Attribute Aware Anonymous Recommender Systems

نویسندگان

  • Manuel Stritt
  • Karen H. L. Tso-Sutter
  • Lars Schmidt-Thieme
چکیده

Anonymous recommender systems are the electronic pendant to vendors, who ask the customers a few questions and subsequently recommend products based on the answers. In this article we will propose attribute aware classifier-based approaches for such a system and compare it to classifier-based approaches that only make use of the product IDs and to an existing knowledge-based system. We will show that the attribute-based model is very robust against noise and provides good results in a learning over time experiment.

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تاریخ انتشار 2006