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I'm looking for the shortest neatest way to code the folloing.

say I have a string containing: 'the f<ox jumpe>d over the l<azy> dog <and the >fence'

Using < as the opening tag and > as the closing tag, I would like to save everything inbetween into a list.

if saved into list1, list1 would equal ['ox jumpe', 'azy', 'and the ']

Who knows of a nice, neat SHORT way to do this.

Thanks!

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Can there be nesting? e.g. <ox <j>umpe> –  jterrace Jun 22 '11 at 4:17
    
...or escaping? eg. 'one is g<reater tha>n (\>) zero' –  detly Jun 22 '11 at 4:19
1  
Just in case. If you are even thinking about parsing html, DON'T use BeautifulSoup –  Trufa Jun 22 '11 at 4:24
    
mm good questions, lets make it so if you had <ox <j>umpe> the result would store ['ox <j>umpe', 'j'] ... and no escsping –  Rhys Jun 22 '11 at 4:25
    
@Rhys: I have no idea, sorry, but don't really. Take a look at this, stackoverflow.com/questions/1732348/… dispute the humor, it is a good rule of thumb. The only case where this might be a good idea is for a small limited and known html input. –  Trufa Jun 22 '11 at 4:30
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2 Answers

up vote 3 down vote accepted

Regular expressions should do the trick here:

import re

text = 'the f<ox jumpe>d over the l<azy> dog <and the >fence'
list = re.findall('.*?\<(.*?)\>.*?', text)

print list

Edit:

You can read more about regex here

Mainly, what the regex from above does is:

.*? - non greedy match of all the characters until next wanted char

\< - matches the < char

(.*?) - non greedy match of all the characters until next wanted char, capture and returns them

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I've seen this findall before, I've always been scared away by '.*?\<(.*?)\>.*?' this kind of stuff, now that i see in context how to use it ... it makes sence ... but why does one need to incude all the symbol characters? Very helpful though, thanks a tone! –  Rhys Jun 22 '11 at 4:31
    
You are welcome - you can show your gratitude with an upvote and accept - I edited the response to include some explanations. –  Tudor Constantin Jun 22 '11 at 4:36
2  
Just list = re.findall('<(.*?)>', text) gives the same answer. –  Mark Tolonen Jun 22 '11 at 6:29
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Assuming every "<" and every ">" indicate the start or end of a tag e.g. you cant have <hi<there>:

x="<a><bb><ccc>"
>>> starts=(i for i,c in enumerate(x) if c=="<")
>>> ends=(i for i,c in enumerate(x) if c==">")
>>> ans=[x[i+1:j] for i,j in zip(starts,ends)]
>>> ans
['a', 'bb', 'ccc']

use izip if it is a large xml file to save memory (Although x[i+1:j] would need to be changed as you wouldn't want the whole file as a string).

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good suggestion :) –  Rhys Jun 22 '11 at 5:28
    
deleted comment –  warwaruk Jun 22 '11 at 6:18
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