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I'm trying to get a match but am having trouble with the syntax, below I am using python but it can be any language, i just need the correct regex syntax:

import re
p = re.compile('foo%22([^%22])*')

input = "foo%22somedata%2Bgoeshere%22testbarbaz"

result = re.findall(p, input)

I'm trying to extract "somedata%2Bgoeshere". Basically I want the stuff between the %22's. So the regex I tried (above) isn't working b/c that 'not' operator is saying 'not %', 'not 2', and 'not 2'...I want to say, get anything until you see "%22".

Thanks in advance.

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3 Answers 3

up vote 4 down vote accepted

Use positive lookahead:

>>> import re
>>> input = "foo%22somedata%2Bgoeshere%22testbarbaz"
>>> re.findall('foo%22.*?(?=%22)', input)
['foo%22somedata%2Bgoeshere']
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thanks @phihag, that seems to work! –  codecraig Aug 23 '11 at 14:56
    
@codecraig - Don't forget to accept an answer if it works for you. –  Justin Morgan Aug 23 '11 at 15:39
1  
@Justin Morgan -- I know, it told me I had to wait 6 minutes before accepting so I kept a tab open in my browser to remind me to come back (which I now have :) –  codecraig Aug 23 '11 at 17:00

Why do you need a regex? Simply do a split on %22

>>> input.split("%22")
['foo', 'somedata%2Bgoeshere', 'testbarbaz']

the stuff you want are anything that is not the first and last element of the returned result. KISS

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So I mentioned that my code snippet in the question was written in python but what I really need is just the correct regex. @phihag's answer works for me. –  codecraig Aug 23 '11 at 17:00

Here is my take

mo = re.search("%22(.*?)%22", input)
print mo.groups(1)

Important is that you limit the .* with ?, so that it stops as soon as it can match the closing "%22".

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+1: seems to be exactly what the OP was trying to achieve (I remember having the same problem myself before discovering .*?) –  Steven Aug 23 '11 at 15:21

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