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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Rotation and intensity invariant shoeprint matching using Gabor transform with application to forensic science
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Rotation and intensity invariant shoeprint matching using Gabor transform with application to forensic science

机译:Gabor变换的旋转和强度不变鞋印匹配及其在法医学中的应用

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摘要

Shoe marks at the place of crime provide valuable forensic evidence. This paper presents a technique for rotation and intensity invariant automatic shoeprint matching. Multiresolution features of a shoeprint have been extracted using Gabor transform. Rotation of the shoeprint image has been estimated using Radon transform and is compensated by rotating the features in opposite direction. The performance of the proposed algorithm has been compared with the technique in which the features have been determined using Fourier transform and its power spectral density. Shoeprint database has been generated by inviting participants to tread on an inkpad and then stamp on a piece of paper. Euclidian distance classifier has been used to find a suitable match. The performance of the proposed algorithm has been evaluated in terms of correct recognition rate computed using best match score at rank '1' and cumulative match score for the first four matches with rotation, intensity and/or mixed attacks. A good matching performance has been achieved with rotation attack; typically 91 percent at rank '1' and 100 percent at rank '2' for full prints. Performance of the proposed technique is better even for partial shoeprints. Experimentation has also been carried out by perturbing shoeprint images with Gaussian white noise, salt and pepper noise to evaluate the robustness of the proposed technique.
机译:犯罪现场的鞋印提供了宝贵的法证证据。本文提出了一种旋转和强度不变的自动鞋印匹配技术。鞋印的多分辨率特征已使用Gabor变换提取。鞋印图像的旋转已使用Radon变换进行了估算,并通过沿相反方向旋转特征进行补偿。该算法的性能已与使用傅立叶变换及其功率谱密度确定特征的技术进行了比较。通过邀请参与者踩在印泥上,然后在纸上盖章,生成了Shoeprint数据库。 Euclidian距离分类器已用于找到合适的匹配项。已经根据使用排名“ 1”的最佳匹配分数和旋转,强度和/或混合攻击的前四次匹配的累积匹配分数计算出的正确识别率对所提出算法的性能进行了评估。旋转攻击取得了良好的匹配性能;对于完整印刷,通常在“ 1”级上占91%,在“ 2”级上占100%。所提出的技术的性能甚至对于部分鞋印也更好。还通过用高斯白噪声,盐和胡椒噪声干扰鞋印图像来进行实验,以评估所提出技术的鲁棒性。

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