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Diagnostic System of Drill Condition in Laminated Chipboard Drilling Process

机译:层压刨花板钻井过程中钻头条件的诊断系统

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The paper presents an on-line automatic system for recognition of the drill condition in a laminated chipboard drilling process. Two states of the drill are considered: the sharp enough (still able to drill holes acceptable for processing quality) and worn out (excessive drill wear, not satisfactory from the quality point of view of the process). The automatic system requires defining the diagnostic features, which are used as the input attributes to the classifier. The features have been generated from 5 registered signals: feed force, cutting torque, noise, vibration and acoustic emission. The statistical parameters defined on the basis of the auto regression model of these signals have been used as the diagnostic features. The sequential step-wise feature selection is applied for choosing the most discriminative set of features. The final step of recognition is done by support vector machine classifier working in leave one out mode. The results of numerical experiments have confirmed good quality of the proposed diagnostic system.
机译:本文介绍了一个在线自动系统,用于识别层压芯片钻钻过程中的钻孔条件。考虑了两个钻头的态度:足够锐(仍然能够钻孔以获得加工质量的孔)并磨损(过度钻穿,从过程的质量的角度来看,不令人满意)。自动系统需要定义诊断功能,这些功能用作分类器的输入属性。该特征是从5个注册信号产生的:饲料力,切割扭矩,噪声,振动和声发射。基于这些信号的自动回归模型定义的统计参数已被用作诊断功能。应用序贯步进特征选择来选择最辨别的一组特征。最后的识别步骤是通过支持留出一个外模式的支持向量机分类器完成的。数值实验的结果证实了所提出的诊断系统的良好质量。

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