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EEG-based detection of the locus of auditory attention with convolutional neural networks

机译:基于EEG的检测卷积神经网络的听觉注意力

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摘要

In a multi-speaker scenario, the human auditory system is able to attend to one particular speaker of interest and ignore the others. It has been demonstrated that it is possible to use electroencephalography (EEG) signals to infer to which speaker someone is attending by relating the neural activity to the speech signals. However, classifying auditory attention within a short time interval remains the main challenge. We present a convolutional neural network-based approach to extract the locus of auditory attention (left/right) without knowledge of the speech envelopes. Our results show that it is possible to decode the locus of attention within 1–2 s, with a median accuracy of around 81%. These results are promising for neuro-steered noise suppression in hearing aids, in particular in scenarios where per-speaker envelopes are unavailable.
机译:在多扬声器场景中,人类听觉系统能够参加一个特定的扬声器,并忽略其他人。已经证明,可以使用脑电图(EEG)信号来推断某人通过将神经活动与语音信号相关的扬声器参加。但是,在短时间内分类听觉关注仍然是主要挑战。我们展示了一种基于卷积神经网络的方法来提取听觉注意力的轨迹(左/右),而不知道语音信封。我们的结果表明,可以在1-2秒内解码注意力轨迹,中位数约为81%。这些结果是对助听器中的神经转向噪声抑制的承诺,特别是在每个扬声器信封不可用的情况下。

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