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Say I have a function that accepts an enum decorated with the Flags attribute. If the value of the enum is a combination of more than one of the enum elements how can I extract one of those elements at random? I have the following but it seems there must be a better way.

[Flags]
enum Colours
{
    Blue = 1,
    Red = 2,
    Green = 4
}

public static void Main()
{
    var options = Colours.Blue | Colours.Red | Colours.Green;
    var opts = options.ToString().Split(',');
    var rand = new Random();
    var selected = opts[rand.Next(opts.Length)].Trim();
    var myEnum = Enum.Parse(typeof(Colours), selected);
    Console.WriteLine(myEnum);
    Console.ReadLine();
}
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4 Answers 4

up vote 5 down vote accepted
var options = Colours.Blue | Colours.Green;

var matching = Enum.GetValues(typeof(Colours))
                   .Cast<Colours>()
                   .Where(c => (options & c) == c)    // or use HasFlag in .NET4
                   .ToArray();

var myEnum = matching[new Random().Next(matching.Length)];
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You can call Enum.GetValues to get an array of the enum's defined values, like this:

var rand = new Random();

Colors[] allValues = (Colors[])Enum.GetValues(typeof(Colors));
Colors value = allValues[rand.Next(allValues.Length)];
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I would like a random value of only a subset of the enum as defined by a bitwise combination like "Blue | Red". Sorry for not being clearer. –  Chris Porter Jun 9 '10 at 0:07

If you don't mind a little casting, and your enum is of underlying int type, the following will work and is fast.

var rand = new Random();
const int mask = (int)(Colours.Blue | Colours.Red | Colours.Green);
return (Colours)(mask & (rand.Next(mask) + 1));

If you only want a single flag to be set, you could do the following:

var rand = new Random();
return (Colours)(0x1 << (rand.Next(3)));
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If the result of "(int)allValues & rand.Next()" is zero, and you do not have a zero enum member, you get an invalid enum i.e. (Colours)0. –  Tim Lloyd Jun 8 '10 at 22:53
    
True. Let me see if it can be fixed... –  bbudge Jun 8 '10 at 23:10
    
OK, I think it works now. But it got a little messier and less clear. Only useful if performance is a serious concern. –  bbudge Jun 8 '10 at 23:32
    
This works, but I particularly wanted only one value returned. Sorry if that wasn't clear. Your solution returns combinations like "Blue | Red | Green" –  Chris Porter Jun 9 '10 at 0:04
    
Added code for that, albeit with ugly "magic" numbers. With that, I'm done with this question! –  bbudge Jun 9 '10 at 0:28

If I understand correctly, the question is about returning a random enum value from a flags enum value, not returning a random member from a flags enum.

    [Flags]
    private enum Shot
    {
        Whisky = 1,
        Absynthe = 2,
        Pochin = 4,
        BrainEraser = Whisky | Absynthe | Pochin
    }

    [Test]
    public void Test()
    {
        Shot myCocktail = Shot.Absynthe | Shot.Whisky;

        Shot randomShotInCocktail = GetRandomShotFromCocktail(myCocktail);
    }

    private static Shot GetRandomShotFromCocktail(Shot cocktail)
    {
        Random random = new Random();

        Shot[] cocktailShots = Enum.GetValues(typeof(Shot)).
           Cast<Shot>().
           Where(x => cocktail.HasFlag(x)).ToArray();

        Shot randomShot = cocktailShots[random.Next(0, cocktailShots.Length)];

        return randomShot;
    }

Edit

And obviously you should check that the enum is a valid value, e.g.:

 Shot myCocktail = (Shot)666;

Edit

Simplified

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1  
You are correct in stating the problem. However I think your random function will not return the values with an even distribution. At a 50/50 chance for each value through the loop subsequent values have a lower chance of being selected ? –  Chris Porter Jun 9 '10 at 0:01
    
I see your point. Strictly speaking it is still random and answers your question. I have updated it to an even distro. It is late and I'm sure I have probably stuffed up! :) –  Tim Lloyd Jun 9 '10 at 0:11
    
And now simplified. –  Tim Lloyd Jun 9 '10 at 0:26
    
Thanks for your efforts –  Chris Porter Jun 9 '10 at 11:26
    
Not the answer you were looking for then? –  Tim Lloyd Jun 9 '10 at 11:29

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