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Improved Recursive Newton Type Algorithm based power system frequency estimation

机译:基于改进递推牛顿算法的电力系统频率估计

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This paper presents power system frequency estimation by using an Improved Recursive Newton Type (IRNTA) algorithm. The proposed approach uses Jacobian and covariance matrices for updating the unknown parameters. The recursive form of unknown parameters and covariance matrix are incorporated in the algorithm to have faster convergence. The performance of the proposed algorithm is studied through simulations and experiments for several critical cases that often arise in a power system. Efficacy of the proposed algorithm is also compared with other signal processing techniques such as Recursive Least Square (RLS) and Kalman Filter (KF). Studies made on industrial data also support for the superiority of the proposed algorithm.
机译:本文提出了一种使用改进的递归牛顿型(IRNTA)算法的电力系统频率估计。所提出的方法使用雅可比矩阵和协方差矩阵来更新未知参数。该算法结合了未知参数和协方差矩阵的递归形式,以具有更快的收敛速度。通过仿真和实验研究了提出的算法的性能,并针对电力系统中经常出现的几种关键情况进行了研究。还将所提算法的效率与其他信号处理技术(例如递归最小二乘(RLS)和卡尔曼滤波器(KF))进行比较。对工业数据的研究也支持所提出算法的优越性。

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