I am trying to create a method for shuffling a list manually. The list is shuffled, but the same result is produced every time. Code example below:

package ch11;
import java.util.ArrayList;
import java.util.Arrays;
public class Chapter_11_E07_ShuffleArrayList {

    public static void main(String[] args) {

        Integer[] array = {1, 2, 3, 4, 5, 6, 7, 8};

        ArrayList<Integer> intList = new ArrayList<>(Arrays.asList(array));

        System.out.println("Before shuffle: ");
        for (Integer x: intList)
            System.out.print(x + " ");

        shuffle(intList);

        System.out.println("\nAfter shuffle: ");
        for (Integer x: intList)
            System.out.print(x + " ");

    }

    public static void shuffle(ArrayList<Integer> intList) {
        // Simple solution
        // java.util.Collections.shuffle(intList);

        // Manual shuffle
        for (Integer x: intList) {

            int newIndex = (int) Math.random() * intList.size();

            Integer temp = intList.get(x);
            intList.set(x, intList.get(newIndex));
            intList.set(newIndex, temp);    
        }   
    }

}

It seems to work to some extent, but is Math.random * intList.size() producing the same random index every time? Inputs are highly appreciated!

  • Maybe instead of Math.random, try the Random class, it has better results: stackoverflow.com/questions/17445813/… – Tobias May 10 '16 at 9:18
  • worth looking at stackoverflow.com/a/7902209/12960 ? – Brian Agnew May 10 '16 at 9:19
  • You got already an answer here below. Still I have a question: What does your line `Integer temp = intList.get(x);´ mean? It's not an index. If you want the temporary index, you may need indexOf(x) – Martin May 10 '16 at 9:24
  • The shuffling algorithm itself looks flawed, see here. You should pick nextIndex between x and intList.size() and not 0 and intList.size(). – biziclop May 10 '16 at 9:30
  • @Martin: Maybe I have misunderstood how for each loops work, since I have always used traditional for loops for these types of tasks, but I'm trying to incorporate foreach. If the x variable is not an index, why is it accepted as an index parameter for intList.set(int index, Integer element) ? – Esben86 May 10 '16 at 9:33
up vote 12 down vote accepted

This is because

int newIndex = (int) Math.random() * intList.size();

is not parenthesized properly. It should be

int newIndex = (int)(Math.random() * intList.size());

To avoid simple errors like this, make new Random object, and call nextInt(intList.size()).

  • Using Random has the added advantage of producing repeatable results (if you provide it with a seed), making debugging your code a lot easier. – biziclop May 10 '16 at 9:21

To show what I've meant in the comments above, here the code:

for (Integer x: intList) {
    int newIndex = (int) (Math.random() * intList.size());
    int oldIndex = intList.indexOf(x);
    Integer temp = intList.get(newIndex);
    intList.set(newIndex, x);
    intList.set(oldIndex, temp);    
}
  • Thanks again! I understood what you meant in the comment, and wrote it slightly different than you, but it works fine. – Esben86 May 10 '16 at 9:51
  • May pleasure. Thanks too for your upvote. :-) – Martin May 10 '16 at 9:53
  • @Martin This only works for lists with unique elements. – biziclop May 10 '16 at 10:03
  • @biziclop It shuffles the way he wanted. When there are for some reason non-unique elements in the list, then it still exchanges the positions of the items in a random way. Of course the number of non-unique items stays the same. If you have 3 time a 45 in the list, you will still have 3 x 45 after shuffling. – Martin May 10 '16 at 10:11
  • To prove I made a test-run now with non-unique items: Before shuffle: 1 2 4 4 4 6 7 8 After shuffle: 2 6 4 7 4 1 8 4 – Martin May 10 '16 at 10:27

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