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Speaker independent feature selection for speech emotion recognition: A multi-task approach

机译:演讲者独立的语音情感识别特征选择:多任务方法

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摘要

Nowadays, automatic speech emotion recognition has numerous applications. One of the important steps of these systems is the feature selection step. Because it is not known which acoustic features of person's speech are related to speech emotion, much effort has been made to introduce several acoustic features. However, since employing all of these features will lower the learning efficiency of classifiers, it is necessary to select some features. Moreover, when there are several speakers, choosing speaker-independent features is required. For this reason, the present paper attempts to select features which are not only related to the emotion of speech, but are also speaker-independent. For this purpose, the current study proposes a multi-task approach which selects the proper speaker-independent features for each pair of classes. The selected features are then given to the classifier. Finally, the outputs of the classifiers are appropriately combined to achieve an output of a multi-class problem. Simulation results reveal that the proposed approach outperforms other methods and offers higher efficiency in terms of detection accuracy and runtime.
机译:如今,自动语音情感识别具有许多应用。这些系统的一个重要步骤是特征选择步骤。因为不知道人类演讲的声学特征与语音情绪有关,所以已经努力引入几个声学特征。但是,由于采用所有这些功能将降低分类器的学习效率,因此必须选择一些功能。此外,当有几个扬声器时,需要选择扬声器的功能。出于这个原因,本文试图选择不仅与言论情绪有关的特征,而是也是扬声器无关的。为此目的,目前的研究提出了一种多任务方法,它为每对类别选择适当的扬声器无关功能。然后给出所选功能给分类器。最后,适当地组合分类器的输出以实现多级问题的输出。仿真结果表明,所提出的方法优于其他方法,并在检测准确度和运行时提供更高的效率。

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