基于离散余弦变换的掌纹和指纹特征级融合

Aditya Gupta, Ekjok Walia, Mahesh Vaidya
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引用次数: 2

摘要

生物识别系统由于其在身份识别方面的应用而成为研究的重要组成部分。本文提出了一种将掌纹模态与指纹模态相结合的多模态生物识别系统。该方法以预定义块的DCT系数的标准差作为特征向量。识别过程是通过测量测试特征向量与训练数据集之间的距离来完成的。结果表明,特征级融合的错误接受率(FAR)小于单模态系统,因此具有多模态是有利的。在普纳工程学院150名学生的数据库上进行了测试和训练。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
“Feature level fusion of palm print and fingerprint modalities using Discrete Cosine Transform”
Biometric systems have become a major part of research due its application of identification. Paper proposes a multimodal biometric system using palm prints modality combined with fingerprint modality. The proposed methodology uses standard deviation of pre-defined block of DCT coefficient as feature vector. Recognition process is being done by performing distance measurement between feature vector of testing and training data set. Results show that the False Acceptance Rate (FAR) of feature level fusion is less than that of uni-modal systems, hence having multimodality is advantageous. Testing and training is done on database of 150 students of College of Engineering Pune.
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