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Speaker change detection using excitation source and vocal tract system information

机译:使用激励源和声道系统信息进行扬声器改变检测

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The speaker change information in speech is due to both vocal tract and excitation source information. In this work, the excitation source information is extracted by computing cepstral features from the zero frequency filtered speech (ZFFS) signal. The vocal tract system information is extracted by computing cepstral features from the speech signal. The speaker change evidences obtained from these two feature sets are combined and observed that they contain complementary information for speaker change detection. The popular distance metric based algorithms, Bayesian Information Criteria (BIC) and Kullback Leibler Divergence (KLD) are used to detect the speaker change evidences. The Miss Detection Rate (MDR) of BIC based algorithm using cepstral features obtained from speech is 24.18% and from ZFFS is 25.92%, respectively. When the two sets of evidences are combined, the MDR reduces to 15.89%. Similarly, individual MDR of KLD based algorithm from speech and ZFFS are 32.24% and 45.17%, respectively, where as the combination reduces the MDR to 19.67%. Experiments are also performed with noisy speech signal and similar reduction of MDR is observed. This demonstrates the usefulness of cepstral features from the excitation source signal for reducing MDR.
机译:扬声器更改语音中的信息是由于声带和激励源信息。在这项工作中,通过从零频率滤波的语音(ZFFS)信号计算难题特征来提取激发源信息。通过计算来自语音信号的难题特征来提取声带系统信息。组合并观察到从这两个特征集获得的扬声器改变证据,并观察到它们包含用于扬声器变更检测的互补信息。基于流行的距离公制的算法,贝叶斯信息标准(BIC)和Kullback Leibler发散(KLD)用于检测扬声器改变证据。使用从语音中获得的抗截面特征的BIC算法的错过检测率(MDR)是24.18%,ZFF分别为25.92%。当两组证据组合时,MDR减少到15.89%。类似地,来自语音和ZFF的基于KLD的算法的个体MDR分别为32.24%和45.17%,其中组合将MDR减少至19.67%。实验也用嘈杂的语音信号进行,并且观察MDR的类似减少。这证明了倒谱特征的有用性来自激励源信号,用于还原MDR。

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