9

Look at this code:

class test
{
    public:
        test() { cout << "Constructor" << endl; };
        virtual ~test() { cout << "Destructor" << endl; };
};

int main(int argc, char* argv[])
{
    test* t = new test();
    delete(t);
    list<test*> l;
    l.push_back(DNEW test());
    cout << l.size() << endl;
    l.clear();
    cout << l.size() << endl;
}

And then, look at this output:

    Constructor
    Destructor
    Contructor
    1
    0

The question is: Why is the destructor of the list element not called at l.clear()?

2 Answers 2

14

Your list is of pointers. Pointers don't have destructors. If you want the destructor to be called you should try list<test> instead.

3
  • Nice, that's what I thought but I wanted to confirm it.
    – danikaze
    Commented Sep 30, 2012 at 22:15
  • Or use Boost.PointerContainer's ptr_list. Commented Sep 30, 2012 at 22:17
  • 1
    Yeah, I use SmartPointers for most things but somethimes raw pointers are better. The thing is I thought that if I have a pointer p, delete(p) was called... but knowing this now it's ok. I'll free raw pointers.
    – danikaze
    Commented Sep 30, 2012 at 22:21
4

A better alternative to freeing pointers using delete, or using something that abstracts that away (such as a smart pointers or pointer containers), is to simply create the objects directly on the stack.

You should prefer test t; over test * t = new test(); You very rarely want to deal with any pointer that owns a resource, smart or otherwise.

If you were to use a std::list of 'real' elements, rather than pointers to elements, you would not have this problem.

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