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I have string which contains every word separated by comma. I want to split the string by every other comma in python. How should I do this?

eg, "xyz,abc,jkl,pqr" should give "xyzabc" as one string and "jklpqr" as another string

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Your question is not clear. If you split by every comma the result would be xyz abc jul pqr as four different strings. –  Saphrosit Feb 20 '12 at 18:48
    
ok example please answer according to example –  username_4567 Feb 20 '12 at 18:49

5 Answers 5

up vote 5 down vote accepted

It's probably easier to split on every comma, and then rejoin pairs

>>> original = 'a,1,b,2,c,3'
>>> s = original.split(',')
>>> s
['a', '1', 'b', '2', 'c', '3']
>>> alternate = map(''.join, zip(s[::2], s[1::2]))
>>> alternate
['a1', 'b2', 'c3']

Is that what you wanted?

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One mild warning: this has the possibly unintended consequence that if original doesn't have an even number of elements the last entry is silently lost. Maybe that's okay, although I prefer to force myself to be explicit when I want that. –  DSM Feb 20 '12 at 19:04
    
True - I'm not sure what the cleanest way to handle it here is. Maybe just wrap it in a function and check explicitly. –  Useless Feb 20 '12 at 19:10
1  
@Useless: You could use izip_longest (see my answer). –  Marcin Feb 20 '12 at 19:31
    
Apparently I can't test that in the office, but if I have a chance to verify an izip_longest version at home, I'll edit it in. Thanks for the pointer! –  Useless Feb 20 '12 at 20:02

Split, and rejoin.

So, to split:

In [173]: "a,b,c,d".split(',')
Out[173]: ['a', 'b', 'c', 'd']

And to rejoin:

In [193]: z = iter("a,b,c,d".split(','))
In [194]: [a+b for a,b in zip(*([z]*2))]
Out[194]: ['ab', 'cd']

This works because ([z]*2) is a list of two elements, both of which are the same iterator z. Thus, zip takes the first, then second element from z to create each tuple.

This also works as a oneliner, because in [foo]*n foo is evaluated only once, whether or not it is a variable or a more complex expression:

In [195]: [a+b for a,b in zip(*[iter("a,b,c,d".split(','))]*2)]
Out[195]: ['ab', 'cd']

I've also cut out a pair of brackets, because unary * has lower precedence than binary *.

Thanks to @pillmuncher for pointing out that this can be extended with izip_longest to handle lists with an odd number of elements:

In [214]: from itertools import izip_longest

In [215]: [a+b for a,b in izip_longest(*[iter("a,b,c,d,e".split(','))]*2, fillvalue='')]
Out[215]: ['ab', 'cd', 'e']

(See: http://docs.python.org/library/itertools.html#itertools.izip_longest )

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1  
why not just zip(z, z)? –  pillmuncher Feb 20 '12 at 19:21
    
@pillmuncher Well, zip(z,z) can't be a oneliner, and this demonstrates the zip-with-list-multiply idiom. Good point on itertools.izip_longest(), though. –  Marcin Feb 20 '12 at 19:24
str = "a,b,c,d".split(",")
print ["".join(str[i:i+2]) for i in range(0, len(str), 2)]
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(a) don't use str as a variable (b) Use of indices in list comprehensions can be rather cryptic. –  Marcin Feb 20 '12 at 19:16

Just split on every comma, then combine it back:

splitList = someString.split(",")
joinedString = ','.join([splitList[i - 1] + splitList[i] for i in range(1, len(splitList), 2)]
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Like this

"a,b,c,d".split(',')
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do u mean "a,b,c,d".split(',')?But it'll give me a b c d which i don't want –  username_4567 Feb 20 '12 at 18:48

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