A pattern analysis approach for topology determination, bad data correction and missing measurement estimation in power systems

A. P. Alves da Silva, V. Quintana, G. Pang
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引用次数: 12

Abstract

The authors propose a novel methodology for the combined solution of the topological identification, observability analysis and bad data processing problems in power systems. The idea is to provide, in a very fast way, a reliable input database for the state estimator, without interacting with it. The solution is based on a pattern analysis approach. An efficient framework for solving data acquisition and processing problems, joining pattern analysis and analytical procedures, is suggested. Two different techniques of pattern analysis are combined to produce a classifier and an estimator with unique characteristics to deal with noisy environments. The patterns required for the training process can be acquired from the SCADA (supervisory control and data acquisition) system and/or from load-flow simulations. Test results have been obtained for the IEEE 24-bus reliability test system.<>
一种用于电力系统拓扑确定、不良数据校正和缺失测量估计的模式分析方法
提出了一种结合电力系统拓扑识别、可观测性分析和不良数据处理问题的新方法。其思想是以一种非常快速的方式为状态估计器提供一个可靠的输入数据库,而无需与之交互。该解决方案基于模式分析方法。提出了一种解决数据采集和处理问题的有效框架,将模式分析和分析过程结合起来。结合两种不同的模式分析技术,产生具有独特特征的分类器和估计器来处理噪声环境。训练过程所需的模式可以从SCADA(监督控制和数据采集)系统和/或负载流模拟中获得。在IEEE 24总线可靠性测试系统中获得了测试结果。
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