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For some text-mining applications, I need to identify the frequency of every word per article in the English-language Wikipedia and populate a MySQL database with that data. This official page suggests using mwdumper or xml2sql on the dump, but they don't directly serve my purpose (unless someone can explain how they can).

Using WikiExtractor, MySQLdb for Python, and a local MySQL server, on the other hand, allows me to do exactly what I want, but it's slow to the point that it would take a month to parse the entire dump. Profiling the modified WikiExtractor program shows that most of the runtime is spent in its nest regular expression search and my database inserts.

Ideally, I don't want processing the articles to take more than a couple days. How can I do it efficiently?

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maintenance/importDump.php was the fastest option for my specific needs. It also works well through GNU Parallel. But unfortunately it's no good if you want to run sensible SQL queries as it will give you MediaWiki SQL... –  Kasper Souren Jan 4 '14 at 19:50

2 Answers 2

The Perl package MediaWiki::DumpFile is good for parsing. To load a dump and read each page you need very few lines of code.

To do a simple word-frequency calculation you can use the sample code in Perl FAQ or the package Text::Ngrams for something smarter.

Adding the results to a database is up to you, because you are developing the application and you are supposed to know the needs.

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Actually there's a standalone application that does exactly what you need!

It's called Wiki Parser, and it parses Wikipedia dumps into plain text and XML, with XML preserving article content + article structure.

Since it's C++ and non-regex based, it only takes 2-3 hours to parse the 55GB of current English Wikipedia.

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Two years later, that link is now broken. –  meva Aug 6 at 22:17

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