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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Recursive Identification for Fractional Order Hammerstein Model Based on ADELS
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Recursive Identification for Fractional Order Hammerstein Model Based on ADELS

机译:基于ADELS的分数阶Hammerste模型的递归识别

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This paper deals with the identification of the fractional order Hammerstein model by using proposed adaptive differential evolution with the Local search strategy (ADELS) algorithm with the steepest descent method and the overparameterization based auxiliary model recursive least squares (OAMRLS) algorithm. The parameters of the static nonlinear block and the dynamic linear block of the model are all unknown, including the fractional order. The initial value of the parameter is obtained by the proposed ADELS algorithm. The main innovation of ADELS is to adaptively generate the next generation based on the fitness function value within the population through scoring rules and introduce Chebyshev mapping into the newly generated population for local search. Based on the steepest descent method, the fractional order identification using initial values is derived. The remaining parameters are derived through the OAMRLS algorithm. With the initial value obtained by ADELS, the identification result of the algorithm is more accurate. The simulation results illustrate the significance of the proposed algorithm.
机译:本文通过利用本地搜索策略(ADEL)算法与陡峭的下降方法和基于透明的辅助模型递减最小二乘(Oamrls)算法,通过使用所提出的自适应差分演进来识别分数级差分演进。静态非线性块的参数和模型的动态线性块都是未知的,包括分数顺序。参数的初始值由所提出的Adels算法获得。 Adels的主要创新是通过评分规则基于人口中的健身功能值自适应地生成下一代,并将Chebyshev Mapping介绍进入新生成的本地搜索的人口。基于陡峭的缩减方法,导出使用初始值的分数阶标识。剩余的参数通过Oamrls算法导出。利用ADEL获得的初始值,算法的识别结果更准确。仿真结果说明了所提出的算法的重要性。

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