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Constrained Robust Estimation of Power System State Variables and Transformer Tap Positions Under Erroneous Zero-Injections

机译:错误零注入下电力系统状态变量和变压器抽头位置的约束鲁棒估计

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This paper presents an equally constrained robust estimator of both the state and the transformer tap positions of a power system able to withstand all types of outliers, including bad leverage points and erroneous zero-injections. The statistical robustness of the estimator stems from the application of the Schweppe-type Huber GM estimator (SHGM) while its numerical robustness originates from the use of an orthogonal iteratively re-weighted least-squares algorithm together with the Van Loan's method for processing the equality constraints. The good performance of the new estimator, termed EC-SHGM estimator for short, is demonstrated on a small test system and on the Brazilian Southern power system with increasing size ranging from 139 buses to 1916 buses. It is shown that it exhibits superior convergence properties in all tested cases while the WLS method may suffer from numerical instabilities or even divergence problems when large weights are assigned to zero power injections modeling false information.
机译:本文提出了一种电力系统的状态和变压器抽头位置的均等约束鲁棒估计器,该估计器能够承受所有类型的异常值,包括不良的杠杆点和错误的零注入。估计量的统计稳健性源于Schweppe型Huber GM估计量(SHGM)的应用,而其数值稳健性则源于使用正交迭代重新加权最小二乘算法以及Van Loan方法处理均等性约束。新的估算器(简称EC-SHGM估算器)的良好性能在小型测试系统和巴西南方电力系统上得到了证明,其规模从139辆公共汽车增加到1916辆公共汽车。结果表明,在所有测试情况下,WLS方法都具有优越的收敛性,而当将大权重分配给对虚假信息进行建模的零功率注入时,WLS方法可能会遇到数值不稳定性甚至发散问题。

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