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On Data Science for Process Systems Modeling, Control and Operations

机译:关于过程系统建模,控制和操作的数据科学

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Data science is emerging as a multidisciplinary field with tremendous recent development in theoretical foundations and expanded applications in both science and engineering. Engineering applications include industrial data analytics, autonomous systems, energy analytics, environmental applications, economic data modeling, image sequence modeling, and other high dimensional time-series data analytics. This paper is concerned with the integration of data science with dynamic systems, monitoring and control. The development of machine learning is reviewed in both a neural-mimic learning route and a learning control route, which deals with intrinsically uncertain dynamic systems. The paper then reviews the interaction of data with process manufacturing systems modeling and control, involving both data and first principles models with varying proportions. Problems include data reconciliation, state and disturbance estimation, system identification, process monitoring, and inferential property estimation. For time series data in process manufacturing systems, we present latent dynamic variable modeling methods to extract the principal dynamics in a low dimensional subspace of the data. The approaches effectively distill latent dynamic features from the data for easy interpretation, prediction, and visualization. Case studies are presented to illustrate how these latent dynamic analytics extract important features for process interpretation, troubleshooting, and monitoring.
机译:数据科学作为一个多学科领域,具有巨大的最近在理论基础的发展和科学与工程中的扩展应用。工程应用包括工业数据分析,自主系统,能源分析,环境应用,经济数据建模,图像序列建模和其他高维时间序列数据分析。本文涉及数据科学与动态系统,监控和控制的集成。在神经模仿学习路线和学习控制路线中审查了机器学习的发展,这些方法涉及本质上不确定的动态系统。然后,该论文审查了数据与过程制造系统建模和控制的交互,涉及数据和第一个原理模型,具有不同比例的模型。问题包括数据和解,状态和干扰估计,系统识别,过程监控和推理性质估计。对于过程制造系统中的时间序列数据,我们呈现潜在动态变量建模方法,以提取数据的低维子空间中的主要动态。该方法有效地蒸馏潜伏的动态特征,以便于解释,预测和可视化。提出了案例研究以说明这些潜在动态分析如何提取过程解释,故障排除和监控的重要特征。

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