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DATA MINING FROM ENDMILL TOOL CATALOG INFORMATION BASED ON THE USE OF A MACHINE LEARNING METHOD

机译:基于使用机器学习方法的EndMill工具目录信息挖掘数据挖掘

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In recent years, the needs associated with the development of new technologies in the manufacturing industry that utilize big data typified by the Internet-of-Things (IoT) and artificial intelligence (AI) have been increasing. Recent computer-aided manufacturing (CAM) systems have evolved so that unskilled technicians can create tool paths relatively easily with numerically controlled (NC) programs, but tool-cutting conditions used for machining cannot be automatically determined. Therefore, many unskilled technicians often set the cutting conditions based on the recommended conditions described in the tool catalog. However, given that the catalog contains large-scale data on machining technology, setting the proper conditions becomes a time-consuming and inefficient process. In this study, we aimed to construct a system to support unskilled technicians to determine the optimum machining conditions. To this end, we constructed a prediction model using a random forest machine learning method to predict the cutting conditions. It was confirmed that the prediction with the random forest method can be performed with high accuracy based on the cutting conditions recommended by the tool maker. Thus, the effectiveness of this method was verified.
机译:近年来,与利用互联网(物联网)和人工智能(AI)为代表的大数据的制造业开发新技术的需求已经增加。最近的计算机辅助制造(CAM)系统已经进化,因此不熟练的技术人员可以使用数控(NC)程序相对容易地创建工具路径,但不能自动确定用于加工的工具切割条件。因此,许多不熟练的技术人员通常根据工具目录中描述的推荐条件设置切割条件。然而,鉴于目录包含关于加工技术的大规模数据,设置适当的条件变为耗时和低效的过程。在这项研究中,我们旨在构建一个系统来支持不熟练的技术人员来确定最佳加工条件。为此,我们使用随机林机器学习方法构建预测模型来预测切割条件。证实,基于工具制造商推荐的切割条件,可以高精度地执行随机森林方法的预测。因此,验证了该方法的有效性。

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