10

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?

17

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

  • 1
    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
  • 1
    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
  • I don't know that it doesn't but there are many sorting algorithms that don't require additional memory for the main list itself and I would assume that .sort utilizes one of them. To be specific, I'm potentially calling this sort operation millions of times and I'd rather not have to continually allocate and free temporary memory. – sizzzzlerz Sep 8 '10 at 15:00
  • 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
-1

"in place" doesn't mean much. You want this.

p[i:j] = list( sorted( p[i:j] ) ) 
  • It can mean a lot in terms of memory consumption and hence performance. This does not answer OPs question. – halfdan Jun 10 '19 at 0:50
-1

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
  • You could just write p[i:j] = l – kennytm Sep 8 '10 at 14:49

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.