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I've a little problem in my code. I try to create a function with variadic parameter, but when I compile it, it fail, and i really don't see why. So if anyone could help me ...

here is my function:

QuerySet.hpp:

template <typename T>
class QuerySet
{
   template<typename U,typename ... Args>
   QuerySet& filter(const std::string& colum,Args ... args,const std::string& operation, const U& value);
   //...
}

template<typename T>
template<typename U,typename ... Args>
QuerySet<T>& QuerySet<T>::filter(const std::string& colum,Args ... args,const std::string& operation, const U& value)
{
     //some job
     return *this;
}

main.cpp QuerySet queryset; queryset.filter(Perso::_master,Perso::_lvl,"gt",4); //line 135

Note: Perso::_master and Perso::_lvl are some static const std::string;

Error:

g++ -g -std=c++0x -I"/my_path/cpp-ORM" -lmysqlcppconn   -o main.o -c main.cpp;
main.cpp: In function ‘int main(int, char**)’:
main.cpp:135:46: erreur: no matching function for call to ‘orm::QuerySet<Perso>::filter(const string&, const string&, const string&, int)’
main.cpp:135:46: note: candidate is:
/my_path/QuerySet.hpp:18:23: note: template<class U, class ... Args> orm::QuerySet<T>& orm::QuerySet::filter(const string&, Args ..., const string&, const U&) [with U = U, Args = {Args ...}, T = Perso, std::string = std::basic_string<char>]

Informations : I use gcc version 4.6.4 (Ubuntu/Linaro 4.6.4-1ubuntu1~12.04), but I try with gcc4.8, and I've a error to.

share|improve this question
    
Try moving the pack to the end. –  Kerrek SB Sep 17 '13 at 14:02
    
It's ok on the end, but i need it as first args for the users. –  Krozark Sep 17 '13 at 14:06
1  
end your function with a parameter pack if you want it duductable. You can use static asserts or sfinae or other techniques to ensure the last arguments in the pack are the string and value. BTW, also use perfect forwarding. –  Yakk Sep 17 '13 at 14:14
    
Don't worry about perfect forwarding. Here is juste the minimal code ;) I will make a look static asserts and sfinae –  Krozark Sep 17 '13 at 14:20

2 Answers 2

up vote 3 down vote accepted

Your functions can never be called, that's a context where template parameters cannot be deduced:

n3337, 14.8.2.1/1 [temp.deduct.call]

Template argument deduction is done by comparing each function template parameter type (call it P) with the type of the corresponding argument of the call (call it A) as described below.
[...]
For a function parameter pack that occurs at the end of the parameter-declaration-list, the type A of each remaining argument of the call is compared with the type P of the declarator-id of the function parameter pack. Each comparison deduces template arguments for subsequent positions in the template parameter packs expanded by the function parameter pack. For a function parameter pack that does not occur at the end of the parameter-declaration-list, the type of the parameter pack is a non-deduced context.
[...]

Move the argument pack to the end of function's parameter list.

You could get away with specifying the template parameters explicitly, but I assume that's not what you want. E.g:

q.filter<int, int, int>("oi", 1, 2, "oi", i);
share|improve this answer
    
Arf, ok. Thank's for your anwer. –  Krozark Sep 17 '13 at 14:17

The variadic parameter pack must occur at the end of the function signature, not in the middle.

For better understanding read this: Variadic function template with pack expansion not in last parameter

share|improve this answer
    
Well, some packs need to be at the end (namely deducible ones). But not every pack. –  Kerrek SB Sep 17 '13 at 15:15

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