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A Novel Adaptive Two-phase Multimodal Biometric Recognition System

机译:一种新型自适应两相多数生物生物识别系统

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摘要

Multimodal biometric recognition systems are intended to offer authentication without compromising on security, accuracy and these systems also used to address the limitations of unimodal systems like spoofing, infra class variations, noise and non-universality. In this paper, a novel adaptive two-phase multimodal framework is proposed with face, finger and speech traits. In this work, face trait reduces the search space by retrieving few possible nearest enrolled candidates to the probe using Gabor wavelets, semi-supervised kernel discriminant analysis and two dimensional- dynamic time warping. This nonlinear face classification serves as a search space reducer and affects the True Acceptance Rate (TAR). Later, level-1 and level-2 features of fingerprint trait are fused with Dempster Shafer theory and achieved high TAR. In the second phase, to reduce FAR and to validate the user identity, a text dependent speaker verification with RBFNN classifier is proposed. Classification accuracy of the proposed method is evaluated on own and standard datasets and experimental results clearly evident that proposed technique outperforms existing techniques in terms of search time, space and accuracy.
机译:多模式生物识别系统旨在提供认证,而不会影响安全性,准确性,这些系统,该系统也用于解决单峰系统等欺骗,红外阶级变化,噪声和非普遍性的单向系统的局限性。本文提出了一种新型自适应两相多数框架,面部,手指和语音特征。在这项工作中,使用Gabor小波,半监督核判别分析和二维动态时间翘曲,通过检索探测器的几个可能的最近读取的候选人来减少搜索空间。该非线性面部分类用作搜索空间减速器,并影响真正的验收率(tar)。后来,1级和指纹特征的2级特征与Dempster Shafer理论融合并实现了高焦油。在第二阶段,为了减少最远并验证用户身份,提出了一种用RBFNN分类器的文本依赖扬声器验证。所提出的方法的分类准确性是自身和标准数据集的评估和实验结果清楚明显,提出的技术在搜索时间,空间和准确性方面优于现有技术。

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