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I have a question, about using Stack with Java.

Let's say I have three stacks

Stack<Integer> stack1 = new Stack<Integer>();
Stack<Integer> stack2 = new Stack<Integer>();
Stack<Integer> stack3 = new Stack<Integer>();

stack1.push(10);
stack1.push(5);
stack1.push(25);
stack1.push(2);
stack1.push(100);

I want these numbers in order from high to low in stack3. So stack3 likes like 100, 25, 10, 5, 2

What would be the best method of moving the number between the stacks?

share|improve this question
    
Are you only allowed to use the stacks? Can you have temporary storage? And are these the only numbers you care about, or are you going for a generic solution? – birryree Apr 3 '11 at 21:03
    
Is this a homework question? – Charlie Apr 3 '11 at 21:08

Due to some bad design decisions in Java, it is possible to make Collections.sort(stack1) and then simply pop out of the first stack and push into the 2nd.

But note that since Java 6 it is preferable to use ArrayDeque (or another Deque) instead of Stack. With a stack that is not a List, the sequence would be:

  1. Take them all out of the first stack (in a List or an array)
  2. Sort them (Collections.sort(..) or Arrays.sort(..))
  3. Push them in order into the other stack

But these all java "hacks". If it is a homework problem it is more likely that they want you to implement something like the "Towers of Hanoi" problem, as noted by smas.

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The numbers be any number, and I can use a temp stack. – Billy Apr 3 '11 at 21:06

This problem is called: the Tower of Hanoi problem, try find code/description for this in wikipedia/google.

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1  
No, it is not. In the Hanoi problem, the elements of any stack are always sorted. In Billy's problem, the elements are initially unsorted, and the goal is to sort them using only the stacks. – Christian Semrau Apr 3 '11 at 21:14
    
I guess it doesn't matter that the elements are unsorted initially. The same algorithm will works – smas Apr 3 '11 at 21:20

Re-phrasing Bozho's answer:

    Stack<Integer> stack3 = new Stack<Integer>();
    Integer[] arr = stack.toArray(new Integer[stack.size()]);
    Arrays.sort(arr);
    stack3.addAll(Arrays.asList(arr));
share|improve this answer
    
I deliberately did not include code. It's likely a homework, and students should learn to write code :) – Bozho Apr 3 '11 at 21:13

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