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首页> 外文期刊>IEICE Transactions on Fundamentals of Electronics, Communications and Computer Sciences >Discrete Modelling of Continuous-Time Systems Having Interval Uncertainties Using Genetic Algorithms
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Discrete Modelling of Continuous-Time Systems Having Interval Uncertainties Using Genetic Algorithms

机译:不确定区间连续时间离散系统的遗传算法离散化建模

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摘要

In this paper, an evolutionary approach is proposed to obtain a discrete-time state-space interval model for uncertain continuous-time systems having interval uncertainties. Based on a worst-case analysis, the problem to derive the discrete interval model is first formulated as multiple mono-objective optimization problems for matrix-value functions associated with the discrete system matrices, and subsequently optimized via a proposed genetic algorithm (GA) to obtain the lower and upper bounds of the entries in the system matrices. To show the effectiveness of the proposed approach, roots clustering of the characteristic equation of the obtained discrete interval model is illustrated for comparison with those obtained via existing methods.
机译:在本文中,提出了一种演化方法来获得具有间隔不确定性的不确定连续时间系统的离散时间状态空间间隔模型。基于最坏情况分析,首先将派生离散区间模型的问题表述为与离散系统矩阵相关的矩阵值函数的多个单目标优化问题,然后通过提出的遗传算法(GA)进行优化,获取系统矩阵中条目的上下限。为了显示该方法的有效性,说明了所获得离散间隔模型的特征方程的根聚类,以便与通过现有方法获得的特征方程进行比较。

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