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Why doesn't the following function override (lambda as a first parameter) work?

template<typename ...Args>
void call(Args&& ...args) {
    std::cout << "call 1";
}

template<typename ...Args>
void call(CustomObject object, Args&& ...args) {
    std::cout << "call 2";
}

// see this function
template<typename ...Args>
void call(std::function<void ()>, Args&& ...args) {
    std::cout << "call 3";
}
  • call() output ‘call 1’
  • call(CustomObject()) output 'call 2'
  • call([](){}) output 'call 1' // wrong

Why does call([](){}) not output 'call 3'?

How should I declare the function to let call([](){}) output 'call 3'?

EDIT: @KennyTM gave the answer for the above.

template<typename F, typename ...Args>
auto call(F&& f, Args&& ...args)
    -> typename std::enable_if<std::is_same<decltype(f()), void>::value>::type
{
    std::cout << "call 3\n";
}

But... What if the lambda has a parameter? Like this:

class CustomObject {};

template<typename ...Args>
void call(std::function<void (CustomObject *)>, Args&& ...args) {
    std::cout << "call 4";
}

How to let call([](CustomObject *){}) output 'call 4'?

EDIT: @ildjarn gave the answer:

template<typename F, typename ...Args>
auto call(F&& f, Args&& ...)
    -> typename std::enable_if<std::is_same<decltype(f( std::declval<CustomObject*>() )), void>::value>::type
{
    std::cout << "call 4\n";
}
share|improve this question
    
A lambda is convertible to std::function, so the first function is a better match. – K-ballo Dec 22 '12 at 19:54
    
I test it in xcode 4.5, with apple llvm compiler 4.1 – smilingpoplar Dec 22 '12 at 19:55
    
@K-ballo, but isn't std::function<void ()> the type for this lambda? – smilingpoplar Dec 22 '12 at 19:57
1  
@smilingpopular: No, each lambda has a different implementation specified type.. It's only convertible to std::function – K-ballo Dec 22 '12 at 19:58
1  
@smilingpoplar : "How to let call([](CustomObject *){}) output 'call 4'?" The corrected code is here: liveworkspace.org/code/2LLpoa$0 – ildjarn Jan 4 '13 at 1:51
up vote 6 down vote accepted

A lambda's type is an anonymous type which has an operator(). It is not a std::function<>.

Instead of specializing the type, you could check if the first argument is a functor for call 3 (demo: http://ideone.com/IQ4N6L):

#include <iostream>
#include <type_traits>

template<typename F, typename ...Args>
auto call(F&& f, Args&& ...args)
    -> typename std::enable_if<std::is_same<decltype(f()), void>::value>::type
{
    std::cout << "call 3\n";
}


template<typename ...Args>
void call(Args&& ...args) {
    std::cout << "call 1\n";
}



int main() {
    call(1);
    call([](){});
}
share|improve this answer

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