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Emotion Assessment by Variability-Based Ranking of Coherence Features from EEG

机译:通过基于变异性的脑电图一致性特征排名进行情感评估

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The automatic assessment of emotional states has important applications in human-computer interfaces and marketing. Several approaches use a dimensional characterization of emotional states along with features extracted from physiological signals to classify emotions elicited from complex audiovisual stimuli; however, the classification accuracy remains low. Here, we develop an emotion assessment approach using a variability-based ranking scheme to reveal relevant coherence features from electroencephalography (EEG) signals. Our method achieves higher classification accuracies than comparable state-of-the-art methods and almost matches the performance of multimodal strategies that require information from several physiological signals.
机译:情绪状态的自动评估在人机界面和市场营销中具有重要的应用。几种方法使用情感状态的维度表征以及从生理信号中提取的特征来对由复杂视听刺激引起的情感进行分类。但是,分类精度仍然很低。在这里,我们使用基于变异性的排名方案开发一种情绪评估方法,以揭示脑电图(EEG)信号的相关一致性特征。与可比的最新技术相比,我们的方法具有更高的分类精度,并且几乎与需要从多个生理信号中获取信息的多峰策略的性能相匹配。

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