On-Line Model Selection Techniques By Using Multiple Models And Supervision Algorithms

A. Ibeas, P. Balaguer, R. Vilanova, C. Pedret
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引用次数: 2

Abstract

In this paper, an intelligent adaptive multi-model based control scheme is proposed to obtain the lowest-order model for a system under control by means of adaptation and switching between multiple models. The multi-model scheme is composed of three models of increasing consecutive orders operating in parallel along with a switching mechanism between them. The switching policy selects on-line the necessary order of the nominal model required to achieve the desired degree of performance of the closed-loop depending on the reference signal selection. In this way, the order selection is performed automatically in real-time by comparing the actual behaviour of the system with the desired performance for the closed-loop. The estimation of the parameters of the model is performed by an adaptive algorithm integrating a so-called multi-estimation scheme. This architecture leads to a simple procedure to on-line select the appropriate order of the nominal model required for a certain control application with assessment of a prescribed level of closed-loop performance.
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基于多模型和监督算法的在线模型选择技术
本文提出了一种基于多模型的智能自适应控制方案,通过多模型间的自适应和切换来获得被控系统的最低阶模型。多模型方案由三个并行运行的增加连续订单模型以及它们之间的切换机制组成。开关策略根据参考信号的选择在线选择达到闭环性能所需的标称模型的必要阶数。通过这种方式,通过比较系统的实际行为与闭环的期望性能,自动实时地执行顺序选择。模型参数的估计是由一种自适应算法进行的,该算法集成了所谓的多重估计方案。这种体系结构使在线选择特定控制应用所需的标称模型的适当阶数的过程变得简单,并对规定水平的闭环性能进行评估。
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