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How can I randomize arrayList so that old index must not be the same as new index for all elements

for example with a list with 3 items

after arrayList randomize

old index<->new index

1<-->2 <--different
2<-->1 <--different
3<-->3 <--same is not allowed

I want to make sure it will be

1<-->3 <--different
2<-->1 <--different
3<-->2 <--different
  • Are you sure you want to randomize? I think having constraints rules out randomness. Or simply to rearrange? If so u can simply reassign to (index+n) % array.length where n is any number. – Sach Dec 4 '14 at 6:56
  • Funny how some OPs seemingly disappear about 30 seconds after they just spent 10 minutes posting a question... ;) – jan groth Dec 4 '14 at 7:17
  • this just make sure two array random in the same way with same seed. even with two different seeds, it may have the chance to get the same value. – Tse Ka Leong Dec 4 '14 at 7:42
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Collections.shuffle(List<?> list)

This should work with Lists which don't contain null values:

static <T> void shuffleList(List<T> list) {
    List<T> temp = new ArrayList<T>(list);
    Random rand = new Random();

    for (int i = 0; i < list.size(); i++) {
        int newPos = rand.nextInt(list.size());
        while (newPos == i||temp.get(newPos)==null) {
            newPos = rand.nextInt(list.size());
        }
        list.set(i, temp.get(newPos));
        temp.set(newPos,null);
    }
}

For list with null values:

static <T> void shuffleList(List<T> list) {
    List<T> temp = new ArrayList<T>(list);
    Integer [] indexes=new Integer[list.size()];
    for (int i=0;i<list.size();i++){
        indexes[i]=i;
    }
    Random rand = new Random();

    for (int i = 0; i < list.size(); i++) {
        int newPos = rand.nextInt(list.size());
        while (newPos == i||indexes[newPos]==null) {
            newPos = rand.nextInt(list.size());
        }
        list.set(i, temp.get(newPos));
        indexes[newPos]=null;
    }
}
  • 2
    I don't think that's correct, as it does not guarantee that each elements ends up in a new position. – jan groth Dec 4 '14 at 7:05
  • Nope, I'm wrong. It is correct. Your explanation is a bit sparse though. – jan groth Dec 4 '14 at 7:07
  • According to the question it is not correct. OP wants all elements to be in different positions. This does not guarantee this. – Ian2thedv Dec 4 '14 at 7:09
  • This implementation traverses the list backwards, from the last element up to the second, repeatedly swapping a randomly selected element into the "current position". Elements are randomly selected from the portion of the list that runs from the first element to the current position, inclusive. from here: docs.oracle.com/javase/6/docs/api/java/util/… – jan groth Dec 4 '14 at 7:12
  • Well I just ran it about twice, with the values OP provided and 2 did not move from it's original position. This answer suggests doing it twice with random seeds: stackoverflow.com/questions/4228975/how-to-randomize-arraylistv – Ian2thedv Dec 4 '14 at 7:20
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That's something you have to implement yourself.

  • The shuffle is probably a series of random swaps (e.g. swap 1 -> 4, swap 3 -> 2).
  • Keep track of each element's new position (e.g. 4 3 2 1 5 for a list with 5 elements and the above shuffle operations).
  • If any element is still at it's old place (5 in that example), keep on shuffling.

Sounds like fun.

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