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The data format I have is as follows:

###John###
someData1
someData2
SomeData3
###Mike###
someData1
someData2
###Ford###
someData1
someData2
SomeData3
someData4
someData5
SomeData6

I want the output to be:

John  someData1
      someData2
      someData3

Mike  someData1
      someData2

Ford  someData1
      someData2
      someData3
      someData4
      someData5
      someData6

The problem here is the number of data (somedata?) beneath each name differs and is not pre known. The only piece I've to work with is the leading ### characters that signifies the beginning of a new name.

Somedata? is a single word. Any idea on how to accomplish this?

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5 Answers 5

up vote 1 down vote accepted

The following gives the exact output required:

from sys import stdout

with open('file') as f:
    for n,line in enumerate(f):        
        if line.startswith('###'):            
            stdout.write(('' if not n else '\n')+line.strip('#\n'))
        else:
            stdout.write('\t'+line)

Output:

John    someData1
        someData2
        SomeData3

Mike    someData1
        someData2

Ford    someData1
        someData2
        SomeData3
        someData4
        someData5
        SomeData6
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I'd use something like:

def fixup(iterable):
    it = iter(iterable)
    for x in it:
        if x.startswith('###'):
            yield '\n{0}\t{1}'.format(x.strip('#'),next(it))
        else:
            yield '\t{0}'.format(x)

This'll give you an extra newline on the first line, but that can easily be stripped off if you really want to.

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or use x.strip('#') instead of the .replace() :-) –  Martijn Pieters Apr 8 '13 at 15:25

An itertools approach:

from itertools import groupby

with open('yourfile') as fin:
    for k, g in groupby(fin, lambda L: L.startswith('###')):
        if k:
            name = next(g).strip('#\n')
        else:
            print '{}\t{}'.format(name, next(g)),
            for line in g:
                print '\t{}'.format(line),
            print
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2  
Groups don't get separated by an empty line. –  iiSeymour Apr 8 '13 at 17:22
    
@sudo_O is correct. –  Sunil Apr 8 '13 at 19:12
    
@sunil then just add a print - can't edit post as on mobile at the mo' –  Jon Clements Apr 8 '13 at 19:15
    
Think that edit may have worked... good spot though @sudo –  Jon Clements Apr 8 '13 at 19:21

Awk is perfect for this:

$ awk '/^#/{gsub(/#/,"");printf "%s",NR!=1?"\n"$0:$0;next}{print "\t"$0}' file
John    someData1
        someData2
        SomeData3

Mike    someData1
        someData2

Ford    someData1
        someData2
        SomeData3
        someData4
        someData5
        SomeData6

It seems awk on Mac doesn't support the ternary operator ? : so use this Mac friendly version instead:

$ awk '/^#/{gsub(/#/,"");printf n"%s",$0;n="\n";next}{print "\t"$0}' file 
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Are you sure this works? It throws me an error saying syntax error at source line 1... /^#/{gsub(/#/,"");printf >>> "%s",NR!= <<< –  Sunil Apr 8 '13 at 15:50
1  
As sure as you can be, see here ideone.com/5Ca8za What platform are you on and what version of awk do you have? –  iiSeymour Apr 8 '13 at 16:30
    
$awk -version gives awk version 20070501. It still gives me the same error. –  Sunil Apr 8 '13 at 19:14
    
You seem to have old/broken awk are you on Solaris? You need to use /usr/xpg4/bin/awk instead. –  iiSeymour Apr 8 '13 at 19:18
1  
@Sunil interesting, I logged into a mac machine, it doesn't like the ternary operator, I have added a mac friendly answer but I suggest you install GNU awk :] –  iiSeymour Apr 8 '13 at 19:54

You can easily split your data with re.split

import re
namesInfo = re.split('###(.*?)###', dataString)

Then you get an array of names followed by the associated data. You can then parse the data for each name.

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