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Brain computer interface (BCI) with EEG signals for automatic vowel recognition based on articulation mode

机译:具有脑电信号的脑计算机接口(BCI),用于基于发音模式的自动元音识别

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One of the most promising methods to assist amputated or paralyzed patients in the control of prosthetic devices is the use of a brain computer interface (BCI). The use of a BCI allows the communication between the brain and the prosthetic device through signal processing protocols. However, due to the noisy nature of the brain signal, available signal processing protocols are unable to correctly interpret the brain commands and cannot be used beyond the laboratory setting. To address this challenge, in this work we present a novel automatic brain signal recognition protocol based on vowel articulation mode. This approach identifies the mental state of imagery of open-mid and closed vowels without the imagination of the movement of the oral cavity, for its application in prosthetic device control. The method consists on using brain signals of the language area (21 electrodes) with the specific task of thinking the respective vowel. In the prosecution stage, the power spectral density (PSD) was calculated for each one of the brain signals, carrying out the classification process with a Support Vector Machine (SVM). A measurement of precision was achieved in the recognition of the vowels according to the articulation way between 84% and 94%. The proposed method is promissory for the use of amputated or paraplegic patients.
机译:协助截肢或瘫痪患者控制假体的最有前途的方法之一是使用脑计算机接口(BCI)。 BCI的使用允许大脑和假体设备之间通过信号处理协议进行通信。但是,由于大脑信号的嘈杂性质,可用的信号处理协议无法正确解释大脑命令,因此无法在实验室设置之外使用。为了解决这一挑战,在这项工作中,我们提出了一种基于元音发音模式的新颖的自动脑信号识别协议。这种方法可以识别开中元音和闭元音的图像的心理状态,而无需想象口腔的运动,因此可以应用于假体控制。该方法包括将语言区域(21个电极)的大脑信号用于思考相应元音的特定任务。在起诉阶段,针对每个大脑信号计算功率谱密度(PSD),并使用支持向量机(SVM)进行分类过程。根据在84%和94%之间的发音方式,在识别元音时实现了精度的测量。拟议的方法是截肢或截瘫患者使用的首选方法。

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