Assessing vowel quality for singing evaluation

M. Jha, P. Rao
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引用次数: 10

Abstract

The proper pronunciation of lyrics is an important component of vocal music. While automatic vowel classification has been widely studied for speech, a separate investigation of the methods is needed for singing due to the differences in acoustic properties between sung and spoken vowels. Acoustic features combining spectrum envelope and pitch are used with classifiers trained on sung vowels for classification of test vowels segmented from the audio of solo singing. Two different classifiers are tested, viz., Gaussian Mixture Models (GMM) and Linear Regression, and observed to perform well on both male and female sung vowels.
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评估元音质量以进行歌唱评价
歌词的正确发音是声乐的重要组成部分。虽然语音元音自动分类已经得到了广泛的研究,但由于歌唱元音和口语元音的声学特性不同,需要对歌唱元音的自动分类方法进行单独的研究。将频谱包络和音高相结合的声学特征与歌唱元音训练的分类器相结合,对从独唱音频中分割出来的测试元音进行分类。测试了两种不同的分类器,即高斯混合模型(GMM)和线性回归,并观察到在男声和女声元音上都表现良好。
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