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I have a class that needs to call an external function in a variety of different contexts. I want to keep things flexible, so I'm using an interface (inspired by the 3rd edition of Numerical Recipes) that should work with functors, function pointers, etc. A simplified example looks like:

class MyClass {
  public:
    template <class T>
    MyClass(T &f_) { f = f_; }
  private:
    int (*f)(int);
};

int myFn(int i) {
  return i % 100;
}

int main() {
  MyClass test(myFn);
  return 0;
}

So far so good; g++ compiles this without any complaints. In my real application, there's a lot more code so I've got things split up among multiple files. For example,

test2.h:

#ifndef __test2__
#define __test2__

class MyClass {
  public:
    template <class T>
    MyClass(T &f_);    
 private:
    int (*f)(int);
};

#endif

test2.cpp:

#include "test2.h"

template <class T>
MyClass::MyClass(T &f_) {
  f = f_;
}

main.cpp:

#include "test2.h"

int myFn(int i) {
  return i % 100;
}

int main() {
  MyClass test(myFn);
  return 0;
}

When I try to compile this using g++ test2.cpp main.cpp, I get the following linking error:

/tmp/ccX02soo.o: In function 'main':
main.cpp:(.text+0x43): undefined reference to `MyClass::MyClass<int ()(int)>(int (&)(int))'
collect2: ld returned 1 exit status

It appears that g++ isn't aware of the fact that I'm also trying to compile test2.cpp. Any ideas about what might be going on here?

Thanks,

--craig

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possible duplicate of Why can templates only be implemented in the header file? –  Bo Persson Apr 11 '12 at 11:03

1 Answer 1

Template classes must have their implementation visible to all translation units that use them, unless they are fully specialized.

That means you have to move the implementation in the header:

//test2.h
#ifndef __test2__
#define __test2__

class MyClass {
  public:
    template <class T>
    MyClass(T &f_);    
 private:
    int (*f)(int);
};

template <class T>
MyClass::MyClass(T &f_) {
  f = f_;
}

#endif
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