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Edge Computing Terminal Equipment Planning Method for Real-time Online Monitoring Service of Power Grid

机译:电网实时在线监测服务的边缘计算终端设备规划方法

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The safety of the transmission line plays a vital role in the stable operation of the entire power grid. In order to ensure the normal operation of the power grid system, it is necessary to increase the monitoring strength of the cable by real-time online monitoring of the cable. The real-time online monitoring service increases the monitoring frequency and has a high latency requirement. It is difficult for existing cloud computing centers to process high-volume massive data. Therefore, it is necessary to use edge computing technology to set an edge computing node on the side close to the service terminal to reduce the transmission delay and alleviate the pressure on the cloud. In this paper, based on the research of edge computing node planning strategy, with the goal of minimizing economic cost and minimum average delay, and taking the business delay requirement as the constraint, an edge computing node planning model for cable real-time online monitoring is established. In order to solve the problem that the classical genetic algorithm converges too fast and the local search ability is poor, an improved genetic algorithm based on predator search strategy is proposed to solve the node planning problem model, and the number of edge computing nodes and the deployment plan are obtained. Simulation experiments show that the algorithm can effectively implement the planning of edge nodes, which not only meets the business requirements, but also ensures the cost optimization.
机译:传输线的安全性在整个电网的稳定运行中起着至关重要的作用。为了确保电网系统的正常运行,有必要通过实时在线监控电缆的电缆监控强度。实时在线监控服务增加了监控频率并具有高延迟要求。现有云计算中心难以处理大容量大规模数据。因此,有必要使用边缘计算技术来在靠近服务终端的侧面设置边缘计算节点,以减少传输延迟并减轻云上的压力。本文基于边缘计算节点规划策略的研究,目的是最大限度地减少经济成本和最低平均延迟的目标,并将业务延迟要求作为约束,一个边缘计算节点规划模型,用于电缆实时在线监控成立。为了解决古典遗传算法收敛太快并且本地搜索能力差的问题,提出了一种改进的基于捕食者搜索策略的遗传算法来解决节点规划问题模型,以及边缘计算节点的数量和获得部署计划。仿真实验表明,该算法可以有效地实现边缘节点的规划,这不仅满足业务需求,还可以确保成本优化。

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