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首页> 外文期刊>IEEE transactions on audio, speech and language processing >Exploring Vibrato-Motivated Acoustic Features for Singer Identification
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Exploring Vibrato-Motivated Acoustic Features for Singer Identification

机译:探索以振动为动力的声学特征以识别歌手

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摘要

Vibrato is a slightly tremulous effect imparted to vocal or instrumental tone for added warmth and expressiveness through slight variation in pitch. It corresponds to a periodic fluctuation of the fundamental frequency. It is common for a singer to develop a vibrato function to personalize his/her singing style. In this paper, we explore the acoustic features that reflect vibrato information in order to identify singers of popular music. We start with an enhanced vocal detection method that allows us to select vocal segments with high confidence. From the selected vocal segments, the cepstral coefficients which reflect the vibrato characteristics are computed. These coefficients are derived using bandpass filters, such as parabolic and cascaded bandpass filters, spread according to the octave frequency scale. The strategy of our classifier formulation is to utilize the high level musical knowledge of song structure in singer modeling. Singer identification is validated on a database containing 84 popular songs from commercially available CD recordings from 12 singers. We achieve an average error rate of 16.2% in segment level identification
机译:颤音是一种轻微的颤音效果,通过略微变化的音调赋予声音或乐器音色,以增加温暖和表现力。它对应于基频的周期性波动。歌手通常会发展颤音功能以个性化他/她的演唱风格。在本文中,我们探索反映颤音信息的声学特征,以识别流行音乐的歌手。我们从增强的声音检测方法开始,该方法使我们能够以较高的置信度选择声音片段。从选定的声节中,计算出反映颤音特征的倒频谱系数。这些系数是使用带通滤波器(如抛物线和级联带通滤波器)根据倍频程频率范围扩展而得出的。我们分类器制定的策略是在歌手建模中利用歌曲结构的高级音乐知识。在数据库中验证了歌手的身份,该数据库包含来自12位歌手的CD唱片中的84首流行歌曲。在细分级别识别中,我们实现了16.2%的平均错误率

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