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I have 2 lists in Python and I want to choose, for every index either an element from list A or list B.

I managed to do it easily but this solution has bad performance and it doesn't seem very elegant.
Can anybody sugest an alternative that doesn't rely in these for cycles with if's inside?

I'll post the code here:

def scramble(list1, list2):
    finalList = []
    for i in range(32): # the list has 32 elements
        if randint(1,2) == 1:
            finalList.append(list1[i])
        else:
            finalList.append(list2[i])
    return finalList
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4 Answers 4

import random
from itertools import izip

l1 = ['a', 'b', 'c', 'd', 'e', 'f']
l2 = [0, 1, 2, 3, 4, 5]

[random.choice(pair) for pair in izip(l1, l2)]
# e.g. [0, 1, 'c', 3, 'e', 'f']
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This is the way! +1 –  redShadow Jul 27 '11 at 15:02
    
Nice. But is it faster, or just nicer looking? –  combatdave Jul 27 '11 at 15:07
    
Well, this looks like it. I'm completely new to Python so I'll test it and let you know. Thanks! –  jbssm Jul 27 '11 at 15:07
    
@combatdave: I just timed it and my version is about 3x faster for 2 lists holding 1e6 integers each. –  mhyfritz Jul 27 '11 at 15:19
    
Well, it works! And it's about 2x as fast. Thank you. Just one thing. Since list1 and list2 are always of same size, shouldn't I use zip() instead of izip() ? –  jbssm Jul 27 '11 at 15:20

You can do this in a single list comprehension like so:

newList = [x if randint(0,1) else y for x, y in zip(l1, l2)]

I'm not certain whether that actually improves performance much, but it's clean.

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yep, but it's also just an uglier way to write the "for loop with ifs inside".. –  redShadow Jul 27 '11 at 15:04

How about:

def scramble(list1, list2):
    return [random.choice([list1[i], list2[i]]) for i in range(len(list1))]

It assumes len(list1)==len(list2). I'm not sure that this would necessarily be any faster though.

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Well, it's much nicer looking, but it takes the same time. –  jbssm Jul 27 '11 at 15:22

You could use a "clever" list comprehension:

from random import choice

def scramble(l1,l2):
    length = min(len(l1),len(l2))
    lists = (l1,l2)
    return [choice(lists[i]) for i in xrange(0,length)]

Though it's less readable.

share|improve this answer
    
Hi Mark. I think this will take about the same time, perhpas just a bit less, since there is still the for cycle altough it removed if comparisons. –  jbssm Jul 27 '11 at 15:23
    
@jbssm - I did some profiling and changed my code accordingly. This version seems to be a hair faster than mhyfritz's, but I voted for his because it is more elegant and the main performance boost I got was in using choice, rather than randint. If your interested I can add the profiling results to the answer. –  Mark Evans Jul 27 '11 at 16:15
    
Thank you Mark. I'll keep this answer as well. –  jbssm Jul 28 '11 at 14:04

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