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首页> 外文期刊>Audio, Speech, and Language Processing, IEEE Transactions on >Data-Driven Background Dataset Selection for SVM-Based Speaker Verification
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Data-Driven Background Dataset Selection for SVM-Based Speaker Verification

机译:数据驱动的背景数据集选择,用于基于SVM的扬声器验证

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摘要

The recently proposed data-driven background dataset refinement technique provides a means of selecting an informative background for support vector machine (SVM)-based speaker verification systems. This paper investigates the characteristics of the impostor examples in such highly informative background datasets. Data-driven dataset refinement individually evaluates the suitability of candidate impostor examples for the SVM background prior to selecting the highest-ranking examples as a refined background dataset. Further, the characteristics of the refined dataset were analyzed to investigate the desired traits of an informative SVM background. The most informative examples of the refined dataset were found to consist of large amounts of active speech and distinctive language characteristics. The data-driven refinement technique was shown to filter the set of candidate impostor examples to produce a more disperse representation of the impostor population in the SVM kernel space, thereby reducing the number of redundant and less-informative examples in the background dataset. Furthermore, data-driven refinement was shown to provide performance gains when applied to the difficult task of refining a small candidate dataset that was mismatched to the evaluation conditions.
机译:最近提出的数据驱动的背景数据集细化技术提供了一种为基于支持向量机(SVM)的说话者验证系统选择信息背景的方法。本文研究了此类信息量很高的背景数据集中冒名顶替者示例的特征。数据驱动的数据集细化在选择排名最高的样本作为细化的背景数据集之前,会分别评估候选冒名顶替者样本对SVM背景的适用性。此外,分析了精炼数据集的特征,以调查信息量丰富的SVM背景的所需特征。精炼数据集的信息量最大的示例被发现包括大量活跃的语音和独特的语言特征。数据驱动的精炼技术显示出可以过滤候选冒名顶替者实例集,以在SVM内核空间中产生冒名顶替者群体的更分散的表示形式,从而减少了背景数据集中的冗余且信息较少的实例数量。此外,当将数据驱动的优化应用于精简与评估条件不匹配的小型候选数据集这一艰巨的任务时,它可以提供性能提升。

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