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I have about 30 .docx documents (Résumés) with data about peoples' names, skills and so forth. I need to populate a spreadsheet with some of this information, and to reduce manual work I thought I could use a text mining approach.

Are there any tools or approaches that would be useful in mining (sort of semi-structured) information from these documents?

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You can get to the contents of the files with tools like python-docx. Getting names, skills, etc out is harder (assuming they don't follow the same format). You can try to hand-code some rules, but if you want this to be more robust, there are commercial tools out there like this one... –  Dougal Apr 27 '12 at 18:20

2 Answers 2

The best I can come up with is using perl, as I know you can pull from word documents (though that in itself can be tricky) and populate xml spreadsheets using perl modules.

I haven't written perl in anger in a long time, so I can't offer examples of how to do this, but if I were to put something together to do this, I would recommend perl. I am sure someone will say there are equivalent functions in python, and maybe even in Ruby, but perl is what I've used, and I've found it very effective for manipulating/matching/parsing/processing text.

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You can try using the catdoc http://www.wagner.pp.ru/~vitus/software/catdoc/ tool which will extract the text contents from an MS Word file, and then after that do whatever text processing you want. I'd probably just grep for the existence of certain words in the resume against the output of catdoc. No point in over-engineering a solution.

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