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Are noexcept specifiers accepted in function typedefs?

as in:

 typedef void (*fptr)()  noexcept;

Intuitively, noexcept specifiers seem to make sense since they would allow some optimisations at the caller's side.

I got a mixed answer from gcc 4.6.1.

 typedef void (*fptr)()  noexcept;

results in: error: ‘fptr’ declared with an exception specification

but:

template<void (*FPtr)()  noexcept>
struct A{};

compiles without warning.

share|improve this question
up vote 8 down vote accepted

clang gives:

test.cpp:1:25: error: exception specifications are not allowed in typedefs
typedef void (*fptr)()  noexcept;
                        ^
1 error generated.

This is backed up in the C++11 standard in 15.4 [except.spec]/p2:

... An exception-specification shall not appear in a typedef declaration or alias-declaration.

share|improve this answer
    
Thanks. This probably makes accepting the noexcept-clause in the template-argument above a bug in gcc? – mirk Oct 26 '11 at 16:54
2  
I don't think so. [temp.param]/p4 says that non-type parameters can be a pointer to function and I don't see any mention of exception-specifications in that area. And [except.spec]/p2 specifically says that an exception-specification can appear on a pointer to function. – Howard Hinnant Oct 26 '11 at 17:13
    
Thanks again. I am a bit puzzled with this outcome, but there is no point in arguing with the standard. – mirk Oct 27 '11 at 9:48
1  
@DirkM: Maybe because both are exception specifications? ;) – Xeo Oct 27 '11 at 12:53
1  
Note that one can still declare a typedef for a noexcept function pointer: void dummy() noexcept; typedef decltype(dummy)* f_ptr_t;. Working code can be found here. – Max Truxa Aug 14 '15 at 8:59

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