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Automatic Methods for Detecting Sung Lyrics Error

机译:检测Sung歌词错误的自动方法

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摘要

A sung lyrics error detection system is proposed to examine if the lyrics sung by a singer are incorrect, thereby providing a clue for singing skill evaluation. In essence, sung lyrics error detection is similar to the problem of speech utterance verification in the speech recognition research community, and therefore the techniques in the latter can be applied to the former. However, our experiment found that a speech utterance verification system is far from capable of handling singing data, mainly because of the significant difference between singing and speech. To tackle this problem, we develop two strategies, respectively, from a signal processing perspective and from a model processing perspective. In the signal processing perspective, we recognize that the vowels are often lengthened during singing, and thus propose vowel shrinking/decimation to adjust the length of a vowel in singing to a normal length in speaking. In the model processing perspective, we combine a duration modeling concept into the acoustic modeling to reduce the differences between singing and speech. Our experiments show that the proposed methods can improve the performance of the sung lyrics error detection noticeably, compared to a baseline system based on speech utterance verification.
机译:提出了一个唱歌错误检测系统,以检查歌手的歌词是否不正确,从而提供用于唱歌技能评估的线索。从本质上讲,Sung歌词错误检测类似于语音识别研究社区中的语音话语验证问题,因此后者的技术可以应用于前者。然而,我们的实验发现,语音话语验证系统远非能够处理歌唱数据,主要是因为歌唱与演讲之间的显着差异。为了解决这个问题,我们分别从信号处理透视和模型处理视角来开发两种策略。在信号处理视角下,我们认识到在唱歌期间常常延长元音,因此提出元音缩小/抽取,以调节唱歌中的元音的长度在讲话中。在模型处理透视中,我们将持续时间建模概念与声学建模相结合,以减少歌唱与语音之间的差异。我们的实验表明,与基于语音话语验证的基线系统相比,该方法可以显着提高Sung歌词误差检测的性能。

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