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Complex Power System Status Monitoring and Evaluation Using Big Data Platform and Machine Learning Algorithms: A Review and a Case Study

机译:大数据平台和机器学习算法的复杂电力系统状态监测与评估:回顾与案例研究

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Efficient and valuable strategies provided by large amount of available data are urgently needed for a sustainable electricity system that includes smart grid technologies and very complex power system situations. Big Data technologies including Big Data management and utilization based on increasingly collected data from every component of the power grid are crucial for the successful deployment and monitoring of the system. This paper reviews the key technologies of Big Data management and intelligent machine learning methods for complex power systems. Based on a comprehensive study of power system and Big Data, several challenges are summarized to unlock the potential of Big Data technology in the application of smart grid. This paper proposed a modified and optimized structure of the Big Data processing platform according to the power data sources and different structures. Numerous open-sourced Big Data analytical tools and software are integrated as modules of the analytic engine, and self-developed advanced algorithms are also designed. The proposed framework comprises a data interface, a Big Data management, analytic engine as well as the applications, and display module. To fully investigate the proposed structure, three major applications are introduced development of power grid topology and parallel computing using CIM files, high-efficiency load-shedding calculation, and power system transmission line tripping analysis using 3D visualization. The real-system cases demonstrate the effectiveness and great potential of the Big Data platform; therefore, data resources can achieve their full potential value for strategies and decision-making for smart grid. The proposed platform can provide a technical solution to the multidisciplinary cooperation of Big Data technology and smart grid monitoring.
机译:对于包含智能电网技术和非常复杂的电力系统状况的可持续电力系统,迫切需要由大量可用数据提供的高效且有价值的策略。大数据技术,包括大数据管理和利用,该技术基于不断增加的来自电网每个组件的数据收集,对于成功部署和监控系统至关重要。本文回顾了大数据管理的关键技术和复杂电力系统的智能机器学习方法。在对电力系统和大数据进行全面研究的基础上,总结了一些挑战,以释放大数据技术在智能电网应用中的潜力。根据电源数据源和结构的不同,提出了一种改进的大数据处理平台结构。作为分析引擎的模块,集成了许多开源的大数据分析工具和软件,并且还设计了自行开发的高级算法。提议的框架包括一个数据接口,一个大数据管理,分析引擎以及应用程序和显示模块。为了全面研究所提出的结构,介绍了三个主要应用程序,它们是使用CIM文件开发电网拓扑和并行计算,高效的负载分担计算以及使用3D可视化进行的电力系统传输线跳闸分析。实际系统案例证明了大数据平台的有效性和巨大潜力;因此,数据资源可以为智能电网的战略和决策发挥最大的潜在价值。该平台可以为大数据技术与智能电网监控的多学科合作提供技术解决方案。

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