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利用相位来识别大脑中的英语音位及其区别特征。

Using phase to recognize English phonemes and their distinctive features in the brain.

机构信息

Center for Study of Language and Information, Stanford University, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2012 Dec 11;109(50):20685-90. doi: 10.1073/pnas.1217500109. Epub 2012 Nov 26.

Abstract

The neural mechanisms used by the human brain to identify phonemes remain unclear. We recorded the EEG signals evoked by repeated presentation of 12 American English phonemes. A support vector machine model correctly recognized a high percentage of the EEG brain wave recordings represented by their phases, which were expressed in discrete Fourier transform coefficients. We show that phases of the oscillations restricted to the frequency range of 2-9 Hz can be used to successfully recognize brain processing of these phonemes. The recognition rates can be further improved using the scalp tangential electric field and the surface Laplacian around the auditory cortical area, which were derived from the original potential signal. The best rate for the eight initial consonants was 66.7%. Moreover, we found a distinctive phase pattern in the brain for each of these consonants. We then used these phase patterns to recognize the consonants, with a correct rate of 48.7%. In addition, in the analysis of the confusion matrices, we found significant similarity-differences were invariant between brain and perceptual representations of phonemes. These latter results supported the importance of phonological distinctive features in the neural representation of phonemes.

摘要

人类大脑用于识别音位的神经机制仍不清楚。我们记录了 12 个美国英语音位重复呈现时引起的脑电图信号。支持向量机模型正确识别了以离散傅里叶变换系数表示的、由其相位表示的高比例脑电图脑波记录。我们表明,限制在 2-9 Hz 频率范围内的振荡的相位可以成功地用于识别这些音位的大脑处理。使用源自原始电位信号的头皮切向电场和听觉皮质区域周围的表面拉普拉斯,可以进一步提高识别率。对于前八个辅音,最佳识别率为 66.7%。此外,我们发现这些辅音在大脑中都有独特的相位模式。然后,我们使用这些相位模式来识别这些辅音,正确率为 48.7%。此外,在混淆矩阵的分析中,我们发现音位的大脑和感知表示之间的相似性差异不变。这些结果支持音位的神经表示中音位区别特征的重要性。

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Using phase to recognize English phonemes and their distinctive features in the brain.利用相位来识别大脑中的英语音位及其区别特征。
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