Using the Context of User Feedback in Recommender Systems

December 15, 2016 Β· Declared Dead Β· πŸ› Doctoral Workshop on Mathematical and Engineering Methods in Computer Science

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Authors Ladislav Peska arXiv ID 1612.04978 Category cs.IR: Information Retrieval Cross-listed cs.HC Citations 14 Venue Doctoral Workshop on Mathematical and Engineering Methods in Computer Science Last Checked 4 months ago
Abstract
Our work is generally focused on recommending for small or medium-sized e-commerce portals, where explicit feedback is absent and thus the usage of implicit feedback is necessary. Nonetheless, for some implicit feedback features, the presentation context may be of high importance. In this paper, we present a model of relevant contextual features affecting user feedback, propose methods leveraging those features, publish a dataset of real e-commerce users containing multiple user feedback indicators as well as its context and finally present results of purchase prediction and recommendation experiments. Off-line experiments with real users of a Czech travel agency website corroborated the importance of leveraging presentation context in both purchase prediction and recommendation tasks.
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