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I want to change this string

<p><b> hello world </b></p>. I am playing <b> python </b>

to:

<bold><bold>hello world </bold></bold>, I am playing <bold> python </bold>

I used:

import re 

pattern = re.compile(r'\<p>(.*?)\</p>|\<b>(.*?)\</b>')

print re.sub(pattern, r'<bold>\1</bold>', "<p><b>hello world</b></p>. I am playing <b> python</b>")

It does not output what I want, it complains error: unmatched group

It works in this case:

re.sub(pattern, r'<bold>\1</bold>', "<p>hello world</p>. I am playing <p> python</p>")

<bold> hello world </bold>. I am playing <bold> python</bold>

share|improve this question
    
You need to read (or re-read) the Python Regexp docs. Pay special attention to the section starting, "The special sequences consist of '\' and a character from the list below." docs.python.org/library/re.html –  Peter Rowell Apr 16 '11 at 2:10
    
Use triple quotes around the string –  Mike Pennington Apr 16 '11 at 2:10

3 Answers 3

up vote 2 down vote accepted

Although I don't recommend using Regex for parsing HTML (there are libraries for that purpose in almost every language), this should work:

text = "<p><b> hello world </b></p>. I am playing <b> python </b>"

import re 

pattern1 = re.compile(r'\<p>(.*?)\</p>')
pattern2 = re.compile(r'\<b>(.*?)\</b>')

replaced = re.sub(pattern1, r'<bold>\1</bold>', text)
replaced = re.sub(pattern2, r'<bold>\1</bold>', replaced)

I think the problem you're having is because of how Python takes Groups. Test the following and you'll see what I mean:

text = "<p><b> hello world </b></p>. I am playing <b> python </b>"

import re 

pattern = re.compile(r'\<p>(.*?)\</p>|\<b>(.*?)\</b>')

for match in pattern.finditer(text):
  print match.groups()

You will see the following:

('<b> hello world </b>', None) # Here captured the 1st group
(None, ' python ') # Here the 2nd ;)

And anyway, take in count that it matched first what is between <p></p> so it took <b> hello world </b> (something you would like to match too) as the first match. Maybe changin the order of the compiled regex in pattern would solve this, but could happen the opposite (having <b><p> ... </p></b>)

I wish I could provide more info, but I'm not very good in regex using Python. C# takes them differently.

Edit:
I understand you might want to do this using regex for learning/testing purpose, don't know, but in production code I would go for another alternative (like the one @Senthil gave you) or just use a HTML Parser.

share|improve this answer

If you choose not to use regex, then it simple as this:

d = {'<p>':'<bold>','</p>':'</bold>','<b>':'<bold>','</b>':'</bold>'}
s = '<p><b> hello world </b></p>. I am playing <b> python </b>'
for k,v in d.items():
    s = s.replace(k,v)
share|improve this answer
1  
Yes. It is great to do in this way. But I still want to know how to do in regular expression –  chnet Apr 16 '11 at 3:27

The problem is because the first group is the one within <p></p> and the second group is within <b></b> in the regexp. However, in your substitution you are referring to the first group when, if it matched to <b></b>, there wasn't one. I offer a couple of solutions.

First,

>>> pattern = re.compile(r'<(p|b)>(.*?)</\1>')
>>> print re.sub(pattern, r'<bold>\2</bold>', 
                 "<p><b>hello world</b></p>. I am playing <b> python</b>")
<bold><b>hello world</b></bold>. I am playing <bold> python</bold>

will match a given pair of tags. However, as you can see, it would have to be used twice on the string because when it matched the <p></p> tags, it skipped over the nested <b></b> tags.

Here's the option that I would go with:

>>> pattern = re.compile(r'<(/?)[pb]>')
>>> print re.sub(pattern, r'<\1bold>', 
                 "<p><b>hello world</b></p>. I am playing <b> python</b>")
<bold><bold>hello world</bold></bold>. I am playing <bold> python</bold>
share|improve this answer
    
Pretty solution. Could you explain what you did in the last one with <(/?)[pb]>? –  Oscar Mederos Apr 16 '11 at 6:07
    
Great. Could you explain why r'<\1bold>'? –  chnet Apr 16 '11 at 15:10
    
(/?) means that the first group contains only the a / or is an empty string because the ? means that the slash is optional. [pb] just means to match one character that is either p or b. r'<\1bold>' just puts that first group, the slash or empty string, back where it should be. –  Justin Peel Apr 16 '11 at 16:35
    
Yes, I knew that, but what I don't understand is in which part the <b> and <p> tags are replaced? I don't see them inside any group. –  Oscar Mederos Apr 16 '11 at 20:38
    
@Oscar, they don't need to be explicitly enclosed in ()'s. sub replaces the entire match. This is just the same as in the OP's match really. –  Justin Peel Apr 16 '11 at 20:56

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