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I have a List, MyStuff has a property of Type Float.

There are objects with property values of 10,20,22,30.

I need to write a query that finds the objects closest to 21, in this case it would find the 20 and 22 object. Then I need to write one that finds the object closes to 21 without going over, and it would return the object with a value of 20.

I have no idea where/how to begin with this one. Help?

Thanks.

Update - wow there are so many awesome responses here. Thanks! I don't know which one to follow so I will try them all. One thing that might make this more (or less) interesting is that the same query will have to apply to LINQ-to-SQL entities, so possibly the answer harvested from the MS Linq forums will work the best? Don't know.

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Er, 22 is over 21.... surely it would find 20? –  cjk Sep 16 '10 at 11:50
    
Yes I meant 20, sorry about the screwup. –  Snowy Sep 16 '10 at 15:02
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4 Answers

up vote 11 down vote accepted

Here's a solution that satisfies the second query in linear time:

var pivot = 21f;
var closestBelow = pivot - numbers.Where(n => n <= pivot)
                                  .Min(n => pivot - n);

(Edited from 'above' to 'below' after clarification)

As for the first query, it would be easiest to use MoreLinq's MinBy extension:

var closest = numbers.MinBy(n => Math.Abs(pivot - n));

It's also possible to do it in standard LINQ in linear time, but with 2 passes of the source:

var minDistance = numbers.Min(n => Math.Abs(pivot - n));
var closest = numbers.First(n => Math.Abs(pivot - n) == minDistance);

If efficiency is not an issue, you could sort the sequence and pick the first value in O(n * log n) as others have posted.

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Try sorting them by the absolute value of the difference between the number and 21 and then take the first item:

float closest = MyStuff
    .Select (n => new { n, distance = Math.Abs (n - 21) })
    .OrderBy (p => p.distance)
    .First().n;

Or shorten it according to @Yuriy Faktorovich's comment:

float closest = MyStuff
    .OrderBy(n => Math.Abs(n - 21))
    .First();
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4  
You could shorten that by removing Select and putting the distance into the OrderBy –  Yuriy Faktorovich Sep 16 '10 at 2:47
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Based on this post at the Microsoft Linq forums:

var numbers = new List<float> { 10f, 20f, 22f, 30f };
var target = 21f;

//gets single number which is closest
var closest = numbers.Select( n => new { n, distance = Math.Abs( n - target ) } )
  .OrderBy( p => p.distance )
  .First().n;

//get two closest
var take = 2;
var closests = numbers.Select( n => new { n, distance = Math.Abs( n - target ) } )
  .OrderBy( p => p.distance )
  .Select( p => p.n )
  .Take( take );       

//gets any that are within x of target
var within = 1;
var withins = numbers.Select( n => new { n, distance = Math.Abs( n - target ) } )
  .Where( p => p.distance <= within )
  .Select( p => p.n );
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List<float> numbers = new List<float>() { 10f, 20f, 22f, 30f };
float pivot = 21f;
var result = numbers.Where(x => x >= pivot).OrderBy(x => x).FirstOrDefault();

OR

var result = (from n in numbers
              where n>=pivot
              orderby n
              select n).FirstOrDefault();

and here comes an extension method:

public static T Closest<T,TKey>(this IEnumerable<T> source, Func<T, TKey> keySelector, TKey pivot) where TKey : IComparable<TKey>
{
    return source.Where(x => pivot.CompareTo(keySelector(x)) <= 0).OrderBy(keySelector).FirstOrDefault();
}

Usage:

var result = numbers.Closest(n => n, pivot);
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1  
You should put the the OrderBy after the Where so that it doesn't have to sort as many elements. –  Gabe Sep 16 '10 at 2:58
    
@Gabe - Thanks for your suggestion. I have modified the code. –  Danny Chen Sep 16 '10 at 3:06
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