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I have a table called Quotes in linq-to-sql that contains 2 columns: author and quote. How do you select both columns of a random row?

Thanks.

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5 Answers 5

up vote 27 down vote accepted
Random rand = new Random();
int toSkip = rand.Next(0, context.Quotes.Count);

context.Quotes.Skip(toSkip).Take(1).First();
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What does this line do: int toSkip = rand.Next(0, context.Quotes.Count); ? –  frenchie Jan 30 '11 at 4:10
    
It is generating a number that is the index of the random quote. It says, pick a random number between 0 and the number of Quotes in the DataContext. –  Nathan Anderson Jan 30 '11 at 4:14
    
ah ok! it's an extension method on random types. –  frenchie Jan 30 '11 at 4:34
    
If you have 3 items, and you do random between 0 and 3, and you generate 3, it skips 3, takes 1 which doesn't exist and throws an exception... Shouldn't it be Count-1? –  Phill Jan 30 '11 at 4:54
1  
the maxValue argument passed to the Random's Next function is not one of the possible values generated (the value generated is always < maxValue). –  Nathan Anderson Jan 30 '11 at 5:02

If you're doing Linq-to-Objects and don't need this to work on SQL, you can use ElementAt() instead of the more verbose Skip(toSkip).Take(1).First() :

var rndGen = new Random(); // do this only once in your app/class/IoC container
int random = rndGen.Next(0, context.Quotes.Count);
context.Quotes.ElementAt(random);
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I did it something like this:

list.ElementAt(rand.Next(list.Count());

I stuck a bunch of random operations, including select and shuffle, as extension methods. This makes them available just like all the other collection extension methods.

You can see my code in the article Extending LINQ with Random Operations.

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Here is one way to achieve what you want to do:

var quotes = from q in dataContext.Quotes select q;
int count = quotes.Count();
int index = new Random().Next(count);
var randomQuote = quotes.Skip(index).FirstOrDefault();
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1 First create a class with rend property

public class tbl_EmpJobDetailsEntity
{
    public int JpId { get; set; }
    public int rend
   {
    get
      {
        Random rnd = new Random();
        return rnd.Next(1, 100);
      }
    }
}

2 Linq query

var rendomise = (from v in db.tbl_EmpJobDetails
select new tbl_EmpJobDetailsEntity
{
   JpId=v.JpId
}).OrderBy(o=>o.rend);
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