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In the following code segment

vector<SceneObject *> sceneObjs;
vector<SceneObject *>::iterator iter;

iter = sceneObjs.begin();
while (iter != sceneObjs.end()){
  cout << **iter <<endl;
  iter++;
}

why **iter has two *s ?

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4 Answers 4

up vote 11 down vote accepted

The first * dereferences the iterator, giving a SceneObject * pointer. The second * dereferences this SceneObject * pointer to the SceneObject itself.

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Because *iter is a SceneObject *& - a SceneObject pointer. You need to dereference it to get to the real SceneObject.

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2  
Ssh, don't tell anyone, but *iter is actually a SceneObject*&, but it doesn't change the rest here. –  R. Martinho Fernandes Oct 12 '11 at 14:25
1  
@R.MartinhoFernandes I really don't know enough C++ for this but I'll incorporate this into the answer, thanks! –  cnicutar Oct 12 '11 at 14:26
1  
@cnicutar In this case the reference part does not make any difference. The reference makes it possible for the code using the iterator to change the content of the iterator (the pointer of the iterator, not the memory where the pointer inside the iterator pints to). The reference is also important when you make a call to a function, which itself takes a SceneObject*& reference, since this function can then replace the content of *it to another value. When you have a function void setNull(SceneObject*& obj){obj=NULL;}, than a call setNull(*iter); set the content of the iterator to NULL. –  Rudi Oct 12 '11 at 17:59
    
@Rudi Thanks, awesome info! –  cnicutar Oct 12 '11 at 19:15

Because *iter returns a SceneObject* which will then be again dereferenced by the second *.

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The first * returns the vale in the iterator, a SceneObject* pointer. The second * deferences that pointer, giving a SceneObject. I suspect there's an overload for << that renders the SceneObject` to a stream.

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