Experiments of GMM based speaker identification

P. Qi, Lu Wang
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引用次数: 6

Abstract

In human-robot interaction areas, the robot is often expected to recognize the identity of the speaker in some specific scenarios. It is a kind of biometric modality, and in general using statistical model is a classical and powerful method dealing with speaker identification problem. In this paper, we apply the Gaussian mixture model (GMM) on the speech feature distribution modeling and build the speaker identification system under MATLAB platform. Experiments are conducted on practical speech database and we also further give some insights into feature extraction, different length input utterances analysis and the impostor situation.
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基于GMM的说话人识别实验
在人机交互领域,机器人通常需要在某些特定场景中识别说话人的身份。它是一种生物识别模式,一般来说,使用统计模型是处理说话人识别问题的一种经典而有力的方法。本文将高斯混合模型(GMM)应用于语音特征分布建模,并在MATLAB平台下构建了说话人识别系统。在实际的语音数据库上进行了实验,并进一步对特征提取、不同长度输入语音分析和冒名顶替者情况进行了深入的研究。
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