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Identifying Suitable Brain Regions and Trial Size Segmentation for Positive/Negative Emotion Recognition

机译:识别正/负面情绪识别的合适的大脑区域和试验规模分割

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摘要

The development of suitable EEG-based emotion recognition systems has become a main target in the last decades for Brain Computer Interface applications (BCI). However, there are scarce algorithms and procedures for real-time classification of emotions. The present study aims to investigate the feasibility of real-time emotion recognition implementation by the selection of parameters such as the appropriate time window segmentation and target bandwidths and cortical regions. We recorded the EEG-neural activity of 24 participants while they were looking and listening to an audiovisual database composed of positive and negative emotional video clips. We tested 12 different temporal window sizes, 6 ranges of frequency bands and 60 electrodes located along the entire scalp. Our results showed a correct classification of 86.96% for positive stimuli. The correct classification for negative stimuli was a little bit less (80.88%). The best time window size, from the tested 1 s to 12 s segments, was 12 s. Although more studies are still needed, these preliminary results provide a reliable way to develop accurate EEG-based emotion classification.
机译:合适的基于EEG的情感识别系统的发展已成为脑电脑接口应用(BCI)的最后几十年的主要目标。但是,存在稀缺的算法和程序的实时分类情绪。本研究旨在通过选择适当的时间窗口分割和目标带宽和皮质区域的参数来研究实时情感识别实现的可行性。我们录制了24名参与者的脑神经动态,而他们正在寻找和倾听由积极和负面情感剪辑组成的视听数据库。我们测试了12个不同的时间窗口尺寸,6个频带和沿整个头皮的60个电极的范围。我们的结果表明,正刺激的正确分类为86.96%。负刺激的正确分类略低于(80.88%)。从测试的1S到12分段中获得最佳时间窗口大小为12秒。虽然仍需要更多的研究,但这些初步结果提供了一种开发基于EEG的精确情感分类的可靠方法。

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