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Filter function returns a sublist of elements which return true for a given function. Is it possible to get the list of elements which return false in a different list without going over the entire list again.

Example:

trueList,falseList = someFunc(trueOrFalseFunc,list)

PS : I know it can be done by initializing two empty lists and appending elements to each based on the return value of the function. The list under consideration can be potentially very huge and there might very few elements that might return true. As the append function is costly, is there a better way to do it ?

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Yes, but you'll have to write someFunc on your own :) The stdlib doesn't have anything like this built in, as it doesn't work well with generators (you can't easily return two generators from a function that operate on the same context). –  Niklas B. Apr 9 '12 at 20:37
    
i should have mentioned that I was looking for a one liner..i know it can be done via for loop and append but I am concerned about the time for append operation on each element. –  Graddy Apr 9 '12 at 20:43
1  
One liners are not necessarily faster and they may be slower. Go for 'easy to understand' over 'shorter so it must be faster' thinking! –  the wolf Apr 9 '12 at 20:45
1  
@Graddy: You contradict yourself. First you say you want a one-liner (which is silly, because the problem is too complex to be put into one line without forcing it). Then you say that performance is the important point. –  Niklas B. Apr 9 '12 at 20:46
2  
@Graddy: What do you mean "worried about the time for append operation" - how else would those lists be constructed if not by appending the filtered items to the result lists? The fact that you don't have to write .append() in a list comprehension doesn't mean that the operation doesn't happen. –  Tim Pietzcker Apr 9 '12 at 20:48

4 Answers 4

up vote 4 down vote accepted

Try this, using iterators:

from itertools import tee

def partition(lst, pred):
    l1, l2 = tee((pred(e), e) for e in lst)
    return (x for cond, x in l1 if cond), (x for cond, x in l2 if not cond)

Use it like this, and remember that the values returned are iterators:

lst = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]
evens, odds = partition(lst, lambda x: x%2 == 0)

If you need lists for some reason, then do this:

list(evens)
> [0, 2, 4, 6, 8]
list(odds)
> [1, 3, 5, 7, 9]
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2  
Elegant solution :) +1 –  Niklas B. Apr 9 '12 at 21:05
1  
This is especially convenient if an inexhaustible generator is used (like lst = itertools.count()). +1 –  Tim Pietzcker Apr 10 '12 at 5:53
    
This solution have quite big memory footprint. –  Trismegistos May 23 '12 at 14:35
    
@Trismegistos not that much really, it's using generators all over the place. –  Óscar López May 23 '12 at 14:51
    
@ÓscarLópez but after you evaluate first returned iterator you will have copy of whole list in memory. Because you evaluated first return value you have to evaluate l1 iterator and to do this you will have to evaluate tee(...) expresion and until l2 is evaluated you will have to hold whole list [pred(e), e) for e in lst] in memory otherwise you would not be able to evaluate l2 -- (pred(e), e) for e in lst) become list because it was created when l1 was evaluated. –  Trismegistos May 23 '12 at 15:09
def someFunc(trueorfalsefunc, l):
    trueList = []
    falseList = []
    for item in l:
        if trueorfalsefunc(item):
            trueList.append(item)
        else:
            falseList.append(item)
    return trueList, falseList

So, for example:

>>> someFunc(bool, [1,2,0,"", "a"])
([1, 2, 'a'], [0, ''])
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Yep, I think it can't be done much simpler than this :) –  Niklas B. Apr 9 '12 at 20:40

If you want to go for a one liner you can do this: (I'm switching from dicts to lists as Niklas B. suggested to improve readability)

>>> some_list=[True, False, True, False, False]
>>> reduce(lambda (true,false),x: (true + [x], false) if x else (true, false + [x]), some_list, ([],[]))
([True, True], [False, False, False])
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Consider my tiny mind blown. What the...? –  Tim Pietzcker Apr 9 '12 at 20:45
    
ahaha I can do better wait a sec. –  luke14free Apr 9 '12 at 20:46
    
Hard to read, but meets the spec of 'one liner' +1 –  the wolf Apr 9 '12 at 20:46
    
Why the heck do you use a dictionary instead of a tuple? This would be a lot simpler otherwise. –  Niklas B. Apr 9 '12 at 20:48
    
That's what I meant: reduce(lambda (true,false),x: (true + [x], false) if func(x) else (true, false + [x]), lst, ([],[])) –  Niklas B. Apr 9 '12 at 20:49

You could use generator comprehensions, which should help on performance and facilitate cleaner code. I really am not sure if this will be satisfactory for the rest of your program though. It depends on how you're using these returned results.

trueList = (elem for elem in list if trueOrFalseFunc(elem) )
falseList = (elem for elem in list if elem not in trueList )
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this traverses the list twice.. –  Graddy Apr 9 '12 at 21:15
    
That's certainly true. I was looking for a compromise between concise code and performance. The single-pass for-loop, in my view, is all-performance, meanwhile two list comprehensions is all-concise. I was thinking this is a bit in the middle, which may be useful in some contexts. Especially if you did not need anything in falseList until after processing everything in trueList. In fact, in that case you'd probably be better off writing a set subtraction function to use on the original list and the ultimate result of trueList. –  EMS Apr 9 '12 at 21:19

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