Simultaneous Computation of Model Order and Parameter Estimation for System Identification Based on Gravitational Search Algorithm

K. Z. M. Azmi, Dwi Pebrianti, Z. Ibrahim, S. Sudin, S. W. Nawawi
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引用次数: 6

Abstract

System identification is a technique used to obtain a mathematical model of a system by performing analysis of input-output characteristic of the system. Most significant steps of system identification process are generally summarized into four main stages. The initial stage is collection of experimental data. After that, the model order and structure are selected. The next stage is to approximate the parameters of the model and finally, the mathematical model is validated. In this paper, a technique termed as Simultaneous Model Order and Parameter Estimation (SMOPE), which is specifically based on Gravitational Search Algorithm (GSA) is proposed to combine model order selection and parameter estimation in one process. Both the model order and the parameters of the system are estimated simultaneously to attain the best mathematical model of a system. From the simulation, it is proven that the proposed method can be an alternative technique for solving the system identification problem.
基于引力搜索算法的系统辨识模型阶数计算与参数估计同时进行
系统辨识是一种通过分析系统的输入输出特性来获得系统数学模型的技术。系统识别过程中最重要的步骤通常可以概括为四个主要阶段。初始阶段是实验数据的收集。然后,选择模型的顺序和结构。下一步是对模型参数进行近似,最后对数学模型进行验证。本文提出了一种基于引力搜索算法(GSA)的模型阶数和参数同时估计(SMOPE)技术,将模型阶数选择和参数估计在一个过程中结合起来。同时对系统的模型阶数和参数进行估计,以获得系统的最佳数学模型。仿真结果表明,该方法可以作为解决系统辨识问题的一种备选技术。
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