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Robust Power System Frequency Estimation Based on a Sliding Window Approach

机译:基于滑动窗法的强大电力系统频率估计

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摘要

A novel framework for online estimation of the fundamental frequency of power system in both the single-phase and three-phase cases is proposed. This is achieved based on the consideration of the relationship among the samples within every four consecutive sliding windows and the use of the Wiener filtering approach and an adaptive filter trained by the least mean square (LMS) algorithm. Compared with the original work proposed in Vizireanu, 2011, which employs the scalar samples, the proposed vector-valued methods alleviate the drawbacks, such as sensitivity to initial phase value, noise, harmonics, DC offset, and system unbalance. Simulations on both benchmark synthetic cases and for real-world scenarios support the analysis.
机译:提出了一种新颖的在线估计单相和三相案例中电力系统基频估计的框架。这基于对每个四个连续滑动窗口内的样本之间的关系的考虑以及使用维纳滤波方法和由最小均方(LMS)算法训练的自适应滤波器的关系来实现。与2011年Vizireanu中提出的原创作品相比,采用标量样本,所提出的矢量值方法缓解缺点,例如对初始相位值,噪声,谐波,直流偏移和系统不平衡的敏感性。基准综合性案例和现实世界方案的模拟支持分析。

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