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PHONETICALLY-CONSTRAINED PLDA MODELING FOR TEXT-DEPENDENT SPEAKER VERIFICATION WITH MULTIPLE SHORT UTTERANCES

机译:语音约束的PLDA模型,用于多个短语依赖扬声器验证

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The importance of phonetic variability for short duration speaker verification is widely acknowledged. This paper assesses the performance of Probabilistic Linear Discriminant Analysis (PLDA) and i-vector normalization for a text-dependent verification task. We show that using a class definition based on both speaker and phonetic content significantly improves the performance of a state-of-the-art system. We also compare four models for computing the verification scores using multiple enrollment utterances and show that using PLDA intrinsic scoring obtains the best performance in this context. This study suggests that such scoring regime remains to be optimized.
机译:广泛承认,持续时间扬声器验证的语音变异性的重要性得到了广泛认可。本文评估了概率的线性判别分析(PLDA)和I形式验证任务的I形式标准化的性能。我们表明,使用基于扬声器和语音内容的类定义显着提高了最先进系统的性能。我们还使用多个注册话语计算四种模型来计算验证分数,并显示使用PLDA内在评分在此上下文中获得最佳性能。本研究表明,此类得分制度仍有待优化。

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