An Anonymous Authenticated Group Key Agreement Scheme for Transfer Learning Edge Services Systems
Xiangwei Meng, Wei Liang, Zisang Xu, Kuanching Li, Muhammad Khurram Khan, Xiaoyan Kui
Nanjing University of Aeronautics and Astronautics Hunan University of Science and Technology Changsha University of Science and Technology King Saud University
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摘要与影响
The visual information processing technology based on deep learning can play many important yet assistant roles for unmanned aerial vehicles (UAV) navigation in complex environments. Traditional centralized architectures usually rely on a cloud server to perform model inference tasks, which can lead to long communication latency. Using transfer learning to unload deep neural networks to the edge-fog collaborative networks has become a new paradigm for dealing with the conflicts between computing resources and communication latency. However, ensuring the security of edge-fog collaborative networks entity remains challenging. For such, we propose an anonymous authentication and group key agreement scheme for the UAV-enabled edge-fog collaborative networks, consisting of the UAV authentication protocol and the collaborative networks authentication protocol. Utilizing the AVISPA assessment tool and security analysis, the security requirements and functional features of the proposed scheme are demonstrated. From the performance results of the proposed scheme, we show that it is superior to existing authentication schemes and promising.
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计算机 / AISecurity in Wireless Sensor Networks
Advanced Authentication Protocols Security · User Authentication and Security Systems
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