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Utterance Verification Using State-Level Log-Likelihood Ratio with Frame and State Selection

机译:使用状态级对数似然比以及框架和状态选择进行话语验证

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This paper suggests utterance verification system using state-level log-likelihood ratio with frame and state selection. We use hidden Markov models for speech recognition and utterance verification as acoustic models and anti-phone models. The hidden Markov models have three states and each state represents different characteristics of a phone. Thus we propose an algorithm to compute state-level log-likelihood ratio and give weights on states for obtaining more reliable confidence measure of recognized phones. Additionally, we propose a frame selection algorithm to compute confidence measure on frames including proper speech in the input speech. In general, phone segmentation information obtained from speaker-independent speech recognition system is not accurate because triphone-based acoustic models are difficult to effectively train for covering diverse pronunciation and coarticulation effect. So, it is more difficult to find the right matched states when obtaining state segmentation information. A state selection algorithm is suggested for finding valid states. The proposed method using state-level log-likelihood ratio with frame and state selection shows that the relative reduction in equal error rate is 18.1 % compared to the baseline system using simple phone-level log-likelihood ratios.
机译:本文提出了一种使用状态级对数似然比以及帧和状态选择的话语验证系统。我们使用隐马尔可夫模型作为语音模型和反电话模型来进行语音识别和发声验证。隐藏的马尔可夫模型具有三个状态,每个状态代表电话的不同特征。因此,我们提出了一种算法来计算状态级别的对数似然比,并给出状态权重,以获得更可靠的识别电话置信度。此外,我们提出了一种帧选择算法,以计算输入语音中包括适当语音的帧的置信度。通常,从基于说话者的语音识别系统获得的电话细分信息不准确,因为基于三音素的声学模型难以有效地训练以涵盖各种发音和共发音效果。因此,在获取状态分割信息时,很难找到正确的匹配状态。建议使用状态选择算法来查找有效状态。所提出的将状态级别对数似然比与帧和状态选择结合使用的方法表明,与使用简单电话级别对数似然比的基线系统相比,均等错误率的相对降低为18.1%。

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