Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Please suggest an easiest way to get a random shuffled collection of count 'n' from a collection having 'N' items. where n <= N

share|improve this question
add comment

6 Answers 6

up vote 16 down vote accepted

Another option is to use OrderBy and to sort on a GUID value, which you can do so using:

var result = sequence.OrderBy(elem => Guid.NewGuid());

I did some empirical tests to convince myself that the above actually generates a random distribution (which it appears to do). You can see my results at Techniques for Randomly Reordering an Array.

share|improve this answer
12  
This solution violates the contract of orderby, specifically that a given object has a consistent key throughout the sort. If it does work, it does so through chance alone, and could break in future versions of the framework. For more details, see blogs.msdn.com/b/ericlippert/archive/2011/01/31/… –  John Melville Apr 27 '11 at 23:22
    
Good catch. However, if this were committed to an actual collection -- such as adding .ToList() or .ToArray() to the end --, then there's no chance of the collection getting processed/iterating Linq code more than one time to perform the sort. I imagine that would survive future upgrades as well since it would act as a predictable snapshot. –  MutantNinjaCodeMonkey Jan 9 '13 at 20:52
4  
I just stumbled on this page and think it's brilliant, but I don't understand the comment. what could possibly go wrong in using this method to shuffle a collection (I'm not asking that sarcastically, I'm genuinely curious about the possibilities)? –  Josh Aug 8 '13 at 23:35
    
If you look at it from the point of view of those crazy functional programmers, this use of OrderBy doesn't violate the contract -- it's just that the consistent unique key is a function of all the seeds used to generate the GUID, so it's very hard to spot its consistency. For a certain machine, point in time, etc, you will always get back the same GUID. I know it stretches the idea of the contract a bit, but theoretically it's sound, I think. Maybe some FP people can comment further. –  Paul d'Aoust Feb 18 at 18:10
    
@Josh, there's no practical problems; it's just that, theoretically, it could be considered an abuse of OrderBy because you can't get repeatable results (well, not without a heck of a lot of work). The thing is, you don't want repeatable results in this case. –  Paul d'Aoust Feb 18 at 18:11
add comment

Further to mquander's answer and Dan Blanchard's comment, here's a LINQ-friendly extension method that performs a Fisher-Yates-Durstenfeld shuffle:

// take n random items from yourCollection
var randomItems = yourCollection.Shuffle().Take(n);

// ...

public static class EnumerableExtensions
{
    public static IEnumerable<T> Shuffle<T>(this IEnumerable<T> source)
    {
        return source.Shuffle(new Random());
    }

    public static IEnumerable<T> Shuffle<T>(
        this IEnumerable<T> source, Random rng)
    {
        if (source == null) throw new ArgumentNullException("source");
        if (rng == null) throw new ArgumentNullException("rng");

        return source.ShuffleIterator(rng);
    }

    private static IEnumerable<T> ShuffleIterator<T>(
        this IEnumerable<T> source, Random rng)
    {
        var buffer = source.ToList();
        for (int i = 0; i < buffer.Count; i++)
        {
            int j = rng.Next(i, buffer.Count);
            yield return buffer[j];

            buffer[j] = buffer[i];
        }
    }
}
share|improve this answer
3  
+1 Linqy and efficient. Hats off :) –  Dan Blanchard Oct 31 '09 at 17:11
1  
+1 best seen so far. Should be in .Net –  lukas Jun 26 '11 at 22:39
2  
@Htbaa: The method returns a lazily evaluated sequence. If you do seq.Shuffle().ElementAt(n) multiple times then you're re-shuffling each time so it's likely that you'll get a different item at position n. If you want to shuffle once then you need to store the sequence in a concrete collection of some kind: for example, var list = seq.Shuffle().ToList(). Then you can do list.ElementAt(n) as often as you like -- or just list[n] -- and you'll always get the same item back. –  LukeH Jan 3 '12 at 11:52
1  
@gilly3: That's probably because these Shuffle methods return a lazy IEnumerable<T> which will be re-evaluated each time you use it in a string.Join or ElementAt call. That's just the nature of IEnumerable<T>; if you want the behaviour of a concrete collection then you should actually create a concrete collection by calling ToArray or ToList on the result of the Shuffle call. –  LukeH Jul 29 '12 at 23:04
2  
@jocull If you use the version that doesn't take an instance of Random, it will create one for you. Instances of Random created close in time have a risk of using the same seed, and thus giving the same sequence of random numbers. If you pass the same instance of Random to it on different threads, you will get unpredictable results because instances of Random are not thread-safe. You should create your Random instances with different seeds, and not share them between threads. –  Weeble Mar 27 '13 at 13:52
show 8 more comments

Shuffle the collection into a random order and take the first n items from the result.

share|improve this answer
4  
Note that you don't have to completely shuffle the collection when n < N. You simply have to iterate through Durstenfeld's algorithm n times, and take the last n items of the (partially) shuffled result. –  Dan Blanchard Oct 30 '09 at 20:38
add comment

This has some issues with "random bias" and I am sure it's not optimal, this is another possibility:

var r = new Random();
l.OrderBy(x => r.NextDouble()).Take(n);
share|improve this answer
add comment

Sorry for ugly code :-), but


var result =yourCollection.OrderBy(p => (p.GetHashCode().ToString() + Guid.NewGuid().ToString()).GetHashCode()).Take(n);

share|improve this answer
add comment

I write this overrides method:

public static IEnumerable<T> Randomize<T>(this IEnumerable<T> items) where T : class
{
     int max = items.Count();
     var secuencia = Enumerable.Range(1, max).OrderBy(n => n * n * (new Random()).Next());

     return ListOrder<T>(items, secuencia.ToArray());
}

private static IEnumerable<T> ListOrder<T>(IEnumerable<T> items, int[] secuencia) where T : class
        {
            List<T> newList = new List<T>();
            int count = 0;
            foreach (var seed in count > 0 ? secuencia.Skip(1) : secuencia.Skip(0))
            {
                newList.Add(items.ElementAt(seed - 1));
                count++;
            }
            return newList.AsEnumerable<T>();
        }

Then, I have my source list (all items)

var listSource = p.Session.QueryOver<Listado>(() => pl)
                        .Where(...);

Finally, I call "Randomize" and I get a random sub-collection of items, in my case, 5 items:

var SubCollection = Randomize(listSource.List()).Take(5).ToList();
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.