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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Toward Decoding Selective Attention From Single-Trial EEG Data in Cochlear Implant Users
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Toward Decoding Selective Attention From Single-Trial EEG Data in Cochlear Implant Users

机译:在耳蜗植入物中解码从单试的单次试用EEG数据中的选择性关注

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Previous results showed that it is possible to decode an attended speech source from EEG data via the reconstruction of the speech envelope in normal hearing (NH) listeners. However, so far it is unknown that how the performance of such a decoder is affected by the decrease in spectral resolution and the electrical artifacts introduced by a cochlear implant (CI) in users of these prostheses. NH listeners and bilateral CI users participated in the present study. Speeches from two audio books, one uttered by a male voice and one by a female voice, were presented to NH listeners and CI users. Participants were instructed to attend to one of the two speech streams presented dichotically while a 96-channel EEG was recorded. Speech envelope reconstruction from the EEG data was obtained by training decoders using a regularized least square estimation method. Decoding accuracy was defined as the percentage of accurately reconstructed trials for each subject. For NH listeners, the experiment was repeated using a vocoder to reduce spectral resolution and simulate speech perception with a CI in NH listeners. The results showed a decoding accuracy of 80.9% using the original sound files in NH listeners. The performance dropped to 73.2% in the vocoder condition and to 71.5 % in the group of CI users. In sum, although the accuracy drops when the spectral resolution becomes worse, the results show the feasibility to decode the attended sound source in NH listeners with a vocoder simulation, and even in CI users, albeit more training data are needed.
机译:上一篇结果表明,可以通过正常听觉(NH)听众的语音包络重建来解码来自EEG数据的参与的语音源。然而,到目前为止,本尚不清楚,这种解码器的性能如何受到这些假体的用户中由耳蜗植入物(CI)引入的谱分辨率的降低的影响。 NH侦听器和双边CI用户参加了本研究。来自两个音频书籍的演讲,一个由男性声音和逐个女性的声音发出的声音,呈现给NH听众和CI用户。参与者被指示参加三种语音流中的一个,而在录制96频道脑电图中。通过使用规则的最小二乘估计方法训练解码器来获得来自EEG数据的语音包络重建。解码准确度被定义为每个受试者的准确重建试验的百分比。对于NH听众,使用声码器重复实验,以减少光谱分辨率并在NH听众中使用CI模拟语音感知。结果在NH侦听器中使用原始声音文件显示了80.9%的解码准确度。在CI用户组中,该性能下降至73.2%,并在CI用户组中达到71.5%。总而言之,尽管当光谱分辨率变差时,结果表明,在具有声码器仿真中,甚至在CI用户中,甚至需要更多培训数据,结果表明了对NH侦听器中的参与声源进行解码的可行性。

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