基于隔离林的低质量同步量测量和早期事件检测方法

Tong Wu, Y. Zhang, Xiaoying Tang
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引用次数: 9

摘要

本文提出了一种基于隔离森林(ifforest)的在线数据驱动方法,利用相量测量单元(PMU)数据进行早期事件检测和低质量数据监测。通过巧妙地选择特征子空间,我们设计了三个级别的检测器,能够区分早期事件和低质量的数据测量。所提出的在线检测算法是实用的,因为它不需要任何网格拓扑的先验知识或总线之间的通信。此外,该方法响应速度快,计算复杂度低,适合在线应用。利用PMU综合数据进行了数值仿真,验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Isolation Forest Based Method for Low-Quality Synchrophasor Measurements and Early Events Detection
This paper proposes an online data-driven approach that utilizes phasor measurement unit (PMU) data for early-event detection and low-quality data monitoring based on isolation forest (iForest). By skillfully selecting the feature subspaces, we design three levels of detectors that are capable of distinguishing early events from low-quality data measurements. The proposed online detection algorithm is practical in the sense that it does not require any prior knowledge of the grid topology or communication among buses. Besides, it is fast responding with low computational complexity, and thus is suitable for online applications. Numerical simulations with synthetic PMU data validate the effectiveness of the proposed method.
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