USST: A two-phase privacy-preserving framework for personalized recommendation with semi-distributed training

Author:

Zhou Yipeng,Liu Juncai,Wang Jessie Hui,Wang Jilong,Liu Guanfeng,Wu Di,Li Chao,Yu Shui

Funder

ARC

National Natural Science Foundation of China

Publisher

Elsevier BV

Subject

Artificial Intelligence,Information Systems and Management,Computer Science Applications,Theoretical Computer Science,Control and Systems Engineering,Software

Reference50 articles.

1. Pursuing privacy in recommender systems: the view of users and researchers from regulations to applications;Anelli,2021

2. How to put users in control of their data in federated top-n recommendation with learning to rank;Anelli,2021

3. Anelli, V.W., Deldjoo, Y., Noia, T.D., Ferrara, A., Narducci, F., 2021c. Federank: User controlled feedback with federated recommender systems. In: European Conference on Information Retrieval. Springer, pp. 32–47.

4. Belli, L., Ktena, S.I., Tejani, A., Lung-Yut-Fon, A., Portman, F., Zhu, X., Xie, Y., Gupta, A., Bronstein, M., Delić, A., et al., 2020. Privacy-aware recommender systems challenge on twitter’s home timeline. arXiv preprint arXiv:2004.13715.

5. Applying differential privacy to matrix factorization;Berlioz,2015

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