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Decoding Musical Training from Dynamic Processing of Musical Features in the Brain

机译:从大脑中音乐特征的动态处理中解码音乐训练

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Pattern recognition on neural activations from naturalistic music listening has been successful at predicting neural responses of listeners from musical features, and vice versa. Inter-subject differences in the decoding accuracies have arisen partly from musical training that has widely recognized structural and functional effects on the brain. We propose and evaluate a decoding approach aimed at predicting the musicianship class of an individual listener from dynamic neural processing of musical features. Whole brain functional magnetic resonance imaging (fMRI) data was acquired from musicians and nonmusicians during listening of three musical pieces from different genres. Six musical features, representing low-level (timbre) and high-level (rhythm and tonality) aspects of music perception, were computed from the acoustic signals, and classification into musicians and nonmusicians was performed on the musical feature and parcellated fMRI time series. Cross-validated classification accuracy reached 77% with nine regions, comprising frontal and temporal cortical regions, caudate nucleus, and cingulate gyrus. The processing of high-level musical features at right superior temporal gyrus was most influenced by listeners’ musical training. The study demonstrates the feasibility to decode musicianship from how individual brains listen to music, attaining accuracy comparable to current results from automated clinical diagnosis of neurological and psychological disorders.
机译:从自然主义音乐聆听对神经激活的模式识别已成功地根据音乐特征预测了听众的神经反应,反之亦然。受试者之间的解码准确性差异部分是由于音乐训练对大脑的结构和功能产生了广泛影响。我们提出并评估了一种解码方法,旨在通过对音乐特征的动态神经处理来预测单个听众的音乐水平。在聆听来自不同流派的三首音乐作品时,从音乐家和非音乐家那里获取了全脑功能磁共振成像(fMRI)数据。从声音信号中计算出六个音乐特征,分别代表低水平(音色)和高水平(节奏和音调)方面,并根据音乐特征和分类的fMRI时间序列对音乐家和非音乐家进行了分类。交叉验证的分类准确性在9个区域(包括额叶和颞叶皮质区域,尾状核和扣带回)中达到了77%。右侧上颞回的高级音乐功能处理受听者的音乐训练影响最大。这项研究证明了从个人大脑听音乐的方式来解码音乐家的可行性,其准确性可与神经和心理疾病的自动临床诊断得出的结果相媲美。

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