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Emotion Recognition Based on ECG Signals for Service Robots in the Intelligent Space During Daily Life

机译:基于ECG信号的智能空间服务机器人日常生活中的情绪识别

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This paper presents our approach for emotion recognition based on Electrocardiogram (ECG) signals. We propose to use the ECG's inter-beat features together with within-beat features in our recognition system. In order to reduce the feature space, post hoc tests in the Analysis of Variance (ANOVA) were employed to select the set of eleven most significant features. We conducted experiments on twelve subjects using the International Affective Picture System (IAPS) database. RF-ECG sensors were attached to the subject's skin to monitor the ECG signal via wireless connection. Results showed that our eleven feature approach outperforms the conventional three feature approach. For simultaneous classification of six emotional states: anger, fear, disgust, sadness, neutral, and joy, the Correct Classification Ratio (CCR) showed significant improvement from 37.23% to over 61.44%. Our system was able to monitor human emotion wirelessly without affecting the subject's activities. Therefore it is suitable to be integrated with service robots to provide assistive and healthcare services.
机译:本文介绍了我们基于心电图(ECG)信号的情感识别方法。我们建议在我们的识别系统中将心电图的心跳间特征与心跳内特征一起使用。为了减少特征空间,采用了方差分析(ANOVA)中的事后测试来选择11个最重要特征的集合。我们使用国际情感图片系统(IAPS)数据库对12个主题进行了实验。 RF-ECG传感器连接到对象的皮肤,以通过无线连接监视ECG信号。结果表明,我们的十一个特征方法优于传统的三特征方法。对于六个情绪状态的同时分类:愤怒,恐惧,厌恶,悲伤,中立和欢乐,正确分类率(CCR)从37.23%显着提高到61.44%以上。我们的系统能够无线监控人类的情绪,而不会影响受试者的活动。因此,适合与服务机器人集成以提供辅助和保健服务。

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