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Online Sequence Alignment for Real-Time Audio Transcription by Non-Experts

机译:在线序列对齐非专家的实时音频转录

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Real-time transcription provides deaf and hard of hearing people visual access to spoken content, such as classroom instruction, and other live events. Currently, the only reliable source of real-time transcriptions are expensive, highly-trained experts who are able to keep up with speaking rates. Automatic speech recognition is cheaper but produces too many errors in realistic settings. We introduce a new approach in which partial captions from multiple non-experts are combined to produce a high-quality transcription in real-time. We demonstrate the potential of this approach with data collected from 20 non-expert captionists.
机译:实时转录提供了聋哑人,并且难以听到人们视觉访问口头内容,例如课堂教学和其他实时活动。目前,唯一可靠的实时转录来源是昂贵的,高度训练的专家,他们能够跟上口语率。自动语音识别更便宜但在现实设置中产生太多错误。我们介绍了一种新的方法,其中来自多个非专家的部分标题在实时组合以产生高质量的转录。我们展示了从20个非专家标题主义者收集的数据的方法的潜力。

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