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Given a directory of files all with numeric names, I currently sort and filter the directory list in two steps.

#files = os.listdir(path)
files = ["0", "1", "10", "5", "2", "11", "4", "15", "18", "14", "7", "8", "9"]

firstFile =  5
lastFile  = 15

#filter out any files that are not in the desired range
files = filter(lambda f: int(f) >= firstFile and int(f) < lastFile, files)

#sort the remaining files by timestamp
files.sort(lambda a,b: cmp(int(a), int(b)))

Is there a python function that combines the filter and sort operations so the list only needs to be iterated over once?

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1  
I doubt there's a python library way to do it. You might find a recipe on activestate or google. Or you could definitely write your own. But is this a bottleneck or are you prematurely optimizing? –  Falmarri Dec 20 '10 at 17:42
    
@Falmarri list comprehensions and generator expressions solve this problem elegantly and efficiently. I suppose that's not library, but it is language. –  Rafe Kettler Dec 20 '10 at 17:44
    
@Rafe: He's not asking to do it in one line, he's asking to do it in one pass of the list. –  Falmarri Dec 20 '10 at 18:15
1  
A faster and more concise sort would be: files.sort(key=int). Using key means each item is converted to integer just one time, rather than for each compare. –  Steven Rumbalski Dec 20 '10 at 19:07
2  
Sorting is worse than O(n) to begin with--there's little benefit in taking an O(n log n) algorithm and eliminating one O(n). –  Glenn Maynard Dec 20 '10 at 20:25

2 Answers 2

up vote 16 down vote accepted

Those are orthogonal tasks, I don't think they should be mixed. Besides, it's easy to filter and sort separately in one line with generator expressions

files = sorted( (f for f in files if firstFile <= int(f) < lastFile), key=int)
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Although this example ends up creating a tuple of all files that meet the filter's requirements the premise is still the same. This is also (as far as I see so far) the most "Pythonic" of all the answers. –  WillMatt Dec 20 '10 at 22:28
1  
No, it doesn't create a tuple, it creates a generator. There is no temporary tuple. –  Lennart Regebro Dec 20 '10 at 22:34
    
Ahhh ok my mistake. I'm still a relative Python n00b... –  WillMatt Dec 20 '10 at 23:08

The most straightforward way to do this is (in 2.6 at least) is to create a filtering generator using itertools.ifilter and then sort it:

>>> from itertools import ifilter
>>> seq = [ 1, 43, 2, 10, 11, 91, 201]
>>> gen = ifilter(lambda x: x % 2 == 1, seq)
>>> sorted(gen)
[1, 11, 43, 91, 201]

The underlying sequence doesn't get traversed and filtered until sorted starts iterating over it.

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This won't change what actually happens--sorted on an iterator still has to expand the iterator to a list. –  Glenn Maynard Dec 20 '10 at 20:30
    
Sure. But that expanded list is the list that sorted sorts and returns. (Admittedly, you could also use filter and then call sort on the result, which I'm pretty sure does exactly the same thing.) –  Robert Rossney Dec 20 '10 at 20:58
    
Isn't this functionally equivalent to KennyTM's solution? –  Ben Dec 21 '10 at 15:26
    
It is. Really, it's hard to justify using ifilter instead of a generator expression. –  Robert Rossney Dec 21 '10 at 20:30

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