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Robust Subspace Approaches for Analyzing Incomplete Synchrophasor Measurements

机译:鲁棒的子空间方法,用于分析不完整的同步相量测量

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摘要

Synchrophasor measurements can significantly enhance the monitorability of the power grid by revealing the dynamics of grid operation. However, due to high-rate samples collected in large volume, big data challenges emerge to efficiently process the data. The present work advocates robust subspace approaches including robust principal component analysis and subspace clustering, to identify low-dimensional structures in the synchrophasor data, even when portions of measurements are missing due to sensor or network issues, and outliers are present in the data. The outliers can model abnormal dynamics or cyber-attacks in the grid. Numerical tests using simulated synchrophasor data illustrate the utility of the approaches.
机译:通过揭示电网运行的动态,同步相量测量可以显着增强电网的可监视性。但是,由于要大量收集高速率的样本,因此要有效处理数据,就出现了大数据挑战。本工作提倡使用鲁棒的子空间方法,包括鲁棒的主成分分析和子空间聚类,以识别同步相量数据中的低维结构,即使由于传感器或网络问题而缺少部分测量结果,并且数据中存在异常值时也是如此。异常值可以对网格中的异常动态或网络攻击进行建模。使用模拟的同步相量数据进行的数值测试说明了该方法的实用性。

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