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I have

a = [1, 2]
b = ['a', 'b']

I want

c = [1, 'a', 2, 'b']
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1  
@cdleary's answer stackoverflow.com/questions/406121/… provides performance comparison for various ways of "Flattening a shallow list in python" (flattening zip(a,b) gives you the answer). –  J.F. Sebastian Aug 12 '10 at 21:26

4 Answers 4

up vote 18 down vote accepted
[j for i in zip(a,b) for j in i]
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7  
It works, but I can't parse it in my head... –  Nick T Aug 12 '10 at 21:16
2  
[ j for j in i for i in zip(a,b) ] though easier to parse in my head does not work! –  sureshvv Aug 12 '10 at 21:21
5  
Does read weirdly at first :) Mentally chop off everything up to the first for and move it to the end, then read that: for i in zip(a, b), for j in i, j. –  shambulator Aug 12 '10 at 22:18
    
aaah... neat! thanks. –  sureshvv Aug 17 '10 at 5:14
3  
Neat, but doesn't work if one list is 1 element shorter than the other (still should be able to merge). –  btk Dec 3 '12 at 20:49

If the order of the elements much match the order in your example then you can use a combination of zip and chain:

from itertools import chain
c = list(chain(*zip(a,b)))

If you don't care about the order of the elements in your result then there's a simpler way:

c = a + b
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Parsing

[j for i in zip(a,b) for j in i]

in your head is easy enough if you recall that the for and if clauses are done in order, followed a final append of the result:

temp = []
for i in zip(a, b):
    for j in i:
        temp.append(j)

and would be easier had it have been written with more meaningful variable names:

[item for pair in zip(a, b) for item in pair]
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I'm normally very comfortable with LEs, but this double looping got me all confused. Thanks for the nice explanation. –  Jeffrey Jose Aug 14 '10 at 8:18

If you care about order:

#import operator
import itertools
a = [1,2]
b = ['a','b']
#c = list(reduce(operator.add,zip(a,b))) # slow.
c = list(itertools.chain.from_iterable(zip(a,b))) # better.

print c gives [1, 'a', 2, 'b']

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-1 for quadratic time. You can do this in linear time. –  habnabit Aug 12 '10 at 21:09
    
@Aaron Gallagher Fixed, and yet a (subtly) unique answer. –  Nick T Aug 12 '10 at 21:31

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