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A methodology for building a data-enclosing tunnel for automated online-feedback in simulator Training

机译:在模拟器培训中构建用于自动在线反馈的数据封闭隧道的方法

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摘要

Extensive research confirms that feedback is the key to an effective training. However, in many domains, human trainers, who can provide feedback to trainees, are considered not only a costly but also a scarce resource. For trainees to be more independent and undergo self-training and unbiased support, effective automated feedback is highly recommended. We resort to elements from the theory of data mining to devise a data-driven automated feedback system. The data-enclosing tunnel is a novel concept that may be used to detect deviations from correct operation paths and be the base for automated feedback. Two case studies demonstrate the viability of this methodology and its usefulness in industrial simulation scenarios. Case study 1 focuses on the increase of oil production, whilst case study 2 focuses on the decrease of gas production. The data-enclosing tunnel is validated and compared with three other assessment methods. These methods are simpler versions of the data-enclosing tunnel method, as they are three variants of a baseline approach Data Enclosing Band (DEB), namely DEBI, DEB2, DEB3. The methods accuracy is determined by calculating how precisely they can classify new data. The data-enclosing tunnel yielded the highest accuracy, 94.3%, compared to 81.4%, 62.9%, and 70% for DEBI, DEB2, DEB3 respectively. (C) 2019 Elsevier Ltd. All rights reserved.
机译:广泛的研究证实,反馈是有效培训的关键。但是,在许多领域中,可以向受训者提供反馈的人类培训者不仅被认为是昂贵的,而且是稀缺的资源。为了使受训者更加独立并接受自我训练和公正的支持,强烈建议提供有效的自动反馈。我们利用数据挖掘理论中的要素来设计数据驱动的自动反馈系统。数据封闭隧道是一个新颖的概念,可用于检测与正确操作路径的偏差,并且是自动反馈的基础。两个案例研究证明了该方法的可行性及其在工业仿真场景中的实用性。案例研究1专注于增加石油产量,而案例研究2专注于减少天然气产量。验证了数据封闭隧道,并将其与其他三种评估方法进行了比较。这些方法是数据封闭隧道方法的简单版本,因为它们是基线方法数据封闭带(DEB)的三个变体,即DEBI,DEB2,DEB3。通过计算方法可以对新数据进行分类的精确度来确定方法的准确性。数据封闭隧道的最高精度为94.3%,而DEBI,DEB2和DEB3分别为81.4%,62.9%和70%。 (C)2019 Elsevier Ltd.保留所有权利。

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