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Online music emotion prediction on multiple sessions of EEG data using SVM

机译:使用SVM对EEG数据的多次会话的在线音乐情感预测

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Electroencephalogram (EEG) has been used in the domain of emotion recognition, especially during the experience from music stimulus. A number of works have been submitted with promising results in emotion prediction tasks. Unfortunately, the majority of literature did not sufficiently take into account a non-stationary characteristic of EEG signals which could differ in each recording session, and this issue might be underlying reason why such research could not be transferred into real-world application. In this paper, we are proposing a novel solution by introducing a method of normalization across session. In particular, we performed a comparison of several normalization techniques to explore various techniques to address the issue of non-stationary in EEG data. The three proposed techniques in this study are rescaling, z-score standardization, and frequency band percentage. In our experiment, we collected EEG data from ten subjects in two scenarios: consecutive session and time varied session. Our emotion prediction results suggested that z-score technique was superior to other normalization techniques based on using support vector machine (SVM). To encourage other researchers to test the efficiency of their own approach with multiple session data, our dataset is publicly provided.
机译:脑电图(EEG)已被用于情感识别领域,特别是在音乐刺激的经验期间。在情感预测任务中提交了许多作品,有希望的结果。不幸的是,大多数文学都没有充分考虑到每个录音会话可能不同的脑电图信号的非静止特性,而这个问题可能是潜在的原因,为什么这些研究无法转移到现实世界中。在本文中,我们通过在跨会话中引入归一化方法来提出一种新的解决方案。特别是,我们执行了几种归一化技术的比较以探索各种技术来解决EEG数据中的非静止问题。本研究中的三种提出的技术正在重新扫描,Z分数标准化和频带百分比。在我们的实验中,我们在两种情况下收集了来自十个科目的脑电图数据:连续会话和时间各种会议。我们的情感预测结果表明,基于使用支持向量机(SVM)的Z分数技术优于其他归一化技术。为了鼓励其他研究人员使用多个会话数据测试自己的方法的效率,我们的数据集公开提供。

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