首页> 外文会议>2013 Humaine Association Conference on Affective Computing and Intelligent Interaction >Emotion Detection from QRS Complex of ECG Signals Using Hurst Exponent for Different Age Groups
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Emotion Detection from QRS Complex of ECG Signals Using Hurst Exponent for Different Age Groups

机译:使用Hurst指数针对不同年龄组的心电信号QRS波群进行情绪检测

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Emotion recognition using physiological signals is one of the key research areas in Human Computer Interaction (HCI). In this work, we identify the six basic emotional states (Happiness, sadness, fear, surprise, disgust and neutral) from the QRS complex of electrocardiogram (ECG) signals. We focus specifically on the nonlinear feature 'Hurst exponent' computed using two methods namely rescaled range statistics (RRS) and finite variance scaling (FVS). The study is done on emotional ECG data obtained using audio visual stimuli from sixty subjects belonging to three different age groups - children (9 to 16 years), young adults (18 to 25 years) and adults (39 to 68 years). The performance of the Hurst exponent computed using RRS and FVS for individual age groups resulted in a maximum average accuracy of 78.21%. The combined analysis of the all the age groups had a maximum average accuracy of 70.23%. In general, the results of all the six emotional states indicate better performance compared to previous research works. However, the performance needs to be further improved in order to develop a reliable and robust emotion recognition system.
机译:使用生理信号进行情感识别是人机交互(HCI)的关键研究领域之一。在这项工作中,我们从心电图(ECG)信号的QRS复合信号中识别出六个基本的情绪状态(幸福,悲伤,恐惧,惊奇,厌恶和中立)。我们特别关注使用两种方法计算的非线性特征“赫斯特指数”,即重新定标范围统计(RRS)和有限方差定标(FVS)。该研究是通过使用来自三个不同年龄组的六十个受试者的视听刺激获得的情感心电图数据完成的,这些受试者分别是儿童(9至16岁),年轻人(18至25岁)和成年人(39至68岁)。使用RRS和FVS计算出的各个年龄组的赫斯特指数表现,其最大平均准确度为78.21%。所有年龄段的综合分析的最大平均准确度为70.23%。总的来说,与以前的研究工作相比,所有六个情绪状态的结果都表明表现更好。然而,为了开发可靠且健壮的情绪识别系统,需要进一步提高性能。

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