通过矩匹配从数据到降阶模型

IF 2.1 3区 计算机科学 Q3 AUTOMATION & CONTROL SYSTEMS
Azka M. Burohman , Bart Besselink , Jacquelien M.A. Scherpen , M. Kanat Camlibel
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引用次数: 0

摘要

本文介绍了一种用于离散时间系统的数据驱动插值模型还原的新方法。利用所谓的数据信息性视角,我们定义了一个框架,使我们能够仅根据时域输入输出数据计算给定(可能复杂)插值点的矩,而无需明确识别高阶系统。相反,通过描述解释数据的所有系统的集合,提供了必要条件和充分条件,在这些条件下,该集合中的所有系统在给定插值点共享相同的时刻。此外,这些条件允许明确计算这些时刻。然后,通过采用经典的有理插值法的变体,推导出减阶模型。此外,还讨论了用规定极点强制矩匹配模型还原的条件,以此获得稳定的还原阶模型。一个电路实例说明了这一框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From data to reduced-order models via moment matching
A new method for data-driven interpolatory model reduction for discrete-time systems is presented in this paper. Using the so-called data informativity perspective, we define a framework that enables the computation of moments at given (possibly complex) interpolation points based on time-domain input–output data only, without explicitly identifying the high-order system. Instead, by characterizing the set of all systems explaining the data, necessary and sufficient conditions are provided under which all systems in this set share the same moment at a given interpolation point. Moreover, these conditions allow for explicitly computing these moments. Reduced-order models are then derived by employing a variation of the classical rational interpolation method. The condition to enforce moment matching model reduction with prescribed poles is also discussed as a means to obtain stable reduced-order models. An example of an electrical circuit illustrates this framework.
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来源期刊
Systems & Control Letters
Systems & Control Letters 工程技术-运筹学与管理科学
CiteScore
4.60
自引率
3.80%
发文量
144
审稿时长
6 months
期刊介绍: Founded in 1981 by two of the pre-eminent control theorists, Roger Brockett and Jan Willems, Systems & Control Letters is one of the leading journals in the field of control theory. The aim of the journal is to allow dissemination of relatively concise but highly original contributions whose high initial quality enables a relatively rapid review process. All aspects of the fields of systems and control are covered, especially mathematically-oriented and theoretical papers that have a clear relevance to engineering, physical and biological sciences, and even economics. Application-oriented papers with sophisticated and rigorous mathematical elements are also welcome.
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