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Emotion aware system based on acoustic and textual features from speech

机译:基于语音中声音和文字特征的情绪感知系统

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In recent years, emotion-aware human-machine interactions have become an important issue. Most of the traditional researches focused on the use of different features and classification methods to improve emotion recognition rates. However, they still cannot recognize detailed and various emotions. Accordingly, in this paper, an emotion recognition system, which combines the acoustic and textual features from speech, is proposed to detect seven emotional states: Joy, sadness, anger, fear, surprise, worry and disgust, respectively. The AdaBoost approach is also used to learn and classify each emotional state. The experimental result shows that the emotion recognition accuracy of the proposed system is better than that of traditional approaches.
机译:近年来,情绪感知型人机交互已成为一个重要问题。大多数传统研究集中在使用不同的特征和分类方法来提高情绪识别率。但是,他们仍然无法识别详细而多样的情感。因此,在本文中,提出了一种结合语音的声音和文本特征的情绪识别系统,以检测七个情绪状态:分别是喜悦,悲伤,愤怒,恐惧,惊奇,担心和厌恶。 AdaBoost方法还用于学习和分类每种情绪状态。实验结果表明,该系统的情感识别精度优于传统方法。

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