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Tracking Power System State Evolution with Maximum-correntropy-based Extended Kalman Filter

机译:跟踪电力系统状态演进与基于最大的基于rorentropy的扩展卡尔曼滤波器

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摘要

This paper develops a novel approach to track power system state evolution based on the maximum correntropy criterion, due to its robustness against non-Gaussian errors. It includes the temporal aspects on the estimation process within a maximum-correntropy-based extended Kalman filter (MCEKF), which is able to deal with both nonlinear supervisory control and data acquisition (SCADA) and phasor measurement unit (PMU) measurement models. By representing the behavior of the state variables with a nonparametric model within the kernel density estimation, it is possible to include abrupt state transitions as part of the process noise with non-Gaussian characteristics. Also, a novel strategy to update the size of Parzen windows in the kernel estimation is proposed to suppress the effects of suspect samples. By properly adjusting the kernel bandwidth, the proposed MCEKF keeps its accuracy during sudden load changes and contingencies, or in the presence of bad data. Simulations with IEEE test systems and the Brazilian interconnected system are carried out. The results show that the method deals with non-Gaussian noises in both the process and measurement, and provides accurate estimates of the system state under normal and abnormal conditions.
机译:本文开发了一种新的方法来跟踪基于最大correntropy标准,电力系统状态演化,由于其对非高斯错误的鲁棒性。它包括一个基于最大correntropy扩展卡尔曼滤波器(MCEKF),这是能够处理这两个非线性监督控制和数据采集(SCADA)和相量测量单元(PMU)的测量模型中的估计处理时间的方面。由表示与所述核密度估计内的非参数模型的状态变量的行为,有可能包括突然状态转换为具有非高斯特性的过程噪声的一部分。此外,在核估计更新的Parzen窗大小的新策略,提出了抑制可疑样品的效果。通过适当调整内核带宽,建议MCEKF保持其精度在负载突然变化和突发事件,或不良数据的存在。符合IEEE测试系统和巴西互联系统仿真进行。结果表明,与非高斯噪声的过程中和测量两个方法处理,和正常和异常条件下提供系统状态的准确估计。

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