首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Automatic recognition of weave pattern and repeat for yarn-dyed fabric based on KFCM and IDMF
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Automatic recognition of weave pattern and repeat for yarn-dyed fabric based on KFCM and IDMF

机译:基于KFCM和IDMF的色织织物的织纹和重复性的自动识别

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摘要

This paper proposes an automatic recognition method to analyze the weave pattern and repeat of yarndyed fabrics. Firstly, the warp and weft floats of preprocessing yarn-dyed fabric images with the solid color are segmented through gray projection method. The kernel fuzzy c-means clustering (KFCM) algorithm is utilized to classify the weave points based on the texture features of gray means, gray variances and gray level co-occurrence matrix (GLCM). The exact state of the two floats is judged by comparing average gray means of each cluster. With warp floats (1s) and weft floats (Os), fabric image is represented as binary value weave diagram and coded digital matrix. Then, improved distance matching function (IDMF) is employed to obtain the weave repeat of weave diagram, which is used to correct error floats and improve the accuracy of identification result. Moreover, IDMF is directly applied to yarn-dyed fabrics with different color yarns and obtained the accurate weave repeat with faster speed. The experimental results have shown that the proposed algorithm can recognize weave pattern and repeat accurately and faster, and output the corresponding binary value weave diagram of the identified fabric. (C) 2015 Elsevier GmbH. All rights reserved.
机译:本文提出了一种自动识别方法来分析色织织物的织造图案和重复性。首先,通过灰度投影法对纯色预处理的色织织物图像的经,纬浮标进行分割。基于灰色均值,灰度方差和灰度共生矩阵(GLCM)的纹理特征,利用核模糊c均值聚类(KFCM)算法对编织点进行分类。通过比较每个群集的平均灰度平均值来判断两个浮标的确切状态。对于经纱浮漂(1s)和纬纱浮漂(Os),织物图像表示为二进制值编织图和编码数字矩阵。然后,利用改进的距离匹配函数(IDMF)获得编织图的编织重复次数,用于校正误差浮点并提高识别结果的准确性。此外,IDMF可直接应用于具有不同颜色纱线的色织织物,并能以更快的速度获得准确的编织重复率。实验结果表明,所提算法能够识别出织造图案,并能准确,快速地重复,并输出识别出的织物的相应二值织造图。 (C)2015 Elsevier GmbH。版权所有。

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