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If I have a large set of Facebook profiles, each of which having chosen a set of products in the market, now given a Facebook profile, how do I recommend a product to him?

What papers/material are published regarding this?

Thanks Abhishek S

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closed as off topic by Paul R, AakashM, woodchips, Bill the Lizard May 16 '12 at 13:01

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Why is this question being voted down? The question policies on stack overflow are very confusing these days. –  steve May 15 '12 at 20:03
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2 Answers 2

You may want to read the book Programming Collective Intelligence: Building Smart Web 2.0 Applications. It provides very good material for beginners.

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Thanks, will check it out. –  Abhishek Shivkumar May 15 '12 at 8:48
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You have 2 sets of information that you could use in a standard recommendation configuration. That is the Facebook profile which will contains likes (graph.facebook.com/user_id/likes) and also the information they have put into the market.

For ease of use (i.e a starting point). I'd suggest using the market information to create recommendation algorithms. This is because the information belongs to the same domain. Using a cross domain approach isn't necessarily difficult but without understanding your data it could prove messy.

As far as starting points I'd suggest looking into standard user based or item based collaborative filtering. As you've tagged this book with the mahout keyword I'd assume you know about it so give that a try. The algorithms themselves have some small nuances missing which would give better accuracy results but the guts of a recommendations technique are there .

I personally like machine learning for hackers from O'Reilly. But it only focuses on R. It could be good for you if you are interested in learning as you can quickly prototypes ideas in R.

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