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I'm trying to use regex to parse values written in a (key###value) format. The value will always be a number. Anyway, I figure it will be simplest to do it with python, so here's some code I'm trying:

import re

line = "(text 1###123)(text 2###345)";

matchObj = re.match( r'\(.*###[0-9]+\)', line)

if matchObj:
   print matchObj.group(0) # produces (text 1###123)(text 2###345)
   # print matchObj.group(1) # gives an error
else:
   print "No match!!"

Even though there are two distinct objects matching the regex that I wrote, python returned them to me as a single string -- not what I wanted. How can I fix this?

In fact, what I really want is to separate the string into something like ["text 1", "123", "text 2", "345]. So if anyone has a simple way to accomplish that, I'd greatly appreciate that as well.

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2 Answers 2

You don't have the right regex for this, you need to have capture groups. Your example has the parens escaped. Here's what you actually need as the regular expression. The ? after the * makes it non-greedy (so that it tries to take as few characters as possible while still matching).

\((.*?)###([0-9]+)\)

Your current regular expression only has escaped parens, so you don't actually have any capture groups. To get all the matches, you'd need to use re.findall. But if you need to use two capture groups, this will produce something like this:

regex = r'\((.*?)###([0-9]+)\)'
re.findall(regex, "(text 1###123)(text 2###345)") # [("text 1", "123"), ("text 2", "345")]

If you want to flatten it, that's quite simple to do as well.

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Non-greedy (.*?) is necessary here, otherwise that findall returns [('text 1###123)(text 2', '345')] –  Janne Karila May 18 '13 at 17:27
    
@JanneKarila good point. I think I had it initially as [^#]* and then decided that would make too many assumptions, so went back to .* without thinking about it. –  Jeff Tratner May 18 '13 at 17:31

A few points are coming into play in this question.

  1. First is what percisely re.match() does. This function actually expects to be able to start a match at the beginning of the string, which in this case it cannot as you have an opening parenthesis there. So you will instead want to look at the re.search(), and more likely, the re.findall() functions.
  2. Also, you do not need to escape groups in Python as you do in other languages.
  3. You probably do not want to use .* as this tends to be greedy. While you can get away with .*?, it is often better to take the time to give regex a more specific search.

In summary, I recommend the following:

matchObj = re.findall(r'(([\w\d ]+)###(\d+))', line)

This will result in an easy to sort through array:

>>> matchObj
[('text 1###123', 'text 1', '123'), ('text 2###345', 'text 2', '345')]
>>> matchObj[0]
('text 1###123', 'text 1', '123')
share|improve this answer
    
Minor goof: the \( is to match the opening paren, so re.match() should work with the exception that it returns only one result. If you add escapes to my first and last parens, then your results might be even better: [('text 1', '123'), ('text 2', '345')] –  Mike May 19 '13 at 2:51

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