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Research on the Phonetic Emotion Recognition Model of Mandarin Chinese

机译:普通话语音情感识别模型研究

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In recent years, Emotion Recognition (AVER) has become more and more important in the field of human-computer interaction. Due to certain defects in single-modal information, we complemented audio and visual information to perform multi-modal emotion recognition. At the same time, the choice of different classifiers has different accuracy in the emotion classification experiment. Therefore, in this paper, we introduce a multi-modal emotion recognition system. After obtaining multi-modal features, use different classifiers for learning and training, and obtain Multi Layer Perceptron Classifier, Logistic Regression, Support Vector Classifier and Linear Discriminant Analysis four classifiers with high accuracy for multi-modal emotion recognition. This paper explains the work of each part of the multimodal emotion recognition system, focusing on the performance comparison of classifiers in emotion recognition.
机译:近年来,情感识别(AVER)在人机互动领域变得越来越重要。由于单模态信息中的某些缺陷,我们补充了音频和视觉信息以执行多模态情绪识别。与此同时,不同分类器的选择在情感分类实验中具有不同的准确性。因此,在本文中,我们介绍了多模态情绪识别系统。获得多模态特征后,使用不同的分类器进行学习和培训,并获得多层Perceptron分类器,逻辑回归,支持向量分类器和线性判别分析四个分类器,具有高精度的多模态情绪识别。本文介绍了多模式情绪识别系统的各部分的工作,重点是情感认可中分类器的性能比较。

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