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Likability of human voices: A feature analysis and a neural network regression approach to automatic likability estimation

机译:人类声音的可爱性:一种特征分析和自动可爱估计的神经网络回归方法

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Recently, the automatic analysis of likability of a voice has become popular. This work follows up on our original work in this field and provides an in-depth discussion of the matter and an analysis of the acoustic parameters. We investigate the automatic analysis of voice likability in a continuous label space with neural networks as regressors and discuss the relevance of acoustic features. We provide results on the Speaker Likability Database for comparison with previous work and a subset of the TIMIT database for validation.
机译:最近,语音可爱的自动分析变得流行。这项工作在这一领域的原始工作中跟进,并提供了对问题的深入讨论和声学参数的分析。我们调查与神经网络的连续标签空间中的语音可爱自动分析作为回归流器,并讨论声学特征的相关性。我们在扬声器可爱数据库上提供结果,以便与以前的工作和逐时数据库的子集进行比较。

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