首页> 外文会议>6th International conference on Spoken Language Processing ICSLP 2000 Oct. 16-Oct.20 2000 Beijing International Convention Center, Beijing, China >Discriminatively Derived Hmm-Based Announcement Modeling Approach for Noise Control Avoiding the Problem of False Alarms
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Discriminatively Derived Hmm-Based Announcement Modeling Approach for Noise Control Avoiding the Problem of False Alarms

机译:区分派生的基于Hmm的噪音控制公告建模方法,避免了虚警的问题

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Earlier we proposed modeling echo residuals by using multiple echo models built from a set of specific amouncement. Experienced callers may interrupt the prompt by speaking the keywords over the prompt. This leads to incomplete prompt echoes that was not properly modeled by multiple echo models. In this study, we investigate further improvements by building an echo model of each word in the entire announcement, then linking each model in sequence to track the exact echo that precedes valid speech (movie title). The experimetnal results show that by modeling exactly, one can get better recognition accuracy and less false triggering, with a possible increase in computational complexity.
机译:早些时候,我们建议通过使用根据一组特定弹奏建立的多个回波模型来对回波残差建模。有经验的呼叫者可能会通过在提示上方说出关键字来打断提示。这会导致不完整的提示回声,而这些回声没有被多个回声模型正确建模。在这项研究中,我们研究了进一步的改进,方法是在整个公告中为每个单词建立一个回声模型,然后依次链接每个模型以跟踪有效语音(电影标题)之前的确切回声。实验结果表明,通过精确建模,可以获得更好的识别精度和更少的错误触发,并且可能会增加计算复杂性。

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