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Fusion of a Novel Volterra-Wiener Filter Based Nonlinear Residual Phase and MFCC for Speaker Verification

机译:基于新型Volterra-Wiener滤波器的非线性残差相和MFCC的融合,用于扬声器验证

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This paper investigates the complementary nature of the speaker-specific information present in the Volterra-Wiener filter residual (VWFR) phase of speech signal in comparison with the information present in conventional Mel Frequency Cepstral Coefficients (MFCC) and Teager Energy Operator (TEO) phase. The feature set is derived from residual phase extracted from the output of nonlinear filter designed using Volterra-Weiner series exploiting higher order linear as well as nonlinear relationships hidden in the sequence of samples of speech signal. The proposed feature set is being used to conduct Speaker Verification (SV) experiments on NIST SRE 2002 database using state-of-the-art GMM-UBM system. The score-level fusion of proposed feature set with MFCC gives an EER of 6.05% as compared to EER of 8.9% with MFCC alone. EER of 8.83% is obtained for TEO phase in fusion with MFCC, indicating that residual phase from proposed nonlinear filtering approach contain complementary speaker-specific information.
机译:本文研究了语音信号的Volterra-Wiener滤波器残余(VWFR)相位中存在的扬声器特异性信息的互补性,与常规MEL频率倒谱系统系数(MFCC)和Teager能量操作员(TEO)相中存在的信息相比。该功能集源自来自使用Volterra-Weiner系列的非线性滤波器输出提取的残差相位,利用更高阶线性和在语音信号的样本序列中隐藏的非线性关系。所提出的功能集正在用于使用最先进的GMM-UBM系统对NIST SRE 2002数据库进行扬声器验证(SV)实验。使用MFCC的建议功能集的分数级融合给出了6.05%的eer,与单独的MFCC有8.9%的eer。在MFCC融合中的TEO相获得8.83%的eer,表明来自所提出的非线性滤波方法的残留阶段包含互补的扬声器特定信息。

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