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A new method for grading of silk yarn using electronic vision

机译:电子视觉分级丝的新方法

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The color of Tasar silk yarns is determined by a number of production factors, any slight variation in any one of these factors lead to variation in color of the yarn produced. At the present production technology, it is difficult to produce yarns of uniform color at the producers' level, but once produced, those yarns can be sorted based on its color. The important characteristic of tasar silk yarn is its lustrous nature, it reflects light, thus difficult to ascertain the exact color manually. Slight variation in color is difficult to detect manually but the market demands lots with perfectly uniformly colored yarns within the lot though inter-lot variation in color is encouraged. So, Yarn separation based on the color is highly subjective and the process of manually separation of color is tedious and monotonous also. Also, it requires expert manpower, which may not be available in the remote villages in all cases. So, there is a need to develop an instrument, which can easily grade the yarns based on the color. This paper proposes automation of the silk yarn grading process by capturing images and classifying the silk yarns using digital image processing based color analysis technique thereby improving productivity and accuracy of this process. CIELCh color scale has been used for color analysis. Principle Component Analysis (PCA) shows the formation of inherent clusters in the image dataset. Color feature parameter based hierarchical grouping has been introduced here for silk yarn color grading. More than 2000 images have been analyzed using developed solution & the results have been validated with the human experts. Laboratory experiments found the overall accuracy of system in the tune of 91%.
机译:Tasar真丝的颜色由许多生产因素决定,这些因素中任何一种的任何细微变化都会导致所生产纱线的颜色变化。在目前的生产技术中,很难在生产者的水平上生产出均匀颜色的纱线,但是一旦生产,这些纱线就可以根据其颜色进行分类。塔萨尔丝绸纱线的重要特征是其光泽性质,它反射光,因此难以手动确定确切的颜色。颜色的细微变化很难手动检测,但是尽管鼓励批次间颜色变化,但市场仍要求批次中的纱线颜色完全均匀。因此,基于颜色的纱线分离是非常主观的,并且手动分离颜色的过程也是单调乏味的。而且,它需要专家的人力,在所有情况下,偏远的村庄可能都没有这种人力。因此,需要开发一种能够容易地基于颜色对纱线进行分级的仪器。本文提出了一种通过基于数字图像处理的色彩分析技术,通过捕获图像和对蚕丝进行分类来实现蚕丝分级过程的自动化,从而提高了该过程的生产率和准确性。 CIELCh色标已用于颜色分析。主成分分析(PCA)显示了图像数据集中固有簇的形成。此处介绍了基于颜色特征参数的层次分组,用于丝绸纱线的颜色分级。使用开发的解决方案已经分析了2000多个图像,并且结果已经与人类专家进行了验证。实验室实验发现系统的整体准确度达到91%。

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