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The IIR Submission to CSLP 2006 Speaker Recognition Evaluation

机译:IIR提交CSLP 2006演讲者认可度评估

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摘要

This paper describes the design and implementation of a practical automatic speaker recognition system for the CSLP speaker recognition evaluation (SRE). The speaker recognition system is built upon four subsystems using speaker information from acoustic spectral features. In addition to the conventional spectral features, a novel temporal discrete cosine transform (TDCT) feature is introduced in order to capture long-term speech dynamic. The speaker information is modeled using two complementary speaker modeling techniques, namely, Gaussian mixture model (GMM) and support vector machine (SVM). The resulting subsystems are then integrated at the score level through a multilayer perceptron (MLP) neural network. Evaluation results confirm that the feature selection, classifier design, and fusion strategy are successful, giving rise to an effective speaker recognition system.
机译:本文介绍了用于CSLP说话人识别评估(SRE)的实用自动说话人识别系统的设计和实现。说话人识别系统基于四个子系统,使用来自声谱特征的说话人信息。除常规频谱特征外,还引入了一种新颖的时间离散余弦变换(TDCT)功能,以捕获长期语音动态。说话人信息使用两种互补的说话人建模技术进行建模,即高斯混合模型(GMM)和支持向量机(SVM)。然后,通过多层感知器(MLP)神经网络在分数级别上集成得到的子系统。评估结果证实了特征选择,分类器设计和融合策略是成功的,从而形成了有效的说话人识别系统。

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