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Nonlinear Inverse Modeling of Synchronous Generator based on Improved Resource Allocating Networks

机译:基于改进资源分配网络的同步发电机非线性逆建模

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Synchronous generator inverse modeling is the basis of inverse control,analysis and design in the power systems. According to the strong nonlinear characteristics of synchronous generator,an inverse modeling method based on improved resource allocating networks (RAN) is presented in this paper.In view of the existing disadvantages of traditional resource allocating networks,a design method for RAN based on rough set theory (RST) and orthogonal least square (OLS) was proposed.With the advantage of finding useful and minimal hidden patterns in data, RST is first applied to intelligent data analysis for extracting typical characteristics and underlying rules from the training samples, followed by a second stage mapping the condition components of the rules into network centers candidate.And then OLS algorithm was used to select best centers as the hidden layer nodes with novelty criterion.The simulation results showed that the presented inverse modeling method has the advantages of simple network structure,high convergence rate and better generalization ability, etc.
机译:同步发电机逆建模是电力系统中逆控制,分析和设计的基础。根据同步发电机的强非线性特性,本文提出了一种基于改进的资源分配网络(RAN)的反向建模方法。在传统资源分配网络的现有缺点的视图中,基于粗糙集的RAN设计方法提出了理论(RST)和正交最小二乘(OLS)。在数据中找到有用和最小的隐藏模式的优点,首先应用于从训练样本中提取典型特征和基础规则的智能数据分析,然后是a第二阶段将规则的条件组成部分映射到网络中心候选者。然后使用OLS算法选择最佳中心作为具有新颖性标准的隐藏层节点。仿真结果表明,呈现的逆建模方法具有简单网络结构的优点,高收敛速度和更好的泛化能力等

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