通过超5g无线冗余提高人机交互的安全水平

D. Borsatti, G. Davoli, C. Lombardo, D. Selvi, R. Bruschi, W. Cerroni, F. Davoli, C. Raffaelli, R. Trivisonno, R. Bolla
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摘要

工业4.0/5.0背景下的工厂自动化要求安全级别满足比目前更严格和严格的限制。传统上基于有线网络的工业车间通信的无线环境的扩展进一步挑战了这一目标。从无线局域网开始,第五代(5G)专用连接的出现促进了工业无线的使用趋势,并必将加快其向6G演进的步伐。特别是,人类操作员与工业机器人和自动驾驶汽车在车间的互动提出了严格的安全要求,这反过来又推动了无线连接的可靠性和可靠性限制。为了实现这些限制,本文提出了一种动态冗余机制,该机制基于人与机器携带的移动设备与多个基站之间实例化的无线电承载器的实时激活/停用,以保证运行安全控制环相关数据通信中丢包概率的上限。提出了一个优化问题,并通过5G及以上无线环境的仿真评估了合适的启发式算法,旨在以较小的计算量动态保持所需的可靠性水平。
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Increasing safety levels in human-machine interaction by beyond-5G wireless redundancy
Factory automation in the context of Industry 4.0/5.0 requires safety levels to satisfy more stringent and tight limits than those available so far. This goal is further challenged by the extension to the wireless environment of industrial shop floor communications that were traditionally based on cabled networks. Starting with wireless LANs, the trend towards the use of industrial wireless is fostered by the advent of fifth Generation (5G) private connectivity and is bound to increase its pace in the evolution towards 6G. In particular, the interaction of human operators with industrial robots and autonomous vehicles on the shop floor is posing stringent safety requirements that in turn push forward the dependability and reliability limits of wireless connectivity. To help achieve these limits, this paper proposes a dynamic redundancy mechanism based on the real-time activation/deactivation of radio bearers instantiated between mobile devices carried by humans and machines and multiple base stations, to achieve guaranteed upper bounds on packet loss probability in the communication of data related to operational safety control loops. An optimization problem is posed, and suitable heuristics are evaluated by simulation in a 5G and beyond wireless environment, aiming to dynamically maintain the required reliability levels with small computational effort.
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