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What is the best way to get the n highest values of a given list? If we are in a case where n is rather small compared to the length of alist, is there something more efficient than:

return alist[0:n]
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marked as duplicate by LittleBobbyTables, EdChum, ollo, Adam Rackis, interjay Feb 27 '13 at 19:20

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You got the n lowest values instead there. You probably want l[-n:]. – Martijn Pieters Feb 27 '13 at 15:46
This is probably the most concise, but not the most efficient. What's your definition of "best"? – Silas Ray Feb 27 '13 at 15:47
It's not the most concise: sorted(l)[-n:] – larsmans Feb 27 '13 at 15:50
@larsmans Fair enough, though that is perilously close to being pedantic... – Silas Ray Feb 27 '13 at 15:51
Yes of course, it was -n, sorry. But the question was more about using a sorting algorithm that stops when it has found the n higest (or lowest) values instead of sorting the whole list – lizzie Feb 27 '13 at 15:53

2 Answers 2

up vote 5 down vote accepted

Use the heapq module:

import heapq

return heapq.nlargest(n, l)        

Using a heap queue is more efficient than a full sort provided you are looking for a relatively smaller number of n elements. If n is larger, sorted(l)[-n:] is more efficient. The heapq.nlargest() implementation does test for these conditions and will switch to using sorted() if it can determine n is equal to or larger than len(l).

Note that the heapq module will modify the list in-place (heapq.heapify() is called on the list).

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Your method is very concise, but it may not be the most efficient. One possibility would be to implement a deterministic selection algorithm (As is explained here in text and here in video), then call that for the values you want. That would give you and O(n) operation overall, and since you're talking about going through a list I don't think you'll be able to get significantly better.

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