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Brown Measure Based Spectral Distribution Analysis for Spatial-Temporal Localization of Cascading Events in Power Grids

机译:基于棕色测量电网级联事件的空间定位光谱分布分析

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摘要

Real-time detection and analysis of cascading events are crucial to avoiding large blackouts in power systems. Based on spectral distribution analysis (SDA) of online monitoring data, this article proposes an approach for spatial-temporal localization of cascading events in a modern grid. The anomaly detection problem is built upon hypothesis testing, where a test statistic is designed in advance. The empirical spectral distribution (ESD) of the test statistic is compared with its theoretical counterpart, i.e., the asymptotic spectral distribution (ASD) obtained by Brown Measure. The proposed approach is sensitive and capable of temporally locating the occurrence time of each subevent (including severe disturbances, failures, and some typical physical attacks) in a cascading event. Simultaneously, the spatial information of each subevent is given. It is experimentally justified that the proposed approach is robust to normal fluctuations, oscillations, and bad data. Besides, it can be applied in both large-scale and small-scale systems utilizing the tensor product method. Case studies with simulated data in an ACTIVSg500 System and real-world online monitoring data verify the effectiveness of the proposed approach.
机译:级联事件的实时检测和分析对于避免电力系统中的大型停电至关重要。基于在线监测数据的光谱分布分析(SDA),本文提出了一种在现代网格中的级联事件的空间定位方法。在假设检测时建立了异常检测问题,其中预先设计了测试统计。将测试统计的经验光谱分布(ESD)与其理论对应物,即通过棕色措施获得的渐近光谱分布(ASD)进行比较。所提出的方法是敏感的,并且能够在级联事件中暂时定位每个子宫(包括严重干扰,故障和一些典型物理攻击)的发生时间。同时,给出每个子排的空间信息。它是通过实验证明的,所提出的方法是对正常波动,振荡和坏数据的强大。此外,它可以应用于利用张量产品方法的大规模和小规模系统。在ActivSG500系统中的模拟数据和现实世界在线监测数据的案例研究验证了所提出的方法的有效性。

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