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std::vector<Object *> pVector;

when out of scope, is the array/vector of pointers can delete every pointer element automatically? or must delete the every object manually?

So if can I think that: if the vector/array store no-pointer elements, it will call deconstructor automatically? but if stored pointers, it should delete elements manually?

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marked as duplicate by Alok Save, Yuushi, Ed S., chris, Christian Rau May 8 '13 at 8:15

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3 Answers 3

vector properly destroys objects stored IN the vector. The destructor will be called. If you have a vector of pointers, then this means the pointer's own destructor (and not what it points to).

The destructor for a raw pointer does nothing. This is what you want if you have a non-owning pointer to an object that another part of the program will destroy.

The destructor for a smart pointer does whatever is necessary to make sure the object gets freed at the right time. For unique_ptr, that's right now. For shared_ptr, it's whenever the reference count hits zero.

Use the right kind of pointer, and trust vector to trigger the behavior associated with that pointer when the element is erased.

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When the std::vector is destroyed, it calls the Object * destructor not the Object so only the pointer to the memory is destroyed.

You should use either smart pointers (std::shared_ptr<Object> or std::unique_ptr<Object>), either boost::ptr_vector<Object> which will manage memory for you.

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No, the vector will only delete the memory it holds, which is memory to hold the pointers - effectively, it'll be an array of some size such as:

Object **array = new Object*[size]; 

When the destructor is called, all that gets deleted is this array store:

delete[] array;

As you can see, this will not free whatever those pointers are pointing to. This is why you should use a vector of unique_ptr or shared_ptr as opposed to raw pointers.

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