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What is the best way to get a random entry from a Dictionary in c#?

I need to get a number of random objects from the fictionary to display on a page, however I cannot use:

Random rand = new Random();
Dictionary< string, object> dict = GetDictionary();
return dict[rand.Next()];

as dictionaries cannot be accessed by index.

Any suggestions?

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1  
xkcd.com/221 - return dict.Values[4] //determined by fair dice roll, guaranteed to be random –  Hardwareguy Jun 22 '09 at 16:37
    
Aaah, as usual, I was wondering when that would turn up =] –  Ed Woodcock Jun 22 '09 at 16:38
    
I am weak, I didn't choose it, it chose me as its conduit. –  Hardwareguy Jun 22 '09 at 16:43

9 Answers 9

up vote 19 down vote accepted

Updated to use generics, be even faster, and with an explanation of why this option is faster.

This answer is similar to the other responses, but since you said you need "a number of random elements" this will be more performant:

public IEnumerable<TValue> RandomValues<TKey, TValue>(IDictionary<TKey, TValue> dict)
{
    Random rand = new Random();
    List<TValue> values = Enumerable.ToList(dict.Values);
    int size = dict.Count;
    while(true)
    {
        yield return values[rand.Next(size)];
    }
}

You can use this method like so:

Dictionary<string, object> dict = GetDictionary();
foreach (object value in RandomValues(dict).Take(10))
{
    Console.WriteLine(value);
}

This has performance improvements over the other responses (including yshuditelu's response).

  1. It doesn't have to create a new collection of all of the dictionary's elements each time you want to fetch a new random value. This is a really big deal if your dictionary has a lot of elements in it.
  2. It doesn't have to perform a lookup based on the Dictionary's key each time you fetch a random value. Not as big a deal as #1, but it's still over twice as fast this way.

My tests show that with 1000 objects in the dictionary, this method goes about 70 times faster than the other suggested methods.

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1  
Nice catch on the 'number of random items'. Though if you're really looking for perf, you may not want the key lookup -- build the list of KeyValuePair objects and use that. Basic idea is solid though. +1 –  Jonathan Rupp Jun 22 '09 at 17:13
1  
Nice implementation. It might be worth noting though that this might return the same element from the Dictionary more than once (which might or might not be the behavior that the original poster was looking for). –  Jon Schneider Jun 22 '09 at 17:20
1  
@Jonathan: Nice point. What do you think of the updated version? @Jon: None of the responses I've seen address this possibility. Ed's question description seems to fairly obviously be looking for random values, not unique random values. –  StriplingWarrior Jun 22 '09 at 18:16
    
Agreed, using take(x) will be faster, I always forget that you can do things like that in c#, good answer –  Ed Woodcock Jun 23 '09 at 7:47
    
One interesting side note to this answer: It can produce duplicate values, which is not all that useful! –  Ed Woodcock Jun 23 '09 at 8:42

If you're using .net 3.5, Enumerable has an extension method ElementAt which would allow you to do:

return dict.ElementAt(rand.Next(0, dict.Count)).Value;
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+1 - just beat me to it. –  Eric Petroelje Jun 22 '09 at 16:36
    
I am using 3.5 but it would seem I don't have this method, are you sure it's on all Enumerable classes? –  Ed Woodcock Jun 22 '09 at 16:41
    
Are you using System.Linq? –  Timothy Carter Jun 22 '09 at 16:42
    
And referencing System.Core.dll (not sure if the System.Linq namespace is in any other .dlls) –  Timothy Carter Jun 22 '09 at 16:45
1  
Aha, I didn't have that namespace on, as my stylecop settings delete it automatically! Cool, this is probably the best route –  Ed Woodcock Jun 22 '09 at 16:45

From your dictionary...

Dictionary<string, int> dict = new Dictionary<string, object>()

you can create a complete list of keys...

List<string> keyList = new List<string>(dict.Keys);

and then select a random key from your list.

Random rand = new Random();
string randomKey = keyList[rand.Next(keyList.Count)];

Then simply return the random object matching that key.

return dict[randomKey];
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My other answer is correct for the question, and would be useful in many cases like getting roll information from custom dice (each die's roll is random, independent of the other dice). However, your comments make it sound like you might be hoping to get a series of "unique" elements out of the Dictionary, sort of like dealing cards from a deck. Once a card is dealt, you never want to see the same card again until a re-shuffle. In that case, the best strategy will depend on exactly what you're doing.

If you're only getting a few elements out of a large Dictionary, then you should be able to adapt my other answer, removing the random element from the list each time a new one is retrieved. You'll probably also want to make the list into a LinkedList, because even though it'll be slower to find an item by its index, it's much less expensive to remove elements from the middle of it. The code for this would be a little more complicated, so if you're willing to sacrifice some performance for simplicity you could just do this:

public IEnumerable<TValue> UniqueRandomValues<TKey, TValue>(IDictionary<TKey, TValue> dict)
{
    Random rand = new Random();
    Dictionary<TKey, TValue> values = new Dictionary<TKey, TValue>(dict);
    while(values.Count > 0)
    {
        TKey randomKey = values.Keys.ElementAt(rand.Next(0, values.Count));  // hat tip @yshuditelu 
        TValue randomValue = values[randomKey];
        values.Remove(randomKey);
        yield return randomValue;
    }
}

If, on the other hand, you're planning to pull a significant number of elements from your dictionary (i.e. dealing out more than log(n) of your "deck"), you'll be better off just shuffling your entire deck first, and then pulling from the top:

public IEnumerable<TValue> UniqueRandomValues<TKey, TValue>(IDictionary<TKey, TValue> dict)
{
    // Put the values in random order
    Random rand = new Random();
    LinkedList<TValue> values = new LinkedList<TValue>(from v in dict.Values
                                                       orderby rand.Next()
                                                       select v);
    // Remove the values one at a time
    while(values.Count > 0)
    {
        yield return values.Last.Value;
        values.RemoveLast();
    }
}

Credit goes to ookii.org for the simple shuffling code. If this still isn't quite what you were looking for, perhaps you can start a new question with more details about what you're trying to do.

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Something like:

Random rand = new Random();
Dictionary dict = GetDictionary();
var k = dict.Keys.ToList()[rand.Next(dict.Count)];
return dict[k];
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3  
Ahem. Once more, dictionaries are not technically ordered, and so cannot be accessed by index. The dictionary is question is keyed on a list of strings, stack overflow ate my <>s! –  Ed Woodcock Jun 22 '09 at 16:28
    
Yeah, I was a bit slow in reading and a bit fast in typing, but it is corrected now. –  Henk Holterman Jun 22 '09 at 16:31
    
I hate when that happens! :) But you can resolve it by putting the text in those code quotes. –  Groo Jun 22 '09 at 16:32
    
Yeah, I forgot to put &lt;s and &gt;s on the code, my bad! Ok, I get the idea and that was how I thought of doing it, however it's worth noting that dict.Keys has no ToList() method! –  Ed Woodcock Jun 22 '09 at 16:35
    
@ed, when you use System.Linq then Keys does have a ToList(). It's an extension. –  Henk Holterman Jun 22 '09 at 16:51

This won't be terribly fast, but it should work:

Random rand = new Random();
Dictionary dict = GetDictionary();
return dict.Skip(rand.Next(dict.Count)).First().Value;
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An easy solution would be to use the ToList() extension method and use the index of the list.

If you just need the values or the keys (not the key/value pair) return these collections from the dictionary and use ToList() as well.

        Random rand = new Random();
        Dictionary<string, object> dict = GetDictionary();
        var k = dict.ToList()[rand.Next(dict.Count)];
        // var k = dict.Values.ToList()[rand.Next(dict.Count)];
        // var k = dict.Keys.ToList()[rand.Next(dict.Count)];

        Console.WriteLine("Random dict pair {0} = {1}", k.Key, k.Value);
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I believe the only way is to create a separate list of KeyValuePairs first.

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public static class DictionaryExtensions
{
    public static TKey[] Shuffle<TKey, TValue>(
       this System.Collections.Generic.Dictionary<TKey, TValue> source)
    {
        Random r = new Random();
        TKey[] wviTKey = new TKey[source.Count];
        source.Keys.CopyTo(wviTKey, 0);

        for (int i = wviTKey.Length; i > 1; i--)
        {
            int k = r.Next(i);
            TKey temp = wviTKey[k];
            wviTKey[k] = wviTKey[i - 1];
            wviTKey[i - 1] = temp;
        }

        return wviTKey;
    }
}

Sample

            // Using
            System.Collections.Generic.Dictionary<object, object> myDictionary = new System.Collections.Generic.Dictionary<object, object>();
            // myDictionary.Add(myObjectKey1, myObjectValue1); // Sample
            // myDictionary.Add(myObjectKey2, myObjectValue2); // Sample
            // myDictionary.Add(myObjectKey3, myObjectValue3); // Sample
            // myDictionary.Add(myObjectKey4, myObjectValue4); // Sample

            // var myShufledKeys = myDictionary.Shuffle(); // Sample
            // var myShufledValue = myDictionary[myShufledKeys[0]]; // Sample

            // Easy Sample
            var myObjects = System.Linq.Enumerable.Range(0, 4);
            foreach(int i in myObjects)
                myDictionary.Add(i, string.Format("myValueObjectNumber: {0}", i));

            var myShufledKeys = myDictionary.Shuffle();
            var myShufledValue = myDictionary[myShufledKeys[0]];
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