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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

5 Answers 5

up vote 19 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
4  
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

An alternate method using index slicing which turns out to be faster and scales better than zip:

def slicezip(a, b):
    result = [0]*(len(a)+len(b))
    result[::2] = a
    result[1::2] = b
    return result

You'll notice that this only works if len(a) == len(b) but putting conditions to emulate zip will not scale with a or b.

For comparison:

a = range(100)
b = range(100)

%timeit [j for i in zip(a,b) for j in i]
100000 loops, best of 3: 15.4 µs per loop

%timeit list(chain(*zip(a,b)))
100000 loops, best of 3: 11.9 µs per loop

%timeit slicezip(a,b)
100000 loops, best of 3: 2.76 µs per loop
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what do you mean by "putting conditions to emulate zip will not scale with a or b"? –  sureshvv Sep 25 at 7:36
    
I simply meant that with zip, if one list is longer than the other, the longer list gets truncated to merge it with the shorter list. One could do this by comparing the lengths of each array and then only assigning a shortened version of the longer one. This checking of lengths and truncation does not take any longer if the arrays get bigger. –  SeanM Sep 26 at 8:40

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

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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