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Onset-based segregation of stop consonants

机译:停止辅音的基于发作的分离

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Summary form only given. Speech segregation from acoustic interference is a challenging task. Previous systems have successfully dealt with voiced speech, but cannot handle unvoiced speech. We study the segregation of stop consonants, which contain significant unvoiced signals. We propose a novel method that employs onset as a major cue to segregate stop consonants. Our system first detects stops through onset detection and Bayesian classification of acoustic-phonetic features, and then performs grouping based on onset coincidence. The system has been tested and performs well on utterances mixed with various types of interference.
机译:仅提供摘要表格。语音与声音干扰的隔离是一项艰巨的任务。先前的系统已经成功处理了带语音的语音,但是不能处理无语音的语音。我们研究了终止辅音的分离,这些辅音包含明显的清音信号。我们提出了一种新颖的方法,该方法利用起病作为分隔终止辅音的主要线索。我们的系统首先通过开始检测和声音特征的贝叶斯分类来检测停止,然后根据开始的重合性进行分组。该系统已经过测试,可以很好地处理各种干扰类型的话语。

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