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I've prepared a simple variadic template test in Code::Blocks, but I'm getting an error:

No matching function for call to 'OutputSizes()'

Here's my source code:

#include <iostream>
#include <typeinfo>

using namespace std;

template <typename FirstDatatype, typename... DatatypeList>
void OutputSizes()
{
    std::cout << typeid(FirstDatatype).name() << ": " << sizeof(FirstDatatype) << std::endl;
    OutputSizes<DatatypeList...>();
}

int main()
{
    OutputSizes<char, int, long int>();
    return 0;
}

I'm using GNU GCC with -std=C++0x. Using -std=gnu++0x makes no difference.

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2 Answers 2

up vote 8 down vote accepted

Here's how you disambiguate the base case:

#include <iostream>
#include <typeinfo>

template <typename FirstDatatype>
void OutputSizes()
{
    std::cout << typeid(FirstDatatype).name() << ": " << sizeof(FirstDatatype) << std::endl;
}

template <typename FirstDatatype, typename SecondDatatype, typename... DatatypeList>
void OutputSizes()
{
    OutputSizes<FirstDatatype>()
    OutputSizes<SecondDatatype, DatatypeList...>();
}

int main()
{
    OutputSizes<char, int, long int>();
}
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I wonder if this is possible to make work without having a three-argument version of the template? –  Omnifarious Feb 18 '11 at 0:52
    
The three argument OutputSizes should call the single argument one to reduce code duplication. –  Omnifarious Feb 18 '11 at 1:02
    
Doug Gregor (the main force behind variadic templates) has recently submitted a core issue in this area. I am not knowledgable enough to know if it impacts or changes this use case or not (sorry). The issue has not yet been assigned a number so I can not point you to it. –  Howard Hinnant Feb 18 '11 at 3:47
    
I thought at first that the second template could be <typename FirstDatatype, typename... DatatypeList>, and that partial ordering would solve the ambiguity with the call to OutputSizes<char>, but partial ordering won't be able to resolve that since there are no function parameters :( @Howard, did he post that issue to the core list somewhere? Note that this is not specific to variadic templates. For instance template<typename T> void f(); template<typename T, typename U = void> void f(); and then a call to f<int> is similarly ambiguous, I think. –  Johannes Schaub - litb Feb 20 '11 at 17:06
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It's because you didn't provide a base case. You extracted the last data type of the variadic template parameter- then you tried to match an empty variadic parameter to a function taking a type and a variadic parameter. You need to provide a "base case" for when the variadic parameter is empty.

using namespace std;

template <typename FirstDatatype, typename... DatatypeList>
void OutputSizes()
{
    std::cout << typeid(FirstDatatype).name() << ": " << sizeof(FirstDatatype) << std::endl;
    OutputSizes<DatatypeList...>();
}

template<typename... DataTypeList>
void OutputSizes() // We're called when there's no template arguments
                   // left in the pack
{
}

int main()
{
    OutputSizes<char, int, long int>();
    return 0;
}

Edit: The many-zero overloads I have shown here actually only work when you take actual run-time arguments too based on the template types. If you only take template parameters directly, you have use two-one recursion like shown in Howard Hinnant's answer.

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I think I know what you mean, but could you provide an example? I tried overloading it with just template <typename Datatype> but got ambiguous overload errors. –  Maxpm Feb 17 '11 at 23:21
    
@Maxpm: I'm not an expert on variadic templates, as my compiler doesn't support them, but I believe that the above should compile. –  Puppy Feb 17 '11 at 23:26
    
I think using the term 'base class' here is confusing. Perhaps 'recursion termination condition' would be better. –  Omnifarious Feb 18 '11 at 0:32
2  
I can't get the above to compile. Could you make sure it works? –  rodarmor Feb 24 '12 at 19:51
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