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  Using Filtering Agents to Improve Prediction Quality in the GroupLens Research Collaborative Filtering System (1998) [92 citations — 11 self]

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by Badrul M. Sarwar, Joseph A. Konstan, Al Borchers, Jon Herlocker, Brad Miller, John Riedl
http://www.cs.umn.edu/Research/GroupLens/filterbot-CSCW98.pdf
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Abstract:

Collaborative filtering systems help address information overload by using the opinions of users in a community to make personal recommendations for documents to each user. Many collaborative filtering systems have few user opinions relative to the large number of documents available. This sparsity problem can reduce the utility of the filtering system by reducing the number of documents for which the system can make recommendations and adversely affecting the quality of recommendations. This paper defines and implements a model for integrating content-based ratings into a collaborative filtering system. The filterbot model allows collaborative filtering systems to address sparsity by tapping the strength of content filtering techniques. We identify and evaluate metrics for assessing the effectiveness of filterbots specifically, and filtering system enhancements in general. Finally, we experimentally validate the filterbot approach by showing that even simple filterbots such as spell checking can increase the utility for users of sparsely populated collaborative filtering systems.

Citations

2217 Introduction to Modern Information Retrieval – Salton, McGill - 1983
608 GroupLens: An open architecture for collaborative filtering of netnews – Resnick, Iacovou, et al. - 1994
604 Social information filtering: Algorithms for automating “word of mouth – Shardanand, Maes - 1995
533 Recommender systems – Resnick, Varian - 1997
413 Using collaborative filtering to weave an information tapestry – Goldberg, Nichols, et al.
356 GroupLens: applying collaborative filtering to Usenet news – Konstan, Miller, et al. - 1997
271 Fab: content-based, collaborative recommendation – Balabanović, Shoham - 1997
209 Recommending and evaluating choices in a virtual community of use – Hill, Stead, et al. - 1995
151 PHOAKS: a system for sharing recommendations – Terveen, Hill, et al. - 1997
81 Siteseer: Personalized Navigation for the Web – Rucker, Polano - 1997
77 Pointing the way: Active collaborative filtering – Maltz, E
53 Recommender systems for evaluating computer messages – Avery, Zeckhauser - 1997
29 Information Filtering and Information Retrieval: Two – Belkin, Croft - 1992
27 Experiences with GroupLens: making Usenet Useful Again – Miller, Riedl, et al. - 1997
24 Evolving a multi-agent information filtering solution in Amalthaea – Moukas, Zacharia - 1997
6 Construction and Comparison of Two Receiver Operating Characteristics Curves Derived from the Same Samples – Le, Lindgren - 1995
3 Agents that Reduce Work and Information – Maes - 1994