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Automatic detection of prosodic boundaries in spontaneous speech

机译:自动检测自发言论中的韵律边界

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摘要

Automatic speech recognition (ASR) and natural language processing (NLP) are expected to benefit from an effective, simple, and reliable method to automatically parse conversational speech. The ability to parse conversational speech depends crucially on the ability to identify boundaries between prosodic phrases. This is done naturally by the human ear, yet has proved surprisingly difficult to achieve reliably and simply in an automatic manner. Efforts to date have focused on detecting phrase boundaries using a variety of linguistic and acoustic cues. We propose a method which does not require model training and utilizes two prosodic cues that are based on ASR output. Boundaries are identified using discontinuities in speech rate (pre-boundary lengthening and phrase-initial acceleration) and silent pauses. The resulting phrases preserve syntactic validity, exhibit pitch reset, and compare well with manual tagging of prosodic boundaries. Collectively, our findings support the notion of prosodic phrases that represent coherent patterns across textual and acoustic parameters.
机译:预计自动语音识别(ASR)和自然语言处理(NLP)将受益于自动解析会话语音的有效,简单,可靠的方法。解析会话语音的能力在很大程度上取决于识别韵律短语之间边界的能力。这是由人耳自然完成的,但已经证明令人惊讶地难以可靠地达到可靠,简单地以自动的方式实现。迄今为止努力的努力集中在使用各种语言和声学线索来检测短语边界。我们提出了一种不需要模型训练的方法,并利用基于ASR输出的两个韵律提示。使用语音率(预边界纵横和短语 - 初始加速)和沉默暂停的不连续性来识别边界。由此产生的短语保持句法有效性,表现出张位复位,并与手动标记进行比较韵律边界。集体,我们的调查结果支持代表文本和声学参数的相干模式的韵律短语的概念。

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