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Load-frequency control of interconnected power system using emotional learning-based intelligent controller

机译:基于情感学习的智能控制器对电力系统负荷频率的控制

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摘要

In this paper a novel approach based on the emotional learning is proposed for improving the load-frequency control (LFC) system of a two-area interconnected power system with the consideration of generation rate constraint (GRC). The controller includes a neuro-fuzzy system with power error and its derivative as inputs. A fuzzy critic evaluates the present situation, and provides the emotional signal (stress). The controller modifies its characteristics so that the critic's stress is reduced.The convergence and performance of the proposed controller, both in presence and absence of GRC, are compared with those of proportional integral (PI), fuzzy logic (FL), and hybrid neuro-fuzzy (HNF) controllers.
机译:本文提出了一种基于情感学习的新方法,以考虑发电量约束(GRC)来改善两区域互联电力系统的负载频率控制(LFC)系统。控制器包括一个具有功率误差及其导数作为输入的神经模糊系统。模糊评论家评估当前状况,并提供情感信号(压力)。控制器修改了其特性,从而减轻了评论者的压力。将所提出的控制器在有无GRC时的收敛性和性能与比例积分(PI),模糊逻辑(FL)和混合神经元的收敛性和性能进行了比较。 -模糊(HNF)控制器。

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