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So we have the following code, which illustrates an "Array of pointers" (I think)

main() {
  int *array[3];
  int x = 10, y = 20, z = 30;

  array[0] = &x;
  array[1] = &y;
  array[2] = &z;

  return 0;
}

Now, let's say instead of ints, they are a type of an object class that you have created.

So I want to remove a member from this array (i.e. to call its destructor by means of the delete keyword and have the object destroyed, but having the pointer remain fine.)

If my suspicions are correct, that isn't possible, and the only choice I have is to copy the contents of the array to a new array (except for the one(s) I want to delete) and then delete the previous array (as a whole with all of its elements) while I assign the new one to the pointer array

I would appreciate if someone could confirm or correct my suspicions, specially since the name "Array of pointers" is SO misleading. Thank you.

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closed as not a real question by casperOne Oct 24 '12 at 11:50

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Doing it like this, you shouldn't need delete, and it'd be UB to try. –  chris Oct 24 '12 at 3:01
    
no, deleting the main "array" will only delete the array, the pointers will remain in tact. This is actually something that causes memory leaks in most cases with people who forget that with their array of pointers they need to loop through and delete the memory in each element. (unless you used "delete [] array", that would delete the contents as well) –  u8sand Oct 24 '12 at 3:02
    
What are you trying to do that a std::vector and std::vector::erase won't work? –  chris Oct 24 '12 at 3:03
    
@u8sand, If you have a new[]ed array of newed pointers, delete[]ing the array will not delete the pointers. –  chris Oct 24 '12 at 3:04
2  
Basic handling of pointers and objects is described by all standard textbooks. –  jogojapan Oct 24 '12 at 3:08

2 Answers 2

up vote 2 down vote accepted

Assuming you have a class Foo

Foo a;

This is an instance of the Foo object. It is allocated on the stack. It will be destructed when they go out of scope, no sooner.

If you want to be able to explicitly destroy your object, allocate it on the heap.

Foo* a = new Foo(); // Allocated - Constructor called.
delete a; // Freed - Destructor called.

A good rule to remember is, for every new there should be a matching delete, no more, no less. In your example you haven't used the new keyword, so there is no place for the delete keyword.

Foo* array[3];

Is an array, on the stack, of Foo object pointers. They do not point to anything, they are uninitialized. This array will be destroyed when it goes out of scope. Keep in mind that it will only destroy the contents, which are pointers, and will not attempt to free anything they point to.

array[0] = new Foo();

The array now holds a pointer to a Foo object on the heap. It also contains 2 pointers that are uninitialized. If you let array go out of scope, you will be leaking memory. To prevent this, you must free your Foo object.

delete array[0];
array[0] = NULL;

It is also good practice to set your uninitialized, or deleted pointers to NULL. This way you can explicitly see that it points to nothing. You can now perform checks like so:

if(array[0])
{
    // We know there is an object here, since it's not NULL.
    delete array[0];
    array[0] = NULL; // Helps prevent trying to free memory more than once.
}
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Thank you so much. This certainly cleared up a lot. A lot. –  Yokhen Oct 24 '12 at 5:30
    
Great! Looked like your comments sections was getting a bit crazy. Glad I could help. –  Aesthete Oct 24 '12 at 5:32

As far as I understand your problem, it won't work for two reasons:

  1. you won't be able to delete such elements (int's or A's) at all as they reside on the stack, not in the heap, they will be deleted automatically when out-of-scope;
  2. deleting or moving an array won't delete its elements as it was already said above.

As for "erasing the contents of array[1]", that can be done via:

array[1] = NULL;

if I understand you correctly.

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So if the elements reside in the stack, how would I avoid a stack overflow if I am always adding and removing new items? –  Yokhen Oct 24 '12 at 3:17

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