A new approach to utterance verification based on neighborhood information in model space

Hui Jiang, Chin-Hui Lee
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引用次数: 29

Abstract

We propose to use neighborhood information in model space to perform utterance verification (UV). At first, we present a nested-neighborhood structure for each underlying model in model space and assume the underlying model's competing models sit in one of these neighborhoods, which is used to model alternative hypothesis in UV. Bayes factors (BF) is first introduced to UV and used as a major tool to calculate confidence measures based on the above idea. Experimental results in the Bell Labs communicator system show that the new method has dramatically improved verification performance when verifying correct words against mis-recognized words in the recognizer's output, relatively more than 20% reduction in equal error rate (EER) when comparing with the standard approach based on likelihood ratio testing and anti-models.
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基于模型空间邻域信息的话语验证新方法
我们提出利用模型空间中的邻域信息进行话语验证(UV)。首先,我们为模型空间中的每个底层模型提出了一个嵌套邻域结构,并假设底层模型的竞争模型位于这些邻域中的一个,并将其用于UV中的替代假设建模。首先将贝叶斯因子(BF)引入UV,并将其作为基于上述思想计算置信度度量的主要工具。在Bell实验室通信系统中的实验结果表明,新方法在验证识别器输出的正确单词和错误单词时,显著提高了验证性能,与基于似然比测试和反模型的标准方法相比,等效错误率(EER)降低了20%以上。
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