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I'd like to create a list maxValues containing top 20 values from a list of integers lst.

maxValues = []
for i in range(20):
  maxValues.append(max(lst))
  lst.remove(max(lst))

Is there a more compact code for achieving this task or even built-in function?

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2  
It's not just compactness. Your code (if corrected, the del statement is wrong) is O(n*k), while the other methods are O(nlogn). –  agf Mar 18 '12 at 10:34
    
@agf, Thank you, corrected. –  xralf Mar 18 '12 at 12:12

2 Answers 2

up vote 11 down vote accepted

There's heapq.nlargest():

maxvalues = heapq.nlargest(20, lst)

From the doc:

heapq.nlargest(n, iterable, key=None)

Return a list with the n largest elements from the dataset defined by iterable. key, if provided, specifies a function of one argument that is used to extract a comparison key from each element in the iterable: key=str.lower Equivalent to: sorted(iterable, key=key, reverse=True)[:n]

Or at the same way use heapq.nsmallest() if you want the smallest.

IMPORTANT NOTE from the doc:

The latter two functions [nlargest and nsmallest] perform best for smaller values of n. For larger values, it is more efficient to use the sorted() function. Also, when n==1, it is more efficient to use the built-in min() and max() functions.

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Thanks. That is better than my answer. Likely to be faster when the list is very long because there is no need to sort the whole list. –  Rémi Mar 18 '12 at 9:43
    
@Rémi: I added a note from the doc that compares when the two solutions. –  Rik Poggi Mar 18 '12 at 9:49
    
Thanks for complete answer. –  xralf Mar 18 '12 at 9:58
sorted(lst)[-20:]

is the shortest I can think of. Likely to be faster, too.

(edited: first try found the min instead of the max)

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I accepted the other answer because it's more complete but I used your simple fast solution. –  xralf Mar 18 '12 at 9:58

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