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Multi-model predictive control based on the Takagi-Sugeno fuzzy models: a case study

机译:基于Takagi-Sugeno模糊模型的多模型预测控制:案例研究

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Multiple model predictive control (MMPC) strategy based on the Takagi-Sugeno (T-S) model is proposed in this paper. A T-S modeling method using fuzzy satisfactory clustering (FSC) algorithm is introduced at first. FSC is designed to help quickly determine satisfactory number of rules of a T-S model. Based on the T-S model, MMPC strategy is presented using parallel distribution compensation (PDC) method, i.e. different predictive controllers are designed for different rules (local sub-systems). The global controller output is the fuzzy weighted integration of local ones. MMPC with system constraints are also considered in this paper. The presented modeling and controller design procedure is demonstrated on an MIMO simulated pH neutralization process. (C) 2003 Elsevier Inc. All rights reserved.
机译:提出了基于Takagi-Sugeno(T-S)模型的多模型预测控制(MMPC)策略。首先介绍了一种使用模糊满意聚类(FSC)算法的TS建模方法。 FSC旨在帮助快速确定T-S模型的令人满意的规则数量。基于T-S模型,提出了使用并行分布补偿(PDC)方法的MMPC策略,即针对不同的规则(本地子系统)设计了不同的预测控制器。全局控制器输出是局部控制器的模糊加权积分。本文还考虑了具有系统约束的MMPC。在MIMO模拟的pH中和过程中演示了提出的建模和控制器设计过程。 (C)2003 Elsevier Inc.保留所有权利。

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