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Old GCC 4.1.2 accepts, and new GCC 4.5.1 accepts, the following program.

But is it actually correct? What does the standard say about declaring a constructor with the type's template parameter like this?

(I find it interesting that I'm not allowed to do the same in the out-of-line definition.)

#include <iostream>
template <typename T>
struct Foo {
   Foo<T>(); // <---
};

template <typename T>
Foo<T>::Foo() {
  std::cout << ":)";
}

int main() {
   Foo<int> f;
}

The reason I ask is that it was proposed in comments on this answer that GCC may be in error here.

share|improve this question
    
FWIW, builds & runs on GCC 4.6.1 too. – Mat Dec 26 '11 at 13:25
3  
Presumably due to 12.1/1: "The syntax uses... the constructor's class name...", this question amounts to "is Foo<T> the class name?" – Steve Jessop Dec 26 '11 at 13:36
    
@SteveJessop: ... "and, if so, why isn't it accepted in the definition?" – PreferenceBean Dec 26 '11 at 13:37
    
@Tomalak: yes indeed. I don't see how it can be the name (or anyway one version of the name) in one scope but not the other, so this certainly looks wrong to me, I'm just short of the references to prove it. The standard does prohibit using a typedef alias in place of the name, so it's certainly not just a case of "any identifier that resolves to the class is OK". – Steve Jessop Dec 26 '11 at 13:38
1  
@SteveJessop: 14.6.1/1 'Like normal (non-template) classes, class templates have an injected-class-name (Clause 9). The injectedclass- name can be used as a template-name or a type-name. ...' So it the class name not be a template_id, but the template name, I think. – fefe Dec 26 '11 at 13:46
up vote 3 down vote accepted

I will put a mail copy of a possible DR I recently sent out on Christmas here

Is the following code well formed?

template<typename T>
struct A {
  A<T>();
};

The several compilers that I tested (clang, g++ and comeau conline) accept this. Indeed 12.1 does not forbid this (A<T> is a name of that class and is not a typedef-name), but 8.3p1 says

An unqualified-id occurring in a declarator-id shall be a simple identifier except for the declaration of some special functions (12.3, 12.4, 13.5) ...

A constructor is a special member function, but the list of cross references does not include 12.1. Does that mean that the above code is ill-formed? Or is this an accidental omission?

If you do the same in an out-of-line definition, you will try to pass template arguments to a constructor. This is valid code

struct A {
  template<typename T> A();
};

template<> A::A<int>() { }

The spec says that when the injected class name is used in a qualified name when looking into the scope of the class (just as in A::A), then when name lookup accepts function/constructor names, the injected class name reference will be translated to be resolved to the constructor(s) of that class (if the name lookup context only accepts types, then the name will remain the injected class name, and will denote the class type). After A::A, name lookup is complete and yields the constructor. The <int> can then only be parsed as a template argument list. If there is no template among your constructors, your code will be invalid.

share|improve this answer
    
The first paragraph seems to imply that given code is valid. But errr... the OP asked about a regular constructor of a template class, not about a templated constructor. ( A<T>::A() i.s.o. A::A<T>() ). – xtofl Dec 26 '11 at 21:06
    
@xtofl I think you misunderstood my answer. After the copy of my mail, I elaborated on the part of OP's question "(I find it interesting that I'm not allowed to do the same in the out-of-line definition.)". The first paragraph (the quote representing my mail) does imply that the code is accepted by GCC, clang and the comeau online compiler. It does not imply that the code is valid. – Johannes Schaub - litb Dec 26 '11 at 21:15
    
I'm sorry; I'm a clever guy, but can you summarise this for me? – PreferenceBean Dec 27 '11 at 1:20
1  
@tomalak the summary is: don't do it, it is not clear whether it is formally allowed, and the committee hasn't decided yet. – Johannes Schaub - litb Dec 27 '11 at 2:59
1  
More precisely, it is not taken as template argument list if there is no template, but since there is no less-than expression allowed here, there is no alternative path, so a parsing error occurs. The compiler is clever and recovers interpreting the <T> as a template argument list. I updated my answer to correctly reflect the semantics. – Johannes Schaub - litb Dec 27 '11 at 12:30

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