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Human-centered favorite music estimation: EEG-based extraction of audio features reflecting individual preference

机译:以人为中心的喜爱音乐估计:基于EEG的音频特征提取,反映了个人喜好

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This paper presents a human-centered method for favorite music estimation using EEG-based audio features. In order to estimate user's favorite musical pieces, our method utilizes his/her EEG signals for calculating new audio features suitable for representing the user's music preference. Specifically, projection, which transforms original audio features into the features reflecting the preference, is calculated by applying kernel Canonical Correlation Analysis (CCA) to the audio features and the EEG features which are extracted from the user's EEG signals during listening to favorite musical pieces. By using the obtained projection, the new EEG-based audio features can be derived since this projection provides the best correlation between the user's EEG signals and their corresponding audio signals. Thus, successful estimation of user's favorite musical pieces via a Support Vector Machine (SVM) classifier using the new audio features becomes feasible. Since our method does not need acquisition of EEG signals for obtaining new audio features from new musical pieces after calculating the projection, this indicates the high practicability of our method. Experimental results show that our method outperforms methods using original audio features or EEG features.
机译:本文提出了一种基于人的方法,可以使用基于EEG的音频功能估算喜爱的音乐。为了估计用户最喜欢的音乐作品,我们的方法利用他/她的EEG信号来计算适合代表用户音乐喜好的新音频特征。具体而言,通过将内核规范相关分析(CCA)应用到听音乐过程中从用户的EEG信号中提取的音频特征和EEG特征来计算投影,该投影将原始音频特征转换为反映偏好的特征。通过使用获得的投影,可以推导出新的基于EEG的音频特征,因为该投影在用户的EEG信号及其相应的音频信号之间提供了最佳的相关性。因此,使用新的音频特征通过支持向量机(SVM)分类器成功估算用户喜欢的音乐作品变得可行。由于在计算投影后,我们的方法不需要获取EEG信号即可从新的音乐作品中获得新的音频特征,因此表明我们的方法具有很高的实用性。实验结果表明,我们的方法优于使用原始音频功能或EEG功能的方法。

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