基于离散正交s变换的掌纹表征

Shahla Saedi, Nasrollah Moghadam Charkari
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引用次数: 5

摘要

在本文中,我们提出了一种新的、高效的基于纹理的掌纹识别方法,该方法基于二维离散正交s变换(2D- dost)。2D-DOST是一种新的强大的纹理分析工具,可以有效地提取图像纹理的频率贡献。本文首先将2D-DOST应用于掌纹中,表征掌纹纹理的频率含量。然后,计算2D-DOST在不同带宽下的局部能量,并将其作为掌纹特征;在实验中,使用CASIA, PolyU和IITD三个数据库来评估所提出方法的性能。此外,基于一组不同的相似/不相似度量,对2D-DOST方法的性能进行了评估。实验结果表明,IITD、CASIA和PolyU数据库的准确率分别为0.93%、0.97%和0.12%,证明了该方法的有效性和有效性。
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Characterization of Palmprint Using Discrete Orthonormal S-Transform
In this paper, we propose a novel and efficient texture based approach to palmprint recognition based on a 2D discrete orthonormal S-Transform called as the 2D-DOST. 2D-DOST is a new powerful tool for texture analysis which can effectively extract the frequency contribution of image texture. In this work, First 2D-DOST is applied to the palmprint to characterize the frequency content of palmprint texture. Then, the local energy of 2D-DOST magnitudes in different bandwidths are computed and regarded as palmprint features. In the experiments, three databases, namely, CASIA, PolyU and IITD databases, are used to evaluate the performance of the proposed method. Also, The performance of 2D-DOST method is evaluated based on a set of different similarity/dissimilarity measures. The experimental results offer ERR equal to 0.93%, 0.97% and 0.12% for IITD, CASIA and PolyU databases, respectively which demonstrate the efficiency and validity of the proposed method.
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