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On the use of pitch-based features for fear emotion detection from speech

机译:关于基于音调的功能从语音中进行恐惧情绪检测的研究

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In this paper, we present a study that aims to evaluate the effect of pitch-related features on fear emotion detection from speech signal. In this context, several features have been tested. Only relevant ones are selected thanks to ANOVA tests. Next, they were decorrelated using principal component analysis. To select fear, emotion classification based on machine learning methods is used to extract fear from other emotions. Many classification tools are used and compared. We considered two types of emotion classification which highlights the fear emotion state, a simple classification as well as an hierarchical one. Results show that selected pitch-based features have a relatively great power in fear recognition. In fact, the highest accuracy rate reaches 78.7% using k-nearest neighbors algorithm.
机译:在本文中,我们提出了一项旨在评估与音高相关的功能对语音信号中恐惧情绪检测的影响的研究。在这种情况下,已经测试了几个功能。多亏了ANOVA测试,才选择了相关的对象。接下来,使用主成分分析对它们进行解相关。为了选择恐惧,基于机器学习方法的情感分类用于从其他情感中提取恐惧。使用和比较了许多分类工具。我们考虑了两种强调恐惧情绪状态的情绪分​​类:一种简单的分类以及一种等级分类。结果表明,选定的基于音高的特征在恐惧识别中具有相对较大的功能。实际上,使用k最近邻算法,最高准确率达到78.7 \%。

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