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Application of sequential Response Surface Methodology to the power system state estimation

机译:顺序响应面法在电力系统状态估计中的应用

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Problems of estimation in statistical inference are mainly generalized by the samples. Assigned numerical values to a population parameter will expect a close estimation based on the available sample. In this paper, a use of sequential Response Surface Methodology (sequential-RSM) is proposed for the power system state estimator solution. Offline Data (measurements and the state variables) are collected for building Regression Model (RM). Since each available measurement takes consideration of dynamic nature of bus load in the respective bus, each state variable is given its regression model for the solution. Finally, the model validation based on reasonableness of the regression coefficients is analyzed by checking a candidate model against independent data. The minimum number of measurements is made available for each trial. Results obtained when the IEEE 14-bus testing system was analyzed are presented.
机译:统计推断中的估计问题主要由样本概括。为总体参数分配数值会期望基于可用样本进行精确估算。在本文中,提出了将顺序响应面方法(sequential-RSM)用于电力系统状态估计器解决方案。收集脱机数据(度量和状态变量)以建立回归模型(RM)。由于每个可用的测量都考虑了各个母线中母线负载的动态特性,因此为每个状态变量指定了其回归模型。最后,通过对照独立数据检查候选模型来分析基于回归系数合理性的模型验证。为每个试验提供了最少的测量次数。介绍了分析IEEE 14总线测试系统时获得的结果。

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