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Design of Experiments for Control-Relevant Multivariable Model Identification: An Overview of Some Basic Recent Developments

机译:与控制有关的多变量模型辨识的实验设计:近期一些基本进展的概述

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The effectiveness of model-based multivariable controllers depends on the quality of the model used. In addition to satisfying standard accuracy requirements for model structure and parameter estimates, a model to be used in a controller must also satisfy control-relevant requirements, such as integral controllability. Design of experiments (DOE), which produce data from which control-relevant models can be accurately estimated, may differ from standard DOE. The purpose of this paper is to emphasize this basic principle and to summarize some fundamental results obtained in recent years for DOE in two important cases: Accurate estimation of the order of a multivariable model and efficient identification of a model that satisfies integral controllability; both important for the design of robust model-based controllers. For both cases, we provide an overview of recent results that can be easily incorporated by the final user in related DOE. Computer simulations illustrate outcomes to be anticipated. Finally, opportunities for further development are discussed.
机译:基于模型的多变量控制器的有效性取决于所用模型的质量。除了满足模型结构和参数估计的标准精度要求外,要在控制器中使用的模型还必须满足与控制相关的要求,例如整体可控性。实验设计(DOE)可能会产生与标准DOE不同的数据,根据这些数据可以准确估计与控制相关的模型。本文的目的是强调这一基本原理,并总结近年来在两种重要情况下针对DOE所获得的一些基本结果:准确估计多变量模型的阶数和有效识别满足积分可控性的模型;两者对于设计基于模型的鲁棒控制器都很重要。对于这两种情况,我们都会提供最新结果的概述,最终用户可以轻松将其纳入相关的DOE中。计算机模拟说明了预期的结果。最后,讨论了进一步发展的机会。

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