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Recognition of Woven Fabric based on Image Processing and Gabor Filters

机译:基于图像处理和Gabor滤波器的机织织物识别

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摘要

In this paper, we present a novel automatic method for recognition of woven fabric. The improved image processing method is suited for texture segmentation and the frequency domain analysis method is fit for detection of texture orientation in fabric texture. Their excellent performances are put together to realize the recognition of woven fabric and get the corresponding notation image. This method combines the improved image processing method with the frequency domain analysis method. First of all, It completes preliminary classification of yarn crossing points through image pre-processing and K-means clustering. Secondly, the preliminary classification comes to be accurate yarn segmentation by applying gradient accumulation of gray levels approach. Finally, using Gabor filters based analysis on texture orientation (vertical or horizontal) features, the states of yarn crossing points are automatically determined. The experimental results show that the algorithm proposed in this study can locate and recognize the cross points in common fundamental fabric weaves and effectively reduce the lighting effect from fabric image capture.
机译:在本文中,我们提出了一种新颖的自动识别织物的方法。改进的图像处理方法适合于纹理分割,而频域分析方法适合于检测织物纹理中的纹理取向。它们的优异性能结合在一起,实现了对机织织物的识别并获得了相应的符号图像。该方法将改进的图像处理方法与频域分析方法相结合。首先,它通过图像预处理和K均值聚类完成纱线交叉点的初步分类。其次,初步分类是通过应用灰度累加法进行准确的纱线分割。最后,使用基于纹理定向(垂直或水平)特征的分析的Gabor滤波器,可以自动确定纱线交叉点的状态。实验结果表明,本文提出的算法能够定位和识别常见基础织物的交叉点,并有效降低了织物图像捕获的照明效果。

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