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Dual-source discrimination power analysis for multi-instance contactless palmprint recognition

机译:多源非接触式掌纹识别的双源鉴别能力分析

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摘要

Due to the benefits of palmprint recognition and the advantages of biometric fusion systems, it is necessary to study multi-source palmprint fusion systems. Unfortunately, the research on multi-instance palmprint feature fusion is absent until now. In this paper, we extract the features of left and right palmprints with two-dimensional discrete cosine transform (2DDCT) to constitute a dual-source space. Normalization is utilized in dual-source space to avoid the disturbance caused by the coefficients with large absolute values. Thus complicated pre-masking is needless and arbitrary removing of discriminative coefficients is avoided. Since more discriminative coefficients can be preserved and retrieved with discrimination power analysis (DPA) from dual-source space, the accuracy performance is improved. The experiments performed on contactless palmprint database confirm that dual-source DPA, which is designed for multi-instance palmprint feature fusion recognition, outperforms single-source DPA.
机译:由于掌纹识别的优势和生物识别融合系统的优势,有必要研究多源掌纹融合系统。不幸的是,到目前为止,关于多实例掌纹特征融合的研究还很缺乏。在本文中,我们利用二维离散余弦变换(2DDCT)提取左右掌印的特征,以构成双源空间。在双源空间中利用归一化来避免由绝对值较大的系数引起的干扰。因此,不需要复杂的预掩蔽并且避免了任意去除判别系数。由于可以通过双源空间的判别能力分析(DPA)保留和获取更多判别系数,因此提高了准确性。在非接触式掌纹数据库上进行的实验证实,专为多实例掌纹特征融合识别而设计的双源DPA优于单源DPA。

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