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I have a procedure which requires me to check each value in a List against every other value in the same List. If I identify something that meets some requirement, I add it to another List to be removed after this procedure is finished.

Pseudo-code:

for value1 in my_list:
    for value2 in my_list:
        if meets_requirements(value1, value2):
            to_be_removed.append(value2)

This looks ugly to me. Naming conventions for the variables are difficult to assign or understand. There's the potential (although very un-likely, in this case) I could accidentally modify the list while iterating it. There may be issues with performance.

Is there a better alternative to performing these double iterations?

If not, are there any ways I can make this more readable and "feel" like quality code?

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2  
Check out itertools, specifically product and combinations –  YXD Dec 1 '13 at 21:22
    
Can you clarify whether my_list is supposed to refer to the same list in both places? Or do value1 and value2 come from separate lists? –  Mark Dickinson Dec 1 '13 at 21:32
    
@MarkDickinson - Same list –  Kurtis Dec 1 '13 at 21:41
    
What sort of 'requirements' are involved? Is it something that could be used to presort the list, to reduce the number of tests needed? Are they transitive, ie does meets_requirements(value1, value2) imply meets_requirements(value2, value1)? Can you calculate possible values of value2 from knowing value1? –  Hugh Bothwell Dec 1 '13 at 22:05
    
Basically, I am identifying and removing sub-strings of other Strings in the same list. Sort of a de-duplication if you will. The only catch is that each String has an associated 'count' and if the the count of the Strings is too different (delta > 10) then I do not remove it. Sorry for being so vague -- an NDA is keeping me from disclosing too much. Let me know if that helps at all! –  Kurtis Dec 1 '13 at 22:31

3 Answers 3

up vote 5 down vote accepted

You don't have to find the removed values first. Just create the list you need in one shot:

my_list = [y for y in my_list 
             if not any(meets_requirement(x,y) for x in my_list)]
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2  
And although it's not necessarily equivalent, it's probably better to remove the [] from inside the any() and let it short-circuit. Provided meets_requirement has no side-effects it would have the same result. –  Steve Jessop Dec 1 '13 at 21:45
    
Thanks! I like your suggestion. –  bcorso Dec 1 '13 at 21:48
    
From some quick, non-scientific tests on 'real data' I found that using this method as opposed to itertools.product runs significantly quicker. I'm not trying to pre-optimize; just weighing the pro's and con's of both methods. Is this typical of list comprehensions and should I expect linear behavior? –  Kurtis Dec 1 '13 at 22:56
    
I'd guess it's because with the other methods itertools.product first creates a list of every possible combination of (a,b) and then tests every combination. Whereas, in the method above the any() method is short-circuited (as Steve Jessop pointed out) so that it will remove 'y' as soon as it finds a True value from meets_requirements() without testing further combinations. In general, I don't think itertools is slower if you actually need to test every combination, it's just not necessary in this case. –  bcorso Dec 1 '13 at 23:09
    
Also, both methods are O(n^2) not O(n) because for each element you have to test against all others elements. –  bcorso Dec 1 '13 at 23:17

You can use itertools.product here. Though this is still equivalent to nested loops, but much more readable:

from itertools import product
for value1, value2 in product(my_list, repeat=2):
    if meets_requirements(value1, value2):
        to_be_removed.append(value2)
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itertools.product is implemented in C, thus not quite the same. –  siebz0r Dec 1 '13 at 21:29
    
@siebz0r I was talking in terms of Big-O time complexity. :-) –  Ashwini Chaudhary Dec 1 '13 at 21:42
    
The advantage I see in using this method over List Comprehension is that it is much easier to digest and use for someone coming from a procedural background (other, future developers). Also, it's easier to include more logic during the comparison if need-be. Are there any other benefits I am over-looking? –  Kurtis Dec 2 '13 at 0:07
    
IMHO list comprehension is more Pythonic, and I think you'll find that other python developers think it's easier to digest. –  bcorso Dec 2 '13 at 0:45

I would have used a list comprehension together with product() from the itertools module:

from itertools import product
to_be_removed = [v2 for v1, v2 in product(mylist, repeat=2) 
                               if meets_requirement(v1, v2)]

Following @tobias_k's comment, if you don't want multiple instances of the same values in your result, and if the order of the elements doesn't matter, you can use a set comprehension instead:

to_be_removed = {v2 for v1, v2 in product(mylist, repeat=2) 
                               if meets_requirement(v1, v2)}
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Don't know whether that's intentional, but this way to_be_removed may have many copies of v2 in it. –  tobias_k Dec 1 '13 at 21:30
    
@tobias_k: What do you mean? Each possible pair v1, v2 will be checked and, if meets_requirement() returns True, v2 will be added to the list, just as in the OP's code. I don't see the difference? –  Tim Pietzcker Dec 1 '13 at 21:37
1  
yes, there is no difference; it's the same behaviour as in OPs code. v2 will be added for each v1 with which it meets the requirements. I'm just wondering whether this behaviour is intentional in OPs code. –  tobias_k Dec 2 '13 at 9:25
    
@tobias_k: Good point. I've added a set comprehension example as well. –  Tim Pietzcker Dec 2 '13 at 10:29

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