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A new two-stage scoring normalization approach to speaker verification

机译:扬声器验证的新两级评分标准化方法

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In speaker verification, the cohort and world models have been separately used for scoring normalization. In this work, we embed the two models in elliptical basis function networks and propose a two-stage decision procedure for improving verification performance. The procedure begins with normalization of an utterance by a world model. If the difference between the resulting score and a world threshold is sufficiently large, the claimant is accepted or rejected immediately. Otherwise, the score will be normalized by a cohort model, and the resulting score will be compared with a cohort threshold to make a final accept/reject decision. Experimental evaluations based on the YOHO corpus suggest that the two-stage method achieves a lower error rate as compared to the case where only one background model is used.
机译:在发言人验证中,队列和世界模型已单独用于评分标准化。在这项工作中,我们在椭圆形基函数网络中嵌入了两种模型,并提出了一种改进验证性能的两级决策程序。该程序始于世界模型的话语标准化。如果产生的得分和世界阈值之间的差异足够大,则立即接受或拒绝索赔人。否则,分数将由队列模型标准化,并将得到的得分与群组阈值进行比较,以进行最终接受/拒绝决定。基于Yoho Corpus的实验评估表明,与仅使用一个背景模型的情况相比,两级方法达到较低的误差率。

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