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Determination of tool wear in turning process using undecimated wavelet transform and textural features

机译:使用未传定小波变换和纹理特征的转动过程中刀具磨损的测定

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The state of a cutting tool is a critical factor in any metal cutting process because dull or damaged cutting tool reduces surface quality and dimensional accuracy of workpiece and damages the machine tool. This paper proposes a novel vision-based approach for determining tool wear in metal cutting. The surface irregularity changes caused by tool wear are used as a criterion for estimating the cutting tool wear. Undecimated Wavelet Transform is used to decompose the surface image of the workpiece into sub-images in which the cutting tool wear can be indicated. The texture of sub-images is analyzed using GLCM texture features. The experimental results showed that the combination of undecimated wavelet decomposition and GLCM texture features can be used as a robust method for determining tool wear in the turning process.
机译:切割工具的状态是任何金属切割过程中的关键因素,因为切削工具钝化或损坏的工具降低了工件的表面质量和尺寸精度并损坏了机床。本文提出了一种基于视觉的基于视觉方法,用于确定金属切割刀具磨损。由工具磨损引起的表面不规则变化用作估计切削刀具磨损的标准。未传定的小波变换用于将工件的表面图像分解为可以指示切削刀具磨损的子图像。使用GLCM纹理特征分析子图像的纹理。实验结果表明,未曝光的小波分解和GLCM纹理特征的组合可以用作用于在转动过程中确定工具磨损的鲁棒方法。

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