In this paper, we describe a new scheme to learn dynamic users' interests in an automated information filtering and gathering system running on the Internet. Our scheme is aimed to handle multiple domains of long-term and short-term user's interests simultaneously, which is learned through positive and negative user's relevance feedback. We developed a 3-descriptor approach to represent the user's interest categories. Using a learning algorithm derived for this representation, our scheme adapts quickly to significant changes in user interest, and is also able to learn exceptions to interest categories.
CITATION STYLE
Widyantoro, D. H., Ioerger, T. R., & Yen, J. (1999). Adaptive algorithm for learning changes in user interests. In International Conference on Information and Knowledge Management, Proceedings (pp. 405–412). ACM. https://doi.org/10.1145/319950.323230
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