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The code below works for the: goal for the left associative sum operation: sum(1,2,3,4);

However, it won't work correctly for sum(1,2,3,4,5) or sum(1,2,3,4,5,...). Anything with more than 4 arguments gives the error:

error: no matching function for call to sum(int, int, int, int, int)

=================================

template <typename T>
T sum(const T& v) {
return v;
}

template <typename T1, typename T2>
auto sum(const T1& v1, const T2& v2) -> decltype( v1 + v2) {
return v1 + v2;
}

template <typename T1, typename T2, typename... Ts>
auto sum(const T1& v1, const T2& v2, const Ts&... rest) -> decltype( v1 + v2 +      sum(rest...) ) {
return v1 + v2 + sum(rest... );
}

int main() {
    cout << sum(1,2,3,4); //works correctly
    //cout << sum(1,2,3,4,5); //compile error

}
share|improve this question
    
My guess is that it can't evauluate the sum using varidic template recursivly before it is decleared ones. I've no clue though how to solve it. Impossible? – Xale May 21 '13 at 7:07
    
I can reproduce that issue on gcc 4.7.2: ideone.com/6X4f2b - seems that gcc refuses to call variadic templates with auto/decltype return types recursively. – Arne Mertz May 21 '13 at 7:08
1  
See this [link][1]. Close to identical question. [1]: stackoverflow.com/questions/3744400/… – Xale May 21 '13 at 7:20
    
can be easily fixed with template class, instead of template function. I think it is right that it can't find proper function, but I am not sure – BЈовић May 21 '13 at 8:34
up vote 5 down vote accepted

That seems to be a bug in GCC, when working with variadic templates, auto return types and recursive reference to the same variadic template in the trailing return type.

It is solvable, through good old template meta programming:

//first a metafunction to calculate the result type of sum(Ts...)
template <typename...> struct SumTs;
template <typename T1> struct SumTs<T1> { typedef T1 type; };
template <typename T1, typename... Ts>
struct SumTs<T1, Ts...>
{
  typedef typename SumTs<Ts...>::type rhs_t;
  typedef decltype(std::declval<T1>() + std::declval<rhs_t>()) type;
};

//now the sum function
template <typename T>
T sum(const T& v) {
  return v;
}

template <typename T1, typename... Ts>
auto sum(const T1& v1, const Ts&... rest) 
  -> typename SumTs<T1,Ts...>::type //instead of the decltype
{
  return v1 + sum(rest... );
}

#include <iostream>
using std::cout;

int main() {
  cout << sum(1,2,3,4,5);    
}

PS: to be even more generic, the whole thing could be pimped with "universal references" and std::forward.

Update: used std::declval instead of handwritten functions

share|improve this answer
5  
std::declval<T>() is the correct stand-in for T() inside of decltype. – Xeo May 21 '13 at 7:30
    
is there have to be "auto" keyword in front of sum(const T1& v1, const Ts&... rest) – Avatar May 21 '13 at 7:47
    
Thanks for the comments, improved both points. – Arne Mertz May 21 '13 at 9:01
    
would it be possible to make this code work for the also Objects as arguments or only does it restrict with primitive type variables?/ stackoverflow.com/questions/16665531/… – Avatar May 21 '13 at 9:04

The function need additional check:

#include <type_traits>

template <typename T>
T sum(T v) 
{
    static_assert(std::is_arithmetic<std::remove_reference<decltype(v)>::type>::value, 
    "type should be arithmetic");
    return v;
}

and it's better pass by value.

otherwise we can get strange result:

int main() {
std::cout << sum(1,"Hello World");


return 0;
}
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