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Method for Detecting Music to Match the User's Mood in Prefrontal Cortex Electroencephalogram Activity Based on Individual Characteristics

机译:检测音乐以基于个体特征的前额叶皮质脑电图活动中匹配用户情绪的方法

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In this paper, we propose a method for detecting the music to match a user's mood in prefrontal cortex electroencephalogram (EEG) activity. The EEG frequencies analyzed are the components that contain significant and immaterial information. We focused on the combinations of the significant frequency. These frequency combinations are thought to express individual characteristics of EEG activity. In the proposed method, we calculate the percentage of the spectrum of these frequency combinations that does not include the noise frequency components and evaluates whether the music matches the user's mood through a simple threshold processing. Then, a genetic algorithm (GA) is used to specify the frequency of individual characteristics on the EEG. Threshold values that used the threshold processing is determined in the GA. Finally, the performance of the proposed method is evaluated using real EEG data.
机译:在本文中,我们提出了一种检测音乐以匹配用户在前额定皮层脑电图(EEG)活动中的情绪匹配音乐的方法。分析的EEG频率是包含显着和非物质信息的组件。我们专注于显着频率的组合。这些频率组合被认为表达EEG活动的个性特征。在所提出的方法中,我们计算这些频谱的频谱频谱不包括噪声频率分量,并通过简单的阈值处理评估音乐是否与用户的情绪匹配。然后,遗传算法(GA)用于指定EEG上的各个特征的频率。在GA中确定使用阈值处理的阈值。最后,使用真实的EEG数据评估所提出的方法的性能。

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