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Adaptive Power System Stabilizer Design Using Optimal Support Vector Machines Based on Harmony Search Algorithm

机译:基于和谐搜索算法的最优支持向量机自适应电力系统稳定器设计

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摘要

This article presents the application of support vector machines to adaptive power system stabilizer design in a multi-machine power system based on the harmony search algorithm. Data from a multi-machine power system are the input features of the support vector machines. Support vector machine parameters and power system features are simultaneously optimized by harmony search based on the k-fold cross-validation technique. The proposed algorithm is trained by the optimal support vector machine parameters and optimal power system features. Power system stabilizer parameters produced by the proposed algorithm can be adapted by various operating conditions when the power system operates either inside or outside the training ranges. Simulation studies in the IEEJ Western Japan ten-machine power system demonstrate that the proposed algorithm is far superior to conventional power system stabilizers with fixed parameters and those designed by a robust coupled vibration model under various operating conditions and severe disturbances.
机译:本文介绍了基于和谐搜索算法的支持向量机在多机电力系统自适应电力系统稳定器设计中的应用。来自多机动力系统的数据是支持向量机的输入特征。支持向量机参数和电力系统特征通过基于k折交叉验证技术的和声搜索同时进行优化。该算法通过最优支持向量机参数和最优电力系统特征进行训练。当电力系统在训练范围之内或之外运行时,由所提出的算法产生的电力系统稳定器参数可以根据各种工况进行调整。在IEEJ日本西部十机电力系统中进行的仿真研究表明,该算法远胜于具有固定参数的常规电力系统稳定器以及由在各种工况和严重干扰下通过鲁棒耦合振动模型设计的稳定器。

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