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Identification of Yarn Periodical Errors Using Signal Processing Techniques Based on Capacitive and Optical Sensors Measurements

机译:基于电容和光学传感器测量的信号处理技术识别纱线周期误差

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This paper presents a study to identify the type and location of yarn periodical errors applying three different signal processing approaches based on FFT - Fast Fourier Transform, FWHT-Fast Walsh-Hadamard Transform and FDFI - Fast Impulse Frequency Determination. The errors determination is applied for the mass measurement of yarn using a capacitive sensor and for the measurement of yarn diameter/hairiness based on optical sensors. Commercial equipment uses exclusively a FFT approach which is not able to clearly detect other types of common periodical yarn errors, especially impulse errors, as well as an inferior resolution than the 1mm used in this work. The theoretical description of each signal processing technique is presented, as well as their application to several simulated errors, namely, sinusoidal, rectangular, pulse and impulse errors, showing proper results and a more complete analysis of periodical errors.
机译:本文提出了一种基于FFT - 快速傅立叶变换,FWHT-FAST WALSH-HADAMARD变换和FDFI - 快速脉冲频率测定来识别应用三种不同信号处理方法的纱线周期误差的类型和位置。使用电容传感器应用误差确定纱线的质量测量,并基于光学传感器测量纱线直径/毛眼。商业设备专门用于一种FFT方法,不能清楚地检测其他类型的常见周期性纱线误差,尤其是脉冲误差,以及比在这项工作中使用的1mm的较差的分辨率。提出了每个信号处理技术的理论描述,以及它们在若干模拟误差,即正弦,矩形,脉冲和脉冲误差的应用,显示出适当的结果和对周期误差的更完整的分析。

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