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This function works fine:

std::string get_str() {
  return std::get<0>( make_tuple(std::string("hi")) );
}

But if you try to do the same thing with a trailing return type defined by decltype, the function returns a dangling rvalue reference:

auto get_str() -> decltype( std::get<0>( make_tuple(std::string("hi")) ) ) {
  return std::get<0>( make_tuple(std::string("hi")) );
}

I have a cool application of trailing return type where I'd like to use std::get. Unfortunately, the return type of std::get is an rvalue reference in this case, so decltype is just doing its job...

Do you know of a way to use the trailing return type and decltype but avoid the dangling rvalue reference?

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3  
std::remove_reference... –  KennyTM Jul 4 '12 at 9:27
1  
If your actual code is using tuples then consider that typename std::tuple_element<N, tuple_type>::type is also available to express "the type of the N-th element in a tuple". –  Luc Danton Jul 6 '12 at 6:43
    
@LucDanton +1 Thanks, I had no idea about that! –  Oliver Jul 6 '12 at 6:46

3 Answers 3

up vote 3 down vote accepted

You could remove the reference using the standard remove_reference type trait:

#include <string>
#include <tuple>
#include <type_traits>

auto get_str() ->
    std::remove_reference<
        decltype( std::get<0>( make_tuple( std::string("hi") ) ) )
    >::type
{
    return std::get<0>( make_tuple( std::string("hi") ) );
}
share|improve this answer

Use std::remove_reference

auto get_str() -> 
std::remove_reference<
    decltype( std::get<0>( make_tuple(std::string("hi")) ) )
    >::type {
  return std::get<0>( make_tuple(std::string("hi")) );
}
share|improve this answer

Sounds as if you want std::remove_reference. So in your case simply change your trailing return type to
std::remove_reference<decltype( std::get<0>( make_tuple(std::string("hi")) ) )>::type

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