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Assume that you have an idCollection IList<long> and you have a method to get 4 unique ids.Every time you call it, it gives you random 4 unique ids ?

var idCollec = new[] {1,2,3,4,5,6,7,8,9,10,11,12}.ToList();

For example {2,6,11,12}
            {3,4,7,8}
            {5,8,10,12}
            ...
            ..

What is the smartest way to do it ?

Thanks

share|improve this question
    
@Barbaros Alp: Are you trying to say that you get four random ids from the IList<long> and that the longs are the ids? –  casperOne Feb 17 '09 at 19:15
    
Is the list already populated with unique IDs? –  Chris Cudmore Feb 17 '09 at 19:17
    
... And why do you want 4 at a time? What's wrong with one? –  Chris Cudmore Feb 17 '09 at 19:18
    
Yes it is populated with unique ids, every time i need to get 4 unique random ids from that collection –  Barbaros Alp Feb 17 '09 at 19:21
    
Once an ID is used, can it be removed from the list? –  Chris Cudmore Feb 17 '09 at 19:22

5 Answers 5

up vote 5 down vote accepted

Seems like easiest way would be to have something like:

if(idCollection.Count <4)
{
    throw new ArgumentException("Source array not long enough");
}
List<long> FourUniqueIds = new List<long>(4);
while(FourUniqueIds.Count <4)
{
    long temp = idCollection[random.Next(idCollection.Count)];
    if(!FourUniqueIds.Contains(temp))
    {
        FourUniqueIds.add(temp);
    }
}
share|improve this answer
    
ya, yours is easy (I didnt see it before I posted my version). I would add that the only thing missing is bounds checking on the array length of idColllection. –  Mike_G Feb 17 '09 at 20:05
    
Thanks Dayv8, i think your is the smartest answer :) Thanks again I like this brain storm thing where everybody post answers by their way. Thanks everybody –  Barbaros Alp Feb 17 '09 at 20:18
    
Actually Davy8 I messed, up I didnt see that random.Next(idCollection.Count) was defining the max, thats where i thought the error would come in. But I could be wrong on this as well, wouldnt it have to be idCollection[random.Next(idCollection.Count) -1] ? –  Mike_G Feb 17 '09 at 20:21
    
i mean idCollection[random.Next(idCollection.Count -1)] –  Mike_G Feb 17 '09 at 20:22
    
I guess if it was an ArrayList not an IList it need to be length-1 –  Barbaros Alp Feb 17 '09 at 20:23

It can be done with a nice LINQ query. The key to doing it without the risk of getting duplicates, is to create a never ending IEnumerable of random integers. Then you can take n distinct values from it, and use them as indexes into the list.

Sample program:

using System;
using System.Collections.Generic;
using System.Linq;

namespace TestRandom
{
    class Program
{
    static void Main(string[] args)
    {
        // Just to prepopulate a list.
        var ids = (from n in Enumerable.Range(0, 100)
                   select (long)rand.Next(0, 1000)).ToList();

        // Example usage of the GetRandomSet method.
        foreach(long id in GetRandomSet(ids, 4))
            Console.WriteLine(id);
    }

    // Get count random entries from the list.
    public static IEnumerable<long> GetRandomSet(IList<long> ids, int count)
    {
        // Can't get more than there is in the list.
        if ( count > ids.Count)
            count = ids.Count;

        return RandomIntegers(0, ids.Count)
            .Distinct()
            .Take(count)
            .Select(index => ids[index]);
    }

    private static IEnumerable<int> RandomIntegers(int min, int max)
    {
        while (true)
            yield return rand.Next(min, max);
    }

    private static readonly Random rand = new Random();
}

}

If you use this approach, make sure you do not try to take more distinct values than there are available in the range passed to RandomIntegers.

share|improve this answer
    
Thank you very much for your answer. It is like solid, 100% returns random ids. But did you check Mike_G or Davy8 ? their way looks smart too –  Barbaros Alp Feb 17 '09 at 19:58
    
Yes, I read the other answers, which are also a fine way to get the job done. All the answers basically does the same thing, just in other ways and in slightly different order. Which one fits your purpose best will be a matter of how the answer fits your current code. –  driis Feb 17 '09 at 21:53

What about shuffling the set then just taking the first four each time?

public static IEnumerable<T> Shuffle<T>(this IEnumerable<T> e)
{
    var r = new Random();
    return e.OrderBy(x => r.Next());
}

Then something like this? It would probably be faster to use a for loop instead of Take and Except.

 var ordered = new List<int> {1, 2, 3, 4, 5, 6, 7, 8, 10};

 var random = ordered.Shuffle();
 while(random.Count() > 0)
 {
     var ourSet = random.Take(4).ToList();            
     random = random.Except(ourSet);
 }
share|improve this answer
    
This looks awesome, thank you –  Barbaros Alp Feb 17 '09 at 20:21

If the IList<long> is populated with non unique values, you could use LINQ's Distinct() in combination with Take(), if it already has unique values, just use Take().

List<long> myUniqueIds = //prepoulation
var first4UniqueUnused = myUniqueIds.Take(4);

var next4UniqueUnused = myUniqueIds.Where(l=>!first4UniqueUnused.Contains(l)).Take(4);

another way that is too easy, i think we've been making it too hard:

List<long> myIDs = //prepopulation;
List<long> my4Random = new List<long>();
Random r = new Random();

for(int i=0; i< 4; i++)
{
     int j = r.Next();
     while(j>myIDs.Count || my4Random.Contains(myIDs[j]))
          j = r.Next();

     my4Random.Add(myIDs[j]);
}
share|improve this answer
    
Populated ids are unique –  Barbaros Alp Feb 17 '09 at 19:24
    
This looks great but, it isnt random, is it ? –  Barbaros Alp Feb 17 '09 at 19:38
    
I think this answer misses the point that the selected ids should be random. –  driis Feb 17 '09 at 19:50
    
no its not. It would probably be better to populate the initial List<long> with random long numbers. –  Mike_G Feb 17 '09 at 19:50
    
there really isnt enough info to determine whats "random" or not. What order is the initial list in? –  Mike_G Feb 17 '09 at 19:54
Random random = new Random(); 

long firstOne = idCollection[random.Next(idCollection.Count)];
long secondOne = idCollection[random.NExt(idCollection.Count)];

...and so on

share|improve this answer
    
It might not give you unique id collection you could have a repeated id in one of the long variable –  Barbaros Alp Feb 17 '09 at 19:27
    
Not to mention that while this would work for 4 elements, if you needed to select, say 2000 elements, your code is going to start looking pretty nasty. (Although, if it was an odd case where it was always going to be, say, exactly two elements, this would be fine.) –  Beska Feb 17 '09 at 20:28

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