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Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001//===--- SemaOverload.cpp - C++ Overloading ---------------------*- C++ -*-===//
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// This file provides Sema routines for C++ overloading.
11//
12//===----------------------------------------------------------------------===//
13
14#include "Sema.h"
Douglas Gregor94b1dd22008-10-24 04:54:22 +000015#include "SemaInherit.h"
Douglas Gregor8e9bebd2008-10-21 16:13:35 +000016#include "clang/Basic/Diagnostic.h"
17#include "clang/AST/ASTContext.h"
18#include "clang/AST/Expr.h"
19#include "llvm/Support/Compiler.h"
20#include <algorithm>
21
22namespace clang {
23
24/// GetConversionCategory - Retrieve the implicit conversion
25/// category corresponding to the given implicit conversion kind.
26ImplicitConversionCategory
27GetConversionCategory(ImplicitConversionKind Kind) {
28 static const ImplicitConversionCategory
29 Category[(int)ICK_Num_Conversion_Kinds] = {
30 ICC_Identity,
31 ICC_Lvalue_Transformation,
32 ICC_Lvalue_Transformation,
33 ICC_Lvalue_Transformation,
34 ICC_Qualification_Adjustment,
35 ICC_Promotion,
36 ICC_Promotion,
37 ICC_Conversion,
38 ICC_Conversion,
39 ICC_Conversion,
40 ICC_Conversion,
41 ICC_Conversion,
Douglas Gregor15da57e2008-10-29 02:00:59 +000042 ICC_Conversion,
Douglas Gregor8e9bebd2008-10-21 16:13:35 +000043 ICC_Conversion
44 };
45 return Category[(int)Kind];
46}
47
48/// GetConversionRank - Retrieve the implicit conversion rank
49/// corresponding to the given implicit conversion kind.
50ImplicitConversionRank GetConversionRank(ImplicitConversionKind Kind) {
51 static const ImplicitConversionRank
52 Rank[(int)ICK_Num_Conversion_Kinds] = {
53 ICR_Exact_Match,
54 ICR_Exact_Match,
55 ICR_Exact_Match,
56 ICR_Exact_Match,
57 ICR_Exact_Match,
58 ICR_Promotion,
59 ICR_Promotion,
60 ICR_Conversion,
61 ICR_Conversion,
62 ICR_Conversion,
63 ICR_Conversion,
64 ICR_Conversion,
Douglas Gregor15da57e2008-10-29 02:00:59 +000065 ICR_Conversion,
Douglas Gregor8e9bebd2008-10-21 16:13:35 +000066 ICR_Conversion
67 };
68 return Rank[(int)Kind];
69}
70
71/// GetImplicitConversionName - Return the name of this kind of
72/// implicit conversion.
73const char* GetImplicitConversionName(ImplicitConversionKind Kind) {
74 static const char* Name[(int)ICK_Num_Conversion_Kinds] = {
75 "No conversion",
76 "Lvalue-to-rvalue",
77 "Array-to-pointer",
78 "Function-to-pointer",
79 "Qualification",
80 "Integral promotion",
81 "Floating point promotion",
82 "Integral conversion",
83 "Floating conversion",
84 "Floating-integral conversion",
85 "Pointer conversion",
86 "Pointer-to-member conversion",
Douglas Gregor15da57e2008-10-29 02:00:59 +000087 "Boolean conversion",
88 "Derived-to-base conversion"
Douglas Gregor8e9bebd2008-10-21 16:13:35 +000089 };
90 return Name[Kind];
91}
92
Douglas Gregor60d62c22008-10-31 16:23:19 +000093/// StandardConversionSequence - Set the standard conversion
94/// sequence to the identity conversion.
95void StandardConversionSequence::setAsIdentityConversion() {
96 First = ICK_Identity;
97 Second = ICK_Identity;
98 Third = ICK_Identity;
99 Deprecated = false;
100 ReferenceBinding = false;
101 DirectBinding = false;
Douglas Gregor225c41e2008-11-03 19:09:14 +0000102 CopyConstructor = 0;
Douglas Gregor60d62c22008-10-31 16:23:19 +0000103}
104
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000105/// getRank - Retrieve the rank of this standard conversion sequence
106/// (C++ 13.3.3.1.1p3). The rank is the largest rank of each of the
107/// implicit conversions.
108ImplicitConversionRank StandardConversionSequence::getRank() const {
109 ImplicitConversionRank Rank = ICR_Exact_Match;
110 if (GetConversionRank(First) > Rank)
111 Rank = GetConversionRank(First);
112 if (GetConversionRank(Second) > Rank)
113 Rank = GetConversionRank(Second);
114 if (GetConversionRank(Third) > Rank)
115 Rank = GetConversionRank(Third);
116 return Rank;
117}
118
119/// isPointerConversionToBool - Determines whether this conversion is
120/// a conversion of a pointer or pointer-to-member to bool. This is
121/// used as part of the ranking of standard conversion sequences
122/// (C++ 13.3.3.2p4).
123bool StandardConversionSequence::isPointerConversionToBool() const
124{
125 QualType FromType = QualType::getFromOpaquePtr(FromTypePtr);
126 QualType ToType = QualType::getFromOpaquePtr(ToTypePtr);
127
128 // Note that FromType has not necessarily been transformed by the
129 // array-to-pointer or function-to-pointer implicit conversions, so
130 // check for their presence as well as checking whether FromType is
131 // a pointer.
132 if (ToType->isBooleanType() &&
133 (FromType->isPointerType() ||
134 First == ICK_Array_To_Pointer || First == ICK_Function_To_Pointer))
135 return true;
136
137 return false;
138}
139
Douglas Gregorbc0805a2008-10-23 00:40:37 +0000140/// isPointerConversionToVoidPointer - Determines whether this
141/// conversion is a conversion of a pointer to a void pointer. This is
142/// used as part of the ranking of standard conversion sequences (C++
143/// 13.3.3.2p4).
144bool
145StandardConversionSequence::
146isPointerConversionToVoidPointer(ASTContext& Context) const
147{
148 QualType FromType = QualType::getFromOpaquePtr(FromTypePtr);
149 QualType ToType = QualType::getFromOpaquePtr(ToTypePtr);
150
151 // Note that FromType has not necessarily been transformed by the
152 // array-to-pointer implicit conversion, so check for its presence
153 // and redo the conversion to get a pointer.
154 if (First == ICK_Array_To_Pointer)
155 FromType = Context.getArrayDecayedType(FromType);
156
157 if (Second == ICK_Pointer_Conversion)
158 if (const PointerType* ToPtrType = ToType->getAsPointerType())
159 return ToPtrType->getPointeeType()->isVoidType();
160
161 return false;
162}
163
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000164/// DebugPrint - Print this standard conversion sequence to standard
165/// error. Useful for debugging overloading issues.
166void StandardConversionSequence::DebugPrint() const {
167 bool PrintedSomething = false;
168 if (First != ICK_Identity) {
169 fprintf(stderr, "%s", GetImplicitConversionName(First));
170 PrintedSomething = true;
171 }
172
173 if (Second != ICK_Identity) {
174 if (PrintedSomething) {
175 fprintf(stderr, " -> ");
176 }
177 fprintf(stderr, "%s", GetImplicitConversionName(Second));
Douglas Gregor225c41e2008-11-03 19:09:14 +0000178
179 if (CopyConstructor) {
180 fprintf(stderr, " (by copy constructor)");
181 } else if (DirectBinding) {
182 fprintf(stderr, " (direct reference binding)");
183 } else if (ReferenceBinding) {
184 fprintf(stderr, " (reference binding)");
185 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000186 PrintedSomething = true;
187 }
188
189 if (Third != ICK_Identity) {
190 if (PrintedSomething) {
191 fprintf(stderr, " -> ");
192 }
193 fprintf(stderr, "%s", GetImplicitConversionName(Third));
194 PrintedSomething = true;
195 }
196
197 if (!PrintedSomething) {
198 fprintf(stderr, "No conversions required");
199 }
200}
201
202/// DebugPrint - Print this user-defined conversion sequence to standard
203/// error. Useful for debugging overloading issues.
204void UserDefinedConversionSequence::DebugPrint() const {
205 if (Before.First || Before.Second || Before.Third) {
206 Before.DebugPrint();
207 fprintf(stderr, " -> ");
208 }
209 fprintf(stderr, "'%s'", ConversionFunction->getName());
210 if (After.First || After.Second || After.Third) {
211 fprintf(stderr, " -> ");
212 After.DebugPrint();
213 }
214}
215
216/// DebugPrint - Print this implicit conversion sequence to standard
217/// error. Useful for debugging overloading issues.
218void ImplicitConversionSequence::DebugPrint() const {
219 switch (ConversionKind) {
220 case StandardConversion:
221 fprintf(stderr, "Standard conversion: ");
222 Standard.DebugPrint();
223 break;
224 case UserDefinedConversion:
225 fprintf(stderr, "User-defined conversion: ");
226 UserDefined.DebugPrint();
227 break;
228 case EllipsisConversion:
229 fprintf(stderr, "Ellipsis conversion");
230 break;
231 case BadConversion:
232 fprintf(stderr, "Bad conversion");
233 break;
234 }
235
236 fprintf(stderr, "\n");
237}
238
239// IsOverload - Determine whether the given New declaration is an
240// overload of the Old declaration. This routine returns false if New
241// and Old cannot be overloaded, e.g., if they are functions with the
242// same signature (C++ 1.3.10) or if the Old declaration isn't a
243// function (or overload set). When it does return false and Old is an
244// OverloadedFunctionDecl, MatchedDecl will be set to point to the
245// FunctionDecl that New cannot be overloaded with.
246//
247// Example: Given the following input:
248//
249// void f(int, float); // #1
250// void f(int, int); // #2
251// int f(int, int); // #3
252//
253// When we process #1, there is no previous declaration of "f",
254// so IsOverload will not be used.
255//
256// When we process #2, Old is a FunctionDecl for #1. By comparing the
257// parameter types, we see that #1 and #2 are overloaded (since they
258// have different signatures), so this routine returns false;
259// MatchedDecl is unchanged.
260//
261// When we process #3, Old is an OverloadedFunctionDecl containing #1
262// and #2. We compare the signatures of #3 to #1 (they're overloaded,
263// so we do nothing) and then #3 to #2. Since the signatures of #3 and
264// #2 are identical (return types of functions are not part of the
265// signature), IsOverload returns false and MatchedDecl will be set to
266// point to the FunctionDecl for #2.
267bool
268Sema::IsOverload(FunctionDecl *New, Decl* OldD,
269 OverloadedFunctionDecl::function_iterator& MatchedDecl)
270{
271 if (OverloadedFunctionDecl* Ovl = dyn_cast<OverloadedFunctionDecl>(OldD)) {
272 // Is this new function an overload of every function in the
273 // overload set?
274 OverloadedFunctionDecl::function_iterator Func = Ovl->function_begin(),
275 FuncEnd = Ovl->function_end();
276 for (; Func != FuncEnd; ++Func) {
277 if (!IsOverload(New, *Func, MatchedDecl)) {
278 MatchedDecl = Func;
279 return false;
280 }
281 }
282
283 // This function overloads every function in the overload set.
284 return true;
285 } else if (FunctionDecl* Old = dyn_cast<FunctionDecl>(OldD)) {
286 // Is the function New an overload of the function Old?
287 QualType OldQType = Context.getCanonicalType(Old->getType());
288 QualType NewQType = Context.getCanonicalType(New->getType());
289
290 // Compare the signatures (C++ 1.3.10) of the two functions to
291 // determine whether they are overloads. If we find any mismatch
292 // in the signature, they are overloads.
293
294 // If either of these functions is a K&R-style function (no
295 // prototype), then we consider them to have matching signatures.
296 if (isa<FunctionTypeNoProto>(OldQType.getTypePtr()) ||
297 isa<FunctionTypeNoProto>(NewQType.getTypePtr()))
298 return false;
299
300 FunctionTypeProto* OldType = cast<FunctionTypeProto>(OldQType.getTypePtr());
301 FunctionTypeProto* NewType = cast<FunctionTypeProto>(NewQType.getTypePtr());
302
303 // The signature of a function includes the types of its
304 // parameters (C++ 1.3.10), which includes the presence or absence
305 // of the ellipsis; see C++ DR 357).
306 if (OldQType != NewQType &&
307 (OldType->getNumArgs() != NewType->getNumArgs() ||
308 OldType->isVariadic() != NewType->isVariadic() ||
309 !std::equal(OldType->arg_type_begin(), OldType->arg_type_end(),
310 NewType->arg_type_begin())))
311 return true;
312
313 // If the function is a class member, its signature includes the
314 // cv-qualifiers (if any) on the function itself.
315 //
316 // As part of this, also check whether one of the member functions
317 // is static, in which case they are not overloads (C++
318 // 13.1p2). While not part of the definition of the signature,
319 // this check is important to determine whether these functions
320 // can be overloaded.
321 CXXMethodDecl* OldMethod = dyn_cast<CXXMethodDecl>(Old);
322 CXXMethodDecl* NewMethod = dyn_cast<CXXMethodDecl>(New);
323 if (OldMethod && NewMethod &&
324 !OldMethod->isStatic() && !NewMethod->isStatic() &&
325 OldQType.getCVRQualifiers() != NewQType.getCVRQualifiers())
326 return true;
327
328 // The signatures match; this is not an overload.
329 return false;
330 } else {
331 // (C++ 13p1):
332 // Only function declarations can be overloaded; object and type
333 // declarations cannot be overloaded.
334 return false;
335 }
336}
337
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000338/// TryImplicitConversion - Attempt to perform an implicit conversion
339/// from the given expression (Expr) to the given type (ToType). This
340/// function returns an implicit conversion sequence that can be used
341/// to perform the initialization. Given
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000342///
343/// void f(float f);
344/// void g(int i) { f(i); }
345///
346/// this routine would produce an implicit conversion sequence to
347/// describe the initialization of f from i, which will be a standard
348/// conversion sequence containing an lvalue-to-rvalue conversion (C++
349/// 4.1) followed by a floating-integral conversion (C++ 4.9).
350//
351/// Note that this routine only determines how the conversion can be
352/// performed; it does not actually perform the conversion. As such,
353/// it will not produce any diagnostics if no conversion is available,
354/// but will instead return an implicit conversion sequence of kind
355/// "BadConversion".
Douglas Gregor225c41e2008-11-03 19:09:14 +0000356///
357/// If @p SuppressUserConversions, then user-defined conversions are
358/// not permitted.
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000359ImplicitConversionSequence
Douglas Gregor225c41e2008-11-03 19:09:14 +0000360Sema::TryImplicitConversion(Expr* From, QualType ToType,
361 bool SuppressUserConversions)
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000362{
363 ImplicitConversionSequence ICS;
Douglas Gregor60d62c22008-10-31 16:23:19 +0000364 if (IsStandardConversion(From, ToType, ICS.Standard))
365 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
Douglas Gregor225c41e2008-11-03 19:09:14 +0000366 else if (!SuppressUserConversions &&
367 IsUserDefinedConversion(From, ToType, ICS.UserDefined)) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000368 ICS.ConversionKind = ImplicitConversionSequence::UserDefinedConversion;
Douglas Gregor396b7cd2008-11-03 17:51:48 +0000369 // C++ [over.ics.user]p4:
370 // A conversion of an expression of class type to the same class
371 // type is given Exact Match rank, and a conversion of an
372 // expression of class type to a base class of that type is
373 // given Conversion rank, in spite of the fact that a copy
374 // constructor (i.e., a user-defined conversion function) is
375 // called for those cases.
376 if (CXXConstructorDecl *Constructor
377 = dyn_cast<CXXConstructorDecl>(ICS.UserDefined.ConversionFunction)) {
378 if (Constructor->isCopyConstructor(Context)) {
Douglas Gregor225c41e2008-11-03 19:09:14 +0000379 // Turn this into a "standard" conversion sequence, so that it
380 // gets ranked with standard conversion sequences.
Douglas Gregor396b7cd2008-11-03 17:51:48 +0000381 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
382 ICS.Standard.setAsIdentityConversion();
383 ICS.Standard.FromTypePtr = From->getType().getAsOpaquePtr();
384 ICS.Standard.ToTypePtr = ToType.getAsOpaquePtr();
Douglas Gregor225c41e2008-11-03 19:09:14 +0000385 ICS.Standard.CopyConstructor = Constructor;
Douglas Gregor396b7cd2008-11-03 17:51:48 +0000386 if (IsDerivedFrom(From->getType().getUnqualifiedType(),
387 ToType.getUnqualifiedType()))
388 ICS.Standard.Second = ICK_Derived_To_Base;
389 }
Douglas Gregor60d62c22008-10-31 16:23:19 +0000390 }
Douglas Gregor396b7cd2008-11-03 17:51:48 +0000391 } else
Douglas Gregor60d62c22008-10-31 16:23:19 +0000392 ICS.ConversionKind = ImplicitConversionSequence::BadConversion;
Douglas Gregor60d62c22008-10-31 16:23:19 +0000393
394 return ICS;
395}
396
397/// IsStandardConversion - Determines whether there is a standard
398/// conversion sequence (C++ [conv], C++ [over.ics.scs]) from the
399/// expression From to the type ToType. Standard conversion sequences
400/// only consider non-class types; for conversions that involve class
401/// types, use TryImplicitConversion. If a conversion exists, SCS will
402/// contain the standard conversion sequence required to perform this
403/// conversion and this routine will return true. Otherwise, this
404/// routine will return false and the value of SCS is unspecified.
405bool
406Sema::IsStandardConversion(Expr* From, QualType ToType,
407 StandardConversionSequence &SCS)
408{
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000409 QualType FromType = From->getType();
410
Douglas Gregor60d62c22008-10-31 16:23:19 +0000411 // There are no standard conversions for class types, so abort early.
412 if (FromType->isRecordType() || ToType->isRecordType())
413 return false;
414
415 // Standard conversions (C++ [conv])
416 SCS.Deprecated = false;
417 SCS.FromTypePtr = FromType.getAsOpaquePtr();
Douglas Gregor225c41e2008-11-03 19:09:14 +0000418 SCS.CopyConstructor = 0;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000419
420 // The first conversion can be an lvalue-to-rvalue conversion,
421 // array-to-pointer conversion, or function-to-pointer conversion
422 // (C++ 4p1).
423
424 // Lvalue-to-rvalue conversion (C++ 4.1):
425 // An lvalue (3.10) of a non-function, non-array type T can be
426 // converted to an rvalue.
427 Expr::isLvalueResult argIsLvalue = From->isLvalue(Context);
428 if (argIsLvalue == Expr::LV_Valid &&
429 !FromType->isFunctionType() && !FromType->isArrayType()) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000430 SCS.First = ICK_Lvalue_To_Rvalue;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000431
432 // If T is a non-class type, the type of the rvalue is the
433 // cv-unqualified version of T. Otherwise, the type of the rvalue
434 // is T (C++ 4.1p1).
Douglas Gregor60d62c22008-10-31 16:23:19 +0000435 FromType = FromType.getUnqualifiedType();
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000436 }
437 // Array-to-pointer conversion (C++ 4.2)
438 else if (FromType->isArrayType()) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000439 SCS.First = ICK_Array_To_Pointer;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000440
441 // An lvalue or rvalue of type "array of N T" or "array of unknown
442 // bound of T" can be converted to an rvalue of type "pointer to
443 // T" (C++ 4.2p1).
444 FromType = Context.getArrayDecayedType(FromType);
445
446 if (IsStringLiteralToNonConstPointerConversion(From, ToType)) {
447 // This conversion is deprecated. (C++ D.4).
Douglas Gregor60d62c22008-10-31 16:23:19 +0000448 SCS.Deprecated = true;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000449
450 // For the purpose of ranking in overload resolution
451 // (13.3.3.1.1), this conversion is considered an
452 // array-to-pointer conversion followed by a qualification
453 // conversion (4.4). (C++ 4.2p2)
Douglas Gregor60d62c22008-10-31 16:23:19 +0000454 SCS.Second = ICK_Identity;
455 SCS.Third = ICK_Qualification;
456 SCS.ToTypePtr = ToType.getAsOpaquePtr();
457 return true;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000458 }
459 }
460 // Function-to-pointer conversion (C++ 4.3).
461 else if (FromType->isFunctionType() && argIsLvalue == Expr::LV_Valid) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000462 SCS.First = ICK_Function_To_Pointer;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000463
464 // An lvalue of function type T can be converted to an rvalue of
465 // type "pointer to T." The result is a pointer to the
466 // function. (C++ 4.3p1).
467 FromType = Context.getPointerType(FromType);
468
469 // FIXME: Deal with overloaded functions here (C++ 4.3p2).
470 }
471 // We don't require any conversions for the first step.
472 else {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000473 SCS.First = ICK_Identity;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000474 }
475
476 // The second conversion can be an integral promotion, floating
477 // point promotion, integral conversion, floating point conversion,
478 // floating-integral conversion, pointer conversion,
479 // pointer-to-member conversion, or boolean conversion (C++ 4p1).
480 if (Context.getCanonicalType(FromType).getUnqualifiedType() ==
481 Context.getCanonicalType(ToType).getUnqualifiedType()) {
482 // The unqualified versions of the types are the same: there's no
483 // conversion to do.
Douglas Gregor60d62c22008-10-31 16:23:19 +0000484 SCS.Second = ICK_Identity;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000485 }
486 // Integral promotion (C++ 4.5).
487 else if (IsIntegralPromotion(From, FromType, ToType)) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000488 SCS.Second = ICK_Integral_Promotion;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000489 FromType = ToType.getUnqualifiedType();
490 }
491 // Floating point promotion (C++ 4.6).
492 else if (IsFloatingPointPromotion(FromType, ToType)) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000493 SCS.Second = ICK_Floating_Promotion;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000494 FromType = ToType.getUnqualifiedType();
495 }
496 // Integral conversions (C++ 4.7).
Sebastian Redl07779722008-10-31 14:43:28 +0000497 // FIXME: isIntegralType shouldn't be true for enums in C++.
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000498 else if ((FromType->isIntegralType() || FromType->isEnumeralType()) &&
Sebastian Redl07779722008-10-31 14:43:28 +0000499 (ToType->isIntegralType() && !ToType->isEnumeralType())) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000500 SCS.Second = ICK_Integral_Conversion;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000501 FromType = ToType.getUnqualifiedType();
502 }
503 // Floating point conversions (C++ 4.8).
504 else if (FromType->isFloatingType() && ToType->isFloatingType()) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000505 SCS.Second = ICK_Floating_Conversion;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000506 FromType = ToType.getUnqualifiedType();
507 }
508 // Floating-integral conversions (C++ 4.9).
Sebastian Redl07779722008-10-31 14:43:28 +0000509 // FIXME: isIntegralType shouldn't be true for enums in C++.
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000510 else if ((FromType->isFloatingType() &&
Sebastian Redl07779722008-10-31 14:43:28 +0000511 ToType->isIntegralType() && !ToType->isBooleanType() &&
512 !ToType->isEnumeralType()) ||
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000513 ((FromType->isIntegralType() || FromType->isEnumeralType()) &&
514 ToType->isFloatingType())) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000515 SCS.Second = ICK_Floating_Integral;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000516 FromType = ToType.getUnqualifiedType();
517 }
518 // Pointer conversions (C++ 4.10).
Sebastian Redl07779722008-10-31 14:43:28 +0000519 else if (IsPointerConversion(From, FromType, ToType, FromType)) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000520 SCS.Second = ICK_Pointer_Conversion;
Sebastian Redl07779722008-10-31 14:43:28 +0000521 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000522 // FIXME: Pointer to member conversions (4.11).
523 // Boolean conversions (C++ 4.12).
524 // FIXME: pointer-to-member type
525 else if (ToType->isBooleanType() &&
526 (FromType->isArithmeticType() ||
527 FromType->isEnumeralType() ||
528 FromType->isPointerType())) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000529 SCS.Second = ICK_Boolean_Conversion;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000530 FromType = Context.BoolTy;
531 } else {
532 // No second conversion required.
Douglas Gregor60d62c22008-10-31 16:23:19 +0000533 SCS.Second = ICK_Identity;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000534 }
535
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000536 QualType CanonFrom;
537 QualType CanonTo;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000538 // The third conversion can be a qualification conversion (C++ 4p1).
Douglas Gregor98cd5992008-10-21 23:43:52 +0000539 if (IsQualificationConversion(FromType, ToType)) {
Douglas Gregor60d62c22008-10-31 16:23:19 +0000540 SCS.Third = ICK_Qualification;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000541 FromType = ToType;
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000542 CanonFrom = Context.getCanonicalType(FromType);
543 CanonTo = Context.getCanonicalType(ToType);
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000544 } else {
545 // No conversion required
Douglas Gregor60d62c22008-10-31 16:23:19 +0000546 SCS.Third = ICK_Identity;
547
548 // C++ [over.best.ics]p6:
549 // [...] Any difference in top-level cv-qualification is
550 // subsumed by the initialization itself and does not constitute
551 // a conversion. [...]
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000552 CanonFrom = Context.getCanonicalType(FromType);
553 CanonTo = Context.getCanonicalType(ToType);
Douglas Gregor60d62c22008-10-31 16:23:19 +0000554 if (CanonFrom.getUnqualifiedType() == CanonTo.getUnqualifiedType() &&
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000555 CanonFrom.getCVRQualifiers() != CanonTo.getCVRQualifiers()) {
556 FromType = ToType;
557 CanonFrom = CanonTo;
558 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000559 }
560
561 // If we have not converted the argument type to the parameter type,
562 // this is a bad conversion sequence.
Douglas Gregor27c8dc02008-10-29 00:13:59 +0000563 if (CanonFrom != CanonTo)
Douglas Gregor60d62c22008-10-31 16:23:19 +0000564 return false;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000565
Douglas Gregor60d62c22008-10-31 16:23:19 +0000566 SCS.ToTypePtr = FromType.getAsOpaquePtr();
567 return true;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000568}
569
570/// IsIntegralPromotion - Determines whether the conversion from the
571/// expression From (whose potentially-adjusted type is FromType) to
572/// ToType is an integral promotion (C++ 4.5). If so, returns true and
573/// sets PromotedType to the promoted type.
574bool Sema::IsIntegralPromotion(Expr *From, QualType FromType, QualType ToType)
575{
576 const BuiltinType *To = ToType->getAsBuiltinType();
Sebastian Redl07779722008-10-31 14:43:28 +0000577 if (!To) {
578 return false;
579 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000580
581 // An rvalue of type char, signed char, unsigned char, short int, or
582 // unsigned short int can be converted to an rvalue of type int if
583 // int can represent all the values of the source type; otherwise,
584 // the source rvalue can be converted to an rvalue of type unsigned
585 // int (C++ 4.5p1).
Sebastian Redl07779722008-10-31 14:43:28 +0000586 if (FromType->isPromotableIntegerType() && !FromType->isBooleanType()) {
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000587 if (// We can promote any signed, promotable integer type to an int
588 (FromType->isSignedIntegerType() ||
589 // We can promote any unsigned integer type whose size is
590 // less than int to an int.
591 (!FromType->isSignedIntegerType() &&
Sebastian Redl07779722008-10-31 14:43:28 +0000592 Context.getTypeSize(FromType) < Context.getTypeSize(ToType)))) {
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000593 return To->getKind() == BuiltinType::Int;
Sebastian Redl07779722008-10-31 14:43:28 +0000594 }
595
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000596 return To->getKind() == BuiltinType::UInt;
597 }
598
599 // An rvalue of type wchar_t (3.9.1) or an enumeration type (7.2)
600 // can be converted to an rvalue of the first of the following types
601 // that can represent all the values of its underlying type: int,
602 // unsigned int, long, or unsigned long (C++ 4.5p2).
603 if ((FromType->isEnumeralType() || FromType->isWideCharType())
604 && ToType->isIntegerType()) {
605 // Determine whether the type we're converting from is signed or
606 // unsigned.
607 bool FromIsSigned;
608 uint64_t FromSize = Context.getTypeSize(FromType);
609 if (const EnumType *FromEnumType = FromType->getAsEnumType()) {
610 QualType UnderlyingType = FromEnumType->getDecl()->getIntegerType();
611 FromIsSigned = UnderlyingType->isSignedIntegerType();
612 } else {
613 // FIXME: Is wchar_t signed or unsigned? We assume it's signed for now.
614 FromIsSigned = true;
615 }
616
617 // The types we'll try to promote to, in the appropriate
618 // order. Try each of these types.
619 QualType PromoteTypes[4] = {
620 Context.IntTy, Context.UnsignedIntTy,
621 Context.LongTy, Context.UnsignedLongTy
622 };
623 for (int Idx = 0; Idx < 0; ++Idx) {
624 uint64_t ToSize = Context.getTypeSize(PromoteTypes[Idx]);
625 if (FromSize < ToSize ||
626 (FromSize == ToSize &&
627 FromIsSigned == PromoteTypes[Idx]->isSignedIntegerType())) {
628 // We found the type that we can promote to. If this is the
629 // type we wanted, we have a promotion. Otherwise, no
630 // promotion.
Sebastian Redl07779722008-10-31 14:43:28 +0000631 return Context.getCanonicalType(ToType).getUnqualifiedType()
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000632 == Context.getCanonicalType(PromoteTypes[Idx]).getUnqualifiedType();
633 }
634 }
635 }
636
637 // An rvalue for an integral bit-field (9.6) can be converted to an
638 // rvalue of type int if int can represent all the values of the
639 // bit-field; otherwise, it can be converted to unsigned int if
640 // unsigned int can represent all the values of the bit-field. If
641 // the bit-field is larger yet, no integral promotion applies to
642 // it. If the bit-field has an enumerated type, it is treated as any
643 // other value of that type for promotion purposes (C++ 4.5p3).
644 if (MemberExpr *MemRef = dyn_cast<MemberExpr>(From)) {
645 using llvm::APSInt;
646 FieldDecl *MemberDecl = MemRef->getMemberDecl();
647 APSInt BitWidth;
648 if (MemberDecl->isBitField() &&
649 FromType->isIntegralType() && !FromType->isEnumeralType() &&
650 From->isIntegerConstantExpr(BitWidth, Context)) {
651 APSInt ToSize(Context.getTypeSize(ToType));
652
653 // Are we promoting to an int from a bitfield that fits in an int?
654 if (BitWidth < ToSize ||
Sebastian Redl07779722008-10-31 14:43:28 +0000655 (FromType->isSignedIntegerType() && BitWidth <= ToSize)) {
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000656 return To->getKind() == BuiltinType::Int;
Sebastian Redl07779722008-10-31 14:43:28 +0000657 }
658
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000659 // Are we promoting to an unsigned int from an unsigned bitfield
660 // that fits into an unsigned int?
Sebastian Redl07779722008-10-31 14:43:28 +0000661 if (FromType->isUnsignedIntegerType() && BitWidth <= ToSize) {
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000662 return To->getKind() == BuiltinType::UInt;
Sebastian Redl07779722008-10-31 14:43:28 +0000663 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000664
665 return false;
666 }
667 }
668
669 // An rvalue of type bool can be converted to an rvalue of type int,
670 // with false becoming zero and true becoming one (C++ 4.5p4).
Sebastian Redl07779722008-10-31 14:43:28 +0000671 if (FromType->isBooleanType() && To->getKind() == BuiltinType::Int) {
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000672 return true;
Sebastian Redl07779722008-10-31 14:43:28 +0000673 }
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000674
675 return false;
676}
677
678/// IsFloatingPointPromotion - Determines whether the conversion from
679/// FromType to ToType is a floating point promotion (C++ 4.6). If so,
680/// returns true and sets PromotedType to the promoted type.
681bool Sema::IsFloatingPointPromotion(QualType FromType, QualType ToType)
682{
683 /// An rvalue of type float can be converted to an rvalue of type
684 /// double. (C++ 4.6p1).
685 if (const BuiltinType *FromBuiltin = FromType->getAsBuiltinType())
686 if (const BuiltinType *ToBuiltin = ToType->getAsBuiltinType())
687 if (FromBuiltin->getKind() == BuiltinType::Float &&
688 ToBuiltin->getKind() == BuiltinType::Double)
689 return true;
690
691 return false;
692}
693
694/// IsPointerConversion - Determines whether the conversion of the
695/// expression From, which has the (possibly adjusted) type FromType,
696/// can be converted to the type ToType via a pointer conversion (C++
697/// 4.10). If so, returns true and places the converted type (that
698/// might differ from ToType in its cv-qualifiers at some level) into
699/// ConvertedType.
700bool Sema::IsPointerConversion(Expr *From, QualType FromType, QualType ToType,
701 QualType& ConvertedType)
702{
703 const PointerType* ToTypePtr = ToType->getAsPointerType();
704 if (!ToTypePtr)
705 return false;
706
707 // A null pointer constant can be converted to a pointer type (C++ 4.10p1).
708 if (From->isNullPointerConstant(Context)) {
709 ConvertedType = ToType;
710 return true;
711 }
Sebastian Redl07779722008-10-31 14:43:28 +0000712
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000713 // An rvalue of type "pointer to cv T," where T is an object type,
714 // can be converted to an rvalue of type "pointer to cv void" (C++
715 // 4.10p2).
716 if (FromType->isPointerType() &&
717 FromType->getAsPointerType()->getPointeeType()->isObjectType() &&
718 ToTypePtr->getPointeeType()->isVoidType()) {
719 // We need to produce a pointer to cv void, where cv is the same
720 // set of cv-qualifiers as we had on the incoming pointee type.
721 QualType toPointee = ToTypePtr->getPointeeType();
722 unsigned Quals = Context.getCanonicalType(FromType)->getAsPointerType()
723 ->getPointeeType().getCVRQualifiers();
724
725 if (Context.getCanonicalType(ToTypePtr->getPointeeType()).getCVRQualifiers()
726 == Quals) {
727 // ToType is exactly the type we want. Use it.
728 ConvertedType = ToType;
729 } else {
730 // Build a new type with the right qualifiers.
731 ConvertedType
732 = Context.getPointerType(Context.VoidTy.getQualifiedType(Quals));
733 }
734 return true;
735 }
736
Douglas Gregorbc0805a2008-10-23 00:40:37 +0000737 // C++ [conv.ptr]p3:
738 //
739 // An rvalue of type "pointer to cv D," where D is a class type,
740 // can be converted to an rvalue of type "pointer to cv B," where
741 // B is a base class (clause 10) of D. If B is an inaccessible
742 // (clause 11) or ambiguous (10.2) base class of D, a program that
743 // necessitates this conversion is ill-formed. The result of the
744 // conversion is a pointer to the base class sub-object of the
745 // derived class object. The null pointer value is converted to
746 // the null pointer value of the destination type.
747 //
Douglas Gregor94b1dd22008-10-24 04:54:22 +0000748 // Note that we do not check for ambiguity or inaccessibility
749 // here. That is handled by CheckPointerConversion.
Douglas Gregorbc0805a2008-10-23 00:40:37 +0000750 if (const PointerType *FromPtrType = FromType->getAsPointerType())
751 if (const PointerType *ToPtrType = ToType->getAsPointerType()) {
752 if (FromPtrType->getPointeeType()->isRecordType() &&
753 ToPtrType->getPointeeType()->isRecordType() &&
754 IsDerivedFrom(FromPtrType->getPointeeType(),
755 ToPtrType->getPointeeType())) {
756 // The conversion is okay. Now, we need to produce the type
757 // that results from this conversion, which will have the same
758 // qualifiers as the incoming type.
759 QualType CanonFromPointee
760 = Context.getCanonicalType(FromPtrType->getPointeeType());
761 QualType ToPointee = ToPtrType->getPointeeType();
762 QualType CanonToPointee = Context.getCanonicalType(ToPointee);
763 unsigned Quals = CanonFromPointee.getCVRQualifiers();
764
765 if (CanonToPointee.getCVRQualifiers() == Quals) {
766 // ToType is exactly the type we want. Use it.
767 ConvertedType = ToType;
768 } else {
769 // Build a new type with the right qualifiers.
770 ConvertedType
771 = Context.getPointerType(CanonToPointee.getQualifiedType(Quals));
772 }
773 return true;
774 }
775 }
776
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000777 return false;
778}
779
Douglas Gregor94b1dd22008-10-24 04:54:22 +0000780/// CheckPointerConversion - Check the pointer conversion from the
781/// expression From to the type ToType. This routine checks for
782/// ambiguous (FIXME: or inaccessible) derived-to-base pointer
783/// conversions for which IsPointerConversion has already returned
784/// true. It returns true and produces a diagnostic if there was an
785/// error, or returns false otherwise.
786bool Sema::CheckPointerConversion(Expr *From, QualType ToType) {
787 QualType FromType = From->getType();
788
789 if (const PointerType *FromPtrType = FromType->getAsPointerType())
790 if (const PointerType *ToPtrType = ToType->getAsPointerType()) {
Sebastian Redl07779722008-10-31 14:43:28 +0000791 BasePaths Paths(/*FindAmbiguities=*/true, /*RecordPaths=*/false,
792 /*DetectVirtual=*/false);
Douglas Gregor94b1dd22008-10-24 04:54:22 +0000793 QualType FromPointeeType = FromPtrType->getPointeeType(),
794 ToPointeeType = ToPtrType->getPointeeType();
795 if (FromPointeeType->isRecordType() &&
796 ToPointeeType->isRecordType()) {
797 // We must have a derived-to-base conversion. Check an
798 // ambiguous or inaccessible conversion.
Douglas Gregor0575d4a2008-10-24 16:17:19 +0000799 return CheckDerivedToBaseConversion(FromPointeeType, ToPointeeType,
800 From->getExprLoc(),
801 From->getSourceRange());
Douglas Gregor94b1dd22008-10-24 04:54:22 +0000802 }
803 }
804
805 return false;
806}
807
Douglas Gregor98cd5992008-10-21 23:43:52 +0000808/// IsQualificationConversion - Determines whether the conversion from
809/// an rvalue of type FromType to ToType is a qualification conversion
810/// (C++ 4.4).
811bool
812Sema::IsQualificationConversion(QualType FromType, QualType ToType)
813{
814 FromType = Context.getCanonicalType(FromType);
815 ToType = Context.getCanonicalType(ToType);
816
817 // If FromType and ToType are the same type, this is not a
818 // qualification conversion.
819 if (FromType == ToType)
820 return false;
821
822 // (C++ 4.4p4):
823 // A conversion can add cv-qualifiers at levels other than the first
824 // in multi-level pointers, subject to the following rules: [...]
825 bool PreviousToQualsIncludeConst = true;
Douglas Gregor98cd5992008-10-21 23:43:52 +0000826 bool UnwrappedAnyPointer = false;
Douglas Gregor57373262008-10-22 14:17:15 +0000827 while (UnwrapSimilarPointerTypes(FromType, ToType)) {
Douglas Gregor98cd5992008-10-21 23:43:52 +0000828 // Within each iteration of the loop, we check the qualifiers to
829 // determine if this still looks like a qualification
830 // conversion. Then, if all is well, we unwrap one more level of
Douglas Gregorf8268ae2008-10-22 17:49:05 +0000831 // pointers or pointers-to-members and do it all again
Douglas Gregor98cd5992008-10-21 23:43:52 +0000832 // until there are no more pointers or pointers-to-members left to
833 // unwrap.
Douglas Gregor57373262008-10-22 14:17:15 +0000834 UnwrappedAnyPointer = true;
Douglas Gregor98cd5992008-10-21 23:43:52 +0000835
836 // -- for every j > 0, if const is in cv 1,j then const is in cv
837 // 2,j, and similarly for volatile.
Douglas Gregor9b6e2d22008-10-22 00:38:21 +0000838 if (!ToType.isAtLeastAsQualifiedAs(FromType))
Douglas Gregor98cd5992008-10-21 23:43:52 +0000839 return false;
Douglas Gregor57373262008-10-22 14:17:15 +0000840
Douglas Gregor98cd5992008-10-21 23:43:52 +0000841 // -- if the cv 1,j and cv 2,j are different, then const is in
842 // every cv for 0 < k < j.
843 if (FromType.getCVRQualifiers() != ToType.getCVRQualifiers()
Douglas Gregor57373262008-10-22 14:17:15 +0000844 && !PreviousToQualsIncludeConst)
Douglas Gregor98cd5992008-10-21 23:43:52 +0000845 return false;
Douglas Gregor57373262008-10-22 14:17:15 +0000846
Douglas Gregor98cd5992008-10-21 23:43:52 +0000847 // Keep track of whether all prior cv-qualifiers in the "to" type
848 // include const.
849 PreviousToQualsIncludeConst
850 = PreviousToQualsIncludeConst && ToType.isConstQualified();
Douglas Gregor57373262008-10-22 14:17:15 +0000851 }
Douglas Gregor98cd5992008-10-21 23:43:52 +0000852
853 // We are left with FromType and ToType being the pointee types
854 // after unwrapping the original FromType and ToType the same number
855 // of types. If we unwrapped any pointers, and if FromType and
856 // ToType have the same unqualified type (since we checked
857 // qualifiers above), then this is a qualification conversion.
858 return UnwrappedAnyPointer &&
859 FromType.getUnqualifiedType() == ToType.getUnqualifiedType();
860}
861
Douglas Gregor60d62c22008-10-31 16:23:19 +0000862/// IsUserDefinedConversion - Determines whether there is a
863/// user-defined conversion sequence (C++ [over.ics.user]) that
864/// converts expression From to the type ToType. If such a conversion
865/// exists, User will contain the user-defined conversion sequence
866/// that performs such a conversion and this routine will return
867/// true. Otherwise, this routine returns false and User is
868/// unspecified.
869bool Sema::IsUserDefinedConversion(Expr *From, QualType ToType,
870 UserDefinedConversionSequence& User)
871{
872 OverloadCandidateSet CandidateSet;
873 if (const CXXRecordType *ToRecordType
874 = dyn_cast_or_null<CXXRecordType>(ToType->getAsRecordType())) {
875 // C++ [over.match.ctor]p1:
876 // When objects of class type are direct-initialized (8.5), or
877 // copy-initialized from an expression of the same or a
878 // derived class type (8.5), overload resolution selects the
879 // constructor. [...] For copy-initialization, the candidate
880 // functions are all the converting constructors (12.3.1) of
881 // that class. The argument list is the expression-list within
882 // the parentheses of the initializer.
883 CXXRecordDecl *ToRecordDecl = ToRecordType->getDecl();
884 const OverloadedFunctionDecl *Constructors = ToRecordDecl->getConstructors();
885 for (OverloadedFunctionDecl::function_const_iterator func
886 = Constructors->function_begin();
887 func != Constructors->function_end(); ++func) {
888 CXXConstructorDecl *Constructor = cast<CXXConstructorDecl>(*func);
889 if (Constructor->isConvertingConstructor())
Douglas Gregor225c41e2008-11-03 19:09:14 +0000890 AddOverloadCandidate(Constructor, &From, 1, CandidateSet,
891 /*SuppressUserConversions=*/true);
Douglas Gregor60d62c22008-10-31 16:23:19 +0000892 }
893 }
894
895 // FIXME: Implement support for user-defined conversion operators.
896
897 OverloadCandidateSet::iterator Best;
898 switch (BestViableFunction(CandidateSet, Best)) {
899 case OR_Success:
900 // Record the standard conversion we used and the conversion function.
901 // FIXME: Handle user-defined conversion operators.
902 if (CXXConstructorDecl *Constructor
903 = dyn_cast<CXXConstructorDecl>(Best->Function)) {
904 // C++ [over.ics.user]p1:
905 // If the user-defined conversion is specified by a
906 // constructor (12.3.1), the initial standard conversion
907 // sequence converts the source type to the type required by
908 // the argument of the constructor.
909 //
910 // FIXME: What about ellipsis conversions?
911 QualType ThisType = Constructor->getThisType(Context);
912 User.Before = Best->Conversions[0].Standard;
913 User.ConversionFunction = Constructor;
914 User.After.setAsIdentityConversion();
915 User.After.FromTypePtr
916 = ThisType->getAsPointerType()->getPointeeType().getAsOpaquePtr();
917 User.After.ToTypePtr = ToType.getAsOpaquePtr();
918 return true;
919 } else {
920 assert(false &&
921 "Cannot perform user-defined conversion via a conversion operator");
922 return false;
923 }
924
925 case OR_No_Viable_Function:
926 // No conversion here! We're done.
927 return false;
928
929 case OR_Ambiguous:
930 // FIXME: See C++ [over.best.ics]p10 for the handling of
931 // ambiguous conversion sequences.
932 return false;
933 }
934
935 return false;
936}
937
Douglas Gregor8e9bebd2008-10-21 16:13:35 +0000938/// CompareImplicitConversionSequences - Compare two implicit
939/// conversion sequences to determine whether one is better than the
940/// other or if they are indistinguishable (C++ 13.3.3.2).
941ImplicitConversionSequence::CompareKind
942Sema::CompareImplicitConversionSequences(const ImplicitConversionSequence& ICS1,
943 const ImplicitConversionSequence& ICS2)
944{
945 // (C++ 13.3.3.2p2): When comparing the basic forms of implicit
946 // conversion sequences (as defined in 13.3.3.1)
947 // -- a standard conversion sequence (13.3.3.1.1) is a better
948 // conversion sequence than a user-defined conversion sequence or
949 // an ellipsis conversion sequence, and
950 // -- a user-defined conversion sequence (13.3.3.1.2) is a better
951 // conversion sequence than an ellipsis conversion sequence
952 // (13.3.3.1.3).
953 //
954 if (ICS1.ConversionKind < ICS2.ConversionKind)
955 return ImplicitConversionSequence::Better;
956 else if (ICS2.ConversionKind < ICS1.ConversionKind)
957 return ImplicitConversionSequence::Worse;
958
959 // Two implicit conversion sequences of the same form are
960 // indistinguishable conversion sequences unless one of the
961 // following rules apply: (C++ 13.3.3.2p3):
962 if (ICS1.ConversionKind == ImplicitConversionSequence::StandardConversion)
963 return CompareStandardConversionSequences(ICS1.Standard, ICS2.Standard);
964 else if (ICS1.ConversionKind ==
965 ImplicitConversionSequence::UserDefinedConversion) {
966 // User-defined conversion sequence U1 is a better conversion
967 // sequence than another user-defined conversion sequence U2 if
968 // they contain the same user-defined conversion function or
969 // constructor and if the second standard conversion sequence of
970 // U1 is better than the second standard conversion sequence of
971 // U2 (C++ 13.3.3.2p3).
972 if (ICS1.UserDefined.ConversionFunction ==
973 ICS2.UserDefined.ConversionFunction)
974 return CompareStandardConversionSequences(ICS1.UserDefined.After,
975 ICS2.UserDefined.After);
976 }
977
978 return ImplicitConversionSequence::Indistinguishable;
979}
980
981/// CompareStandardConversionSequences - Compare two standard
982/// conversion sequences to determine whether one is better than the
983/// other or if they are indistinguishable (C++ 13.3.3.2p3).
984ImplicitConversionSequence::CompareKind
985Sema::CompareStandardConversionSequences(const StandardConversionSequence& SCS1,
986 const StandardConversionSequence& SCS2)
987{
988 // Standard conversion sequence S1 is a better conversion sequence
989 // than standard conversion sequence S2 if (C++ 13.3.3.2p3):
990
991 // -- S1 is a proper subsequence of S2 (comparing the conversion
992 // sequences in the canonical form defined by 13.3.3.1.1,
993 // excluding any Lvalue Transformation; the identity conversion
994 // sequence is considered to be a subsequence of any
995 // non-identity conversion sequence) or, if not that,
996 if (SCS1.Second == SCS2.Second && SCS1.Third == SCS2.Third)
997 // Neither is a proper subsequence of the other. Do nothing.
998 ;
999 else if ((SCS1.Second == ICK_Identity && SCS1.Third == SCS2.Third) ||
1000 (SCS1.Third == ICK_Identity && SCS1.Second == SCS2.Second) ||
1001 (SCS1.Second == ICK_Identity &&
1002 SCS1.Third == ICK_Identity))
1003 // SCS1 is a proper subsequence of SCS2.
1004 return ImplicitConversionSequence::Better;
1005 else if ((SCS2.Second == ICK_Identity && SCS2.Third == SCS1.Third) ||
1006 (SCS2.Third == ICK_Identity && SCS2.Second == SCS1.Second) ||
1007 (SCS2.Second == ICK_Identity &&
1008 SCS2.Third == ICK_Identity))
1009 // SCS2 is a proper subsequence of SCS1.
1010 return ImplicitConversionSequence::Worse;
1011
1012 // -- the rank of S1 is better than the rank of S2 (by the rules
1013 // defined below), or, if not that,
1014 ImplicitConversionRank Rank1 = SCS1.getRank();
1015 ImplicitConversionRank Rank2 = SCS2.getRank();
1016 if (Rank1 < Rank2)
1017 return ImplicitConversionSequence::Better;
1018 else if (Rank2 < Rank1)
1019 return ImplicitConversionSequence::Worse;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001020
Douglas Gregor57373262008-10-22 14:17:15 +00001021 // (C++ 13.3.3.2p4): Two conversion sequences with the same rank
1022 // are indistinguishable unless one of the following rules
1023 // applies:
1024
1025 // A conversion that is not a conversion of a pointer, or
1026 // pointer to member, to bool is better than another conversion
1027 // that is such a conversion.
1028 if (SCS1.isPointerConversionToBool() != SCS2.isPointerConversionToBool())
1029 return SCS2.isPointerConversionToBool()
1030 ? ImplicitConversionSequence::Better
1031 : ImplicitConversionSequence::Worse;
1032
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001033 // C++ [over.ics.rank]p4b2:
1034 //
1035 // If class B is derived directly or indirectly from class A,
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001036 // conversion of B* to A* is better than conversion of B* to
1037 // void*, and conversion of A* to void* is better than conversion
1038 // of B* to void*.
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001039 bool SCS1ConvertsToVoid
1040 = SCS1.isPointerConversionToVoidPointer(Context);
1041 bool SCS2ConvertsToVoid
1042 = SCS2.isPointerConversionToVoidPointer(Context);
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001043 if (SCS1ConvertsToVoid != SCS2ConvertsToVoid) {
1044 // Exactly one of the conversion sequences is a conversion to
1045 // a void pointer; it's the worse conversion.
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001046 return SCS2ConvertsToVoid ? ImplicitConversionSequence::Better
1047 : ImplicitConversionSequence::Worse;
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001048 } else if (!SCS1ConvertsToVoid && !SCS2ConvertsToVoid) {
1049 // Neither conversion sequence converts to a void pointer; compare
1050 // their derived-to-base conversions.
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001051 if (ImplicitConversionSequence::CompareKind DerivedCK
1052 = CompareDerivedToBaseConversions(SCS1, SCS2))
1053 return DerivedCK;
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001054 } else if (SCS1ConvertsToVoid && SCS2ConvertsToVoid) {
1055 // Both conversion sequences are conversions to void
1056 // pointers. Compare the source types to determine if there's an
1057 // inheritance relationship in their sources.
1058 QualType FromType1 = QualType::getFromOpaquePtr(SCS1.FromTypePtr);
1059 QualType FromType2 = QualType::getFromOpaquePtr(SCS2.FromTypePtr);
1060
1061 // Adjust the types we're converting from via the array-to-pointer
1062 // conversion, if we need to.
1063 if (SCS1.First == ICK_Array_To_Pointer)
1064 FromType1 = Context.getArrayDecayedType(FromType1);
1065 if (SCS2.First == ICK_Array_To_Pointer)
1066 FromType2 = Context.getArrayDecayedType(FromType2);
1067
1068 QualType FromPointee1
1069 = FromType1->getAsPointerType()->getPointeeType().getUnqualifiedType();
1070 QualType FromPointee2
1071 = FromType2->getAsPointerType()->getPointeeType().getUnqualifiedType();
1072
1073 if (IsDerivedFrom(FromPointee2, FromPointee1))
1074 return ImplicitConversionSequence::Better;
1075 else if (IsDerivedFrom(FromPointee1, FromPointee2))
1076 return ImplicitConversionSequence::Worse;
1077 }
Douglas Gregor57373262008-10-22 14:17:15 +00001078
1079 // Compare based on qualification conversions (C++ 13.3.3.2p3,
1080 // bullet 3).
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001081 if (ImplicitConversionSequence::CompareKind QualCK
Douglas Gregor57373262008-10-22 14:17:15 +00001082 = CompareQualificationConversions(SCS1, SCS2))
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001083 return QualCK;
Douglas Gregor57373262008-10-22 14:17:15 +00001084
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001085 // C++ [over.ics.rank]p3b4:
1086 // -- S1 and S2 are reference bindings (8.5.3), and the types to
1087 // which the references refer are the same type except for
1088 // top-level cv-qualifiers, and the type to which the reference
1089 // initialized by S2 refers is more cv-qualified than the type
1090 // to which the reference initialized by S1 refers.
1091 if (SCS1.ReferenceBinding && SCS2.ReferenceBinding) {
1092 QualType T1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1093 QualType T2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
1094 T1 = Context.getCanonicalType(T1);
1095 T2 = Context.getCanonicalType(T2);
1096 if (T1.getUnqualifiedType() == T2.getUnqualifiedType()) {
1097 if (T2.isMoreQualifiedThan(T1))
1098 return ImplicitConversionSequence::Better;
1099 else if (T1.isMoreQualifiedThan(T2))
1100 return ImplicitConversionSequence::Worse;
1101 }
1102 }
Douglas Gregor57373262008-10-22 14:17:15 +00001103
1104 return ImplicitConversionSequence::Indistinguishable;
1105}
1106
1107/// CompareQualificationConversions - Compares two standard conversion
1108/// sequences to determine whether they can be ranked based on their
1109/// qualification conversions (C++ 13.3.3.2p3 bullet 3).
1110ImplicitConversionSequence::CompareKind
1111Sema::CompareQualificationConversions(const StandardConversionSequence& SCS1,
1112 const StandardConversionSequence& SCS2)
1113{
Douglas Gregorba7e2102008-10-22 15:04:37 +00001114 // C++ 13.3.3.2p3:
Douglas Gregor57373262008-10-22 14:17:15 +00001115 // -- S1 and S2 differ only in their qualification conversion and
1116 // yield similar types T1 and T2 (C++ 4.4), respectively, and the
1117 // cv-qualification signature of type T1 is a proper subset of
1118 // the cv-qualification signature of type T2, and S1 is not the
1119 // deprecated string literal array-to-pointer conversion (4.2).
1120 if (SCS1.First != SCS2.First || SCS1.Second != SCS2.Second ||
1121 SCS1.Third != SCS2.Third || SCS1.Third != ICK_Qualification)
1122 return ImplicitConversionSequence::Indistinguishable;
1123
1124 // FIXME: the example in the standard doesn't use a qualification
1125 // conversion (!)
1126 QualType T1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1127 QualType T2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
1128 T1 = Context.getCanonicalType(T1);
1129 T2 = Context.getCanonicalType(T2);
1130
1131 // If the types are the same, we won't learn anything by unwrapped
1132 // them.
1133 if (T1.getUnqualifiedType() == T2.getUnqualifiedType())
1134 return ImplicitConversionSequence::Indistinguishable;
1135
1136 ImplicitConversionSequence::CompareKind Result
1137 = ImplicitConversionSequence::Indistinguishable;
1138 while (UnwrapSimilarPointerTypes(T1, T2)) {
1139 // Within each iteration of the loop, we check the qualifiers to
1140 // determine if this still looks like a qualification
1141 // conversion. Then, if all is well, we unwrap one more level of
Douglas Gregorf8268ae2008-10-22 17:49:05 +00001142 // pointers or pointers-to-members and do it all again
Douglas Gregor57373262008-10-22 14:17:15 +00001143 // until there are no more pointers or pointers-to-members left
1144 // to unwrap. This essentially mimics what
1145 // IsQualificationConversion does, but here we're checking for a
1146 // strict subset of qualifiers.
1147 if (T1.getCVRQualifiers() == T2.getCVRQualifiers())
1148 // The qualifiers are the same, so this doesn't tell us anything
1149 // about how the sequences rank.
1150 ;
1151 else if (T2.isMoreQualifiedThan(T1)) {
1152 // T1 has fewer qualifiers, so it could be the better sequence.
1153 if (Result == ImplicitConversionSequence::Worse)
1154 // Neither has qualifiers that are a subset of the other's
1155 // qualifiers.
1156 return ImplicitConversionSequence::Indistinguishable;
1157
1158 Result = ImplicitConversionSequence::Better;
1159 } else if (T1.isMoreQualifiedThan(T2)) {
1160 // T2 has fewer qualifiers, so it could be the better sequence.
1161 if (Result == ImplicitConversionSequence::Better)
1162 // Neither has qualifiers that are a subset of the other's
1163 // qualifiers.
1164 return ImplicitConversionSequence::Indistinguishable;
1165
1166 Result = ImplicitConversionSequence::Worse;
1167 } else {
1168 // Qualifiers are disjoint.
1169 return ImplicitConversionSequence::Indistinguishable;
1170 }
1171
1172 // If the types after this point are equivalent, we're done.
1173 if (T1.getUnqualifiedType() == T2.getUnqualifiedType())
1174 break;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001175 }
1176
Douglas Gregor57373262008-10-22 14:17:15 +00001177 // Check that the winning standard conversion sequence isn't using
1178 // the deprecated string literal array to pointer conversion.
1179 switch (Result) {
1180 case ImplicitConversionSequence::Better:
1181 if (SCS1.Deprecated)
1182 Result = ImplicitConversionSequence::Indistinguishable;
1183 break;
1184
1185 case ImplicitConversionSequence::Indistinguishable:
1186 break;
1187
1188 case ImplicitConversionSequence::Worse:
1189 if (SCS2.Deprecated)
1190 Result = ImplicitConversionSequence::Indistinguishable;
1191 break;
1192 }
1193
1194 return Result;
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001195}
1196
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001197/// CompareDerivedToBaseConversions - Compares two standard conversion
1198/// sequences to determine whether they can be ranked based on their
1199/// various kinds of derived-to-base conversions (C++ [over.ics.rank]p4b3).
1200ImplicitConversionSequence::CompareKind
1201Sema::CompareDerivedToBaseConversions(const StandardConversionSequence& SCS1,
1202 const StandardConversionSequence& SCS2) {
1203 QualType FromType1 = QualType::getFromOpaquePtr(SCS1.FromTypePtr);
1204 QualType ToType1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1205 QualType FromType2 = QualType::getFromOpaquePtr(SCS2.FromTypePtr);
1206 QualType ToType2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
1207
1208 // Adjust the types we're converting from via the array-to-pointer
1209 // conversion, if we need to.
1210 if (SCS1.First == ICK_Array_To_Pointer)
1211 FromType1 = Context.getArrayDecayedType(FromType1);
1212 if (SCS2.First == ICK_Array_To_Pointer)
1213 FromType2 = Context.getArrayDecayedType(FromType2);
1214
1215 // Canonicalize all of the types.
1216 FromType1 = Context.getCanonicalType(FromType1);
1217 ToType1 = Context.getCanonicalType(ToType1);
1218 FromType2 = Context.getCanonicalType(FromType2);
1219 ToType2 = Context.getCanonicalType(ToType2);
1220
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001221 // C++ [over.ics.rank]p4b3:
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001222 //
1223 // If class B is derived directly or indirectly from class A and
1224 // class C is derived directly or indirectly from B,
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001225
1226 // Compare based on pointer conversions.
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001227 if (SCS1.Second == ICK_Pointer_Conversion &&
1228 SCS2.Second == ICK_Pointer_Conversion) {
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001229 QualType FromPointee1
1230 = FromType1->getAsPointerType()->getPointeeType().getUnqualifiedType();
1231 QualType ToPointee1
1232 = ToType1->getAsPointerType()->getPointeeType().getUnqualifiedType();
1233 QualType FromPointee2
1234 = FromType2->getAsPointerType()->getPointeeType().getUnqualifiedType();
1235 QualType ToPointee2
1236 = ToType2->getAsPointerType()->getPointeeType().getUnqualifiedType();
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001237 // -- conversion of C* to B* is better than conversion of C* to A*,
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001238 if (FromPointee1 == FromPointee2 && ToPointee1 != ToPointee2) {
1239 if (IsDerivedFrom(ToPointee1, ToPointee2))
1240 return ImplicitConversionSequence::Better;
1241 else if (IsDerivedFrom(ToPointee2, ToPointee1))
1242 return ImplicitConversionSequence::Worse;
1243 }
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001244
1245 // -- conversion of B* to A* is better than conversion of C* to A*,
1246 if (FromPointee1 != FromPointee2 && ToPointee1 == ToPointee2) {
1247 if (IsDerivedFrom(FromPointee2, FromPointee1))
1248 return ImplicitConversionSequence::Better;
1249 else if (IsDerivedFrom(FromPointee1, FromPointee2))
1250 return ImplicitConversionSequence::Worse;
1251 }
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001252 }
1253
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001254 // Compare based on reference bindings.
1255 if (SCS1.ReferenceBinding && SCS2.ReferenceBinding &&
1256 SCS1.Second == ICK_Derived_To_Base) {
1257 // -- binding of an expression of type C to a reference of type
1258 // B& is better than binding an expression of type C to a
1259 // reference of type A&,
1260 if (FromType1.getUnqualifiedType() == FromType2.getUnqualifiedType() &&
1261 ToType1.getUnqualifiedType() != ToType2.getUnqualifiedType()) {
1262 if (IsDerivedFrom(ToType1, ToType2))
1263 return ImplicitConversionSequence::Better;
1264 else if (IsDerivedFrom(ToType2, ToType1))
1265 return ImplicitConversionSequence::Worse;
1266 }
1267
Douglas Gregor225c41e2008-11-03 19:09:14 +00001268 // -- binding of an expression of type B to a reference of type
1269 // A& is better than binding an expression of type C to a
1270 // reference of type A&,
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001271 if (FromType1.getUnqualifiedType() != FromType2.getUnqualifiedType() &&
1272 ToType1.getUnqualifiedType() == ToType2.getUnqualifiedType()) {
1273 if (IsDerivedFrom(FromType2, FromType1))
1274 return ImplicitConversionSequence::Better;
1275 else if (IsDerivedFrom(FromType1, FromType2))
1276 return ImplicitConversionSequence::Worse;
1277 }
1278 }
1279
1280
1281 // FIXME: conversion of A::* to B::* is better than conversion of
1282 // A::* to C::*,
1283
1284 // FIXME: conversion of B::* to C::* is better than conversion of
1285 // A::* to C::*, and
1286
Douglas Gregor225c41e2008-11-03 19:09:14 +00001287 if (SCS1.CopyConstructor && SCS2.CopyConstructor &&
1288 SCS1.Second == ICK_Derived_To_Base) {
1289 // -- conversion of C to B is better than conversion of C to A,
1290 if (FromType1.getUnqualifiedType() == FromType2.getUnqualifiedType() &&
1291 ToType1.getUnqualifiedType() != ToType2.getUnqualifiedType()) {
1292 if (IsDerivedFrom(ToType1, ToType2))
1293 return ImplicitConversionSequence::Better;
1294 else if (IsDerivedFrom(ToType2, ToType1))
1295 return ImplicitConversionSequence::Worse;
1296 }
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001297
Douglas Gregor225c41e2008-11-03 19:09:14 +00001298 // -- conversion of B to A is better than conversion of C to A.
1299 if (FromType1.getUnqualifiedType() != FromType2.getUnqualifiedType() &&
1300 ToType1.getUnqualifiedType() == ToType2.getUnqualifiedType()) {
1301 if (IsDerivedFrom(FromType2, FromType1))
1302 return ImplicitConversionSequence::Better;
1303 else if (IsDerivedFrom(FromType1, FromType2))
1304 return ImplicitConversionSequence::Worse;
1305 }
1306 }
Douglas Gregorf70bdb92008-10-29 14:50:44 +00001307
Douglas Gregorbc0805a2008-10-23 00:40:37 +00001308 return ImplicitConversionSequence::Indistinguishable;
1309}
1310
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001311/// TryCopyInitialization - Try to copy-initialize a value of type
1312/// ToType from the expression From. Return the implicit conversion
1313/// sequence required to pass this argument, which may be a bad
1314/// conversion sequence (meaning that the argument cannot be passed to
Douglas Gregor225c41e2008-11-03 19:09:14 +00001315/// a parameter of this type). If @p SuppressUserConversions, then we
1316/// do not permit any user-defined conversion sequences.
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001317ImplicitConversionSequence
Douglas Gregor225c41e2008-11-03 19:09:14 +00001318Sema::TryCopyInitialization(Expr *From, QualType ToType,
1319 bool SuppressUserConversions) {
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001320 if (!getLangOptions().CPlusPlus) {
Douglas Gregor60d62c22008-10-31 16:23:19 +00001321 // In C, copy initialization is the same as performing an assignment.
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001322 AssignConvertType ConvTy =
1323 CheckSingleAssignmentConstraints(ToType, From);
1324 ImplicitConversionSequence ICS;
1325 if (getLangOptions().NoExtensions? ConvTy != Compatible
1326 : ConvTy == Incompatible)
1327 ICS.ConversionKind = ImplicitConversionSequence::BadConversion;
1328 else
1329 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
1330 return ICS;
1331 } else if (ToType->isReferenceType()) {
1332 ImplicitConversionSequence ICS;
Douglas Gregor225c41e2008-11-03 19:09:14 +00001333 CheckReferenceInit(From, ToType, &ICS, SuppressUserConversions);
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001334 return ICS;
1335 } else {
Douglas Gregor225c41e2008-11-03 19:09:14 +00001336 return TryImplicitConversion(From, ToType, SuppressUserConversions);
Douglas Gregor27c8dc02008-10-29 00:13:59 +00001337 }
1338}
1339
1340/// PerformArgumentPassing - Pass the argument Arg into a parameter of
1341/// type ToType. Returns true (and emits a diagnostic) if there was
1342/// an error, returns false if the initialization succeeded.
1343bool Sema::PerformCopyInitialization(Expr *&From, QualType ToType,
1344 const char* Flavor) {
1345 if (!getLangOptions().CPlusPlus) {
1346 // In C, argument passing is the same as performing an assignment.
1347 QualType FromType = From->getType();
1348 AssignConvertType ConvTy =
1349 CheckSingleAssignmentConstraints(ToType, From);
1350
1351 return DiagnoseAssignmentResult(ConvTy, From->getLocStart(), ToType,
1352 FromType, From, Flavor);
1353 } else if (ToType->isReferenceType()) {
1354 return CheckReferenceInit(From, ToType);
1355 } else {
1356 if (PerformImplicitConversion(From, ToType))
1357 return Diag(From->getSourceRange().getBegin(),
1358 diag::err_typecheck_convert_incompatible,
1359 ToType.getAsString(), From->getType().getAsString(),
1360 Flavor,
1361 From->getSourceRange());
1362 else
1363 return false;
1364 }
1365}
1366
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001367/// AddOverloadCandidate - Adds the given function to the set of
Douglas Gregor225c41e2008-11-03 19:09:14 +00001368/// candidate functions, using the given function call arguments. If
1369/// @p SuppressUserConversions, then don't allow user-defined
1370/// conversions via constructors or conversion operators.
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001371void
1372Sema::AddOverloadCandidate(FunctionDecl *Function,
1373 Expr **Args, unsigned NumArgs,
Douglas Gregor225c41e2008-11-03 19:09:14 +00001374 OverloadCandidateSet& CandidateSet,
1375 bool SuppressUserConversions)
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001376{
1377 const FunctionTypeProto* Proto
1378 = dyn_cast<FunctionTypeProto>(Function->getType()->getAsFunctionType());
1379 assert(Proto && "Functions without a prototype cannot be overloaded");
1380
1381 // Add this candidate
1382 CandidateSet.push_back(OverloadCandidate());
1383 OverloadCandidate& Candidate = CandidateSet.back();
1384 Candidate.Function = Function;
1385
1386 unsigned NumArgsInProto = Proto->getNumArgs();
1387
1388 // (C++ 13.3.2p2): A candidate function having fewer than m
1389 // parameters is viable only if it has an ellipsis in its parameter
1390 // list (8.3.5).
1391 if (NumArgs > NumArgsInProto && !Proto->isVariadic()) {
1392 Candidate.Viable = false;
1393 return;
1394 }
1395
1396 // (C++ 13.3.2p2): A candidate function having more than m parameters
1397 // is viable only if the (m+1)st parameter has a default argument
1398 // (8.3.6). For the purposes of overload resolution, the
1399 // parameter list is truncated on the right, so that there are
1400 // exactly m parameters.
1401 unsigned MinRequiredArgs = Function->getMinRequiredArguments();
1402 if (NumArgs < MinRequiredArgs) {
1403 // Not enough arguments.
1404 Candidate.Viable = false;
1405 return;
1406 }
1407
1408 // Determine the implicit conversion sequences for each of the
1409 // arguments.
1410 Candidate.Viable = true;
1411 Candidate.Conversions.resize(NumArgs);
1412 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
1413 if (ArgIdx < NumArgsInProto) {
1414 // (C++ 13.3.2p3): for F to be a viable function, there shall
1415 // exist for each argument an implicit conversion sequence
1416 // (13.3.3.1) that converts that argument to the corresponding
1417 // parameter of F.
1418 QualType ParamType = Proto->getArgType(ArgIdx);
1419 Candidate.Conversions[ArgIdx]
Douglas Gregor225c41e2008-11-03 19:09:14 +00001420 = TryCopyInitialization(Args[ArgIdx], ParamType,
1421 SuppressUserConversions);
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001422 if (Candidate.Conversions[ArgIdx].ConversionKind
1423 == ImplicitConversionSequence::BadConversion)
1424 Candidate.Viable = false;
1425 } else {
1426 // (C++ 13.3.2p2): For the purposes of overload resolution, any
1427 // argument for which there is no corresponding parameter is
1428 // considered to ""match the ellipsis" (C+ 13.3.3.1.3).
1429 Candidate.Conversions[ArgIdx].ConversionKind
1430 = ImplicitConversionSequence::EllipsisConversion;
1431 }
1432 }
1433}
1434
1435/// AddOverloadCandidates - Add all of the function overloads in Ovl
1436/// to the candidate set.
1437void
Douglas Gregor18fe5682008-11-03 20:45:27 +00001438Sema::AddOverloadCandidates(const OverloadedFunctionDecl *Ovl,
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001439 Expr **Args, unsigned NumArgs,
Douglas Gregor225c41e2008-11-03 19:09:14 +00001440 OverloadCandidateSet& CandidateSet,
1441 bool SuppressUserConversions)
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001442{
Douglas Gregor18fe5682008-11-03 20:45:27 +00001443 for (OverloadedFunctionDecl::function_const_iterator Func
1444 = Ovl->function_begin();
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001445 Func != Ovl->function_end(); ++Func)
Douglas Gregor225c41e2008-11-03 19:09:14 +00001446 AddOverloadCandidate(*Func, Args, NumArgs, CandidateSet,
1447 SuppressUserConversions);
Douglas Gregor8e9bebd2008-10-21 16:13:35 +00001448}
1449
1450/// isBetterOverloadCandidate - Determines whether the first overload
1451/// candidate is a better candidate than the second (C++ 13.3.3p1).
1452bool
1453Sema::isBetterOverloadCandidate(const OverloadCandidate& Cand1,
1454 const OverloadCandidate& Cand2)
1455{
1456 // Define viable functions to be better candidates than non-viable
1457 // functions.
1458 if (!Cand2.Viable)
1459 return Cand1.Viable;
1460 else if (!Cand1.Viable)
1461 return false;
1462
1463 // FIXME: Deal with the implicit object parameter for static member
1464 // functions. (C++ 13.3.3p1).
1465
1466 // (C++ 13.3.3p1): a viable function F1 is defined to be a better
1467 // function than another viable function F2 if for all arguments i,
1468 // ICSi(F1) is not a worse conversion sequence than ICSi(F2), and
1469 // then...
1470 unsigned NumArgs = Cand1.Conversions.size();
1471 assert(Cand2.Conversions.size() == NumArgs && "Overload candidate mismatch");
1472 bool HasBetterConversion = false;
1473 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
1474 switch (CompareImplicitConversionSequences(Cand1.Conversions[ArgIdx],
1475 Cand2.Conversions[ArgIdx])) {
1476 case ImplicitConversionSequence::Better:
1477 // Cand1 has a better conversion sequence.
1478 HasBetterConversion = true;
1479 break;
1480
1481 case ImplicitConversionSequence::Worse:
1482 // Cand1 can't be better than Cand2.
1483 return false;
1484
1485 case ImplicitConversionSequence::Indistinguishable:
1486 // Do nothing.
1487 break;
1488 }
1489 }
1490
1491 if (HasBetterConversion)
1492 return true;
1493
1494 // FIXME: Several other bullets in (C++ 13.3.3p1) need to be implemented.
1495
1496 return false;
1497}
1498
1499/// BestViableFunction - Computes the best viable function (C++ 13.3.3)
1500/// within an overload candidate set. If overloading is successful,
1501/// the result will be OR_Success and Best will be set to point to the
1502/// best viable function within the candidate set. Otherwise, one of
1503/// several kinds of errors will be returned; see
1504/// Sema::OverloadingResult.
1505Sema::OverloadingResult
1506Sema::BestViableFunction(OverloadCandidateSet& CandidateSet,
1507 OverloadCandidateSet::iterator& Best)
1508{
1509 // Find the best viable function.
1510 Best = CandidateSet.end();
1511 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin();
1512 Cand != CandidateSet.end(); ++Cand) {
1513 if (Cand->Viable) {
1514 if (Best == CandidateSet.end() || isBetterOverloadCandidate(*Cand, *Best))
1515 Best = Cand;
1516 }
1517 }
1518
1519 // If we didn't find any viable functions, abort.
1520 if (Best == CandidateSet.end())
1521 return OR_No_Viable_Function;
1522
1523 // Make sure that this function is better than every other viable
1524 // function. If not, we have an ambiguity.
1525 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin();
1526 Cand != CandidateSet.end(); ++Cand) {
1527 if (Cand->Viable &&
1528 Cand != Best &&
1529 !isBetterOverloadCandidate(*Best, *Cand))
1530 return OR_Ambiguous;
1531 }
1532
1533 // Best is the best viable function.
1534 return OR_Success;
1535}
1536
1537/// PrintOverloadCandidates - When overload resolution fails, prints
1538/// diagnostic messages containing the candidates in the candidate
1539/// set. If OnlyViable is true, only viable candidates will be printed.
1540void
1541Sema::PrintOverloadCandidates(OverloadCandidateSet& CandidateSet,
1542 bool OnlyViable)
1543{
1544 OverloadCandidateSet::iterator Cand = CandidateSet.begin(),
1545 LastCand = CandidateSet.end();
1546 for (; Cand != LastCand; ++Cand) {
1547 if (Cand->Viable ||!OnlyViable)
1548 Diag(Cand->Function->getLocation(), diag::err_ovl_candidate);
1549 }
1550}
1551
1552} // end namespace clang