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How can I get text within a specific text? Like, if I have a text like this:

'lololol \r asdfasdf r\ gfhfgr'

How can I get it to return 'asdfasdf'. Basically, get the text between the bits '\r' and 'r\'?

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4  
What've you tried? –  Jon Clements Jul 10 '12 at 2:19
    
@JonClements I haven't tried anything... the only clue I have is using a for loop and some conditionals... and thats not efficient at all. –  Thor Correia Jul 10 '12 at 3:30

2 Answers 2

up vote 4 down vote accepted

Another re solution,

import re

s = r'lololol \r asdfasdf r\ gfhfgr'
pattern = re.compile('\\\\r (.*?) r\\\\')

print pattern.findall(s)

results in ['asdfasdf']

Edit:

Well, dude, that's what you said you wanted in your example. If you prefer, you are welcome to use

pattern = re.compile('\\\\r(.*?)r\\\\')

which will instead give you [' asdfasdf '].

'All the slashes' are needed because of the way Python and re parse strings; a slash is used as an escape character for digraphs like \n (newline character). So to denote a slash, you have to use the \\ digraph. Try print('\\') to see this.

You then have to double it, because re parses the string again against its own set of digraphs (\d for digits, \s for whitespace, etc). So if you enter '\\\\', Python understand this to be a string composed of two slashes, \\, which it passes to re, which parses it and thinks you are looking for a single \ character.

Sometimes you can get away without doing this; if you have a string like '\m', where the trailing char does not result in a valid digraph, the result is actually the two-character string \m (try print('\m')). \r is kind of funky; Python recognizes it as a carriage-return digraph, but re does not use \r as a digraph, so giving Python '\r' or '\\r' both result in re looking for the literal string '\r'. I prefer the double-double-slash, as this means you don't have to remember two separate definitions of what is or isn't a legal digraph! On the other hand, both Python and re recognize \' as a single-quote digraph (print('\'') prints a ' character) - so both slashes have to be fully double-escaped or you'll get a "Hey, where's the rest of the string??" error ('string not terminated').

The other alternative is to enter raw strings (r'abc'); this tells Python not to parse digraphs in the string, but re will still do so, so your pattern has to look like

pattern = re.compile(r'\\r(.*?)r\\')
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2  
:) - Potentially make the capturing group non-greedy though... but the OP can decide that I guess... –  Jon Clements Jul 10 '12 at 2:49
    
@JonClements: good idea, have done so. –  Hugh Bothwell Jul 10 '12 at 2:54
    
Dude, it doesn't work if there are no spaces between \r and another thing. Also, why so many '\'? Can you explain, please? Or link to something? –  Thor Correia Jul 10 '12 at 3:38
    
@HughBothwell Wow thanks! You explain things well! :) I knew that '\\' would pass as a single '\', but I didn't know that would later be passed into RE, requiring yet another escape. Thanks, dude. –  Thor Correia Jul 10 '12 at 5:14

You can use Regular Expression in Python.

>>> import re
>>> s = 'lololol \r asdfasdf r\ gfhfgr'
>>> e = re.search(r'\r (?P<boxflux>.*) r\\', s)
>>> e.group('boxflux')
'asdfasdf'

boxflux.com

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AttributeError: 'NoneType' object has no attribute 'group' –  Thor Correia Jul 10 '12 at 3:34
    
+1 for named groups. –  Klaus Warzecha Jul 10 '12 at 6:23

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