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Bimodal Biometric Method Fusing Hand Shape and Palmprint Modalities at Rank Level

机译:双峰生物特征识别方法融合手形和掌纹模式的等级

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摘要

Person identification becomes increasingly an important task to guarantee the security of persons with the possible fraud attacks, in our life. In this paper, we propose a bimodal biometric system based on hand shape and palmprint modalities for person identification. For each modality, the SIFT descriptors (Scale Invariant Feature Transform) are extracted thanks to their advantages based on the invariance of features to possible rotation, translation, scale and illumination changes in images. These descriptors are then represented sparsely using sparse representation method. The fusion step is carried out at rank level after the classification step using SVM (Support Vector Machines) classifier, in which matching scores are transformed into probability measures. The experimentation is performed on the IITD hand database and results demonstrate encouraging performances achieving IR = 99.34% which are competitive to methods fusing hand shape and palmprint modalities existing in the literature.
机译:身份识别已日益成为一项重要任务,在我们的生活中,要保证可能遭受欺诈攻击的人员的安全。在本文中,我们提出了一种基于手形和掌纹模式的双峰生物特征识别系统。对于每种模态,SIFT描述符(尺度不变特征变换)由于其优点而被提取出来,这些优点基于特征对图像可能的旋转,平移,尺度和照度变化的不变性。然后使用稀疏表示方法来稀疏表示这些描述符。在分类步骤之后,使用SVM(支持向量机)分类器在等级级别上执行融合步骤,其中将匹配分数转换为概率度量。实验是在IITD手数据库上进行的,结果表明令人鼓舞的性能达到IR = 99.34%,与融合现有文献中的手形和掌纹形态的方法相比具有竞争力。

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