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基于脑电图和面部表情的情绪识别:一种多模态方法。

Emotion Recognition from EEG and Facial Expressions: a Multimodal Approach.

作者信息

Chaparro Valentina, Gomez Alejandro, Salgado Alejandro, Quintero O Lucia, Lopez Natalia, Villa Luisa F

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2018 Jul;2018:530-533. doi: 10.1109/EMBC.2018.8512407.

Abstract

The understanding of a psychological phenomena such as emotion is of paramount importance for psychologists, since it allows to recognize a pathology and to prescribe a due treatment for a patient. While approaching this problem, mathematicians and computational science engineers have proposed different unimodal techniques for emotion recognition from voice, electroencephalography, facial expression, and physiological data. It is also well known that identifying emotions is a multimodal process. The main goal in this work is to train a computer to do so. In this paper we will present our first approach to a multimodal emotion recognition via data fusion of Electroencephalography and facial expressions. The selected strategy was a feature-level fusion of both Electroencephalography and facial microexpressions, and the classification schemes used were a neural network model and a random forest classifier. Experimental set up was out with the balanced multimodal database MAHNOB-HCI. Results are promising compared to results from other authors with a 97% of accuracy. The feature-level fusion approach used in this work improves our unimodal techniques up to 12% per emotion. Therefore, we may conclude that our simple but effective approach improves the overall results of accuracy.

摘要

对于心理学家而言,理解诸如情感这样的心理现象至关重要,因为这有助于识别病症并为患者开出恰当的治疗方案。在解决这个问题的过程中,数学家和计算科学工程师提出了不同的单模态技术,用于从语音、脑电图、面部表情和生理数据中识别情感。众所周知,识别情感是一个多模态过程。这项工作的主要目标是训练计算机来做到这一点。在本文中,我们将展示我们通过脑电图和面部表情的数据融合进行多模态情感识别的第一种方法。所选用的策略是脑电图和面部微表情的特征级融合,所使用的分类方案是神经网络模型和随机森林分类器。实验是在平衡多模态数据库MAHNOB - HCI上进行的。与其他作者的结果相比,结果很有前景,准确率达到了97%。这项工作中使用的特征级融合方法使我们的单模态技术在每种情感上的准确率提高了12%。因此,我们可以得出结论,我们简单但有效的方法提高了整体准确率结果。

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