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Speaker Verification Using Acoustic and Prosodic Features

机译:使用声学和韵律特征进行说话人验证

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摘要

In this paper we report the experiment carried out on recently collected speaker recognition database namely Arunachali Language Speech Database (ALS-DB)to make a comparative study on the performance of acoustic and prosodic features for speaker verification task.The speech database consists of speech data recorded from 200 speakers with Arunachali languages of North-East India as mother tongue. The collected database is evaluated using Gaussian mixture model-Universal Background Model (GMM-UBM) based speaker verification system. The acoustic feature considered in the present study is Mel-Frequency Cepstral Coefficients (MFCC) along with its derivatives.The performance of the system has been evaluated for both acoustic feature and prosodic feature individually as well as in combination.It has been observed that acoustic feature, when considered individually, provide better performance compared to prosodic features. However, if prosodic features are combined with acoustic feature, performance of the system outperforms both the systems where the features are considered individually. There is a nearly 5% improvement in recognition accuracy with respect to the system where acoustic features are considered individually and nearly 20% improvement with respect to the system where only prosodic features are considered
机译:本文报告了在最近收集的说话人识别数据库(Arunachali语言语音数据库(ALS-DB))上进行的实验,以比较声学和韵律特征在说话人验证任务中的性能。语音数据库由语音数据组成来自200名讲者的录音,以东北印度的阿鲁纳恰利语为母语。使用基于高斯混合模型-通用背景模型(GMM-UBM)的说话者验证系统评估收集的数据库。本研究中考虑的声学特征是梅尔频率倒谱系数(MFCC)及其派生词。该系统的性能已分别针对声学特征和韵律特征进行了评估,也对组合韵律特征进行了评估。与韵律功能相比,单独考虑该功能可提供更好的性能。但是,如果韵律特征与声学特征相结合,则系统的性能将优于单独考虑这些特征的两个系统。相对于单独考虑声学特征的系统,识别精度提高了近5%,而相对于仅考虑韵律特征的系统,识别精度提高了近20%

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