5
public void traverse(Node root){
    ArrayDeque<Node> queue = new ArrayDeque<Node>();
        queue.add(root);

    while(!queue.isEmpty()){
        Node currentNode = queue.pollFirst();   
        List<Node> nl = getChildrenfromDB(currentNode);
        queue.addAll(nl);
    }

how would I get addAll(nl) to add the entire collection(List<Node>) to the front of the queue?

8

There is nothing built-in. But it is simple to emulate - just iterate the list in reverse order and add the elements. That way they will end up in the queue in the right order.

for (int i = list.size() - 1; i >=0; i--) {
    queue.addFirst(node);
}

Other ways to iterate backwards are:

  • LinkedList's descending iterator
  • Collections.reverse(..)

Pick one which fits your case.

  • 1
    isn't this slower than addAll() ? – KJW Oct 30 '11 at 8:22
  • 2
    nope. addAll does the same thing (in most cases). It's O(n) – Bozho Oct 30 '11 at 8:24
  • 1
    yes but I want to retain the order of the Collection and simply place this entire Collection infront of other elements in the queue. – KJW Oct 30 '11 at 8:30
  • 2
    that's why you should iterate in reverse order, so that it ends up in the initial order – Bozho Oct 30 '11 at 8:32
10

Actually I was looking for the same thing, and this worked for me!!

samplelist.addAll(0,items); // 0 is the index where items are added on the list
  • 2
    This saved me a ton of headaches thank you so much – Martin Seal Dec 5 '16 at 18:20
  • 1
    This addAll variant is available in java.util.AbstractList but not in java.util.ArrayDeque. – Kenston Choi Dec 7 '16 at 1:38

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