Group recommender system based on genre preference focusing on reducing the clustering cost

Author:

Seo Young-DukORCID,Kim Young-GabORCID,Lee EuijongORCID,Kim Hyungjin

Funder

Inha University

National Research Foundation of Korea

IITP

Publisher

Elsevier BV

Subject

Artificial Intelligence,Computer Science Applications,General Engineering

Reference35 articles.

1. Data Mining Methods for Recommender Systems;Amatriain,2011

2. Arthur, D., & Vassilvitskii, S. (2007, January). k-means++: The advantages of careful seeding. In Proceedings of the eighteenth annual ACM-SIAM symposium on Discrete algorithms (pp. 1027-1035). Society for Industrial and Applied Mathematics.

3. Baltrunas, L., Makcinskas, T., & Ricci, F. (2010, September). Group recommendations with rank aggregation and collaborative filtering. In Proceedings of the fourth ACM conference on Recommender systems (pp. 119-126). ACM.

4. Bishop, C. M. (2006). Pattern recognition and machine learning. springer.

5. A new collaborative filtering metric that improves the behavior of recommender systems;Bobadilla;Knowledge-Based Systems,2010

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