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Consider the following program:

#include <iostream>
#include <algorithm>

using namespace std;

template<class T>
struct A {
    typedef pair<T, T> PairType;
};

template<class T>
struct B {
    void f(A<T>::PairType p) {
        cout << "f(" << p.first << ", " << p.second << ")" << endl;
    }
    void g(pair<T, T> p) {
        cout <<"g(" << p.first << ", " << p.second << ")" << endl;
    }
};

int main() {
    B<int> b;
    b.f(make_pair(1, 2));
    b.g(make_pair(1, 2));
}

Why doesn't it compile? It complains about the part with the B::f() method. It doesn't seem to recognize the typedef in class A<T>. If I change T to a concrete type, it works though. The full error message is the following:

g++ -DNDEBUG -O0 -g3 -Wall -c -fmessage-length=0 -MMD -MP -MF"main.d" -MT"main.d" -o"main.o" "../main.cpp"
../main.cpp:13: error: ‘template<class T> struct A’ used without template parameters
../main.cpp:13: error: expected ‘,’ or ‘...’ before ‘p’
../main.cpp: In member function ‘void B<T>::f(int)’:
../main.cpp:14: error: ‘p’ was not declared in this scope
../main.cpp: In function ‘int main()’:
../main.cpp:23: error: no matching function for call to ‘B<int>::f(std::pair<int, int>)’
../main.cpp:13: note: candidates are: void B<T>::f(int) [with T = int]
make: *** [main.o] Error 1

I even tried it another way, but it still didn't work:

void f(A::PairType<T> p) {
    cout << "f(" << p.first << ", " << p.second << ")" << endl;
}

How could such code be made to work?

share|improve this question
    
possible duplicate of Member template function. Why doesn't this compile? –  Jon Mar 6 '11 at 16:20
    
possible duplicate of Where to put the "template" and "typename" on dependent names –  fredoverflow Mar 6 '11 at 16:31

1 Answer 1

up vote 5 down vote accepted

The compiler doesn't know that A<T>::PairType is a type when parsing struct B template. The only way of knowing whether A<T>::PairType is a type or not is instantiating both templates, which does not happen until your main function.

Tell the compiler explicitly that it is so:

void f(typename A<T>::PairType p)
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