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A human-assisted knowledge extraction method for machining operations

机译:一种用于加工操作的人工辅助知识提取方法

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This paper deals with a human-assisted knowledge extraction method to extract "if...then..." rules from a small set of machining data. The presented method utilizes both probabilistic reasoning and fuzzy logical reasoning to benefit from the machining data and from the judgment and preference of a machinist. Using the extracted rules, one can determine the values of operational parameters (feed, cutting velocity, etc.) to ensure the desired machining performance (keep surface roughness within the stipulated range (e.g., moderate)). Applying the presented method in a real-life machining knowledge extraction situation and comparing it with the inductive learning based knowledge extraction method (i.e., ID3), the usefulness of the method is demonstrated. As the concept of manufacturing automation is shifting toward "'how to support humans by computers", the presented method provides some valuable hints to the developers of futuristic computer integrated manufacturing systems. (c) 2006 Elsevier Ltd. All rights reserved.
机译:本文讨论了一种人为辅助的知识提取方法,可从一小组加工数据中提取“ if ... then ...”规则。提出的方法利用概率推理和模糊逻辑推理两者来受益于加工数据以及机械师的判断和偏爱。使用所提取的规则,可以确定操作参数(进给,切削速度等)的值,以确保所需的加工性能(将表面粗糙度保持在规定范围内(例如,中等))。将所提出的方法应用于现实生活中的加工知识提取情况,并将其与基于归纳学习的知识提取方法(即ID3)进行比较,证明了该方法的有效性。由于制造自动化的概念正朝着“如何通过计算机支持人”的方向发展,因此该方法为未来的计算机集成制造系统的开发人员提供了一些有价值的提示。 (c)2006 Elsevier Ltd.保留所有权利。

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