H∞ model reduction of Takagi-Sugeno fuzzy stochastic systems.

Xiaojie Su, Ligang Wu, Peng Shi, Yong-Duan Song
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引用次数: 138

Abstract

This paper is concerned with the problem of H(∞) model reduction for Takagi-Sugeno (T-S) fuzzy stochastic systems. For a given mean-square stable T-S fuzzy stochastic system, our attention is focused on the construction of a reduced-order model, which not only approximates the original system well with an H(∞) performance but also translates it into a linear lower dimensional system. Then, the model reduction is converted into a convex optimization problem by using a linearization procedure, and a projection approach is also presented, which casts the model reduction into a sequential minimization problem subject to linear matrix inequality constraints by employing the cone complementary linearization algorithm. Finally, two numerical examples are provided to illustrate the effectiveness of the proposed methods.

Takagi-Sugeno模糊随机系统的H∞模型约简。
研究了Takagi-Sugeno (T-S)模糊随机系统的H(∞)模型约简问题。对于给定的均方稳定T-S模糊随机系统,我们的重点是建立一个降阶模型,该模型不仅能很好地逼近原系统并具有H(∞)性能,而且能将其转化为线性低维系统。然后,利用线性化方法将模型约简转化为一个凸优化问题,并提出了一种投影方法,利用锥互补线性化算法将模型约简转化为一个受线性矩阵不等式约束的顺序最小化问题。最后,给出了两个数值算例,说明了所提方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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