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Sofia University "St. Kliment Ohridski"

Learning to Recommend from Positive Evidence

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dc.contributor.author Schwab, Ingo
dc.contributor.author Pohl, Wolfgang
dc.contributor.author Koychev, Ivan
dc.date.accessioned 2008-01-18T14:52:41Z
dc.date.available 2008-01-18T14:52:41Z
dc.date.issued 2000
dc.identifier.citation Schwab, I., Pohl, W. and Koychev, I. (2000). Learning to Recommend from Positive Evidence. Proceedings of the International Conference on Intelligent User Interfaces IUI2000, New Orleans, Louisiana, USA, ACM Press. bg_BG
dc.identifier.uri http://hdl.handle.net/10506/25
dc.description.abstract In recent years, many systems and approaches for recommending information, goods, or other kinds of objects have been developed. In these systems, often machine learning methods are used that need training input to acquire a user interest profile. Such methods typically need positive and negative evidence of the user’s interests. To obtain both kinds of evidence, many systems make users rate relevant objects explicitly. Others merely observe the user’s behavior, which fairly obviously yields positive evidence; in order to be able to apply the standard learning methods, these systems mostly use heuristics that attempt to find also negative evidence in observed behavior. In this paper, we present several approaches to learning interest profiles from positive evidence only, as it is contained in observed user behavior. Thus, both the problem of interrupting the user for ratings and the problem of somewhat artificially determining negative evidence are avoided. The learning approaches were developed and tested in the context of the Web-based ELFI information system that is in real use by more than 1000 people. We give a brief sketch of ELFI and describe the experiments we made based on ELFI usage logs to evaluate the different proposed methods bg_BG
dc.language.iso en bg_BG
dc.publisher Proceedings of the International Conference on Intelligent User Interfaces IUI2000 bg_BG
dc.subject Adaptive recommendation interfaces bg_BG
dc.subject evaluation of methods bg_BG
dc.title Learning to Recommend from Positive Evidence bg_BG
dc.type Article bg_BG
dc.relation.citedbygoogle 98 bg_BG


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