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If I have some xml containing things like the following mediawiki markup:

" ...collected in the 12th century, of which [[Alexander the Great]] was the hero, and in which he was represented, somewhat like the British [[King Arthur|Arthur]]"

what would be the appropriate arguments to something like:

re.findall([[__?__]], article_entry)

I am stumbling a bit on escaping the double square brackets, and getting the proper link for text like: [[Alexander of Paris|poet named Alexander]]

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4 Answers 4

up vote 4 down vote accepted

Here is an example

import re

pattern = re.compile(r"\[\[([\w \|]+)\]\]")
text = "blah blah [[Alexander of Paris|poet named Alexander]] bldfkas"
results = pattern.findall(text)

output = []
for link in results:
    output.append(link.split("|")[0])

# outputs ['Alexander of Paris']

Version 2, puts more into the regex, but as a result, changes the output:

import re

pattern = re.compile(r"\[\[([\w ]+)(\|[\w ]+)?\]\]")
text = "[[a|b]] fdkjf [[c|d]] fjdsj [[efg]]"
results = pattern.findall(text)

# outputs [('a', '|b'), ('c', '|d'), ('efg', '')]

print [link[0] for link in results]

# outputs ['a', 'c', 'efg']

Version 3, if you only want the link without the title.

pattern = re.compile(r"\[\[([\w ]+)(?:\|[\w ]+)?\]\]")
text = "[[a|b]] fdkjf [[c|d]] fjdsj [[efg]]"
results = pattern.findall(text)

# outputs ['a', 'c', 'efg']
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I am using \[\[(.+?)\]\] for my own purposes. It’s somewhat shorter. :) –  Gandaro Feb 4 '12 at 14:26

RegExp: \w+( \w+)+(?=]])

input

[[Alexander of Paris|poet named Alexander]]

output

poet named Alexander

input

[[Alexander of Paris]]

output

Alexander of Paris

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This is not the wanted output. ;) –  Gandaro Feb 4 '12 at 14:28
import re
pattern = re.compile(r"\[\[([\w ]+)(?:\||\]\])")
text = "of which [[Alexander the Great]] was somewhat like [[King Arthur|Arthur]]"
results = pattern.findall(text)
print results

Would give the output

["Alexander the Great", "King Arthur"]
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If you are trying to get all the links from a page, of course it is much easier to use the MediaWiki API if at all possible, e.g. http://en.wikipedia.org/w/api.php?action=query&prop=links&titles=Stack_Overflow_(website).

Note that both these methods miss links embedded in templates.

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1  
Actually I am working from a dump, thanks for the tip though –  unmounted May 1 '09 at 8:59

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