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I'm trying to assign a 'relevance' score to items of social media based upon how closely their topic/theme matches a users preference, i.e. a Facebook status might be in the 'technology' category with an accuracy of 0.6, and the user may have stated that they are interested in technology statuses.

Can anyone suggest an intelligent algorithm, more sophisticated than a simple sum of products of data-topic-weight*user-topic-weight, which can be used to score (and rank) these items of data?

My intention is to incorporate a learning agent which would record the users click-history and factor that into the scoring algorithm too.

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