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效价程度如何影响基于情感听觉P300的脑机接口?

How Does the Degree of Valence Influence Affective Auditory P300-Based BCIs?

作者信息

Onishi Akinari, Nakagawa Seiji

机构信息

Center for Frontier Medical Engineering, Chiba University, Chiba, Japan.

Department of Medical Engineering, Graduate School of Engineering, Chiba University, Chiba, Japan.

出版信息

Front Neurosci. 2019 Feb 19;13:45. doi: 10.3389/fnins.2019.00045. eCollection 2019.

Abstract

A brain-computer interface (BCI) translates brain signals into commands for the control of devices and for communication. BCIs enable persons with disabilities to communicate externally. Positive and negative affective sounds have been introduced to P300-based BCIs; however, how the degree of valence (e.g., very positive or positive) influences the BCI has not been investigated. To further examine the influence of affective sounds in P300-based BCIs, we applied sounds with five degrees of valence to the P300-based BCI. The sound valence ranged from very negative to very positive, as determined by Scheffe's method. The effect of sound valence on the BCI was evaluated by waveform analyses, followed by the evaluation of offline stimulus-wise classification accuracy. As a result, the late component of P300 showed significantly higher point-biserial correlation coefficients in response to very positive and very negative sounds than in response to the other sounds. The offline stimulus-wise classification accuracy was estimated from a region-of-interest. The analysis showed that the very negative sound achieved the highest accuracy and the very positive sound achieved the second highest accuracy, suggesting that the very positive sound and the very negative sound may be required to improve the accuracy.

摘要

脑机接口(BCI)将脑信号转换为用于控制设备和进行通信的指令。BCI使残疾人能够进行外部交流。积极和消极情感声音已被引入基于P300的BCI;然而,效价程度(例如,非常积极或积极)如何影响BCI尚未得到研究。为了进一步研究情感声音在基于P300的BCI中的影响,我们将具有五个效价程度的声音应用于基于P300的BCI。声音效价范围从非常消极到非常积极,由谢费法确定。通过波形分析评估声音效价对BCI的影响,随后评估离线逐刺激分类准确率。结果,P300的晚期成分在对非常积极和非常消极声音的反应中显示出比在对其他声音的反应中显著更高的点二列相关系数。离线逐刺激分类准确率是从感兴趣区域估计的。分析表明,非常消极的声音达到了最高准确率,非常积极的声音达到了第二高准确率,这表明可能需要非常积极的声音和非常消极的声音来提高准确率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c724/6390079/a19cffedac6b/fnins-13-00045-g0001.jpg

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