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首页> 外文期刊>The Journal of the Acoustical Society of America >Automatic estimation of voice onset time for word-initial stops by applying random forest to onset detection
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Automatic estimation of voice onset time for word-initial stops by applying random forest to onset detection

机译:通过将随机森林应用于开始检测,自动估计单词初始停止的语音开始时间

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摘要

The voice onset time (VOT) of a stop consonant is the interval between its burst onset and voicing onset. Among a variety of research topics on VOT, one that has been studied for years is how VOTs are efficiently measured. Manual annotation is a feasible way, but it becomes a time-consuming task when the corpus size is large. This paper proposes an automatic VOT estimation method based on an onset detection algorithm. At first, a forced alignment is applied to identify the locations of stop consonants. Then a random forest based onset detector searches each stop segment for its burst and voicing onsets to estimate a VOT. The proposed onset detection can detect the onsets in an efficient and accurate manner with only a small amount of training data. The evaluation data extracted from the TIMIT corpus were 2344 words with a word-initial stop. The experimental results showed that 83.4 of the estimations deviate less than 10 ms from their manually labeled values, and 96.5 of the estimations deviate by less than 20 ms. Some factors that influence the proposed estimation method, such as place of articulation, voicing of a stop consonant, and quality of succeeding vowel, were also investigated.
机译:停止辅音的语音开始时间(VOT)是其突发开始和发声开始之间的时间间隔。在有关VOT的各种研究主题中,已经研究了多年的一个问题是如何有效地测量VOT。手动注释是一种可行的方法,但是当语料库很大时,它将成为一项耗时的任务。提出了一种基于发作检测算法的自动VOT估计方法。首先,应用强制对齐来识别停止辅音的位置。然后,基于随机森林的开始检测器在每个停止段中搜索其突发和发声开始,以估计VOT。所提出的发作检测可以仅使用少量训练数据就以有效且准确的方式检测发作。从TIMIT语料库中提取的评估数据为2344个单词,单词开头是一个停止点。实验结果表明,有83.4个估计值与其手动标记的值相差不到10 ms,而有96.5个估计值与它们的手动标记值相差不到20 ms。还研究了影响所提出的估计方法的一些因素,例如发音位置,停止辅音的发声和后继元音的质量。

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