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I'm wondering if there is not a way to compute the complement of a list comprehension in Python. Something like:

evens = [i in range(10) if i % 2 == 0]
odds  = [i in range(10) if i % 2 != 0]

is there a way to get both evens and odds in one call? For a very large list, or a more expensive if statement, I think this would save a lot of time.

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marked as duplicate by David Robinson May 13 '14 at 20:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I would recommend looking into sets: docs.python.org/2/library/sets.html –  Nicholas Flees May 13 '14 at 20:50
1  
@NicholasFlees How would sets help? –  Waleed Khan May 13 '14 at 20:50
    
But probably the OP wants to split the lists. –  Hans Then May 13 '14 at 20:52
    
I'm not sure what you mean by complement. Do you mean a way to divide a list into two lists based on a condition? –  David Robinson May 13 '14 at 20:52
1  
Possible duplicate: Python: split a list based on a condition –  itsjeyd May 13 '14 at 20:56

4 Answers 4

up vote 4 down vote accepted

I believe this question has been asked before, but I am not finding the link currently.

If you are trying to get more than one predicate and you only want to iterate once over the original generator, then you will have to use a simple for loop.

evens = []
odds = []

for i in xrange(10):
   if i % 2 == 0: evens.append(i)
   else: odds.append(i)

As @dawg pointed out, the logic inside the loop can be made more concise using clever indexing.

for i in xrange(10):
   (evens,odds)[i%2].append(i)
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This does seem to be the most obvious way to get there, no sure why I didn't see it before, thanks. –  Mike May 13 '14 at 20:56
    
@MikeP., You are welcome. –  merlin2011 May 13 '14 at 20:57
1  
How about (evens,odds)[i%2].append(i) instead of your if/else –  dawg May 13 '14 at 21:29
    
@dawg, That is more concise, but arguably less readable. I will append it though. –  merlin2011 May 13 '14 at 21:47

itertools.groupby is what I'd use.

In [1]: import itertools as it

In [2]: key = lambda i: i%2 == 0

In [3]: l = list(range(10))

In [4]: l.sort(key=key)

In [5]: [list(i[1]) for i in it.groupby(l, key=key)]
Out[5]: [[1, 3, 5, 7, 9], [0, 2, 4, 6, 8]]
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Note that if you're concerned about the if condition being expensive (as the OP is), this will have far more if evaluations than the original one would. (Sorting requires asymptotically about n log (n) comparisons, and then another n evaluations have to be evaluated again for the groupby, compared to a total of 2n comparisons for the original). –  David Robinson May 13 '14 at 21:00
    
@DavidRobinson, AFAIK Python's built-in sort function calls key argument once for each input; so, it's just n conditions. And Python's timsort is pretty fast for long ascending/descending runs. –  utdemir May 13 '14 at 21:13
    
ah, good to know. Makes sense. –  David Robinson May 13 '14 at 21:17

I would do one of the following:

evens = [i in range(10) if i % 2 == 0]
odds  = [i in range(10) if i not in evens]

Or with better performances:

evens = [i in range(10) if i % 2 == 0]
evens_set = set(evens)
odds = [i in range(10) if i not in evens_set]

Working with set is better in performance, as the not in query costs O(1) instead of O(n) in lists

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Sets would be nice here, but I'm often working with unhashable types, like a list of dicts. –  Mike May 13 '14 at 20:55
    
If the list items are not hashable, you'll need to pay the O(n) complexity for each query on the other list, or make some workaround with hashing –  SomethingSomething May 13 '14 at 20:59

In short, you can get both True and False cases in one call, but you'd still need to split them into two lists. You could do

range_10 = range(10)
odds = range_10[1::2]
evens = range_10[::2]

but the benefit of that would be negligible. (In fact, you'd be creating three lists instead of two). You'd only want to do that if the cost of range(10) was so high that it would offset creating two lists.

Using slicing like I did should be slightly faster than using a test and explicitly appending.

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