Reduced order modeling of delta operator systems by optimal frequency fitting approach

IF 1.8 Q3 AUTOMATION & CONTROL SYSTEMS IFAC Journal of Systems and Control Pub Date : 2024-01-09 DOI:10.1016/j.ifacsc.2024.100240
Arindam Mondal , Souvik Ganguli , Prasanta Sarkar
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Abstract

The delta operator modeling provides a unified framework for both continuous-time and discrete-time modeling in system theory. At high sampling rate, the shift operator fails to provide meaningful information whereas, the delta operator parameterized system provides the same results as of continuous time systems. In this paper reduced order modeling of delta operator parameterized systems is considered. A complex domain (δ) optimal frequency matching (OFM) technique is proposed and frequency points are optimized using Particle Swarm Optimization (PSO) algorithm. This OFM is then utilized to find the reduced order model of the higher order system. PSO algorithm is a robust, global optimization technique, used to find these OFMs and thereby used to find the coefficients of the reduced order model by minimizing a cost function developed based on the responses of the higher order model and that of the reduced order model when both are excited by pseudo random binary sequences (PRBS). The performance characteristics are evaluated in software simulation using MATLAB considering example of higher order system in delta domain and time & frequency responses of the corresponding reduced model.

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用最优频率拟合法建立三角算子系统的低阶模型
德尔塔算子建模为系统理论中的连续时间和离散时间建模提供了一个统一的框架。在高采样率下,移位算子无法提供有意义的信息,而三角算子参数化系统却能提供与连续时间系统相同的结果。本文考虑对三角算子参数化系统进行降阶建模。本文提出了一种复域 (δ) 最佳频率匹配 (OFM) 技术,并使用粒子群优化 (PSO) 算法对频点进行了优化。然后利用这种 OFM 找到高阶系统的降阶模型。PSO 算法是一种稳健的全局优化技术,用于找到这些 OFM,并通过最小化基于高阶模型和低阶模型在伪随机二进制序列(PRBS)激励下的响应而开发的成本函数,找到低阶模型的系数。使用 MATLAB 软件模拟评估了高阶系统在三角域和时间amp 中的性能特征,以及相应简化模型的频率响应。
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来源期刊
IFAC Journal of Systems and Control
IFAC Journal of Systems and Control AUTOMATION & CONTROL SYSTEMS-
CiteScore
3.70
自引率
5.30%
发文量
17
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