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Combining Evidences from Mel Cepstral and Cochlear Cepstral Features for Speaker Recognition Using Whispered Speech

机译:结合梅尔倒谱和耳蜗倒谱特征的证据,使用低声语音进行说话人识别

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Whisper is an alternative way of speech communication especially when a speaker does not want to reveal the information other than the target listeners. Generally, speaker-specific information is present in both excitation source and vocal tract system. However, whispered speech does not contain significant source characteristics as there is almost no excitation by the vocal folds, and speaker information in vocal tract system is also low as compared to the normal speech signal. Hence, it is difficult to recognize a speaker from his/her whispered speech. To address this, features based on vocal tract system characteristics such as state-of-the-art Mel Frequency Cepstral Coefficients (MFCC) and recently developed Cochlear Frequency Cepstral Coefficients (CFCC) are proposed. CHAINS (Characterizing individual speakers) whispered speech database is used for conducting experiments using GMM-UBM (Gaussian Mixture Modeling- Universal Background Modeling) approach. It was observed from the experiments that the fusion of CFCC and MFCC gives improvement in % IR (Identification Rate) and % EER (Equal Error Rate) than MFCC alone, indicating that proposed features and their score-level fusion captures complementary speaker-specific information.
机译:悄悄话是语音交流的另一种方式,尤其是当说话者不想让目标听众听到其他信息时。通常,特定于说话者的信息同时存在于激励源和声道系统中。但是,耳语语音不包含重要的音源特征,因为几乎没有人耳褶的激励,并且与正常的语音信号相比,声道系统中的说话者信息也很低。因此,很难从他/她的耳语中识别出说话者。为了解决这个问题,提出了基于声道系统特性的特征,例如最新的梅尔频率倒谱系数(MFCC)和最近开发的耳蜗频率倒谱系数(CFCC)。 CHAINS(表征单个说话者)的低语语音数据库用于使用GMM-UBM(高斯混合模型-通用背景建模)方法进行实验。从实验中观察到,与单独的MFCC相比,CFCC和MFCC的融合在%IR(识别率)和%EER(均等错误率)方面有所改善,表明所提出的功能及其得分级别融合可捕获说话者特定的补充信息。

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