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MATCHING ALGORITHM USING WAVELET THINNING FEATURES FOR OFFLINE SIGNATURE VERIFICATION

机译:利用小波稀疏特征进行匹配算法进行离线签名验证

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摘要

Structure distortion evaluation allows us to directly measure the similarity between signature patterns without classification using feature vectors, which usually suffers from limited training samples. In this paper, we incorporate the merits of both global and local alignment algorithms to define structure distortion using signature skeletons identified by a robust wavelet thinning technique. A weak affine model is employed to globally register two signature skeletons and structure distortion between two signature patterns, which are determined by applying an elastic local alignment algorithm. Similarity measurement is evaluated in the form of Euclidean distance of all found corresponding feature points. Experimental results showed that the proposed similarity measurement was able to provide sufficient discriminatory information in terms of equal error rate being 18.6% with four training samples.
机译:结构失真评估使我们能够直接测量特征码模式之间的相似性,而无需使用特征向量进行分类,而特征向量通常受训练样本的限制。在本文中,我们结合了全局和局部对齐算法的优点,以使用通过健壮的小波细化技术识别的签名骨架来定义结构变形。使用弱仿射模型来全局注册两个签名骨架和两个签名模式之间的结构变形,这是通过应用弹性局部对齐算法确定的。以所有找到的对应特征点的欧几里得距离的形式评估相似性度量。实验结果表明,提出的相似性度量能够提供足够的区分性信息,其中四个训练样本的均等错误率为18.6%。

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