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How can I take n random elements from an ArrayList<E>? Ideally, I'd like to be able to make successive calls to the take() method to get another x elements, without replacement.

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what's take() in ArrayList? –  Nishant Jan 15 '11 at 20:46
    
what have you got so far? If you get another x elements, can you pick elements from the previous set again, or must be all different all the time until ALL elements are picked? (Then, what next?) –  Yanick Rochon Jan 15 '11 at 20:56
    
Without replacement. When you have no more left, you should get nothing back. –  user568866 Jan 16 '11 at 14:02

4 Answers 4

up vote 40 down vote accepted

Two main ways.

  1. Use Random#nextInt(int):

    List<Foo> list = createItSomehow();
    Random random = new Random();
    Foo foo = list.get(random.nextInt(list.size()));
    

    It's however not guaranteed that successive n calls returns unique elements.

  2. Use Collections#shuffle():

    List<Foo> list = createItSomehow();
    Collections.shuffle(list);
    Foo foo = list.get(0);
    

    It enables you to get n unique elements by an incremented index (assuming that the list itself contains unique elements).

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I have got a list of 4000 words and I have to get 5 words out of that list each time I press the refresh button, am using the 2nd option of your answer. How much does it guarantee that I will get unique values all the time i.e. what's the probability ? –  prateek Jun 18 '13 at 12:27
    
@Prateek: If you have a question, press "Ask Question" button. Do not press "Add comment" or "Post Answer" button. –  BalusC Jun 18 '13 at 12:31
    
I know when to use which button, my comment is somewhat related to your already posted answer so I didn't want to create a new thread of if and was looking for a response inline, thanks anyways. –  prateek Jun 18 '13 at 13:04

Simple and clear

   // define ArrayList to hold Integer objects
    ArrayList<Integer> arrayList = new ArrayList<>();

    for (int i = 0; i < maxRange; i++) {
        arrayList.add(i + 1);
    }

    // shuffle list
    Collections.shuffle(arrayList);

    // adding defined amount of numbers to target list
    ArrayList<Integer> targetList = new ArrayList<>();
    for (int j = 0; j < amount; j++) {
        targetList.add(j); 
    }

    return targetList;
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I did not see the correlation between arrayList and targetList. –  David Aug 20 at 8:35

If you want to successively pick n elements from the list and be able to do so without replacement over and over and over again, you are probably best of randomly permuting the elements, then taking chunks off in blocks of n. If you randomly permute the list you guarantee statistical randomness for each block you pick out. Perhaps the easiest way to do this would be to use Collections.shuffle.

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3  
And the easiest way to do this is to call java.util.Collections.shuffle() –  biziclop Jan 15 '11 at 20:48

A fair way to do this is to go through the list, on the nth iteration calculating the probability of whether or not to pick the nth element, which is essentially the fraction of the number of items you still need to pick over the number of elements available in the rest of the list. For example:

public static <T> T[] pickSample(T[] population, int nSamplesNeeded, Random r) {
  T[] ret = (T[]) Array.newInstance(population.getClass().getComponentType(),
                                    nSamplesNeeded);
  int nPicked = 0, i = 0, nLeft = population.length;
  while (nSamplesNeeded > 0) {
    int rand = r.nextInt(nLeft);
    if (rand < nSamplesNeeded) {
      ret[nPicked++] = population[i];
      nSamplesNeeded--;
    }
    nLeft--;
    i++;
  }
  return ret;
}

(This code copied from a page I wrote a while ago on picking a random sample from a list.)

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