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基于平行线灰度离差分析的织物图像自动倾斜纠正
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作者 钱建栋 《丝绸》 CAS 北大核心 2009年第2期40-42,共3页
提出利用平行线灰度离差分析实现织物图像的自动倾斜纠正。即将织物图像在各个角度分解为一组平行像素线,平行线灰度离差最大的角度即为可能的图像规正角。利用规正角的共轭特性,进一步提出了规正系数的概念,克服织物表面纹路效应对灰... 提出利用平行线灰度离差分析实现织物图像的自动倾斜纠正。即将织物图像在各个角度分解为一组平行像素线,平行线灰度离差最大的角度即为可能的图像规正角。利用规正角的共轭特性,进一步提出了规正系数的概念,克服织物表面纹路效应对灰度离差分析的干扰,从而找出最终的规正角。 展开更多
关键词 织物图像 倾斜纠正 灰度离差 图像分析
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Local information enhanced LBP
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作者 张刚 苏光大 +1 位作者 陈健生 王晶 《Journal of Central South University》 SCIE EI CAS 2013年第11期3150-3155,共6页
Based on the observation that there exists multiple information in a pixel neighbor,such as distance sum and gray difference sum,local information enhanced LBP(local binary pattern)approach,i.e.LE-LBP,is presented.Geo... Based on the observation that there exists multiple information in a pixel neighbor,such as distance sum and gray difference sum,local information enhanced LBP(local binary pattern)approach,i.e.LE-LBP,is presented.Geometric information of the pixel neighborhood is used to compute minimum distance sum.Gray variation information is used to compute gray difference sum.Then,both the minimum distance sum and the gray difference sum are used to build a feature space.Feature spectrum of the image is computed on the feature space.Histogram computed from the feature spectrum is used to characterize the image.Compared with LBP,rotation invariant LBP,uniform LBP and LBP with local contrast,it is found that the feature spectrum image from LE-LBP contains more details,however,the feature vector is more discriminative.The retrieval precision of the system using LE-LBP is91.8%when recall is 10%for bus images. 展开更多
关键词 texture feature extraction LE-LBP minimum distance sum gray difference sum
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