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Investigating Language Variability on the Performance of Speaker Verification Systems

机译:调查扬声器验证系统性能的语言变化

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In recent years, speaker verification technologies have received an extensive amount of attention. Designing and developing machines that could communicate with humans are believed to be one of the primary motivations behind such developments. Speaker verification technologies are applied to numerous fields such as security, Biometrics, and forensics. In this paper, the authors study the effects of different languages on the performance of the automatic speaker verification (ASV) system. The Miras Voice speech corpus (MVSC), a bilingual English and Farsi speech corpus, is used in this study. This study collects results from both an I-vector based ASV system and a GMM-UBM based ASV system. The experimental results show that a mismatch between the enrolled data used for training and verification data can lead to a significant decrease in the overall system efficiency. This study shows that it is best to use an i-vector based framework with data from the English language used in the enrollment phase to improve the robustness of the ASV systems. The achieved results in this study indicate that this can narrow the degradation gap caused by the language mismatch.
机译:近年来,发言人验证技术得到了广泛的关注。可以与人类沟通的设计和开发机器被认为是这种发展背后的主要动机之一。扬声器验证技术适用于许多领域,如安全性,生物识别和取证。在本文中,作者研究了不同语言对自动扬声器验证(ASV)系统性能的影响。 Miras语音语音语音语料库(MVSC),双语英语和Farsi语音语料库在本研究中使用。本研究收集了基于I载体的ASV系统和基于GMM-UBM的ASV系统的结果。实验结果表明,用于训练和验证数据的登记数据之间的错配可能导致整体系统效率的显着降低。本研究表明,最好使用基于I形载体的框架与入学阶段中使用的英语语言的数据来提高ASV系统的鲁棒性。本研究中的实现结果表明,这可以缩小语言不匹配引起的降级差距。

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