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Toward Emotion Recognition in Car-Racing Drivers: A Biosignal Processing Approach

机译:迈向赛车手的情绪识别:一种生物信号处理方法

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摘要

In this paper, we present a methodology and a wearable system for the evaluation of the emotional states of car-racing drivers. The proposed approach performs an assessment of the emotional states using facial electromyograms, electrocardiogram, respiration, and electrodermal activity. The system consists of the following: 1) the multisensorial wearable module; 2) the centralized computing module; and 3) the system''s interface. The system has been preliminary validated by using data obtained from ten subjects in simulated racing conditions. The emotional classes identified are high stress, low stress, disappointment, and euphoria. Support vector machines (SVMs) and adaptive neuro-fuzzy inference system (ANFIS) have been used for the classification. The overall classification rates achieved by using tenfold cross validation are 79.3% and 76.7% for the SVM and the ANFIS, respectively.
机译:在本文中,我们提出了一种方法和可穿戴系统,用于评估赛车手的情绪状态。所提出的方法使用面部肌电图,心电图,呼吸和皮肤电活动来评估情绪状态。该系统包括以下内容:1)多传感器可穿戴模块; 2)集中计算模块; 3)系统界面。该系统已通过使用在模拟赛车条件下从十名受试者获得的数据进行了初步验证。确定的情绪类别是高压力,低压力,失望和欣快。支持向量机(SVM)和自适应神经模糊推理系统(ANFIS)已用于分类。对于SVM和ANFIS,通过十倍交叉验证获得的总体分类率分别为79.3%和76.7%。

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