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首页> 外文期刊>Emerging Topics in Computing, IEEE Transactions on >Gender-Driven Emotion Recognition Through Speech Signals For Ambient Intelligence Applications
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Gender-Driven Emotion Recognition Through Speech Signals For Ambient Intelligence Applications

机译:用于环境智能应用的通过语音信号进行性别驱动的情绪识别

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摘要

This paper proposes a system that allows recognizing a person's emotional state starting from audio signal registrations. The provided solution is aimed at improving the interaction among humans and computers, thus allowing effective human-computer intelligent interaction. The system is able to recognize six emotions(anger, boredom, disgust, fear, happiness, and sadness) and the neutral state. This set of emotional states is widely used for emotion recognition purposes. It also distinguishes a single emotion versus all the other possible ones, as proven in the proposed numerical results. The system is composed of two subsystems: 1) gender recognition(GR) and 2) emotion recognition(ER). The experimental analysis shows the performance in terms of accuracy of the proposed ER system. The results highlight that the a priori knowledge of the speaker's gender allows a performance increase. The obtained results show also that the features selection adoption assures a satisfying recognition rate and allows reducing the employed features. Future developments of the proposed solution may include the implementation of this system over mobile devices such as smartphones.
机译:本文提出了一种系统,该系统允许从音频信号注册开始识别一个人的情绪状态。提供的解决方案旨在改善人机之间的交互,从而实现有效的人机智能交互。该系统能够识别六种情绪(愤怒,无聊,厌恶,恐惧,幸福和悲伤)和中立状态。这组情绪状态被广泛用于情绪识别目的。正如所提出的数值结果所证明的,它还可以将一种情绪与所有其他可能的情绪区分开。该系统由两个子系统组成:1)性别识别(GR)和2)情感识别(ER)。实验分析显示了所提出的ER系统的准确性。结果表明,说话者性别的先验知识可以提高表现。所获得的结果还表明,特征选择的采用确保了令人满意的识别率并且允许减少所采用的特征。所提出的解决方案的未来发展可能包括在诸如智能手机之类的移动设备上实施该系统。

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