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Multimodal biometric scheme for human authentication technique based on voice and face recognition fusion

机译:基于语音和面部识别融合的人类认证技术多峰生物识别方案

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摘要

In this paper, an effective multimodal biometric identification approach for human authentication tool based on face and voice recognition fusion is proposed. Cepstral coefficients and statistical coefficients are employed to extract features of voice recognition and these two coefficients are compared. Face recognition features are extracted utilizing different extraction techniques, Eigenface and Principle Component Analysis (PCA) and the results are compared. Voice and face identification modality are performed using different three classifiers, Gaussian Mixture Model (GMM), Artificial Neural Network (ANN), and Support Vector Machine (SVM). The combination of biometrics systems, voice and face, into a single multimodal biometric system is performed using features fusion and scores fusion. The computer simulation experiments reveal that better results are given in case of utilizing for voice recognition the cepstral coefficients and statistical coefficients and in case of face, Eigenface and SVM experiment gives better results for face recognition. Also, in the proposed multimodal biometrics system the scores fusion performs better than other scenarios.
机译:本文提出了一种基于面部和语音识别融合的人类认证工具的有效多模态生物识别方法。采用抗康斯兰系数和统计系数来提取语音识别的特征,并比较这两个系数。利用不同的提取技术,特征面和原理分量分析(PCA)提取面部识别特征,并比较结果。使用不同的三分类器,高斯混合模型(GMM),人工神经网络(ANN)和支持向量机(SVM)进行语音和面部识别模态。使用特征融合和分数融合来执行生物识别系统,语音和面部的生物识别系统,语音和面部的组合。计算机仿真实验表明,在利用语音识别的情况下给出更好的结果,并且在面部,特征面和SVM实验的情况下为面部识别提供更好的结果。此外,在所提出的多模式生物识别系统中,分数融合比其他场景更好。

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