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I'd like to use Python for deal with wikitext!

For example, original:

== 123 ==
=== 1234 ===

to:

<h2> 123 </h2>
<h3> 1234 </h3>

How to do that! Do I need a regex? Will it work?

import re
block_head = r"""
(?P<head>
    ^
    \s*
    (?P<head_head> =+ )
    \s*
    (?P<head_text> .*? )
    \s*
    (?P=head_head)
    \s*
    $
  )
"""
while 1:
somestring=raw_input()
dict1=re.search(block_head,somestring, re.X).groupdict()
if(dict1['head_head']=='======'):
    print '<h6>'+dict1['head_text']+'</h6>'
if(dict1['head_head']=='====='):
    print '<h5>'+dict1['head_text']+'</h5>'
if(dict1['head_head']=='===='):
    print '<h4>'+dict1['head_text']+'</h4>'

And I wonder how to solve this problem:

abc'''123'''aa

to

abc<b>123</b>aa
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closed as not a real question by Wooble, Inbar Rose, Björn Kaiser, Lukasz, chepner Mar 11 '13 at 14:28

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What problem are you trying to solve? Are you interested in regex or are you in need of a general wikimedia parser in python. If the latter, many exist: mediawiki.org/wiki/Alternative_parsers –  IfLoop Mar 10 '13 at 14:43
    
Thank you.But most of them cannot deal with complicated text! –  caizixian Mar 11 '13 at 5:15
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3 Answers 3

up vote 2 down vote accepted

Yes, you probably want to go with regular expressions.

You may want to avoid reinventing the wheel though. The MoinMoin python wiki platform already implements various format handlers, including a Media Wiki format handler that indeed uses regular expressions to parse the input text.

To borrow from that implementation, it uses the regular expression:

block_head = r"""
    (?P<head>
        ^
        \s*
        (?P<head_head> =+ )
        \s*
        (?P<head_text> .*? )
        \s*
        (?P=head_head)
        \s*
        $
    )
"""

to match a line with 1 or more = characters, followed by text, followed by the same number of = characters. This uses the verbose regex syntax with the re.X flag (where whitespace is ignored).

Using that regular expression you can match headers and figure out their 'level' by counting the number of = characters:

>>> re.search(block_head, '=== Some header! ===', re.X).groupdict()
{'head_text': 'Some header!', 'head': '=== Some header! ===', 'head_head': '==='}

A non-verbose version would be:

block_head = r"(?P<head>^\s*(?P<head_head>=+)\s*(?P<head_text>.*?)\s*(?P=head_head)\s*$)"

Use that as a starting point (read the re module documentation carefully until you understand what each part does), then expand from there.

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Thank you! But I want to write a simple one by myself and lean how to use replace and regex –  caizixian Mar 10 '13 at 14:41
    
Can you give me an example more detail! Thank you! –  caizixian Mar 10 '13 at 14:44
    
If this is an educational exercise as you suggest, then take a look at the Dive Into Python guide to regular expressions. –  Paul Etherton Mar 10 '13 at 14:48
    
But how about === 123 === 456 == 34 == It should be <h3> 123 </h3> 456 <h2> 34 </h2> –  caizixian Mar 10 '13 at 14:51
    
@caizixian: No, not in MediaWiki that doesn't. Headers are meant to be block-level items, one per line. –  Martijn Pieters Mar 10 '13 at 14:52
show 5 more comments

Check out the Markdown in Python module over at PyPi as a reference while you're trying to implement your own. Run sudo pip install markdown then navigate to your Python install directory/lib/python.version/site-packages/markdown for the built and installed package, or you can just download the archive from the link above and browse through the original source. There's a lot there, but you should be able to find some good examples of what you're trying to do.

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import re

reg = re.compile('^(={1,3})(.+?)\\1 *\r?$',re.MULTILINE)

s = '''== B123 ==
=== Z1234 ==='''

def ripl(m, d = {'=':'h1','==':'h2','===':'h3'}):
    return '<{0:s}>{1:s}</{0:s}>'.format(d[m.group(1)],m.group(2))

print reg.sub(ripl,s)

Explanation of the regex's pattern:

^ without re.MULTILINE flag would means 'start of the string'.
^ with re.MULTILINE means 'start of a line or of the string'.

(={1,3}) is a capturing group, the group 1.
It catches 1 to 3 characters = , but since the group is preceded by ^ , it catches these = only at the start of a line.

(.+?) is the capturing group number 2.
.+? catches all kind of characters (except \n , 'cause the dot without re.DOTALL flag doesn't match \n )
If it was (.+) only , it would be greedy, that is to say it would go as far it could: well, in the present case, as the dot doesn't match \n , it would go until the end of line, that is until the position in front of \n and the second group would catch the second series = or == or === too, what we don't want.
But the ? after .+ enjoins this expression .+ to be ungreedy, that is to say to stop somewhere as soon as it will bump into what is specified after .+?

So, \\1 *\r?$ defines the group of characters in front of which .+? will stop. The parenthesis ) between .+? and \\1 *\r?$ doesn't matter from this point of view.
It means :

  • 1) the same group of character as in front of the line, which must be catched by group 1, that's represented by \\1
  • 2) then possibly a series of blanks (useless but there may be some at this place)
  • 3) then possibly \r , but not mandatory. I put this because on Windows the end of lines are with \r\n
  • 4) at last, $ means 'end of a line or of the string' because re.MULTILINE changes its meaning the same as for ^

I put this condition \\1 *\r?$ to assert that the series = or == or === that will match will be the last. For, the part .+? is said to stop at the first one it will encouter. And what, when the first isn't the last ? For this case, we must ordain to .+? to stop in front of the same as group 1 only if this same one is situated at the end of the line: so this lets the possibility for charachters = to be present in the line (in fact I don't know if it is possible in the wiki, but I thought about this case)

.

NB
To exclude cases in which

===abcd=====
======ijk==

are transformed into

<h3>abcd==</h3>
<h2>====ijk</h2>

the pattern must be '^(={1,3}(?!=))(.+?)(?<!=)\\1 *\r?$'

The part (?!=) means 'just after this position in the string where the succession of 1 to 3 characters = stops, there must be absence of another ='

The part (?<!=) means 'just in front of this position in the string where the last succession of 1 to 3 characters = begins, there must be absence of another ='

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