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I have a generic list of integer and it contains random numbers. How would I select the last n elements from the list using LINQ?

I know can use myList.GetRange(index, count) to get the last n elements from the list. Is there a way to do it in LINQ?

THanks

regards, Balan

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In general, I would not use Linq instead of functionality built into a type because it may be less performant. Linq works on IEnumerable meaning that the whole list must be traversed. GetRange may be more optimal. – Maciej Apr 2 '12 at 5:28
    
@Maciej I was under the impression that LINQ was transparently optimised when operating on ICollection and IList. Depending on the query, it does not necessarily mean that the entire list must be traversed. – Bradley Smith Apr 2 '12 at 5:53
    
@Bradley: Yes, in some cases it is optimized, but not always. See stackoverflow.com/questions/6245172/… – Maciej Apr 2 '12 at 11:13
up vote 3 down vote accepted
var count = myList.Count;

myList.Skip(count-n)

Update:

removed redundant Take.

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Use skip:

myList.Skip(index).ToArray()
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You could use myList.Reverse().Take(n) to achieve what you want.

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5  
You'd need an additional call to Reverse - myList.Reverse().Take(n).Reverse() - to return the elements in the same order as they are stored in the original list. – BACON Apr 2 '12 at 5:18
    
@BACON Good point, though order may not be important if the list contains only random numbers. – Bradley Smith Apr 2 '12 at 5:20

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