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I have a class Base with a pure virtual function f(). Another class Derived derives from Base. I call f() from within Derived. And using g++, I get an error from the linker.

[agnel@dooku tmp]$ g++ pure_virtual_function_call.cpp 
/tmp/ccGQLHi4.o: In function `Derived::f()':
pure_virtual_function_call.cpp:(.text._ZN7Derived1fEv[_ZN7Derived1fEv]+0x14): undefined reference to `VirtualBase::f()'
collect2: error: ld returned 1 exit status

It seems to me that the error was caught by the linker. Why didn't the compiler report this error? Why leave it to the linker?

Here is the code:

#include <iostream>

using namespace std;

class VirtualBase {
public:
    virtual void f() = 0;
};

class Derived : public VirtualBase {
public:
    void f(){
        VirtualBase::f();
        cout << "Derived\n" ;
    }
};


int main(){
    Derived d;
    d.f();
    return 0;
}
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2  
Could you please show the source code? That would make it much easier to understand. –  Seg Fault Sep 27 '12 at 17:14
    
Please show your example code. Without that, it will be difficult to answer. –  Dave S Sep 27 '12 at 17:14

2 Answers 2

up vote 11 down vote accepted

Because pure virtual functions can have definitions and, if they do, you are allowed to call them non-virtually using the syntax VirtualBase::f().

The compiler has no way to tell whether you intend the function to be defined or not, and so the error can only be detected by the linker.

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Example of when a pure virtual can have a definition? –  Agnel Kurian Sep 27 '12 at 17:18
1  
@AgnelKurian: What do you mean? Any pure virtual function can have a definition. –  Mike Seymour Sep 27 '12 at 17:18
    
I did not know that pure virtual functions can have a definition. Thanks. –  Agnel Kurian Sep 27 '12 at 17:48

It's not an error to call a pure virtual function. It's an error to call any function that does not have a definition. A pure virtual function can have a definition.

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Example of when a pure virtual can have a definition? –  Agnel Kurian Sep 27 '12 at 17:17
2  
@AgnelKurian any time. class C { virtual void f() = 0; }; void C::f() { } –  Seth Carnegie Sep 27 '12 at 17:18
1  
You should add, that only not virtual call is allowed –  Lol4t0 Sep 27 '12 at 17:18
2  
The way he is calling the function qualified by the class name it doesn't really matter that it's a virtual function because he is calling it directly, bypassing the virtual function mechanism. –  Seg Fault Sep 27 '12 at 17:19
    
@Lol4t0 - no, a virtual call is always allowed. That's the most common usage. A virtual call won't hit the definition of the pure virtual, except sometimes from a constructor or destructor. –  Pete Becker Sep 27 '12 at 17:21

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