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I have an unsorted list of integers in a Python list. I want to sort the elements in a subset of the full list, not the full list itself. I also want to sort the list in-place so as to not create new lists (I'm doing this very frequently). I initially tried

p[i:j].sort()

but this didn't change the contents of p presumably because a new list was formed, sorted, and then thrown away without affecting the contents of the original list. I can, of course, create my own sort function and use loops to select the appropriate elements but this doesn't feel pythonic. Is there a better way to sort sublists in place?

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3 Answers

You can write p[i:j] = sorted(p[i:j])

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+1: Beat me by seconds with a simpler solution. –  S.Lott Sep 8 '10 at 14:50
    
Still not what the operator desires, but what I was going to suggest. It still has to make a separate sub-array and sort it before assigning it to p[i:j]. I've thought for some time that there should be an option in sort() to specify the range to sort over. That would eliminate the unnecessary memory usage. –  Justin Peel Sep 8 '10 at 14:54
    
That certainly addresses the "how" but wouldn't this create at least 2 new lists? One for the p[i:j] inside sorted and the second for the result from sorted. –  sizzzzlerz Sep 8 '10 at 14:54
    
@sizzzzlerz: How do you know sort() doesn't create O (n log(n)) temporary lists? What's wrong with one extra list? –  S.Lott Sep 8 '10 at 14:58
2  
@sizzzzlerz: "continually allocate and free temporary memory" That's not much overhead in Python. Until you can prove this actually is the bottleneck, don't prematurely optimize. Indeed, creating a list that requires sorting a sublist may indicate a poor choice of algorithm which creates the list. Indeed, a list may be inappropriate when there are sublists -- you may want to consider using some kind of tree to avoid all the sorting. –  S.Lott Sep 8 '10 at 15:05
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"in place" doesn't mean much. You want this.

p[i:j] = list( sorted( p[i:j] ) ) 
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This is because p[i:j] returns a new list. I can think of this immediate solution:

l = p[i:j]
l.sort()
a = 0
for x in range(i, j):
    p[x] = l[a]
    a += 1
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You could just write p[i:j] = l –  KennyTM Sep 8 '10 at 14:49
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