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Data-driven constrained optimal model reduction

机译:数据驱动约束最佳模型减少

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Model reduction by moment matching can be interpreted as the problem of finding a reduced-order model which possesses the same steady-state output response of a given full-order system for a prescribed class of input signals. Little information regarding the transient behavior of the system is systematically preserved, limiting the use of reduced-order models in control applications. In this paper we formulate and solve the problem of constrained optimal model reduction. Using a data-driven approach we determine an estimate of the moments and of the transient response of a possibly unknown system. Consequently we determine a reduced-order model which matches the estimated moments at the prescribed interpolation signals and, simultaneously, possesses the estimated transient. We show that the resulting system is a solution of the constrained optimal model reduction problem. Detailed results are obtained when the optimality criterion is formulated with the time-domain l(1), l(2), l(infinity) norms and with the frequency-domain H-2 norm. The paper is illustrated by two examples: the reduction of the model of the vibrations of a building and the reduction of the Eady model (an atmospheric storm track model). (C) 2019 European Control Association. Published by Elsevier Ltd. All rights reserved.
机译:通过时刻匹配的模型减少可以被解释为找到具有相同的稳态输出响应,该模型具有针对规定的输入信号的给定的全阶系统的相同稳态输出响应。有关系统瞬态行为的信息,系统地保留了系统,限制了在控制应用中使用阶数模型。在本文中,我们制定并解决约束最佳模型减少问题。使用数据驱动方法,我们确定可能未知系统的时刻和瞬态响应的估计。因此,我们确定符合规定的插值信号处的估计力矩的阶数模型,同时具有估计的瞬态。我们表明所得到的系统是受约束的最佳模型减少问题的解决方案。当用时域L(1),L(2),L(Infinity)规范和频率域H-2标准配制了最优标准时获得了详细结果。本文用两个示例说明:减少建筑物振动模型以及eady模型的减少(大气风暴轨迹模型)。 (c)2019年欧洲控制协会。 elsevier有限公司出版。保留所有权利。

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