41

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.

0

5 Answers 5

36

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();
2
  • 9
    You could shorten that by removing Select and putting the distance into the OrderBy Sep 16, 2010 at 2:47
  • 1
    If MyStuff is sorted, this could be done in O(n), which OrderBy is not. Something to consider if your list is already sorted and not trivial in size (or this could would execute in a tight loop). Oct 10, 2019 at 20:29
26

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.

1
  • how about if we need 22 instead? Aug 2, 2016 at 9:15
10

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 );
4
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);
2
  • 1
    You should put the the OrderBy after the Where so that it doesn't have to sort as many elements.
    – Gabe
    Sep 16, 2010 at 2:58
  • @Gabe - Thanks for your suggestion. I have modified the code.
    – Cheng Chen
    Sep 16, 2010 at 3:06
0

Since .net 6 MinBy can be used in order to achieve the result in similar manner as in the most upvoted post. It's now a part of standard Linq. usage:

float closest = MyStuff.MinBy(x => Math.Abs(x - 21));

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