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I have a string like this:

Hi. My name is _John_. I am _20_ years old.

and I'd like to convert it into this:

Hi. My name is <b>John</b>. I am <b>20</b> years old.

I did something like this but no luck.

import re
text = "Hi. My name is _John_. I am _20_ years old."
pattern = "(.*)(\_)(.*)(\_)(.*)"
re.sub(pattern, r'\1<b>\3</b>\5', text)
'Hi. My name is _John_. I am <b>20</b> years old.'

What is wrong with the pattern? Why is it not seeing the first bold text?

Any help would be appreciated. Thanks.

share|improve this question
up vote 4 down vote accepted

Change to:

pattern = "_([^_]*)_"
re.sub(pattern, r'<b>\1</b>', text)

Also see this example.

share|improve this answer

The problem is that * is greedy and consumes as many characters as possible (including more _). To fix that, you can use the non-greedy alternative *? as follows:

>>> pattern = r'_(.*?)_'
>>> replacement = r'<b>\1</b>'
>>> re.sub(pattern ,replacement, text)
'Hi. My name is <b>John</b>. I am <b>20</b> years old.'

Note that re.sub behaves like re.search instead of re.match. That is, you can use a pattern that just partially matches the input (in this case, just some text surrounded by _) instead of something that matches the whole line.

share|improve this answer

The problem is that your first .*in the pattern is eating everything to the left of the last possible match. It is therefore said that * is greedy. Use a non-greedy pattern

pattern='_(.+?)_'
re.sub(pattern, r'<b>\1</b>', text)

? makes the match non-greedy; as short as possible. + required at east one character between the two underscores in order for it to be replaced with <b>text</b>. So __ will remain __

If you would like __ to become <b></b> then use .*?

share|improve this answer

Have you tried using String Templates ? They were build for something like this. Simple String substitutions. Hell of a lot cleaner & elegant than using regexes...

import string

new_style = string.Template('Hi. My name is $name. I am $age years old.')
print new_style % {'name':'<b>John</b>', 'age':'<b>20</b>'} #produces what u want.

For more on string template examples check this activeState link

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It's because the pattern is greedy and the first (.*) matches the text from the beginning all the way to the third _:

>>> re.match(pattern, text).groups()
('Hi. My name is _John_. I am ', '_', '20', '_', ' years old.')

Here is a simplified, non-greedy version:

>>> re.sub('_(.+?)_', r'<b>\1</b>', text)
'Hi. My name is <b>John</b>. I am <b>20</b> years old.'
share|improve this answer
    
+1. Thanks a lot. – ozgur Mar 1 '12 at 7:46
    
+1 if you are searching for things in the middle of the string (as with .search or .sub or .findall, there is no point in adding "anything before, and anything after" to the regex. – Karl Knechtel Mar 1 '12 at 8:49

This sounds remarkably like markdown syntax, so if your goal is to parse that, there already exists a python library.

share|improve this answer
    
+1 for suggesting a library – Kimvais Mar 1 '12 at 7:48
    
more than markdown thingy. I feel this is closer to python string templates. check this - python.org/dev/peps/pep-0292 – Srikar Appal Mar 1 '12 at 7:55

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