Node) == StackClass;
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}
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/// This matcher will match any class with the global class assertion or an
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/// array of such classes.
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AST_MATCHER(QualType, globalClassAggregate) {
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return getClassAttrs(Node) == GlobalClass;
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}
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/// This matcher will match any class with the stack class assertion or an
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/// array of such classes.
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AST_MATCHER(QualType, nonheapClassAggregate) {
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return getClassAttrs(Node) == NonHeapClass;
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}
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/// This matcher will match any function declaration that is declared as a heap
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/// allocator.
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AST_MATCHER(FunctionDecl, heapAllocator) {
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return MozChecker::hasCustomAnnotation(&Node, "moz_heap_allocator");
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}
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/// This matcher will match any declaration that is marked as not accepting
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/// arithmetic expressions in its arguments.
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AST_MATCHER(Decl, noArithmeticExprInArgs) {
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return MozChecker::hasCustomAnnotation(&Node, "moz_no_arith_expr_in_arg");
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}
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/// This matcher will match any C++ class that is marked as having a trivial
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/// constructor and destructor.
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AST_MATCHER(CXXRecordDecl, hasTrivialCtorDtor) {
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return MozChecker::hasCustomAnnotation(&Node, "moz_trivial_ctor_dtor");
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}
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/// This matcher will match any function declaration that is marked to prohibit
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/// calling AddRef or Release on its return value.
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AST_MATCHER(FunctionDecl, hasNoAddRefReleaseOnReturnAttr) {
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return MozChecker::hasCustomAnnotation(&Node, "moz_no_addref_release_on_return");
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}
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/// This matcher will match all arithmetic binary operators.
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AST_MATCHER(BinaryOperator, binaryArithmeticOperator) {
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BinaryOperatorKind opcode = Node.getOpcode();
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return opcode == BO_Mul ||
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opcode == BO_Div ||
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opcode == BO_Rem ||
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opcode == BO_Add ||
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opcode == BO_Sub ||
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opcode == BO_Shl ||
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opcode == BO_Shr ||
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opcode == BO_And ||
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opcode == BO_Xor ||
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opcode == BO_Or ||
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opcode == BO_MulAssign ||
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opcode == BO_DivAssign ||
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opcode == BO_RemAssign ||
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opcode == BO_AddAssign ||
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opcode == BO_SubAssign ||
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opcode == BO_ShlAssign ||
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opcode == BO_ShrAssign ||
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opcode == BO_AndAssign ||
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opcode == BO_XorAssign ||
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opcode == BO_OrAssign;
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}
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/// This matcher will match all arithmetic unary operators.
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AST_MATCHER(UnaryOperator, unaryArithmeticOperator) {
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UnaryOperatorKind opcode = Node.getOpcode();
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return opcode == UO_PostInc ||
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opcode == UO_PostDec ||
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opcode == UO_PreInc ||
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opcode == UO_PreDec ||
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opcode == UO_Plus ||
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opcode == UO_Minus ||
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opcode == UO_Not;
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}
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/// This matcher will match == and != binary operators.
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AST_MATCHER(BinaryOperator, binaryEqualityOperator) {
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BinaryOperatorKind opcode = Node.getOpcode();
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return opcode == BO_EQ || opcode == BO_NE;
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}
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/// This matcher will match floating point types.
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AST_MATCHER(QualType, isFloat) {
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return Node->isRealFloatingType();
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}
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/// This matcher will match locations in system headers. This is adopted from
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/// isExpansionInSystemHeader in newer clangs, but modified in order to work
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/// with old clangs that we use on infra.
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AST_MATCHER(BinaryOperator, isInSystemHeader) {
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auto &SourceManager = Finder->getASTContext().getSourceManager();
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auto ExpansionLoc = SourceManager.getExpansionLoc(Node.getLocStart());
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if (ExpansionLoc.isInvalid()) {
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return false;
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}
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return SourceManager.isInSystemHeader(ExpansionLoc);
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}
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/// This matcher will match locations in SkScalar.h. This header contains a
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/// known NaN-testing expression which we would like to whitelist.
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AST_MATCHER(BinaryOperator, isInSkScalarDotH) {
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SourceLocation Loc = Node.getOperatorLoc();
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auto &SourceManager = Finder->getASTContext().getSourceManager();
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SmallString<1024> FileName = SourceManager.getFilename(Loc);
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return llvm::sys::path::rbegin(FileName)->equals("SkScalar.h");
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}
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/// This matcher will match all accesses to AddRef or Release methods.
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AST_MATCHER(MemberExpr, isAddRefOrRelease) {
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ValueDecl *Member = Node.getMemberDecl();
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CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Member);
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if (Method) {
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std::string Name = Method->getNameAsString();
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return Name == "AddRef" || Name == "Release";
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}
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return false;
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}
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}
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}
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namespace {
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bool isPlacementNew(const CXXNewExpr *expr) {
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// Regular new expressions aren't placement new
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if (expr->getNumPlacementArgs() == 0)
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return false;
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if (MozChecker::hasCustomAnnotation(expr->getOperatorNew(),
|
|
"moz_heap_allocator"))
|
|
return false;
|
|
return true;
|
|
}
|
|
|
|
DiagnosticsMatcher::DiagnosticsMatcher()
|
|
: stackClassChecker(ScopeChecker::eLocal),
|
|
globalClassChecker(ScopeChecker::eGlobal)
|
|
{
|
|
// Stack class assertion: non-local variables of a stack class are forbidden
|
|
// (non-localness checked in the callback)
|
|
astMatcher.addMatcher(varDecl(hasType(stackClassAggregate())).bind("node"),
|
|
&stackClassChecker);
|
|
// Stack class assertion: new stack class is forbidden (unless placement new)
|
|
astMatcher.addMatcher(newExpr(hasType(pointerType(
|
|
pointee(stackClassAggregate())
|
|
))).bind("node"), &stackClassChecker);
|
|
// Global class assertion: non-global variables of a global class are forbidden
|
|
// (globalness checked in the callback)
|
|
astMatcher.addMatcher(varDecl(hasType(globalClassAggregate())).bind("node"),
|
|
&globalClassChecker);
|
|
// Global class assertion: new global class is forbidden
|
|
astMatcher.addMatcher(newExpr(hasType(pointerType(
|
|
pointee(globalClassAggregate())
|
|
))).bind("node"), &globalClassChecker);
|
|
// Non-heap class assertion: new non-heap class is forbidden (unless placement
|
|
// new)
|
|
astMatcher.addMatcher(newExpr(hasType(pointerType(
|
|
pointee(nonheapClassAggregate())
|
|
))).bind("node"), &nonheapClassChecker);
|
|
|
|
// Any heap allocation function that returns a non-heap or a stack class or
|
|
// a global class is definitely doing something wrong
|
|
astMatcher.addMatcher(callExpr(callee(functionDecl(allOf(heapAllocator(),
|
|
returns(pointerType(pointee(nonheapClassAggregate()))))))).bind("node"),
|
|
&nonheapClassChecker);
|
|
astMatcher.addMatcher(callExpr(callee(functionDecl(allOf(heapAllocator(),
|
|
returns(pointerType(pointee(stackClassAggregate()))))))).bind("node"),
|
|
&stackClassChecker);
|
|
|
|
astMatcher.addMatcher(callExpr(callee(functionDecl(allOf(heapAllocator(),
|
|
returns(pointerType(pointee(globalClassAggregate()))))))).bind("node"),
|
|
&globalClassChecker);
|
|
|
|
astMatcher.addMatcher(callExpr(allOf(hasDeclaration(noArithmeticExprInArgs()),
|
|
anyOf(
|
|
hasDescendant(binaryOperator(allOf(binaryArithmeticOperator(),
|
|
hasLHS(hasDescendant(declRefExpr())),
|
|
hasRHS(hasDescendant(declRefExpr()))
|
|
)).bind("node")),
|
|
hasDescendant(unaryOperator(allOf(unaryArithmeticOperator(),
|
|
hasUnaryOperand(allOf(hasType(builtinType()),
|
|
anyOf(hasDescendant(declRefExpr()), declRefExpr())))
|
|
)).bind("node"))
|
|
)
|
|
)).bind("call"),
|
|
&arithmeticArgChecker);
|
|
astMatcher.addMatcher(constructExpr(allOf(hasDeclaration(noArithmeticExprInArgs()),
|
|
anyOf(
|
|
hasDescendant(binaryOperator(allOf(binaryArithmeticOperator(),
|
|
hasLHS(hasDescendant(declRefExpr())),
|
|
hasRHS(hasDescendant(declRefExpr()))
|
|
)).bind("node")),
|
|
hasDescendant(unaryOperator(allOf(unaryArithmeticOperator(),
|
|
hasUnaryOperand(allOf(hasType(builtinType()),
|
|
anyOf(hasDescendant(declRefExpr()), declRefExpr())))
|
|
)).bind("node"))
|
|
)
|
|
)).bind("call"),
|
|
&arithmeticArgChecker);
|
|
|
|
astMatcher.addMatcher(recordDecl(hasTrivialCtorDtor()).bind("node"),
|
|
&trivialCtorDtorChecker);
|
|
|
|
astMatcher.addMatcher(binaryOperator(allOf(binaryEqualityOperator(),
|
|
hasLHS(has(declRefExpr(hasType(qualType((isFloat())))).bind("lhs"))),
|
|
hasRHS(has(declRefExpr(hasType(qualType((isFloat())))).bind("rhs"))),
|
|
unless(anyOf(isInSystemHeader(), isInSkScalarDotH()))
|
|
)).bind("node"),
|
|
&nanExprChecker);
|
|
|
|
astMatcher.addMatcher(callExpr(callee(functionDecl(hasNoAddRefReleaseOnReturnAttr()).bind("func")),
|
|
hasParent(memberExpr(isAddRefOrRelease(),
|
|
hasParent(callExpr())).bind("member")
|
|
)).bind("node"),
|
|
&noAddRefReleaseOnReturnChecker);
|
|
}
|
|
|
|
void DiagnosticsMatcher::ScopeChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned stackID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "variable of type %0 only valid on the stack");
|
|
unsigned globalID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "variable of type %0 only valid as global");
|
|
unsigned errorID = (scope == eGlobal) ? globalID : stackID;
|
|
if (const VarDecl *d = Result.Nodes.getNodeAs<VarDecl>("node")) {
|
|
if (scope == eLocal) {
|
|
// Ignore the match if it's a local variable.
|
|
if (d->hasLocalStorage())
|
|
return;
|
|
} else if (scope == eGlobal) {
|
|
// Ignore the match if it's a global variable or a static member of a
|
|
// class. The latter is technically not in the global scope, but for the
|
|
// use case of classes that intend to avoid introducing static
|
|
// initializers that is fine.
|
|
if (d->hasGlobalStorage() && !d->isStaticLocal())
|
|
return;
|
|
}
|
|
|
|
Diag.Report(d->getLocation(), errorID) << d->getType();
|
|
noteInferred(d->getType(), Diag);
|
|
} else if (const CXXNewExpr *expr =
|
|
Result.Nodes.getNodeAs<CXXNewExpr>("node")) {
|
|
// If it's placement new, then this match doesn't count.
|
|
if (scope == eLocal && isPlacementNew(expr))
|
|
return;
|
|
Diag.Report(expr->getStartLoc(), errorID) << expr->getAllocatedType();
|
|
noteInferred(expr->getAllocatedType(), Diag);
|
|
} else if (const CallExpr *expr =
|
|
Result.Nodes.getNodeAs<CallExpr>("node")) {
|
|
QualType badType = expr->getCallReturnType()->getPointeeType();
|
|
Diag.Report(expr->getLocStart(), errorID) << badType;
|
|
noteInferred(badType, Diag);
|
|
}
|
|
}
|
|
|
|
void DiagnosticsMatcher::ScopeChecker::noteInferred(QualType T,
|
|
DiagnosticsEngine &Diag) {
|
|
unsigned inheritsID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Note,
|
|
"%0 is a %2 class because it inherits from a %2 class %1");
|
|
unsigned memberID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Note,
|
|
"%0 is a %3 class because member %1 is a %3 class %2");
|
|
const char* attribute = (scope == eGlobal) ?
|
|
"moz_global_class" : "moz_stack_class";
|
|
const char* type = (scope == eGlobal) ?
|
|
"global" : "stack";
|
|
|
|
// Find the CXXRecordDecl that is the local/global class of interest
|
|
while (const ArrayType *arrTy = T->getAsArrayTypeUnsafe())
|
|
T = arrTy->getElementType();
|
|
CXXRecordDecl *clazz = T->getAsCXXRecordDecl();
|
|
|
|
// Direct result, we're done.
|
|
if (MozChecker::hasCustomAnnotation(clazz, attribute))
|
|
return;
|
|
|
|
const Decl *cause = inferredAllocCauses[clazz].first;
|
|
if (const CXXRecordDecl *CRD = dyn_cast<CXXRecordDecl>(cause)) {
|
|
Diag.Report(clazz->getLocation(), inheritsID) <<
|
|
T << CRD->getDeclName() << type;
|
|
} else if (const FieldDecl *FD = dyn_cast<FieldDecl>(cause)) {
|
|
Diag.Report(FD->getLocation(), memberID) <<
|
|
T << FD << FD->getType() << type;
|
|
}
|
|
|
|
// Recursively follow this back.
|
|
noteInferred(cast<ValueDecl>(cause)->getType(), Diag);
|
|
}
|
|
|
|
void DiagnosticsMatcher::NonHeapClassChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned stackID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "variable of type %0 is not valid on the heap");
|
|
if (const CXXNewExpr *expr = Result.Nodes.getNodeAs<CXXNewExpr>("node")) {
|
|
// If it's placement new, then this match doesn't count.
|
|
if (isPlacementNew(expr))
|
|
return;
|
|
Diag.Report(expr->getStartLoc(), stackID) << expr->getAllocatedType();
|
|
noteInferred(expr->getAllocatedType(), Diag);
|
|
} else if (const CallExpr *expr = Result.Nodes.getNodeAs<CallExpr>("node")) {
|
|
QualType badType = expr->getCallReturnType()->getPointeeType();
|
|
Diag.Report(expr->getLocStart(), stackID) << badType;
|
|
noteInferred(badType, Diag);
|
|
}
|
|
}
|
|
|
|
void DiagnosticsMatcher::NonHeapClassChecker::noteInferred(QualType T,
|
|
DiagnosticsEngine &Diag) {
|
|
unsigned inheritsID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Note,
|
|
"%0 is a non-heap class because it inherits from a non-heap class %1");
|
|
unsigned memberID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Note,
|
|
"%0 is a non-heap class because member %1 is a non-heap class %2");
|
|
|
|
// Find the CXXRecordDecl that is the stack class of interest
|
|
while (const ArrayType *arrTy = T->getAsArrayTypeUnsafe())
|
|
T = arrTy->getElementType();
|
|
CXXRecordDecl *clazz = T->getAsCXXRecordDecl();
|
|
|
|
// Direct result, we're done.
|
|
if (MozChecker::hasCustomAnnotation(clazz, "moz_nonheap_class"))
|
|
return;
|
|
|
|
const Decl *cause = inferredAllocCauses[clazz].first;
|
|
if (const CXXRecordDecl *CRD = dyn_cast<CXXRecordDecl>(cause)) {
|
|
Diag.Report(clazz->getLocation(), inheritsID) << T << CRD->getDeclName();
|
|
} else if (const FieldDecl *FD = dyn_cast<FieldDecl>(cause)) {
|
|
Diag.Report(FD->getLocation(), memberID) << T << FD << FD->getType();
|
|
}
|
|
|
|
// Recursively follow this back.
|
|
noteInferred(cast<ValueDecl>(cause)->getType(), Diag);
|
|
}
|
|
|
|
void DiagnosticsMatcher::ArithmeticArgChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned errorID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "cannot pass an arithmetic expression of built-in types to %0");
|
|
const Expr *expr = Result.Nodes.getNodeAs<Expr>("node");
|
|
if (const CallExpr *call = Result.Nodes.getNodeAs<CallExpr>("call")) {
|
|
Diag.Report(expr->getLocStart(), errorID) << call->getDirectCallee();
|
|
} else if (const CXXConstructExpr *ctr = Result.Nodes.getNodeAs<CXXConstructExpr>("call")) {
|
|
Diag.Report(expr->getLocStart(), errorID) << ctr->getConstructor();
|
|
}
|
|
}
|
|
|
|
void DiagnosticsMatcher::TrivialCtorDtorChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned errorID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "class %0 must have trivial constructors and destructors");
|
|
const CXXRecordDecl *node = Result.Nodes.getNodeAs<CXXRecordDecl>("node");
|
|
|
|
bool badCtor = !node->hasTrivialDefaultConstructor();
|
|
bool badDtor = !node->hasTrivialDestructor();
|
|
if (badCtor || badDtor)
|
|
Diag.Report(node->getLocStart(), errorID) << node;
|
|
}
|
|
|
|
void DiagnosticsMatcher::NaNExprChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
if (!Result.Context->getLangOpts().CPlusPlus) {
|
|
// mozilla::IsNaN is not usable in C, so there is no point in issuing these warnings.
|
|
return;
|
|
}
|
|
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned errorID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "comparing a floating point value to itself for NaN checking can lead to incorrect results");
|
|
unsigned noteID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Note, "consider using mozilla::IsNaN instead");
|
|
const BinaryOperator *expr = Result.Nodes.getNodeAs<BinaryOperator>("node");
|
|
const DeclRefExpr *lhs = Result.Nodes.getNodeAs<DeclRefExpr>("lhs");
|
|
const DeclRefExpr *rhs = Result.Nodes.getNodeAs<DeclRefExpr>("rhs");
|
|
const ImplicitCastExpr *lhsExpr = dyn_cast<ImplicitCastExpr>(expr->getLHS());
|
|
const ImplicitCastExpr *rhsExpr = dyn_cast<ImplicitCastExpr>(expr->getRHS());
|
|
// The AST subtree that we are looking for will look like this:
|
|
// -BinaryOperator ==/!=
|
|
// |-ImplicitCastExpr LValueToRValue
|
|
// | |-DeclRefExpr
|
|
// |-ImplicitCastExpr LValueToRValue
|
|
// |-DeclRefExpr
|
|
// The check below ensures that we are dealing with the correct AST subtree shape, and
|
|
// also that both of the found DeclRefExpr's point to the same declaration.
|
|
if (lhs->getFoundDecl() == rhs->getFoundDecl() &&
|
|
lhsExpr && rhsExpr &&
|
|
std::distance(lhsExpr->child_begin(), lhsExpr->child_end()) == 1 &&
|
|
std::distance(rhsExpr->child_begin(), rhsExpr->child_end()) == 1 &&
|
|
*lhsExpr->child_begin() == lhs &&
|
|
*rhsExpr->child_begin() == rhs) {
|
|
Diag.Report(expr->getLocStart(), errorID);
|
|
Diag.Report(expr->getLocStart(), noteID);
|
|
}
|
|
}
|
|
|
|
void DiagnosticsMatcher::NoAddRefReleaseOnReturnChecker::run(
|
|
const MatchFinder::MatchResult &Result) {
|
|
DiagnosticsEngine &Diag = Result.Context->getDiagnostics();
|
|
unsigned errorID = Diag.getDiagnosticIDs()->getCustomDiagID(
|
|
DiagnosticIDs::Error, "%1 cannot be called on the return value of %0");
|
|
const Stmt *node = Result.Nodes.getNodeAs<Stmt>("node");
|
|
const FunctionDecl *func = Result.Nodes.getNodeAs<FunctionDecl>("func");
|
|
const MemberExpr *member = Result.Nodes.getNodeAs<MemberExpr>("member");
|
|
const CXXMethodDecl *method = dyn_cast<CXXMethodDecl>(member->getMemberDecl());
|
|
|
|
Diag.Report(node->getLocStart(), errorID) << func << method;
|
|
}
|
|
|
|
class MozCheckAction : public PluginASTAction {
|
|
public:
|
|
ASTConsumerPtr CreateASTConsumer(CompilerInstance &CI, StringRef fileName) override {
|
|
#if CLANG_VERSION_FULL >= 306
|
|
std::unique_ptr<MozChecker> checker(make_unique<MozChecker>(CI));
|
|
|
|
std::vector<std::unique_ptr<ASTConsumer>> consumers;
|
|
consumers.push_back(std::move(checker));
|
|
consumers.push_back(checker->getOtherConsumer());
|
|
return make_unique<MultiplexConsumer>(std::move(consumers));
|
|
#else
|
|
MozChecker *checker = new MozChecker(CI);
|
|
|
|
ASTConsumer *consumers[] = { checker, checker->getOtherConsumer() };
|
|
return new MultiplexConsumer(consumers);
|
|
#endif
|
|
}
|
|
|
|
bool ParseArgs(const CompilerInstance &CI,
|
|
const std::vector<std::string> &args) override {
|
|
return true;
|
|
}
|
|
};
|
|
}
|
|
|
|
static FrontendPluginRegistry::Add<MozCheckAction>
|
|
X("moz-check", "check moz action");
|