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Automatic Emotion Perception Using Eye Movement Information for E-Healthcare Systems

机译:使用电子医疗系统的眼动信息进行自动情绪感知

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摘要

Facing the adolescents and detecting their emotional state is vital for promoting rehabilitation therapy within an E-Healthcare system. Focusing on a novel approach for a sensor-based E-Healthcare system, we propose an eye movement information-based emotion perception algorithm by collecting and analyzing electrooculography (EOG) signals and eye movement video synchronously. Specifically, we extract the time-frequency eye movement features by firstly applying the short-time Fourier transform (STFT) to raw multi-channel EOG signals. Subsequently, in order to integrate time domain eye movement features (i.e., saccade duration, fixation duration, and pupil diameter), we investigate two feature fusion strategies: feature level fusion (FLF) and decision level fusion (DLF). Recognition experiments have been also performed according to three emotional states: positive, neutral, and negative. The average accuracies are 88.64% (the FLF method) and 88.35% (the DLF with maximal rule method), respectively. Experimental results reveal that eye movement information can effectively reflect the emotional state of the adolescences, which provides a promising tool to improve the performance of the E-Healthcare system.
机译:面对青少年并检测他们的情绪状态对于在E-Healthcare系统中促进康复治疗至关重要。着眼于一种基于传感器的电子医疗系统的新颖方法,我们通过同步收集和分析眼电图(EOG)信号和眼动视频,提出了一种基于眼动信息的情感感知算法。具体来说,我们首先通过将短时傅立叶变换(STFT)应用于原始多通道EOG信号来提取时频眼动特征。随后,为了整合时域眼动特征(即扫视持续时间,注视持续时间和瞳孔直径),我们研究了两种特征融合策略:特征级融合(FLF)和决策级融合(DLF)。还根据三种情绪状态进行了识别实验:积极,中立和消极。平均准确度分别为88.64%(FLF方法)和88.35%(DLF和最大规则法)。实验结果表明,眼动信息可以有效地反映青春期的情绪状态,为改善电子医疗系统的性能提供了有希望的工具。

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