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Measuring the unevenness of yarn apparent diameter from yarn sequence images

机译:从纱线序列图像测量纱线表观直径的不均匀度

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摘要

This article presents a novel method for measuring the unevenness of yarn apparent diameter based on yarn sequence images captured from a moving yarn. A dynamic threshold module was designed to gain the global threshold for segmenting yarns in the sequence images. In the module, a K-means clustering algorithm was employed to classify the pixels of each frame in the sequence into two clusters-yarn and background. The cluster center of the current frame was used as the initial value of the cluster center for the next frame in the sequence to expedite the segmentation process. From the segmented yarn image, the yarn core was further extracted utilizing the characteristics of yarn hairiness, and two judgment templates were adopted to remove burrs, isolated points and unrelated small areas in the images. The yarn apparent diameter was measured on the yarn core at a given interval. The same kind of yarns were tested by using this method and Uster Evenness Tester 5. The experimental results show that the proposed method can accurately detect the unevenness of yarn apparent diameter and provide new useful information about yarn unevenness, such as the short-term, the long-term, and the periodic variations of yarn apparent diameters.
机译:本文提出了一种基于从运动中的纱线捕获的纱线序列图像来测量纱线表观直径不均匀度的新颖方法。设计了动态阈值模块,以获取用于在序列图像中分割纱线的全局阈值。在该模块中,采用K均值聚类算法将序列中每一帧的像素分为两个聚类:纱线和背景。当前帧的聚类中心用作序列中下一帧的聚类中心的初始值,以加快分割过程。从分割后的纱线图像中,利用纱线毛羽的特征进一步提取纱线芯,并采用两个判断模板去除图像中的毛刺,孤立点和无关的小区域。以给定的间隔在纱线芯上测量纱线表观直径。使用该方法和乌斯特均匀度测试仪5对相同类型的纱线进行了测试。实验结果表明,该方法可以准确地检测出纱线表观直径的不均匀度,并提供有关纱线不均匀度的新的有用信息,例如短期,纱线表观直径的长期和周期性变化。

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