A Privacy-Preserving Data Aggregation Protocol for Internet of Vehicles With Federated Learning

计算机科学 协议(科学) 互联网 数据聚合器 联合学习 万维网 互联网隐私 计算机网络 人工智能 无线传感器网络 医学 病理 替代医学
作者
Zisang Xu,Ruirui Zhang,Wei Liang,Kuan‐Ching Li,Ke Gu,Xiong Li,Jialun Huang
出处
期刊:IEEE transactions on intelligent vehicles [Institute of Electrical and Electronics Engineers]
卷期号:10 (1): 217-227 被引量:10
标识
DOI:10.1109/tiv.2024.3411313
摘要

Federated learning (FL) is widely used in various fields because it can guarantee the privacy of the original data source. However, in data-sensitive fields such as Internet of Vehicles (IoV), insecure communication channels, semi-trusted RoadSide Unit (RSU), and collusion between vehicles and the RSU may lead to leakage of model parameters. Moreover, when aggregating data, since different vehicles usually have different computing resources, vehicles with relatively insufficient computing resources will affect the data aggregation efficiency. Therefore, in order to solve the privacy leakage problem and improve the data aggregation efficiency, this paper proposes a privacy-preserving data aggregation protocol for IoV with FL. Firstly, the protocol is designed based on methods such as shamir secret sharing scheme, pallier homomorphic encryption scheme and blinding factor protection, which can guarantee the privacy of model parameters. Secondly, the protocol improves the data aggregation efficiency by setting dynamic training time windows. Thirdly, the protocol reduces the frequent participations of Trusted Authority (TA) by optimizing the fault-tolerance mechanism. Finally, the security analysis proves that the proposed protocol is secure, and the performance analysis results also show that the proposed protocol has high computation and communication efficiency.
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