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Unsupervised Color Classification for Yarn-dyed Fabric Based on FCM Algorithm

机译:基于FCM算法的色织面料无监督颜色分类

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A novel method for realizing the color classifying in yarn-dyed fabric is proposed in this paper. The color image of yarn-dyed fabric was obtained by a flat scanner, and then it is converted from RGB color space to Lab color space. By analyzing the difference among RGB, HSL and Lab color space, the advantages of Lab color are concluded. FCM was selected as the Color Cluster method. A better color classification quality in Lab color space is shown in the experiment. The color yarn number is detected based on the validity for FCM clusters. Experimental comparisons on RGB, HSL, and Lab color spaces show that the approach proposed in this article is more effective for color extracting and classifying in yarn-dyed fabric.
机译:提出了一种实现色织面料颜色分类的新方法。通过平面扫描仪获得色织织物的彩色图像,然后将其从RGB颜色空间转换为Lab颜色空间。通过分析RGB,HSL和Lab色彩空间之间的差异,总结了Lab色彩的优势。选择FCM作为“颜色聚类”方法。实验显示了在Lab颜色空间中更好的颜色分类质量。根据FCM簇的有效性检测色纱数量。在RGB,HSL和Lab颜色空间上进行的实验比较表明,本文提出的方法对于色织织物的颜色提取和分类更为有效。

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