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Fuzzy Tools in Recommender Systems: A Survey

  • International Journal of Computational Intelligence Systems
  • Springer Nature
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References
169
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Paper overview

Abstract

Recommender systems are currently successful solutions for facilitating access for online users to the information that fits their preferences and needs in overloaded search spaces.In the last years several methodologies have been developed to improve their performance.This paper is focused on developing a review on the use of fuzzy tools in recommender systems, for detecting the more common research topics and also the research gaps, in order to suggest future research lines for boosting the current developments in fuzzy-based recommender systems.Specifically, it is developed an analysis of the papers focused at such aim, indexed in Thomson Reuters Web of Science database, in terms of they key features, evaluation strategies, datasets employed, and application areas.

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Publication details

DOI
10.2991/ijcis.2017.10.1.52
OpenAlex
W2604311458
Document type
article
Language
EN
Source
International Journal of Computational Intelligence Systems
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