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Outlier Detection Methods for Uncovering of Critical Events in Historical Phasor Measurement Records

机译:发现历史相量测量记录中的关键事件的异常值检测方法

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摘要

The scope of this survey is the uncovering of potential critical events from mixed PMU data sets. An unsupervised procedure is introduced with the use of different outlier detection methods. For that, different techniques for signal analysis are used to generate features in time and frequency domain as well as linear and non-linear dimension reduction techniques. That approach enables the exploration of critical grid dynamics in power systems without prior knowledge about existing failure patterns. Furthermore new failure patterns can be extracted for the creation of training data sets used for online detection algorithms.
机译:该调查的范围是从混合的PMU数据集中发现潜在的关键事件。通过使用不同的异常值检测方法来引入无监督的过程。为此,使用了不同的信号分析技术来生成时域和频域特征,以及线性和非线性降维技术。该方法无需事先了解现有故障模式就可以探索电力系统中的关键电网动态。此外,可以提取新的故障模式以创建用于在线检测算法的训练数据集。

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