3

Could anyone provide me a hint how to implement correctly operator<< for MyType in provided code example?

#include <iostream>
#include <map>


template <typename T>
class A {
public:
    typedef std::map<unsigned int, T> MyType;
    MyType data;

    void show();
};

template <typename T>
std::ostream& operator<<(std::ostream& stream, typename A<T>::MyType const& mm)
{
    return stream << mm.size() << "\n";
}

//template <typename T>
//std::ostream& operator<<(std::ostream& stream, std::map<unsigned int, T> const& mm)
//{
//  return stream << mm.size() << "\n";
//}

template <typename T>
void A<T>::show() {std::cout << data;}

int main() {
    A<double> a;

    a.show();

    return 0;
}

Above code does not compile. But when I change definition of operator<< to commented out one, everything works correctly. This is just a (not) working example of a more complicated problem and in reality MyType is much much more nasty. In that simple example I just could easily copy-paste exact definition of MyType from a 'A' class but in more complicated case, when this typedef is depending on antoher typedef... it would be nice just to refer to it. Is there any solution to this problem?

Edit:

Output error from compiler (in general as if operator<< was not defined at all, so when both definitions for operator<< from example are commented out compiler prints same error).

g++ -O0 -g3 -Wall -c -fmessage-length=0 -std=c++14 -MMD -MP -MF"src/ostreamTest.d" -MT"src/ostreamTest.o" -o "src/ostreamTest.o" "../src/ostreamTest.cpp"
../src/ostreamTest.cpp:27:31: error: invalid operands to binary expression ('ostream' (aka 'basic_ostream<char>') and 'MyType' (aka 'map<unsigned int, double>'))
    void A<T>::show() {std::cout << data;}
                       ~~~~~~~~~ ^  ~~~~
  • 3
    If you get build errors then please include the them (in full, complete and unedited) in the question body. – Some programmer dude Jul 6 '17 at 13:36
  • 2
    I think that typedef are bound to their scope (I might be wrong). Can't you overload the operator<< inside of the class as a friend member function (with the friend keyword)? – Vivick Jul 6 '17 at 13:38
  • Plus, I don't think typedef is appropriate with a type that is not always the same (template T), I would prefer using myType = std::map<unsigned int, T> in this case (type bound to the instance, not the class) – Vivick Jul 6 '17 at 13:41
  • @Vivick: It does not help at least such a definition inside the class: friend std::ostream& operator<<(std::ostream& stream, MyType const& mm) {return stream;} is not taken into account by compiler. – Krzysztof Jul 6 '17 at 13:43
  • 1
    Possible duplicate of Why is the template argument deduction not working here? – Passer By Jul 6 '17 at 13:46
2

Problem is the non-deduced context (thanks PasserBy for the link), which disallows us to find a direct solution.

A workaround might be moving the typedef out of the class, such as this:

template <typename T>
using A_MyType = std::map<unsigned int, T>;

template <typename T>
class A
{
public:
    typedef A_MyType<T> MyType;
    MyType data;

    void show();
};

template <typename T>
std::ostream& operator<<(std::ostream& stream, A_MyType<T> const& mm)
{
    return stream << mm.size() << std::endl;
}

Sure, this works fine for the std::map, if it works for your more complex class – impossible to say without knowing more details...

0

So I was cooking this as an answer

#include <iostream>
#include <map>

template <typename T>
class A{
public:

    using MyType = std::map<unsigned int, T>;
    MyType data;

    void show();

    friend std::ostream& operator<<(std::ostream& stream, const MyType& mm){
        return stream << mm.size() << "\n";
    }
};

template <typename T>
void A<T>::show(){
    std::cout << data;
}

int main()
{
    A<double> a;
    std::cout << a;
    return 0;
}

But there's a build error quite known that occurs when compiling :
error: cannot bind 'std::ostream {aka std::basic_ostream<char>}' lvalue to 'std::basic_ostream<char>&&'

This error often means that the type deduction could not do its job properly (non-deductible context) (cf. Why is template type deduction not working and ostream lvalue error)

Therefore I think that, for the moment, you should find another way around this problem, such way I can't think of for the moment.

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