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If the size of list is known, only call the 'next' without 'hasNext'. Is it right?

final List<Integer> list = [1, 2, 3];
final Iterator<Integer> iter = list.iterator();

for(int i = 0; i < list.size(); ++i){
   System.out.println(iter.next());
}


  • 9
    You can, but using a loop like this defeats the purpose of using an iterator. – Kartik Jul 17 at 1:17
  • Did you try it? Did it work? – Mad Physicist Jul 17 at 1:17
  • 3
    What is the purpose of the question? Is it "can you?" (Yes), or "should you?" (No) – Mad Physicist Jul 17 at 1:18
  • 1
    Plus, for (Integer i : list) is much simpler. – chrylis Jul 17 at 1:44
  • next() doesn't care whether or not you called hasNext(); provided that a "next" item exists, next() will return it. hasNext() is just the typical way (but certainly not the only way) to determine that a "next" item does, in fact, exist. – Kevin Anderson Jul 17 at 1:48
3

If there is no next element and you still call next(), you'll get NoSuchElementException. To protect against this, you need to do a pre-check using hasNext().

In your example, you already know the size and the condition i < list.size() is guarding you against trying to jump after the last element, so there is no point calling hasNext().

We generally do:

while (iterator.hasNext()) { //protection against jumping after the last element
    //call next()
}

You have done a similar thing, just the "protection" is a bit different (but valid):

for(... i < list.size() ...) { //"i < list.size()" is providing that protection
    //call next()
}

So no need to use hasNext() here.

2

Yes, that's allowed. In your example, there isn't much point to it (you'd be better off either using list.get(i) or using hasNext()/next()), but it doesn't break anything.

One place where you do see next() without hasNext() is to get an arbitrary item out of a collection that is known not to be empty. This idiom comes up sometimes:

Collection<T> myCollection = ...;
if (!myCollection.isEmpty()) {
  return myCollection.iterator().next();
}

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