将模块化神经网络应用于基于ssvep的脑机接口

Yeou-Jiunn Chen, Shih-Chung Chen, Chung-Min Wu
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引用次数: 3

摘要

肌萎缩性侧索硬化症患者很难与其他人交谈,大多数人的认知功能通常是保留的。因此,开发基于视觉诱发电位的稳态脑机接口可以有效地帮助患者。为了准确地表示频率响应的特征,采用了快速傅立叶变换、功率倒谱分析和典型相关分析估计的三种特征。为了融合这些特征,采用模块化神经网络进行决策。实验结果表明,该方法优于以往的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using modular neural network to SSVEP-based BCI
A patient with amyotrophic lateral sclerosis is difficult to talk with other people and the cognitive function is generally spared for most people. Therefore, to develop a steady state visually evoked potential based brain computer interfaces can effectively help patients. To precisely represent the characteristics of frequency responses, three types of features estimated by fast Fourier transform, power cepstrum analysis, and canonical correlation analysis are adopted. To fuse these features, a modular neural network is applied find a decision. The experimental results demonstrated that the proposed approach outperform previous approaches.
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