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Given an arbitrary enumeration in C#, how do I select a random value?

(I did not find this very basic question on SO. I'll post my answer in a minute as reference for anyone, but please feel free to post your own answer.)

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6 Answers 6

up vote 112 down vote accepted
Array values = Enum.GetValues(typeof(Bar));
Random random = new Random();
Bar randomBar = (Bar)values.GetValue(random.Next(values.Length));
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17  
Make sure you don't keep recreating random in a tight loop though - otherwise you'll keep getting the same value. –  ChrisF Jun 28 '10 at 12:06
    
Should that be random.Next(values.Length -1)? –  uriDium Apr 26 '13 at 14:48
1  
@uriDium No, the argument specifies which value is the first to be too big to be returned (i.e. max minus 1) –  mafu Sep 11 '13 at 10:50

Use Enum.GetValues to retrieve an array of all values. Then select a random array item.

static T RandomEnumValue<T> ()
{
    var v = Enum.GetValues (typeof (T));
    return (T) v.GetValue (new Random ().Next(v.Length));
}

Test:

for (int i = 0; i < 10; i++) {
    var value = RandomEnumValue<System.DayOfWeek> ();
    Console.WriteLine (value.ToString ());
}

->

Tuesday
Saturday
Wednesday
Monday
Friday
Saturday
Saturday
Saturday
Friday
Wednesday

Updated: This answer originally used OrderBy (x => _Random.Next()).FirstOrDefault () to select a random element. Only use it if you are irrationally attracted to shuffling by random keys. In any other case, use the accepted answer by Darin Dimitrov instead, which I incorporated in this answer later.

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Here is a generic function for it. Keep the RNG creation outside the high frequency code.

public static Random RNG = new Random();

public static T RandomEnum<T>()
{  
    Type type = typeof(T);
    Array values = Enum.GetValues(type);
    lock(RNG)
    {
        object value= values.GetValue(RNG.Next(values.Length));
        return (T)Convert.ChangeType(value, type);
    }
}

Usage example:

System.Windows.Forms.Keys randomKey = RandomEnum<System.Windows.Forms.Keys>();
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Having a static method which isn't threadsafe is pretty dangerous. –  CodesInChaos Jul 30 at 12:45
    
@CodesInChaos You're right. Random.Next() is not threadsafe and will start returning zeroes when it breaks. I've updated my answer based on this info. –  WHol Aug 4 at 15:23

Personally, I'm a fan of extension methods, so I would use something like this (while not really an extension, it looks similar):

public enum Options {
    Zero,
    One,
    Two,
    Three,
    Four,
    Five
}

public static class RandomEnum {
    private static Random _Random = new Random(Environment.TickCount);

    public static T Of<T>() {
        if (!typeof(T).IsEnum)
            throw new InvalidOperationException("Must use Enum type");

        Array enumValues = Enum.GetValues(typeof(T));
        return (T)enumValues.GetValue(_Random.Next(enumValues.Length));
    }
}

[TestClass]
public class RandomTests {
    [TestMethod]
    public void TestMethod1() {
        Options option;
        for (int i = 0; i < 10; ++i) {
            option = RandomEnum.Of<Options>();
            Console.WriteLine(option);
        }
    }

}
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For java you can work with below code,

Random r = new Random();
DayEnumerator day = DayEnumerator.values()[r.nextInt(DayEnumerator.values().length)];
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hah.."I use Java 'cause I don't see sharp" :) It is a c# topic, man ;) –  Arman McHitaryan Jan 26 at 10:28

Call Enum.GetValues; this returns an array that represents all possible values for your enum. Pick a random item from this array. Cast that item back to the original enum type.

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