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I have a question about a destructor's implementation for a class. I understand the right way is using the ~ operator, but take a look at the following code:

class foo
{
private:
int* abc;

public:
foo()
{
abc = new int(2);
}

~foo()
{
delete abc;
}

void func()
{
delete abc;
}
}

Now let us say that the main function is defined as below:

int main(int argc, char** argv)
{
foo a;
a.func();
}

Upon the function call of func() in main, does this work in the exact same way as the destructor? What is the difference between the destructor and this function in any similar setting?

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~ isn't an operator in this case. –  chris Jan 12 '13 at 8:28
    
a->func(); compile error -> needs to be . –  Karthik T Jan 12 '13 at 8:28
    
'~' as in the standard notation for implementing a destructor. Sorry for the confusion. –  Nathan822 Jan 12 '13 at 8:28
    
This is very very bad code.. You will have a double delete at the end of main function –  Karthik T Jan 12 '13 at 8:29
    
Made that change. –  Nathan822 Jan 12 '13 at 8:29

2 Answers 2

up vote 5 down vote accepted

func() and ~foo() do the exact same thing. And that's the problem. When a goes out of scope, its destructor ~foo() will automatically be called, resulting in abc being deleted twice. One way to get around it would be to set abc to NULL at the end of func() after the delete, so that when the destructor gets called it deletes a NULL pointer, which is a special case in C++ where nothing is actually done and is a valid operation.

Or, of course, the code could be rewritten in a way that actually made sense and accomplished something.

And just to be really clear, the "difference" between func() and ~foo() is how/when they're called, not in what they do. func() is manually called by the user, while ~foo() is automatically called when the variable goes out of scope. func() may be called zero or more times (it's up to the programmer), but the compiler will call ~foo() exactly once (no more, no less) in this code.

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Thanks, your answer helped me out! –  Nathan822 Jan 12 '13 at 8:39
1  
@Nathan822 There is actually one important difference in functionality, in the general case. Whenever a destructor is called (explicitly or implicitly), it will also result in the destructors of all its bases and child elements being called (in reverse order of declaration). –  Agentlien Jan 12 '13 at 8:58
    
@Nathan822 Please note though, that explicitly calling a destructor is a bad idea unless you've allocated the memory using placement new, because for locals it would cause the destructor to be called twice, and for dynamically allocated memory, it will not free the memory allocated for the object. Which means you either get double destructor calls or a memory leak. –  Agentlien Jan 12 '13 at 9:09

Few differences beyond the obvious differences in definition.

Destructor

  • invoked automatically at the end of scope or at a delete call, can be invoked manually, rarely a good idea

  • Calls destructors of member variables and base classes.

Run of the mill Method

  • invoked manually

In this particular case, no base classes and only member field is the int * ptr which doesnt have a destructor, so in this case they are identical except for the method of invocation.

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