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Here's a string that I'm trying to parse in python

    s1="One : Two : Three : Four  Value  : Five  Value  : Six  Value : Seven  Value : Eight  Value :"

Can someone tell me a re function I can use to parse the above string so that s1 becomes as follows without any ':'

One

Two

Three

Four Value

Five Value 

Six Value

Seven Value

Eight Value 

I've tried making use of strip, lstrip and rstrip after spliting the string by using the following code but I don't get the format I need

    res1=s1.split(' : ')

UPDATE: Thanks a lot for your answers but the output I'm getting looks like this whether I use

1->

    for index in s1:
      print index

or....

2->

    pprint(s1)

OUTPUT:

O

n

e

:

T

w

o

:

T

h

r

e

e

:

F

o

u

r

V

a

l

u

e

:

F

i

v

e

V

a

l

u

e

:

S

i

x

V

a

l

u

e

:

S

e

v

e

n

V

a

l

u

e

:

E

i

g

h

t

V

a

l

u

e

:

share|improve this question
    
Not a regex, but would do the job filter(lambda x: x != '', [item.strip() for item in s1.split(':')]) or [item.strip() for item in s1.split(':') if item.strip() != ''] or [item for item in map(lambda x: x.strip(), s1.split(':')) if item != ''] –  DJV Mar 1 '13 at 9:54
    
That's pythonic and concise. Post it as an answer! –  David Zwicker Mar 1 '13 at 9:57
    
actullay, your original code should work. have you tried print s1.split(' : ') –  theAlse Mar 1 '13 at 9:57
    
he has a " :" at the end. That sort of messes up. –  DJV Mar 1 '13 at 9:58
2  
Or because you are doing for index in s1: instead of for index in res1: –  DJV Mar 1 '13 at 10:43

5 Answers 5

up vote 6 down vote accepted
'\n'.join(a.strip() for a in s1.split(':'))

returns

One
Two
Three
Four  Value
Five  Value
Six  Value
Seven  Value
Eight  Value

If you need extra empty lines:

'\n\n'.join(a.strip() for a in s1.split(':'))
share|improve this answer
    
+1 beautiful and simple –  Private Mar 1 '13 at 10:05
    
I tried that but the result I get is this: O n e : T w o : T h r e e : F o u r V a l u e : F i v e V a l u e : S i x V a l u e : S e v e n V a l u e : E i g h t V a l u e : –  Paulie Mar 1 '13 at 10:11
    
@NidhiPaul - pasting such strings as a comment won't help much. –  eumiro Mar 1 '13 at 10:12
1  
@NidhiPaul did you forget the .split(':')? –  DJV Mar 1 '13 at 10:34
1  
@NidhiPaul do you write '\n'.join(a.strip() for a in s1) instead of '\n'.join(a.strip() for a in s1.split(':')) –  DJV Mar 1 '13 at 10:42

A list comprehension approach (for diversity reasons and cause it's the only answer that doesn't leave a blank item at the end). Either of these:

filter(lambda x: x != '', [item.strip() for item in s1.split(':')])
[item.strip() for item in s1.split(':') if item.strip() != '']
[item for item in map(lambda x: x.strip(), s1.split(':')) if item != '']
share|improve this answer
    
thanks for your help =) –  Paulie Mar 13 '13 at 9:28

1/ If you want a string:

From your split() :

res1 = '\n'.join(res1)

Other solution:

res1 = s1.replace(' : ', '\n')

2/ If you want a list:

res1 = [item.strip() for item in s1.split(':')]

[...] will return a list containing your strings. Check "List Comprehensions" in http://docs.python.org/2/tutorial/datastructures.html for more informations

share|improve this answer
    
hey thanks!!! =) –  Paulie Mar 13 '13 at 9:28

The easiest way is: res1 = ' '.join(s1.split(':')) if you want a single row string, else you should try: res1 = '\n'.join(s1.split(':'))

share|improve this answer
    
thank you so much. it works just fine now =) –  Paulie Mar 13 '13 at 9:27
 import re
 re.split(r'\s*:\s*', s1)

And, slightly more efficiently, if you have to do a lot of splitting...

 import re
 split_re = re.compile(r'\s*:\s*')
 split_re.split(s1)

And this will also work. It would be interesting to do a speed test.

 [a.strip() for a in s1.split(':')]

These will all get you an array containing each word. If you want a string containing multiple lines with a blank line between each word, you can use '\n\n'.join(foo) for each of them to get that string. But this also works:

 import re
 split_re = re.compile(r'\s*:\s*')
 res1 = split_re.subn('\n\n', s1)[0]

Testing shows though that:

 res1 = '\n\n'.join(a.strip() for a in s1.split(':'))

is actually the fastest, and it's certainly the prettiest. And if you want to avoid the blank line at the end from the final ':' that doesn't have anything after it:

 res1 = '\n\n'.join(a.strip() for a in s1.split(':')).strip()
share|improve this answer
    
Btw, that leaves a '' at the end –  DJV Mar 1 '13 at 10:02
    
@DJV: So it does. Not sure if that's a problem or not. –  Omnifarious Mar 1 '13 at 10:05
    
Me neither :) Just saying. –  DJV Mar 1 '13 at 10:06
    
@DJV: I fixed the blank line at the end problem through brute force. :-) Unfortunately, it will have a side effect if there are a bunch of empty sections at the beginning or end. It will strip of all the blanks. And it's even less clear if that's the right behavior. –  Omnifarious Mar 1 '13 at 10:22
    
Thanks!! @Omnifarious =) that helped =) –  Paulie Mar 13 '13 at 9:29

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