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Secure Data Offloading Strategy for Connected and Autonomous Vehicles

机译:互联和自动驾驶车辆的安全数据卸载策略

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Connected and Automated Vehicles (CAVs) are expected to constantly interact with a network of processing nodes installed in secure cabinets located at the side of the road - - thus, forming Fog Computing-based infrastructure for Intelligent Transportation Systems (ITSs). Future city-scale ITS services will heavily rely upon the sensor data regularly off-loaded by each CAV on the Fog Computing network. Due to the broadcast nature of the medium, CAVs' communications can be vulnerable to eavesdropping. This paper proposes a novel data offloading approach where the Random Linear Network Coding (RLNC) principle is used to ensure the probability of an eavesdropper to recover relevant portions of sensor data is minimized. Our preliminary results confirm the effectiveness of our approach when operated in a large-scale ITS networks.
机译:联网汽车和自动驾驶汽车(CAV)有望与安装在路边安全机柜中的处理节点网络不断互动-从而形成基于雾计算的智能交通系统(ITS)基础设施。未来的城市级ITS服务将严重依赖雾计算网络上每个CAV定期卸载的传感器数据。由于媒体的广播性质,CAV的通信可能容易被窃听。本文提出了一种新颖的数据分载方法,其中使用随机线性网络编码(RLNC)原理来确保窃听者恢复传感器数据的相关部分的可能性最小。我们的初步结果证实了在大规模ITS网络中运行该方法的有效性。

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