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I'm trying to write a template function that takes an arbitrary container class with an arbitrary numeric type:

template <typename NumType, typename ContType>
double avg_nums(const ContType<NumType> & data)
{
    double sum = 0;

    for(ContType::const_iterator iter = data.cbegin(); iter != data.cend(); ++iter)
    {
        if(typeid(NumType) == typeid(char) || typeid(NumType) == typeid(unsigned char))
        {
            std::cout << static_cast<int>(*iter) << std::endl;
        }
        else
        {
            std::cout << *iter << " ";
        }

        sum += *iter;
    }
    std::cout << std::endl;

    return sum  / data.size();
}

but this gives a syntax error (VS2012). This doesn't work either:

template <typename NumType, typename ContType<NumType> >
double avg_nums(ContType<NumType> & data)

I want the type of object in the container to be a template parameter as well as the container type so I can add check for a specific cases of NumType. If I change the function signature to

template <typename NumType, typename ContType>
double avg_nums(ContType & data)

it builds but now it relies on explicitly specifying the correct template parameter:

std::vector<char> cvec = boost::assign::list_of(0) (1) (1) (2) (3) (5);
std::vector<int> ivec = boost::assign::list_of(0) (1) (1) (2) (3) (5);

avg_nums<char, std::vector<char>>(cvec);
avg_nums<int, std::vector<int>>(ivec);

If I change the signature to

template <typename ContType>
double avg_nums(ContType & data)

It works but now I don't have direct access to the element type. Can I get the element type from the type of the container (std::vector<int> or std::list<unsigned char>)?

share|improve this question

You can use this form:

template <typename ContType>
double avg_nums(ContType & data)

and then get the element type as

typename ContType::value_type
share|improve this answer
template <typename ContType>
double avg_nums(ContType & data)

It works but now I don't have direct access to the element type. Can I get the element type from the type of the container (std::vector or std::list)?

You can extract the type of the contained elements in standard containers by means of the nested type: value_type:

typedef typename ContType::value_type NumType;

I don't think I would implement that function anyway, since you can use existing algorithms that are well tested:

int value = 0;
int total = std::accumulate(container.begin(), container.end(), value);
double avg = total * 1. / container.size();
share|improve this answer

For your specific current problem you can replace

template <typename NumType, typename ContType>
double avg_nums(const ContType<NumType> & data)
{

with

template< class ContType >
double avg_nums(ContType const& data)
{
    using NumType = typename ContType::value_type;

You will need a typename for the type specification in the loop head.


More generally you can do

template< template< class, class > class ContType_, class NumType, class Allocator >
double avg_nums(ContType_<NumType, Allocator> const& data)
{
    using ContType = ContType_<NumType, Allocator>;

And instead of

    if(typeid(NumType) == typeid(char) || typeid(NumType) == typeid(unsigned char))
    {
        std::cout << static_cast<int>(*iter) << std::endl;
    }
    else
    {
        std::cout << *iter << " ";
    }

you can just use implicit promotion and write

    std::cout << +*iter << " ";

or perhaps 0+*iter if you find that more clear.


In passing, do consider using std::accumulate.


Also, in passing, do think about how to handle an empty container.


Finally, instead of the explicit iterator usage you can just use a C++11 range-based for.

share|improve this answer

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