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I have a std::vector of Element*. When will the destructor be called. How is it different if it is a vector of Element

std::vector<Element*> vect;
..

struct Element
{
    Record *elm;        

    Element(Record *rec)
    {
        elm = new Record();
        //...copy from rec
    }
    ~Element()
    {
        delete elm;
    }
};

I am using the vector as follows:

Element *copyElm = new Element(record);
vect.push_back(copyElm);

In the above code, how can I ensure there's no leak.

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1  
this is really bad design. as soon as you make a copy, the pointer will be deleted causing major headache. –  Anycorn Feb 18 '11 at 4:32
    
@aaa Indeed. Effective C++ gives a warning: ‘struct Element’ has pointer data members but does not override ‘Element(const Element&)’ or ‘operator=(const Element&)’ –  Josh Lee Feb 18 '11 at 4:35
    
agree with aaa, if you happen to put Element in some other container you can get lots of funny errors depending on whether the container copies internally. –  CyberSpock Feb 18 '11 at 4:36
2  
@Merlyn g++ -Weffc++ :) –  Josh Lee Feb 18 '11 at 4:48
1  

5 Answers 5

up vote 0 down vote accepted

vector will call release the memory of the object it is holding (i.e. pointers) but will not release the memory of the object it is pointing to. You need to release the memory of the Element object yourself. If it was a vector<Element> then whenever you do a push_back a copy of the element is inserted into the vector. vector guarntess that it will release the memory allocated to this copied object. But be aware with the current definition of Element you will get a seg fault as you have not defined the copy ctor and assignment operator.

EDIT If you for some reason don't want to use smart pointers, then only option is to write a release function which goes through the entire vector and calls the delete on the stored pointer.

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You could use a reference-counting pointer-wrapper class in your array, and the items will automatically get deleted whenever there are no more references to them. One such class is boost::shared_ptr. You will also find it in some compiler's shipping C++ libraries because it is being added to a future version of C++.

std::vector<boost::shared_ptr<Element> > vect;

These classes wrap operator ->, etc, so you can use them in most of the same ways that you'd used a normal pointer.

http://www.boost.org/doc/libs/1_45_0/libs/smart_ptr/shared_ptr.htm

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Whenever you free the class Element instance yourself. The vector will free the vector elements (the pointers), but not the class Element objects pointed to. After all, the vector has no way to know if you have other pointers to the same object.

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In a vector of Element, the destructor is called a lot. Whenever a node is assigned, the vector is sized down, the vector has to move in memory, or the vector goes out of scope/is destroyed, destructors are called on the elements before they are changed/discarded. Also, the copy constructor is called for assignment, and the default constructor is called to initialize each entry. Sorting such a vector will involve a lot of both copying and destroying.

In a vector of Element* it is never called, unless you call delete yourself.

Take a look at Boost shared_ptr for a saner solution, or unique_ptr if you have a compiler with relatively new features.

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Destroying a pointer is always a no-op, and there are several good reasons why.

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