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I would like to write a template that would get as a parameter the return type of the function in which it is being instantiated.

For example, assume I've a Result templated class:

template<type T>
class Result {
    T _result_value;
    T& operator=( T that );
    ~Result( );
}

There would be several specializations for this class. In the destructor I would like to log the return type, and within the operator= assignment I would like to check and assert for error values.

Ideally, I would like to be able to have such a define:

#define RESULT Result< /* decltype magic for type of current function */ >

so I could use it:

HFILE MyOpenFile( ... ) {
    RESULT result;
}

...which will be deduced to Result<HFILE>. This is a simplified example: writing RESULT instead of Result<HFILE> isn't a big deal, but there are other scenarios where the return type of the current function isn't easily obtained.

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can you use en.wikipedia.org/wiki/Decltype ? –  bobah Nov 8 '12 at 10:12
1  
I guess you'll at least have to pass the function name to the macro (e.g. RESULT(MyOpenFile)), and in the case of overloading, you'd still encounter ambiguities. Even getting a pointer to the current function is tricky, and getting a correctly typed pointer seems impossible without naming the function again. –  MvG Nov 8 '12 at 10:34
    
@MvG, you can get around the overload ambiguity by passing to decltype the function + params, e.g. decltype(foo(b)), decltype(foo(a, b)) will resolve correctly. However, it's a pain.. –  Nim Nov 8 '12 at 10:53
    
If it did exist, there would have to be limits on what a user could do with the information. Recursive use of such information could render a function's return type undecidable. –  user2023370 Jun 11 '14 at 8:42

3 Answers 3

up vote 2 down vote accepted

No. There's nothing in C++ which refers to the "current function". The closest is __func__ but that's a string literal. Hence, there's nothing to pass to decltype.

Not that you need it, with auto.

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It's not possible from inside a function because there is no dedicated object in memory representing it which can be referenced to deduce the type. It's possible for classes, via decltype(*this).

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The most portable way I can think of is using decltype:

#define RESULT(func, ...) Result<decltype(func(__VA_ARGS__))>

int main(int argc, char **argv) {
    RESULT(main, argc, argv) result; // same as `Result<int> result;`
}

But this forces you to pass the function name and every argument it takes to the RESULT macro. I don't think this is avoidable, because there is no portable (and often not even a compiler-specific) way to get an identifier to the current function and/or arguments passed. Arguments passed matter thanks to overload ambiguities.

Here is a SSCCE: http://ideone.com/cPTjjF

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1  
you don't need the varargs business, simply define RESULT as RESULT(f) Result<decltype(f)> and then use as RESULT(main(argc, argv))... –  Nim Nov 8 '12 at 11:16

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