7

I'm writing a template function that takes a function object (for now, a lambda) as a parameter, with lambda datatype as a template parameter, and returns the same type the lambda returns. Like this:

template<typename TFunctor, typename TReturn>
TReturn MyFunc(TFunctor &Func, TReturn) //The second arg is just to keep the template spec happy
{
    return Func();
}

And the consumption code goes like this:

int n = MyFunc([](){return 17;}, int());

I don't like the ugly way the return datatype is specified. Is there some built-in typedef in the compiler-generated lambda class that would give me its return type? So that MyFunc can go somehow like this:

template<typename TFunctor>
TFunctor::return_type MyFunc(TFunctor &Func)
{ //...

I want it to return the same type that lambda returns without explicitly spelling out that type.

EDIT: for now, all lambdas I'm concerned with are argumentless. Variable capture does the trick just as well.

  • 5
    Like this - stackoverflow.com/a/8462724/673730 ? – Luchian Grigore Jan 30 '14 at 17:13
  • Depending on what TFunctor really is, it might have an overloaded operator(), that means the return type can depend on what arguments you give it. (This is not true for non-generic lambdas, though) – leemes Jan 30 '14 at 17:13
  • @leemes Not yet true for generic lambdas. That will change with the introduction of polymorphic lambdas to C++1y. – Nevin Jan 30 '14 at 17:31
  • @Nevin That's why I said "it's not true for non-generic lambdas", meaning their return type is fixed / known without looking at the arguments. With generic lambdas this changes. The return type of a generic lambda can (but doesn't have to) depend on its arguments. When you say "polymorphic lambda", do you mean generic lambda from C++14? – leemes Jan 30 '14 at 23:42
6

Since the return type can depend on the arguments given to the functor, you need to specify them somewhere in order to query the return type. Therefore, when speaking of generic functors (not restricting them to (non-generic) lambdas), it's not possible to determine the return type when not knowing the types of the arguments.

C++11 has the keyword decltype which can be used in conjunction with a trailing return type in order to specify the return type of your function by naming an expression which can depend on the function arguments (here, it depends on what Func is):

template<typename TFunctor>
auto MyFunc(TFunctor &Func) -> decltype(Func(/* some arguments */))
{ ... }

So if you were to call it for example with no argument (I assume this when looking at your lambda example), simply write:

template<typename TFunctor>
auto MyFunc(TFunctor &Func) -> decltype(Func())
{ 
    return Func();
}

In C++14, you can even completely omit the return type and simply write

template<typename TFunctor>
auto MyFunc(TFunctor &Func)
{ 
    return Func();
}

Note that even in C++03, you don't have to provide another function argument; another template argument is enough:

template<typename TReturn, typename TFunctor>
TReturn MyFunc(TFunctor &Func)
{
    return Func();
}

int n = MyFunc<int>(someFunctorReturningAnInt);

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