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Review of Concept Drift Detection Method for Industrial Process Modeling

机译:工业过程建模的概念漂移检测方法综述

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With the advent of big data era in industry, data-driven modeling methods have been applied widely. The concept drift problem in industrial process modeling has also attracted widespread attention. However, the current research on concept drift focuses on classification tasks and computer fields, with less work on regression modeling of industrial processes. Aiming at the above problems, this paper summarizes the concept drift detection methods for industrial process modeling, and guide for solving this problem. First, the general definition of concept drift and its existence in industrial processes are introduced. Then, the existing drift detection technologies based on process variables, based on prediction error of difficulty-to-measure parameter and based on combine multiple factors are addressed. Thirdly, these methods are discussed, and some research difficulties are given out. Finally, the conclusion and the future research directions for the existing concept detection difficulties are presented.
机译:随着大数据时代的到来,数据驱动的建模方法得到了广泛的应用。工业过程建模中的概念漂移问题也引起了广泛的关注。但是,当前关于概念漂移的研究集中在分类任务和计算机领域,而在工业过程的回归建模方面的工作较少。针对上述问题,本文总结了工业过程建模中的概念漂移检测方法,并为解决该问题提供了指导。首先,介绍了概念漂移的一般定义及其在工业过程中的存在。然后,针对现有的基于过程变量,基于难于测量的参数的预测误差以及基于多个因素的组合的漂移检测技术。第三,讨论了这些方法,并给出了一些研究难点。最后,给出了现有概念检测难点的结论和未来的研究方向。

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