Linear time-invariant models of a large cumulus ensemble

Zhiming Kuang
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Abstract

Methods in system identification are used to obtain linear time-invariant state-space models that describe how horizontal averages of temperature and humidity of a large cumulus ensemble evolve with time under small forcing. The cumulus ensemble studied here is simulated with cloud-system-resolving models in radiative-convective equilibrium. The identified models extend steady-state linear response functions used in past studies and provide accurate descriptions of the transfer function, the noise model, and the behavior of cumulus convection when coupled with two-dimensional gravity waves. A novel procedure is developed to convert the state-space models into an interpretable form, which is used to elucidate and quantify memory in cumulus convection. The linear problem studied here serves as a useful reference point for more general efforts to obtain data-driven and interpretable parameterizations of cumulus convection.
大型积云集合的线性时变模型
利用系统识别方法获得了线性时变状态空间模型,该模型描述了大型积云集合的温度和湿度水平平均值在小强迫条件下如何随时间演变。本文研究的积云群是用辐射对流平衡状态下的云系统解析模式模拟的。确定的模型扩展了过去研究中使用的稳态线性响应函数,并对传递函数、噪声模型以及积云对流与二维重力波耦合时的行为进行了精确描述。我们开发了一种新程序,将状态空间模型转换为可解释的形式,用于阐明和量化积云对流中的记忆。本文研究的线性问题为更广泛地获取积云对流的数据驱动和可解释参数提供了一个有用的参考点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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