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Cortical encoding of phonemic context during word production

机译:单词生成过程中音位上下文的皮质编码

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Brain-computer interfaces that directly decode speech could restore communication to locked-in individuals. However, decoding speech from brain signals still faces many challenges. We investigated decoding of phonemes — the smallest separable parts of speech — from ECoG signals during word production. We expanded on previous efforts to identify specific phoneme by identifying phonemes by where in the word they were formed. We evaluated how the context of phonemes in words affects classification results using linear discriminant analysis. The decoding accuracy of our linear classifier indicated the degree to which the context of a phoneme can be determined from the cortical signal significantly greater than chance. Further, we identified the spectrotemporal features that contributed most to successful decoding of phonemic classes. Finally, we discuss how this can augment speech decoding for neural interfaces.
机译:直接解码语音的脑机接口可以恢复与被锁定者的交流。然而,从脑信号解码语音仍然面临许多挑战。我们研究了在单词生成过程中从ECoG信号解码音素(语音中最小的可分离部分)的过程。我们通过根据音素的形成位置来识别音素,从而扩展了先前用于识别特定音素的工作。我们使用线性判别分析评估了单词中的音素上下文如何影响分类结果。线性分类器的解码精度表明,从皮层信号中确定音素上下文的程度远大于偶然性。此外,我们确定了对音素类别的成功解码起最大作用的频谱时间特征。最后,我们讨论了如何增强神经接口的语音解码。

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