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What is the best way to randomize the order of a generic list in C#? I've got a finite set of 75 numbers in a list I would like to assign a random order to, in order to draw them for a lottery type application.

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14 Answers 14

up vote 441 down vote accepted

Shuffle any (I)List with an extension method based on the Fisher-Yates shuffle:

public static void Shuffle<T>(this IList<T> list)  
{  
    Random rng = new Random();  
    int n = list.Count;  
    while (n > 1) {  
        n--;  
        int k = rng.Next(n + 1);  
        T value = list[k];  
        list[k] = list[n];  
        list[n] = value;  
    }  
}

Usage:

List<Product> products = GetProducts();
products.Shuffle();

The code above uses the much criticised System.Random method to select swap candidates. It's fast but not as random as it should be. If you need a better quality of randomness in your shuffles use the random number generator in System.Security.Cryptography like so:

using System.Security.Cryptography;
...
public static void Shuffle<T>(this IList<T> list)
{
    RNGCryptoServiceProvider provider = new RNGCryptoServiceProvider();
    int n = list.Count;
    while (n > 1)
    {
        byte[] box = new byte[1];
        do provider.GetBytes(box);
        while (!(box[0] < n * (Byte.MaxValue / n)));
        int k = (box[0] % n);
        n--;
        T value = list[k];
        list[k] = list[n];
        list[n] = value;
    }
}

A simple comparison is available at: http://thegrenade.blogspot.com/2010/02/when-random-is-too-consistent.html

Edit: Since writing this answer a couple years back, many people have commented or written to me, to point out the big silly flaw in my comparison. They are of course right. There's nothing wrong with System.Random if it's used in the way it was intended. In my first example above, I instantiate the rng variable inside of the Shuffle method, which is asking for trouble if the method is going to be called repeatedly. Below is a fixed, full example based on a really useful comment received today from @weston here on SO.

Program.cs:

using System;
using System.Collections.Generic;
using System.Threading;

namespace SimpleLottery
{
  class Program
  {
    private static void Main(string[] args)
    {
      var numbers = new List<int>(Enumerable.Range(1, 75));
      numbers.Shuffle();
      Console.WriteLine("The winning numbers are: {0}", string.Join(",  ", numbers.GetRange(0, 5)));
    }
  }

  public static class ThreadSafeRandom
  {
      [ThreadStatic] private static Random Local;

      public static Random ThisThreadsRandom
      {
          get { return Local ?? (Local = new Random(unchecked(Environment.TickCount * 31 + Thread.CurrentThread.ManagedThreadId))); }
      }
  }

  static class MyExtensions
  {
    public static void Shuffle<T>(this IList<T> list)
    {
      int n = list.Count;
      while (n > 1)
      {
        n--;
        int k = ThreadSafeRandom.ThisThreadsRandom.Next(n + 1);
        T value = list[k];
        list[k] = list[n];
        list[n] = value;
      }
    }
  }
}
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7  
What if list.Count is > Byte.MaxValue? If n = 1000, then 255 / 1000 = 0, so the do loop will be an infinite loop since box[0] < 0 is always false. –  AndrewS Jun 7 '11 at 10:47
12  
I would like to point out, that the comparison is flawed. Using <code>new Random()</code> in a loop is the problem, not the randomness of <code>Random</code> Explanation –  Sven Sep 29 '11 at 13:43
3  
It is a good idea to pass an instance of Random to the Shuffle method rather than create it inside as if you are calling Shuffle lots of times in quick succession (e.g. shuffling lots of short lists), the lists will all be shuffled in the same way (e.g. first item always gets moved to position 3). –  Mark Heath Feb 7 '12 at 22:43
4  
Just making Random rng = new Random(); a static would solve the problem in the comparison post. As each subsequent call would follow on from the previous calls last random result. –  weston Nov 28 '12 at 13:58
3  
#2, it's not clear that the version with the Crypto generator works because the max range of a byte is 255, so any list larger than that will not shuffle correctly. –  Mark Sowul May 8 '13 at 14:37

If we only need to shuffle items in a completely random order (just to mix the items in a list), I prefer this simple yet effective code that orders items by guid...

var shuffledcards = cards.OrderBy(a => Guid.NewGuid());
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7  
GUIDs are meant to be unique not random. Part of it is machine-based and another part time-based and only a small portion is random. blogs.msdn.com/b/oldnewthing/archive/2008/06/27/8659071.aspx –  Despertar May 5 '13 at 7:00
13  
This is a nice elegant solution. If you want something other than a guid to generate randomness, just order by something else. Eg: var shuffledcards = cards.OrderBy(a => rng.Next()); compilr.com/grenade/sandbox/Program.cs –  grenade May 27 '13 at 10:54
3  
Please no. This is wrong. "ordering by random" is totally NOT a shuffle: you introduce a bias and, worse, you risk to go in infinite loops –  Vito De Tullio Aug 16 '13 at 10:07
13  
@VitoDeTullio: You are misremembering. You risk infinite loops when you provide a random comparison function; a comparison function is required to produce a consistent total order. A random key is fine. This suggestion is wrong because guids are not guaranteed to be random, not because the technique of sorting by a random key is wrong. –  Eric Lippert Sep 13 '13 at 21:30
4  
@Doug: NewGuid only guarantees that it gives you a unique GUID. It makes no guarantees about randomness. If you're using a GUID for a purpose other than creating a unique value, you're doing it wrong. –  Eric Lippert Sep 13 '13 at 21:31

Extended method for IEnumerable:

public static IEnumerable<T> Randomize<T>(this IEnumerable<T> source)
{
    Random rnd = new Random();
    return source.OrderBy<T, int>((item) => rnd.Next());
}
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3  
Note that this is not thread-safe, even if used on a thread-safe list –  BlueRaja - Danny Pflughoeft Sep 25 '12 at 3:05
1  
how do we give list<string> to this function ? –  MonsterMMORPG Mar 7 '13 at 12:27
    
There are two significant problems with this algorithm: -- OrderBy uses a QuickSort variant to sort the items by their (ostensibly random) keys. QuickSort performance is O(N log N); in contrast, a Fisher-Yates shuffle is O(N). For a collection of 75 elements, this may not be a big deal, but the difference will become pronounced for larger collections. –  John Beyer Jun 26 '13 at 16:47
4  
... -- Random.Next() may produce a reasonably pseudo-random distribution of values, but it does not guarantee that the values will be unique. The probability of duplicate keys grows (non-linearly) with N until it reaches certainty when N reaches 2^32+1. The OrderBy QuickSort is a stable sort; thus, if multiple elements happen to get assigned the same pseudo-random index value, then their order in the output sequence will be the same as in the input sequence; thus, a bias is introduced into the "shuffle". –  John Beyer Jun 26 '13 at 17:06
7  
@JohnBeyer: There are far, far greater problems than that source of bias. There are only four billion possible seeds to Random, which is far, far less than the number of possible shuffles of a moderately sized set. Only a tiny fraction of the possible shuffles can be generated. That bias dwarfs the bias due to accidental collisions. –  Eric Lippert Sep 13 '13 at 21:33

I'm bit surprised by all the clunky versions of this simple algorithm here. Fisher-Yates (or Knuth shuffle) is bit tricky but very compact. If you go to Wikipedia (or standard algorithm books such as CLRS), you would see a version of this algorithm that has for-loop in reverse and lot of people don't really seem to understand why is it in reverse. The key reason is that this version of algorithm assumes that the random number generator at your disposal has following two properties:

  1. It accepts n as single input parameter.
  2. It returns number from 0 to n inclusive.

However .Net random number generator does not satisfy #2 property. The Random.Next(n) instead returns number from 0 to n-1 inclusive. If you try to use for-loop in reverse then you would need to call Random.Next(n+1) which adds one additional operation.

However, .Net random number generator has another nice function Random.Next(a,b) which returns a to b-1 inclusive. This actually perfectly fits nicely with implementation of this algorithm that has normal for-loop. So without further ado, here's the correct, efficient and compact implementation:

public static void Shuffle<T>(this IList<T> list, Random rnd)
{
    for(var i=0; i < list.Count; i++)
        list.Swap(i, rnd.Next(i, list.Count));
}

public static void Swap<T>(this IList<T> list, int i, int j)
{
    var temp = list[i];
    list[i] = list[j];
    list[j] = temp;
}
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Excellent answer even though this question is really old. :) –  Kevin Apr 2 at 18:44
    
Wouldn't it be better to change rnd(i, list.Count) to rnd(0, list.Count) so that any card could be swapped? –  Donuts Jul 7 at 6:04
    
@Donuts - no. If you do that you will add bias in shuffle. –  ShitalShah Jul 19 at 7:16
    public static List<T> Randomize<T>(List<T> list)
    {
        List<T> randomizedList = new List<T>();
        Random rnd = new Random();
        while (list.Count > 0)
        {
            int index = rnd.Next(0, list.Count); //pick a random item from the master list
            randomizedList.Add(list[index]); //place it at the end of the randomized list
            list.RemoveAt(index);
        }
        return randomizedList;
    }
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See stackoverflow.com/questions/4412405/… –  nawfal May 30 '13 at 23:54
    
Shouldn't you do something like var listCopy = list.ToList() to avoid popping all of the items off the incoming list? I don't really see why you would want to mutate those lists to empty. –  Chris Marisic Sep 17 at 17:38

I usually use:

var list = new List<T> ();
fillList (list);
var randomizedList = new List<T> ();
var rnd = new Random ();
while (list.Count != 0)
{
    var index = rnd.Next (0, list.Count);
    randomizedList.Add (list [index]);
    list.RemoveAt (index);
}
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EDIT The RemoveAt is a weakness in my previous version. This solution overcomes that.

public static IEnumerable<T> Shuffle<T>(
        this IEnumerable<T> source,
        Random generator = null)
{
    if (generator == null)
    {
        generator = new Random();
    }

    var elements = source.ToArray();
    for (var i = elements.Length - 1; i >= 0; i--)
    {
        var swapIndex = generator.Next(i + 1);
        yield return elements[swapIndex];
        elements[swapIndex] = elements[i];
    }
}

Note the optional Random generator, if the base framework implementation of Random is not thread-safe or cryptographically strong enough for your needs, you can inject your implementation into the operation.

A suitable implementation for a thread-safe cryptographically strong Random implementation can be found in this answer.


Here's an idea, extend IList in a (hopefully) efficient way.

public static IEnumerable<T> Shuffle<T>(this IList<T> list)
{
    var choices = Enumerable.Range(0, list.Count).ToList();
    var rng = new Random();
    for(int n = choices.Count; n > 1; n--)
    {
        int k = rng.Next(n);
        yield return list[choices[k]];
        choices.RemoveAt(k);
    }

    yield return list[choices[0]];
}

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See stackoverflow.com/questions/4412405/…. you must be aware already. –  nawfal May 30 '13 at 23:55
    
@nawfal see my improved implementation. –  Jodrell Jul 9 at 7:46
1  
hmm fair enough. Is it GetNext or Next? –  nawfal Jul 9 at 7:57

If you have a fixed number (75), you could create an array with 75 elements, then enumerate your list, moving the elements to randomized positions in the array. You can generate the mapping of list number to array index using the Fisher-Yates shuffle.

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Here's a thread-safe way to do this:

public static class EnumerableExtension
{
    private static Random globalRng = new Random();

    [ThreadStatic]
    private static Random _rng;

    private static Random rng 
    {
        get
        {
            if (_rng == null)
            {
                int seed;
                lock (globalRng)
                {
                    seed = globalRng.Next();
                }
                _rng = new Random(seed);
             }
             return _rng;
         }
    }

    public static IEnumerable<T> Shuffle<T>(this IEnumerable<T> items)
    {
        return items.OrderBy (i => rng.Next());
    }
}
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You can achieve that be using this simple extension method

public static class IEnumerableExtensions
{

    public static IEnumerable<t> Randomize<t>(this IEnumerable<t> target)
    {
        Random r = new Random();

        return target.OrderBy(x=>(r.Next()));
    }        
}

and you can use it by doing the following

// use this on any collection that implements IEnumerable!
// List, Array, HashSet, Collection, etc

List<string> myList = new List<string> { "hello", "random", "world", "foo", "bar", "bat", "baz" };

foreach (string s in myList.Randomize())
{
    Console.WriteLine(s);
}
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Here's an efficient Shuffler that returns a byte array of shuffled values. It never shuffles more than is needed. It can be restarted from where it previously left off. My actual implementation (not shown) is a MEF component that allows a user specified replacement shuffler.

    public byte[] Shuffle(byte[] array, int start, int count)
    {
        int n = array.Length - start;
        byte[] shuffled = new byte[count];
        for(int i = 0; i < count; i++, start++)
        {
            int k = UniformRandomGenerator.Next(n--) + start;
            shuffled[i] = array[k];
            array[k] = array[start];
            array[start] = shuffled[i];
        }
        return shuffled;
    }

`

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If you don't mind using two lists, then this is probably the easiest way to do it, but probably not the most efficient or unpredictable one...

       List<int> xList = new List<int>() { 1, 2, 3, 4, 5 };  
       List<int> deck = new List<int>();

       foreach (int xInt in xList)
            deck.Insert(random.Next(0,deck.Count+1),xInt);
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 public Deck(IEnumerable<Card> initialCards) 
    {
    cards = new List<Card>(initialCards);
    public void Shuffle() 
     }
    {
        List<Card> NewCards = new List<Card>();
        while (cards.Count > 0) 
        {
            int CardToMove = random.Next(cards.Count);
            NewCards.Add(cards[CardToMove]);
            cards.RemoveAt(CardToMove);
        }
        cards = NewCards;
    }

public IEnumerable<string> GetCardNames() 

{
    string[] CardNames = new string[cards.Count];
    for (int i = 0; i < cards.Count; i++)
    CardNames[i] = cards[i].Name;
    return CardNames;
}

Deck deck1;
Deck deck2;
Random random = new Random();

public Form1() 
{

InitializeComponent();
ResetDeck(1);
ResetDeck(2);
RedrawDeck(1);
 RedrawDeck(2);

}



 private void ResetDeck(int deckNumber) 
    {
    if (deckNumber == 1) 
{
      int numberOfCards = random.Next(1, 11);
      deck1 = new Deck(new Card[] { });
      for (int i = 0; i < numberOfCards; i++)
           deck1.Add(new Card((Suits)random.Next(4),(Values)random.Next(1, 14)));
       deck1.Sort();
}


   else
    deck2 = new Deck();
 }

private void reset1_Click(object sender, EventArgs e) {
ResetDeck(1);
RedrawDeck(1);

}

private void shuffle1_Click(object sender, EventArgs e) 
{
    deck1.Shuffle();
    RedrawDeck(1);

}

private void moveToDeck1_Click(object sender, EventArgs e) 
{

    if (listBox2.SelectedIndex >= 0)
    if (deck2.Count > 0) {
    deck1.Add(deck2.Deal(listBox2.SelectedIndex));

}

    RedrawDeck(1);
    RedrawDeck(2);

}
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Welcome to Stack Overflow! Please consider adding some explanation to your answer, rather than just a huge block of code. Our goal here is to educate people so that they understand the answer and can apply it in other situations. If you comment your code and add an explanation, you will make your answer more helpful not just to the person who asked the question this time, but to anyone in the future who may be having the same problem. –  starsplusplus Jun 16 at 19:14
    
Most of this code is entirely irrelevant to the question, and the only useful part basically repeats Adam Tegen's answer from almost 6 years ago. –  T.C. Jun 16 at 19:16

A very simple approach to this kind of problem is to use a number of random element swap in the list.

In pseudo-code this would look like this:

do 
    r1 = randomPositionInList()
    r2 = randomPositionInList()
    swap elements at index r1 and index r2 
for a certain number of times
share|improve this answer
    
One problem with this approach is knowing when to stop. It also has a tendency to exaggerate any biases in the pseudo-random number generator. –  Mark Bessey Nov 7 '08 at 19:58
2  
Yes. Highly inefficient. There is no reason to use an approach like this when better, faster approaches exist that are just as simple. –  PeterAllenWebb Nov 7 '08 at 21:25
    
not very efficient or effective... Running it N times would likely leave many elements in their original position. –  NSjonas Dec 7 '12 at 21:46

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