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Inside a templated class, I found the expression, *this = NULL What does such an expression mean ?

The following is its definition:

TYPE** getPtr() 
{
 *this = NULL;
 return &m_pPtr;
}

where m_pPtr is type TYPE* in the template class.

Assignment operator:

// Assignment operator.
TYPE* operator =(TYPE *pPtr) {
  if (pPtr == m_pPtr)
    return pPtr;

  m_pPtr = pPtr;

  return m_pPtr;
}

Vishnu.

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2 Answers 2

up vote 2 down vote accepted

It's difficult to say what the point of such a statement is without seeing the actual code.

But it will probably be invoking an overloaded assignment operator. e.g.:

#include <iostream>

class X {
public:
    void operator=(void *) {
        std::cout << "Here!\n";
    }

    void foo() {
        *this = NULL;
    }
};


int main() {
    X x;
    x.foo();
}
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Edited with actual code –  Vishnu Pedireddi Jan 9 '12 at 23:25
    
@VishnuPedireddi: that's not enough code to figure out what the reason is. In particular, we would need to see the definition of the assignment operators (operator=) and constructors, and also some idea of what this class actually is. –  Oliver Charlesworth Jan 9 '12 at 23:29
    
Updated with code –  Vishnu Pedireddi Jan 9 '12 at 23:38
1  
@VishnuPedireddi: Well, *this = NULL is indeed calling that assignment operator, which in turn is setting m_pPtr to be NULL. I can't tell you why that is, because you haven't said what this class is! (i.e. what the purpose of the class is) –  Oliver Charlesworth Jan 9 '12 at 23:40
    
That helps.. Thanks !! –  Vishnu Pedireddi Jan 9 '12 at 23:43

It's attempting to assign 0 to the current object. It will call something like

operator=(void *);

Another possibility (as far as I know) is that there is a constructor in the object which takes a void* or similar type. Then it would construct an object and then copy-assign that.

T :: T(void *);    // construct with the void *
T :: T(const T &); // copy assignment
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