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I have a file that looks kind of like this:

junk stuff NAME Test File Name VER 2.00 DATE 1/2/12 END useless stuff

Another one:

waste material NAME Test file 2 VER 1.78 DATE 1/8/13 END don't look at me, NOTREAL

How can I parse it so I get 3 values: name, version, and date?

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1  
Kind of like this is not helpful. What exactly will it look like? If you can't provide an exact sample then show a recurring pattern. – Abbas Jan 22 '12 at 16:51
    
Can you not just split it and then access your elements ? – abhiasawa Jan 22 '12 at 16:52
    
@Abbas That is the pattern – elijaheac Jan 22 '12 at 16:53
    
From your question, it looks like the answer is just to pull out columns 2,4,6, but I suspect there is more to your question than that. – Vaughn Cato Jan 22 '12 at 16:53
1  
The exact regular expression that you use will depend on the particular requirements, but the general idea that people have posted of using regular expressions to extract what you are interested in is a good one. For example: can there be multiple spaces between the tag NAME and the value? If we had "NAME<space><space>Test", would you want the resulting name to be "<space>Test" or "Test"? – Vaughn Cato Jan 22 '12 at 17:01
up vote 4 down vote accepted

Load the line into a string than use some regex:

>>> re.findall(r'NAME (.+) VER (.+) DATE (.+)', 'NAME Test VER 2.00 DATE 1/2/12')
[('Test', '2.00', '1/2/12')]
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Using regular expressions:

import re
line = 'NAME Test VER 2.00 DATE 1/2/12'
s = re.search(r'NAME (.+) VER (.+) DATE (.+)', line)
name = s.group(1)
version = s.group(2)
date = s.group(3)
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A generic solution that doesn't depend on key names and their order

s = 'NAME Test VER 2.00 DATE 1/2/12'
args = s.split(' ')

vars = {}
for i in xrange(0, len(args), 2):
  vars[args[i]] = args[i+1]

print vars # {'DATE': '1/2/12', 'VER': '2.00', 'NAME': 'Test'}
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This doesn't work, see edit. – elijaheac Jan 22 '12 at 17:00

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