Privacy-preserving recommender system using the data collaboration analysis for distributed datasets
May 24, 2024 Β· Declared Dead Β· π PLoS ONE
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Authors
Tomoya Yanagi, Shunnosuke Ikeda, Noriyoshi Sukegawa, Yuichi Takano
arXiv ID
2406.01603
Category
cs.IR: Information Retrieval
Cross-listed
cs.CR,
cs.LG
Citations
8
Venue
PLoS ONE
Last Checked
4 months ago
Abstract
In order to provide high-quality recommendations for users, it is desirable to share and integrate multiple datasets held by different parties. However, when sharing such distributed datasets, we need to protect personal and confidential information contained in the datasets. To this end, we establish a framework for privacy-preserving recommender systems using the data collaboration analysis of distributed datasets. Numerical experiments with two public rating datasets demonstrate that our privacy-preserving method for rating prediction can improve the prediction accuracy for distributed datasets. This study opens up new possibilities for privacy-preserving techniques in recommender systems.
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