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Adaptive Power System Stabilizer Using ANFIS and Genetic Algorithms

机译:使用ANFIS和遗传算法的自适应电力系统稳定剂

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This paper presents an adaptive Power System Stabilizer (PSS) using an Adaptive Network Based Fuzzy Inference System (ANFIS) and Genetic Algorithms (GAs). Firstly, genetic algorithms are used to tune a conventional PSS on a wide range of operating conditions and then, the relationship between these operating points and the PSS parameters is learned by the ANFIS. The ANFIS optimally selectes the classical PSS parameters based on machine loading conditions. The proposed stabilizer has been tested by performing nonlinear simulations using a synchronous machine-infinite bus model. The results show the robustness and the capability of the stabilizer to enhance system damping over a wide range of operating conditions and system parameter variations.
机译:本文使用基于自适应网络的模糊推理系统(ANFIS)和遗传算法(气体)呈现自适应电力系统稳定器(PSS)。首先,遗传算法用于在宽范围的操作条件下调整传统PSS,然后,通过ANFI学习这些操作点与PSS参数之间的关系。 ANFIS最佳地选择基于机器负载条件的经典PSS参数。通过使用同步机器无限总线模型执行非线性模拟来测试所提出的稳定器。结果表明,稳定器的稳健性和能力,以增强在各种操作条件和系统参数变化范围内的系统阻尼。

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