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Neuro-Steered Music Source Separation With EEG-Based Auditory Attention Decoding And Contrastive-NMF

机译:神经转向音乐源与基于EEG的听觉注意解码和对比-NMF的音乐源分离

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We propose a novel informed music source separation paradigm, which can be referred to as neuro-steered music source separation. More precisely, the source separation process is guided by the user’s selective auditory attention decoded from his/her EEG response to the stimulus. This high-level prior information is used to select the desired instrument to isolate and to adapt the generic source separation model to the observed signal. To this aim, we leverage the fact that the attended instrument’s neural encoding is substantially stronger than the one of the unattended sources left in the mixture. This "contrast" is extracted using an attention decoder and used to inform a source separation model based on non-negative matrix factorization named Contrastive-NMF. The results are promising and show that the EEG information can automatically select the desired source to enhance and improve the separation quality.
机译:我们提出了一种新颖的通知音乐源分离范例,可称为神经转向音乐源分离。 更确切地说,源分离过程由用户的选择性听觉注意力从他/她的EEG响应对刺激进行解码。 该高级先前信息用于选择所需的仪器来隔离并使通用源分离模型调整到观察信号。 为此目的,我们利用了参加的仪器的神经编码的事实大于混合物中留下的一个无人看管的来源。 使用注意解码器提取该“对比度”,并用于基于非负矩阵分解的源分离模型以指对比度-NFF通知。 结果是有前途的,并表明EEG信息可以自动选择所需的源以增强和提高分离质量。

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