Research on the Design of a Short Video Recommendation System Based on Multimodal Information and Differential Privacy
March 27, 2025 Β· Declared Dead Β· π Proceedings of the 2025 4th International Conference on Cyber Security, Artificial Intelligence and the Digital Economy
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Authors
Haowei Yang, Lei Fu, Qingyi Lu, Yue Fan, Tianle Zhang, Ruohan Wang
arXiv ID
2504.08751
Category
cs.IR: Information Retrieval
Cross-listed
cs.AI,
cs.CR
Citations
10
Venue
Proceedings of the 2025 4th International Conference on Cyber Security, Artificial Intelligence and the Digital Economy
Last Checked
4 months ago
Abstract
With the rapid development of short video platforms, recommendation systems have become key technologies for improving user experience and enhancing platform engagement. However, while short video recommendation systems leverage multimodal information (such as images, text, and audio) to improve recommendation effectiveness, they also face the severe challenge of user privacy leakage. This paper proposes a short video recommendation system based on multimodal information and differential privacy protection. First, deep learning models are used for feature extraction and fusion of multimodal data, effectively improving recommendation accuracy. Then, a differential privacy protection mechanism suitable for recommendation scenarios is designed to ensure user data privacy while maintaining system performance. Experimental results show that the proposed method outperforms existing mainstream approaches in terms of recommendation accuracy, multimodal fusion effectiveness, and privacy protection performance, providing important insights for the design of recommendation systems for short video platforms.
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