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What is the best (and fastest) way to retreive a random row using Linq to SQL when I have a condition, e.g. some field must be true ?

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You have two options for the order you check the true conditions. If the true condition happens on most items then just grab a random item then test and repeat while false. If rare let the database limit the options to the true condition and then grab one at random. –  uɐƃoן xǝᴚ Mar 15 '09 at 18:39
    
As with lots of answers on this site - second-rated is much better than the accepted one. –  kape123 Mar 12 '13 at 5:05
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12 Answers

up vote 135 down vote accepted

You can do this at the database, by using a fake UDF; in a partial class, add a method to the data context:

partial class MyDataContext {
     [Function(Name="NEWID", IsComposable=true)] 
     public Guid Random() 
     { // to prove not used by our C# code... 
         throw new NotImplementedException(); 
     }
}

Then just order by ctx.Random(); this will do a random ordering at the SQL-Server courtesy of NEWID(). i.e.

var cust = (from row in ctx.Customers
           where row.IsActive // your filter
           orderby ctx.Random()
           select row).FirstOrDefault();

Note that this is only suitable for small-to-mid-size tables; for huge tables, it will have a performance impact at the server, and it will be more efficient to find the number of rows (Count), then pick one at random (Skip/First).


for count approach:

var qry = from row in ctx.Customers
          where row.IsActive
          select row;

int count = qry.Count(); // 1st round-trip
int index = new Random().Next(count);

Customer cust = qry.Skip(index).FirstOrDefault(); // 2nd round-trip
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My table has approximately 30.000 rows, would you say it's small-to-mid size? –  Julien Poulin Mar 15 '09 at 18:39
2  
If is it 30k after the filter, I'd say no: don't use this approach. Do 2 round-trips; 1 to get the Count(), and 1 to get a random row... –  Marc Gravell Mar 15 '09 at 19:59
1  
What if you want five (or "x") random rows? Is it best just to make six round-trips or is there a convenient way to implement it in a stored procedure? –  Neal S. Jul 2 '09 at 14:00
1  
@Neal S.: the order by ctx.Random() could be mixed with Take(5); but if you are using the Count() approach, I expect 6 round trips is the simplest option. –  Marc Gravell Jul 2 '09 at 14:46
7  
I know this is old, but if you are selecting many random rows from a large table, see this: msdn.microsoft.com/en-us/library/cc441928.aspx I don't know if there's a LINQ equivalent. –  jwd Sep 8 '11 at 22:39
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Another sample:

var customers = db.Customers
                  .Where(x => x.IsActive)
                  .OrderBy(x => Guid.NewGuid())
                  .FirstOrDefault();
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1  
Have you profiled this and confirmed that it works? In my tests using LINQPad, the order by clause is being dropped. –  Jim Wooley Mar 24 '11 at 14:56
    
Haven't profiled it, but it works. –  arviman Sep 13 '11 at 22:33
7  
This doesn't workin LINQ to SQL... maybe it works in Entity Framework 4 (not confirming it). You can only use .OrderBy with Guid if you are sorting a List... with DB it won't work. –  kape123 May 30 '12 at 21:56
1  
Just to finally confirm that this works in EF4 - it's great option in that case. –  kape123 Mar 12 '13 at 5:04
1  
It works great with EF 5 –  Ricardo Nov 20 '13 at 1:40
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EDIT: I've only just noticed this is LINQ to SQL, not LINQ to Objects. Use Marc's code to get the database to do this for you. I've left this answer here as a potential point of interest for LINQ to Objects.

Strangely enough, you don't actually need to get the count. You do, however, need to fetch every element unless you get the count.

What you can do is keep the idea of a "current" value and the current count. When you fetch the next value, take a random number and replace the "current" with "new" with a probability of 1/n where n is the count.

So when you read the first value, you always make that the "current" value. When you read the second value, you might make that the current value (probability 1/2). When you read the third value, you might make that the current value (probability 1/3) etc. When you've run out of data, the current value is a random one out of all the ones you read, with uniform probability.

To apply that with a condition, just ignore anything which doesn't meet the condition. The easiest way to do that is to only consider the "matching" sequence to start with, by applying a Where clause first.

Here's a quick implementation. I think it's okay...

public static T RandomElement<T>(this IEnumerable<T> source,
                                 Random rng)
{
    T current = default(T);
    int count = 0;
    foreach (T element in source)
    {
        count++;
        if (rng.Next(count) == 0)
        {
            current = element;
        }            
    }
    if (count == 0)
    {
        throw new InvalidOperationException("Sequence was empty");
    }
    return current;
}
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2  
FYI - I ran a quick check and this function does have a uniform probability distribution (the incrementing count is essentially the same mechanism as the Fisher-Yates shuffle so it seems reasonable that it should be). –  Greg Beech Mar 15 '09 at 18:54
    
@Greg: Cool, thanks. It looked okay to me with a quick check, but it's so easy to get off-by-one errors in code like this. Virtually irrelevant to LINQ to SQL of course, but useful nonetheless. –  Jon Skeet Mar 15 '09 at 18:57
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One way to achieve efficiently is to add a column to your data Shuffle that is populated with a random int (as each record is created).

The partial query to access the table in random order is ...

Random random = new Random();
int seed = random.Next();
result = result.OrderBy(s => (~(s.Shuffle & seed)) & (s.Shuffle | seed)); // ^ seed);

This does an XOR operation in the database and orders by the results of that XOR.

Advantages:-

  1. Efficient: SQL handles the ordering, no need to fetch the whole table
  2. Repeatable: (good for testing) - can use the same random seed to generate the same random order

This is the approach used by my home automation system to randomize playlists. It picks a new seed each day giving a consistent order during the day (allowing easy pause / resume capabilities) but a fresh look at each playlist each new day.

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what would the effect on randomness be if instead of adding a random int field you just used an existing auto-incrementing identity field (the seed would obviously remain random)? also - is a seed value with a a maximum equal to the number of records in the table adequate or should it be higher? –  Bryan Oct 13 '11 at 17:19
    
Ian, this is brilliant. Thanks for this. –  MisterJames Jul 19 '12 at 2:15
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if you want to get e.g. var count = 16 random rows from table, you can write

var rows = Table.OrderBy(t => Guid.NewGuid())
                        .Take(count);

here I used E.F, and the Table is a Dbset

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If the purpose of getting random rows is sampling, I have talked very briefly here about a nice approach from Larson et al., Microsoft Research team where they have developed a sampling framework for Sql Server using materialized views. There is a link to the actual paper also.

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Came here wondering how to get a few random pages from a small number of them, so each user gets some different random 3 pages.

This is my final solution, working querying with LINQ against a list of pages in Sharepoint 2010. It's in Visual Basic, sorry :p

Dim Aleatorio As New Random()

Dim Paginas = From a As SPListItem In Sitio.RootWeb.Lists("Páginas") Order By Aleatorio.Next Take 3

Probably should get some profiling before querying a great number of results, but it's perfect for my purpose

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Why make it random? What about

foo.Where(p => p.test == condition).First();

If you really want random, you can write an extension method that will return a random row where the random number is constrained between 0 and the number of elements - 1

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I'm building an image rating system (much like HotOrNot) in asp.net and I want to display a random image (otherwise, the users will get bored really quick^^) –  Julien Poulin Mar 15 '09 at 17:44
    
well, then the extension method should work just fine. –  Steve Mar 15 '09 at 17:56
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I have random function query against DataTables:

var result = (from result in dt.AsEnumerable()
              order by Guid.NewGuid()
              select result).Take(3); 
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The example below will call the source to retrieve a count and then apply a skip expression on the source with a number between 0 and n. The second method will apply order by using the random object (which will order everything in memory) and select the number passed into the method call.

public static class IEnumerable
{
    static Random rng = new Random((int)DateTime.Now.Ticks);

    public static T RandomElement<T>(this IEnumerable<T> source)
    {
        T current = default(T);
        int c = source.Count();
        int r = rng.Next(c);
        current = source.Skip(r).First();
        return current;
    }

    public static IEnumerable<T> RandomElements<T>(this IEnumerable<T> source, int number)
    {
        return source.OrderBy(r => rng.Next()).Take(number);
    }
}
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Some explanation would be nice –  Andrew Barber Oct 9 '12 at 10:00
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i use this method for take random news and its work fine ;)

    public string LoadRandomNews(int maxNews)
    {
        string temp = "";

        using (var db = new DataClassesDataContext())
        {
            var newsCount = (from p in db.Tbl_DynamicContents
                             where p.TimeFoPublish.Value.Date <= DateTime.Now
                             select p).Count();
            int i;
            if (newsCount < maxNews)
                i = newsCount;
            else i = maxNews;
            var r = new Random();
            var lastNumber = new List<int>();
            for (; i > 0; i--)
            {
                int currentNumber = r.Next(0, newsCount);
                if (!lastNumber.Contains(currentNumber))
                { lastNumber.Add(currentNumber); }
                else
                {
                    while (true)
                    {
                        currentNumber = r.Next(0, newsCount);
                        if (!lastNumber.Contains(currentNumber))
                        {
                            lastNumber.Add(currentNumber);
                            break;
                        }
                    }
                }
                if (currentNumber == newsCount)
                    currentNumber--;
                var news = (from p in db.Tbl_DynamicContents
                            orderby p.ID descending
                            where p.TimeFoPublish.Value.Date <= DateTime.Now
                            select p).Skip(currentNumber).Take(1).Single();
                temp +=
                    string.Format("<div class=\"divRandomNews\"><img src=\"files/1364193007_news.png\" class=\"randomNewsImg\" />" +
                                  "<a class=\"randomNews\" href=\"News.aspx?id={0}\" target=\"_blank\">{1}</a></div>",
                                  news.ID, news.Title);
            }
        }
        return temp;
    }
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Using LINQ to SQL in LINQPad as C# statements look like

IEnumerable<Customer> customers = this.ExecuteQuery<Customer>(@"SELECT top 10 * from [Customers] order by newid()");
customers.Dump();

The generated SQL is

SELECT top 10 * from [Customers] order by newid()
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