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Starting with some metaprogramming code:

template<class... Ts>
class list {}; //a generic container for a list of types

template<class in_list_type>
class front //get the type of the first template parameter
{
    template<template<class...> class in_list_less_template_type, class front_type, class... rest_types>
    static front_type deduce_type(in_list_less_template_type<front_type, rest_types...>*);
public:
    typedef decltype(deduce_type((in_list_type*)nullptr)) type;
};

This code works fine for this:

typedef typename front<list<int, float, char>>::type type; //type is int

But fails to compile when the first item is a function type:

// no matching function for call to 'deduce_type'
typedef typename front<list<void (), float, char>>::type type;

I only have access to XCode at the moment and can't confirm whether this is simply an XCode bug. I'm using XCode 4.5.1, using Apple LLVM compiler 4.1.

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1  
Wouldnt the function type be void(*)()? –  imreal Oct 17 '12 at 21:26
1  
@Nick That's the pointer to function type. void() is kinda a weird bastard stepchild type in C++, which you might see when you use std::function<void ()>. It's essentially the type you get when you dereference a function pointer. –  Brent Oct 17 '12 at 21:28
    
@Brent C++ is not supposed to be used. :P (Thanks for clarifying that, I didn't know about it.) –  user529758 Oct 17 '12 at 21:31
    
@KerrekSB And list<A,B,C> is indeed one argument. –  aschepler Oct 17 '12 at 21:37

1 Answer 1

up vote 4 down vote accepted

When the template arguments to deduce_type are being deduced, front_type has void() as a candidate. However this would make deduce_type have type void ()() (function returning a function -- alias<void()>() if you assume template<typename T> using alias = T; to be in scope). This is an error and type deduction fails.

A solution is to have deduce_type return something like identity<front_type>, and type be an alias to typename decltype(deduce_type((in_list_type*)nullptr))::type.

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Beat me to it. I would add only that SFINAE is why you get a "no matching function" error instead of a "you can't use that return type" error. –  aschepler Oct 17 '12 at 21:35
    
Why is void ()() an error? –  Kevin Ballard Oct 17 '12 at 21:43
1  
@Kevin : Because a function cannot be returned as a value, only a pointer to a function. A function signature is useful only as a type, not as an object. –  ildjarn Oct 17 '12 at 21:46
    
Functions are explicitly prohibited from having e.g. array types and function types as return types. –  Luc Danton Oct 17 '12 at 21:48

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