Co-clustering for Federated Recommender System

Author:

He Xinrui1ORCID,Liu Shuo2ORCID,Keung Jacky2ORCID,He Jingrui3ORCID

Affiliation:

1. University of Illinois at Urbana Champaign, Champaign, USA

2. City University of Hong Kong, Hong Kong, Hong Kong

3. University of Illinois at Urbana Champaign, Champaign, IL, USA

Funder

National Science Foundation

Publisher

ACM

Reference68 articles.

1. Gediminas Adomavicius and Alexander Tuzhilin. 2005. Toward the next generation of recommender systems: A survey of the state-of-the-art and possible extensions. IEEE transactions on knowledge and data engineering, Vol. 17, 6 (2005), 734--749.

2. Muhammad Ammad-Ud-Din, Elena Ivannikova, Suleiman A Khan, Were Oyomno, Qiang Fu, Kuan Eeik Tan, and Adrian Flanagan. 2019. Federated collaborative filtering for privacy-preserving personalized recommendation system. arXiv preprint arXiv:1901.09888 (2019).

3. Vito Walter Anelli, Yashar Deldjoo, Tommaso Di Noia, Antonio Ferrara, and Fedelucio Narducci. 2021. FedeRank: User Controlled Feedback with Federated Recommender Systems. In Advances in Information Retrieval, Djoerd Hiemstra, Marie-Francine Moens, Josiane Mothe, Raffaele Perego, Martin Potthast, and Fabrizio Sebastiani (Eds.). Springer International Publishing, Cham, 32--47.

4. Clustering-based diversity improvement in top-N recommendation

5. Towards federated learning at scale: System design;Bonawitz Keith;Proceedings of machine learning and systems,2019

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