207

How do I pick a random element from a set? I'm particularly interested in picking a random element from a HashSet or a LinkedHashSet, in Java. Solutions for other languages are also welcome.

1
  • 5
    You should specify some conditions to see if this is really what you want. - How may times are you going to be selecting a random element? - Does the data need to be stored in a HashSet or LinkedHashSet, neither are not randomly accessable. - Is the hash set large? Are the keys small? Sep 25, 2008 at 2:03

34 Answers 34

98
int size = myHashSet.size();
int item = new Random().nextInt(size); // In real life, the Random object should be rather more shared than this
int i = 0;
for(Object obj : myhashSet)
{
    if (i == item)
        return obj;
    i++;
}
7
  • 106
    If myHashSet is large, then this will be a rather slow solution since on average, (n / 2) iterations will be needed to find the random object.
    – daniel
    Sep 24, 2008 at 2:30
  • 6
    if your data is in a hash set, you need O(n) time. There's no way around it if you are just picking a single element and the data is stored in a HashSet. Sep 25, 2008 at 2:00
  • 8
    @David Nehme: This is a drawback in the specification of HashSet in Java. In C++, it's typical to be able to directly access the buckets that make up the hashset, which allows us to more efficiently select a random elements. If random elements are necessary in Java, it might be worthwhile to define a custom hash set that allows the user to look under the hood. See [boost's docs][1] for a little more in this. [1] boost.org/doc/libs/1_43_0/doc/html/unordered/buckets.html Jul 20, 2010 at 13:50
  • 11
    If the set is not mutated over multiple accesses, you can copy it into an array and then access O(1). Just use myHashSet.toArray() Jul 21, 2010 at 20:23
  • 2
    @ykaganovich wouldn't this make matters worse, since the set would have to be copied to a new array? docs.oracle.com/javase/7/docs/api/java/util/… "this method must allocate a new array even if this collection is backed by an array"
    – anton1980
    Nov 22, 2014 at 3:19
77

A somewhat related Did You Know:

There are useful methods in java.util.Collections for shuffling whole collections: Collections.shuffle(List<?>) and Collections.shuffle(List<?> list, Random rnd).

4
  • Awesome! This is not crossreferenced anywhere in the java doc! Like Python's random.shuffle()
    – smci
    Feb 8, 2012 at 19:48
  • 31
    But this only works with Lists, i.e., structures that have a .get() function. Feb 19, 2015 at 22:27
  • 5
    @bourbaki4481472 is absolutely correct. This only works for those collections extending the List interface, not the Set interface discussed by the OP.
    – Thomas
    Feb 28, 2015 at 20:57
  • However, OP wishes to pick a (one I assume) element. Shuffling the whole list (and also transferring all elements in the set to a list) is very expensive for that one item... If you have a list, you use List.get(new Random().nextInt(size)).
    – Erk
    Dec 31, 2020 at 22:56
37

Fast solution for Java using an ArrayList and a HashMap: [element -> index].

Motivation: I needed a set of items with RandomAccess properties, especially to pick a random item from the set (see pollRandom method). Random navigation in a binary tree is not accurate: trees are not perfectly balanced, which would not lead to a uniform distribution.

public class RandomSet<E> extends AbstractSet<E> {

    List<E> dta = new ArrayList<E>();
    Map<E, Integer> idx = new HashMap<E, Integer>();

    public RandomSet() {
    }

    public RandomSet(Collection<E> items) {
        for (E item : items) {
            idx.put(item, dta.size());
            dta.add(item);
        }
    }

    @Override
    public boolean add(E item) {
        if (idx.containsKey(item)) {
            return false;
        }
        idx.put(item, dta.size());
        dta.add(item);
        return true;
    }

    /**
     * Override element at position <code>id</code> with last element.
     * @param id
     */
    public E removeAt(int id) {
        if (id >= dta.size()) {
            return null;
        }
        E res = dta.get(id);
        idx.remove(res);
        E last = dta.remove(dta.size() - 1);
        // skip filling the hole if last is removed
        if (id < dta.size()) {
            idx.put(last, id);
            dta.set(id, last);
        }
        return res;
    }

    @Override
    public boolean remove(Object item) {
        @SuppressWarnings(value = "element-type-mismatch")
        Integer id = idx.get(item);
        if (id == null) {
            return false;
        }
        removeAt(id);
        return true;
    }

    public E get(int i) {
        return dta.get(i);
    }

    public E pollRandom(Random rnd) {
        if (dta.isEmpty()) {
            return null;
        }
        int id = rnd.nextInt(dta.size());
        return removeAt(id);
    }

    @Override
    public int size() {
        return dta.size();
    }

    @Override
    public Iterator<E> iterator() {
        return dta.iterator();
    }
}
5
  • Well that would work but the question was about the Set interface. This solution forces users to have concrete type references of the RandomSet. May 5, 2015 at 16:42
  • I really like this solution, but it's not thread safe, inaccuracies between the Map and the List may occur, so I would add some synchronized blocks Dec 18, 2015 at 7:17
  • @KonstantinosChalkias the built-in collections aren't thread safe either. Only the ones with the name Concurrent are really safe, the ones wrapped with Collections.synchronized() are semi-safe. Also the OP didn't say anything about concurrency so this is a valid, and good answer.
    – TWiStErRob
    Aug 3, 2016 at 20:50
  • The iterator returned here should not be able to remove elements from dta (this can be achieved via guava's Iterators.unmodifiableIterator for example). Otherwise the default implementations of e.g. removeAll and retainAll in AbstractSet and its parents working with that iterator will mess up your RandomSet!
    – muued
    Aug 12, 2016 at 14:17
  • Nice solution. You actually can use a tree if each node contains the number of nodes in the subtree it roots. Then compute a random real in 0..1 and make a weighted 3-way decision (select current node or descend into left or right subtree) at each node based on the node counts. But imo your solution is much nicer.
    – Gene
    Sep 2, 2016 at 13:33
36

In Java 8:

static <E> E getRandomSetElement(Set<E> set) {
    return set.stream().skip(new Random().nextInt(set.size())).findFirst().orElse(null);
}
2
  • Why not findFirst().get() instead of orElse()?
    – IcedDante
    May 10, 2021 at 18:54
  • If get() is called without a check, it might throw a NoSuchElementException. This could be ignored if it is granted, that the underlying set of elements is not changed in a concurrent operation (Streams are not automatically atomic).
    – hub
    Aug 3, 2021 at 17:10
34

This is faster than the for-each loop in the accepted answer:

int index = rand.nextInt(set.size());
Iterator<Object> iter = set.iterator();
for (int i = 0; i < index; i++) {
    iter.next();
}
return iter.next();

The for-each construct calls Iterator.hasNext() on every loop, but since index < set.size(), that check is unnecessary overhead. I saw a 10-20% boost in speed, but YMMV. (Also, this compiles without having to add an extra return statement.)

Note that this code (and most other answers) can be applied to any Collection, not just Set. In generic method form:

public static <E> E choice(Collection<? extends E> coll, Random rand) {
    if (coll.size() == 0) {
        return null; // or throw IAE, if you prefer
    }

    int index = rand.nextInt(coll.size());
    if (coll instanceof List) { // optimization
        return ((List<? extends E>) coll).get(index);
    } else {
        Iterator<? extends E> iter = coll.iterator();
        for (int i = 0; i < index; i++) {
            iter.next();
        }
        return iter.next();
    }
}
0
16

If you want to do it in Java, you should consider copying the elements into some kind of random-access collection (such as an ArrayList). Because, unless your set is small, accessing the selected element will be expensive (O(n) instead of O(1)). [ed: list copy is also O(n)]

Alternatively, you could look for another Set implementation that more closely matches your requirements. The ListOrderedSet from Commons Collections looks promising.

3
  • 10
    Copying to a list will cost O(n) in time and also use O(n) memory, so why would that be a better choice than fetching from the map directly?
    – mdma
    Jul 20, 2010 at 13:51
  • 14
    It depends on how many times you want to pick from the set. The copy is a one time operation and then you can pick from the set as many times as you need. If you're only picking one element, then yes the copy doesn't make things any faster.
    – Dan Dyer
    Apr 12, 2011 at 0:10
  • It's only a one time operation if you want to be able to pick with repetition. If you want the chosen item to be removed from the set, then you would be back to O(n). Apr 15, 2017 at 13:58
9

In Java:

Set<Integer> set = new LinkedHashSet<Integer>(3);
set.add(1);
set.add(2);
set.add(3);

Random rand = new Random(System.currentTimeMillis());
int[] setArray = (int[]) set.toArray();
for (int i = 0; i < 10; ++i) {
    System.out.println(setArray[rand.nextInt(set.size())]);
}
2
  • 12
    Your answer works, but it's not very efficient because of the set.toArray( ) part.
    – Clue Less
    Sep 24, 2008 at 1:34
  • 12
    you should move the toArray to outside the loop. Sep 25, 2008 at 1:57
8
List asList = new ArrayList(mySet);
Collections.shuffle(asList);
return asList.get(0);
1
  • 25
    This is abysmally inefficient. Your ArrayList constructor calls .toArray() on the supplied set. ToArray (in most if not all standard collection implementations) iterates over the entire collection, filling an array as it goes. Then you shuffle the list, which swaps each element with a random element. You'd be much better off simply iterating over the set to a random element.
    – Chris Bode
    Mar 11, 2013 at 1:28
5

This is identical to accepted answer (Khoth), but with the unnecessary size and i variables removed.

    int random = new Random().nextInt(myhashSet.size());
    for(Object obj : myhashSet) {
        if (random-- == 0) {
            return obj;
        }
    }

Though doing away with the two aforementioned variables, the above solution still remains random because we are relying upon random (starting at a randomly selected index) to decrement itself toward 0 over each iteration.

1
  • 1
    Third line could also be if (--random < 0) {, where random reaches -1.
    – Salvador
    Aug 20, 2019 at 14:41
3

Clojure solution:

(defn pick-random [set] (let [sq (seq set)] (nth sq (rand-int (count sq)))))
2
  • 1
    This solution is also linear, because to get the nth element you must traverse the seq as well.
    – Bruno Kim
    Mar 24, 2013 at 7:19
  • 1
    It's linear also as it fits nicely in one line :D Sep 2, 2016 at 20:37
3

Java 8+ Stream:

    static <E> Optional<E> getRandomElement(Collection<E> collection) {
        return collection
                .stream()
                .skip(ThreadLocalRandom.current()
                .nextInt(collection.size()))
                .findAny();
    }

Based on the answer of Joshua Bone but with slight changes:

  • Ignores the Streams element order for a slight performance increase in parallel operations
  • Uses the current thread's ThreadLocalRandom
  • Accepts any Collection type as input
  • Returns the provided Optional instead of null
2

Perl 5

@hash_keys = (keys %hash);
$rand = int(rand(@hash_keys));
print $hash{$hash_keys[$rand]};

Here is one way to do it.

2

C++. This should be reasonably quick, as it doesn't require iterating over the whole set, or sorting it. This should work out of the box with most modern compilers, assuming they support tr1. If not, you may need to use Boost.

The Boost docs are helpful here to explain this, even if you don't use Boost.

The trick is to make use of the fact that the data has been divided into buckets, and to quickly identify a randomly chosen bucket (with the appropriate probability).

//#include <boost/unordered_set.hpp>  
//using namespace boost;
#include <tr1/unordered_set>
using namespace std::tr1;
#include <iostream>
#include <stdlib.h>
#include <assert.h>
using namespace std;

int main() {
  unordered_set<int> u;
  u.max_load_factor(40);
  for (int i=0; i<40; i++) {
    u.insert(i);
    cout << ' ' << i;
  }
  cout << endl;
  cout << "Number of buckets: " << u.bucket_count() << endl;

  for(size_t b=0; b<u.bucket_count(); b++)
    cout << "Bucket " << b << " has " << u.bucket_size(b) << " elements. " << endl;

  for(size_t i=0; i<20; i++) {
    size_t x = rand() % u.size();
    cout << "we'll quickly get the " << x << "th item in the unordered set. ";
    size_t b;
    for(b=0; b<u.bucket_count(); b++) {
      if(x < u.bucket_size(b)) {
        break;
      } else
        x -= u.bucket_size(b);
    }
    cout << "it'll be in the " << b << "th bucket at offset " << x << ". ";
    unordered_set<int>::const_local_iterator l = u.begin(b);
    while(x>0) {
      l++;
      assert(l!=u.end(b));
      x--;
    }
    cout << "random item is " << *l << ". ";
    cout << endl;
  }
}
2

Solution above speak in terms of latency but doesn't guarantee equal probability of each index being selected.
If that needs to be considered, try reservoir sampling. http://en.wikipedia.org/wiki/Reservoir_sampling.
Collections.shuffle() (as suggested by few) uses one such algorithm.

1

Since you said "Solutions for other languages are also welcome", here's the version for Python:

>>> import random
>>> random.choice([1,2,3,4,5,6])
3
>>> random.choice([1,2,3,4,5,6])
4
2
  • 3
    Only, [1,2,3,4,5,6] is not a set, but a list, since it doesn't support things like fast lookups. Dec 27, 2009 at 10:20
  • You can still do: >>> random.choice(list(set(range(5)))) >>> 4 Not ideal but it'll do if you absolutely need to. Jul 26, 2010 at 19:59
1

Can't you just get the size/length of the set/array, generate a random number between 0 and the size/length, then call the element whose index matches that number? HashSet has a .size() method, I'm pretty sure.

In psuedocode -

function randFromSet(target){
 var targetLength:uint = target.length()
 var randomIndex:uint = random(0,targetLength);
 return target[randomIndex];
}
1
  • This only works if the container in question supports random index lookup. Many container implementations don't (e.g., hash tables, binary trees, linked lists). Jun 29, 2010 at 19:01
1

PHP, assuming "set" is an array:

$foo = array("alpha", "bravo", "charlie");
$index = array_rand($foo);
$val = $foo[$index];

The Mersenne Twister functions are better but there's no MT equivalent of array_rand in PHP.

1
  • Most set implementations dont have a get(i) or indexing operator, so id assume thats why OP specified its a set Jun 29, 2020 at 13:58
1

Icon has a set type and a random-element operator, unary "?", so the expression

? set( [1, 2, 3, 4, 5] )

will produce a random number between 1 and 5.

The random seed is initialized to 0 when a program is run, so to produce different results on each run use randomize()

1

In C#

        Random random = new Random((int)DateTime.Now.Ticks);

        OrderedDictionary od = new OrderedDictionary();

        od.Add("abc", 1);
        od.Add("def", 2);
        od.Add("ghi", 3);
        od.Add("jkl", 4);


        int randomIndex = random.Next(od.Count);

        Console.WriteLine(od[randomIndex]);

        // Can access via index or key value:
        Console.WriteLine(od[1]);
        Console.WriteLine(od["def"]);
0
1

Javascript solution ;)

function choose (set) {
    return set[Math.floor(Math.random() * set.length)];
}

var set  = [1, 2, 3, 4], rand = choose (set);

Or alternatively:

Array.prototype.choose = function () {
    return this[Math.floor(Math.random() * this.length)];
};

[1, 2, 3, 4].choose();
2
  • I prefer the second alternative. :-) Sep 24, 2008 at 12:41
  • ooh, I like extending adding the new array method! Sep 27, 2008 at 22:06
1

In lisp

(defun pick-random (set)
       (nth (random (length set)) set))
1
  • This only works for lists, right? With ELT it could work for any sequence.
    – Ken
    Dec 20, 2010 at 3:41
1

In Mathematica:

a = {1, 2, 3, 4, 5}

a[[ ⌈ Length[a] Random[] ⌉ ]]

Or, in recent versions, simply:

RandomChoice[a]

This received a down-vote, perhaps because it lacks explanation, so here one is:

Random[] generates a pseudorandom float between 0 and 1. This is multiplied by the length of the list and then the ceiling function is used to round up to the next integer. This index is then extracted from a.

Since hash table functionality is frequently done with rules in Mathematica, and rules are stored in lists, one might use:

a = {"Badger" -> 5, "Bird" -> 1, "Fox" -> 3, "Frog" -> 2, "Wolf" -> 4};
0
1

How about just

public static <A> A getRandomElement(Collection<A> c, Random r) {
  return new ArrayList<A>(c).get(r.nextInt(c.size()));
}
1

For fun I wrote a RandomHashSet based on rejection sampling. It's a bit hacky, since HashMap doesn't let us access it's table directly, but it should work just fine.

It doesn't use any extra memory, and lookup time is O(1) amortized. (Because java HashTable is dense).

class RandomHashSet<V> extends AbstractSet<V> {
    private Map<Object,V> map = new HashMap<>();
    public boolean add(V v) {
        return map.put(new WrapKey<V>(v),v) == null;
    }
    @Override
    public Iterator<V> iterator() {
        return new Iterator<V>() {
            RandKey key = new RandKey();
            @Override public boolean hasNext() {
                return true;
            }
            @Override public V next() {
                while (true) {
                    key.next();
                    V v = map.get(key);
                    if (v != null)
                        return v;
                }
            }
            @Override public void remove() {
                throw new NotImplementedException();
            }
        };
    }
    @Override
    public int size() {
        return map.size();
    }
    static class WrapKey<V> {
        private V v;
        WrapKey(V v) {
            this.v = v;
        }
        @Override public int hashCode() {
            return v.hashCode();
        }
        @Override public boolean equals(Object o) {
            if (o instanceof RandKey)
                return true;
            return v.equals(o);
        }
    }
    static class RandKey {
        private Random rand = new Random();
        int key = rand.nextInt();
        public void next() {
            key = rand.nextInt();
        }
        @Override public int hashCode() {
            return key;
        }
        @Override public boolean equals(Object o) {
            return true;
        }
    }
}
2
  • 1
    Exactly what I was thinking! Best answer!
    – mjs
    Oct 8, 2015 at 11:22
  • Actually, coming back to it, I guess this isn't quite uniform, if the hashmap has many collisions and we do many queries. That is because the java hashmap uses buckets/chaining and this code will always return the first element in the particular bucket. We're still uniform over the randomness of the hash function though. Apr 7, 2016 at 12:31
1

The easiest with Java 8 is:

outbound.stream().skip(n % outbound.size()).findFirst().get()

where n is a random integer. Of course it is of less performance than that with the for(elem: Col)

1

With Guava we can do a little better than Khoth's answer:

public static E random(Set<E> set) {
  int index = random.nextInt(set.size();
  if (set instanceof ImmutableSet) {
    // ImmutableSet.asList() is O(1), as is .get() on the returned list
    return set.asList().get(index);
  }
  return Iterables.get(set, index);
}
0
0

PHP, using MT:

$items_array = array("alpha", "bravo", "charlie");
$last_pos = count($items_array) - 1;
$random_pos = mt_rand(0, $last_pos);
$random_item = $items_array[$random_pos];
0

you can also transfer the set to array use array it will probably work on small scale i see the for loop in the most voted answer is O(n) anyway

Object[] arr = set.toArray();

int v = (int) arr[rnd.nextInt(arr.length)];
0

If you really just want to pick "any" object from the Set, without any guarantees on the randomness, the easiest is taking the first returned by the iterator.

    Set<Integer> s = ...
    Iterator<Integer> it = s.iterator();
    if(it.hasNext()){
        Integer i = it.next();
        // i is a "random" object from set
    }
1
  • 1
    This will not be a random pick though. Imagine performing the same operation over the same set multiple times. I think the order will be the same. Sep 6, 2015 at 6:01
0

A generic solution using Khoth's answer as a starting point.

/**
 * @param set a Set in which to look for a random element
 * @param <T> generic type of the Set elements
 * @return a random element in the Set or null if the set is empty
 */
public <T> T randomElement(Set<T> set) {
    int size = set.size();
    int item = random.nextInt(size);
    int i = 0;
    for (T obj : set) {
        if (i == item) {
            return obj;
        }
        i++;
    }
    return null;
}

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