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Brain Machine Interface for physically retarded people using colour visual tasks

机译:脑机接口,用于使用彩色视觉任务的弱智人士

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A Brain Machine Interface is a communication system which connects the human brain activity to an external device bypassing the peripheral nervous system and muscular system. It provides a communication channel for the people who are suffering with neuromuscular disorders such as amyotrophic lateral sclerosis, brain stem stroke, quadriplegics and spinal cord injury. In this paper, a simple BMI system based on EEG signal emanated while visualizing of different colours has been proposed. The proposed BMI uses the color visual tasks and aims to provide a communication through brain activated control signal for a system from which the required task operation can be performed to accomplish the needs of the physically retarded community. The ability of an individual to control his EEG through the colour visualization enables him to control devices. The EEG signal is recorded from 10 voluntary healthy subjects using the noninvasive scalp electrodes placed over the frontal, parietal, motor cortex, temporal and occipital areas. The obtained EEG signals were segmented and then processed using an elliptic filter. Using spectral analysis, the alpha, beta and gamma band frequency spectrum features are obtained for each EEG signals. The extracted features are then associated to different control signals and a neural network model using back propagation algorithm has been developed. The proposed method can be used to translate the colour visualization signals into control signals and used to control the movement of a mobile robot. The performance of the proposed algorithm has an average classification accuracy of 95.2%.
机译:脑机接口是一种通信系统,可将人脑活动与绕过周围神经系统和肌肉系统的外部设备连接起来。它为患有神经肌肉疾病(如肌萎缩性侧索硬化症,脑干中风,四肢瘫痪和脊髓损伤)的人们提供了交流渠道。在本文中,提出了一种基于脑电信号的简单BMI系统,同时可视化不同的颜色。提出的BMI使用彩色视觉任务,旨在通过大脑激活的控制信号为系统提供通信,可以从该系统执行所需的任务操作来满足肢体弱势群体的需求。个人通过颜色可视化控制其脑电图的能力使他能够控制设备。使用放置在额叶,顶叶,运动皮层,颞叶和枕叶区域的无创头皮电极从10名自愿健康受试者中记录EEG信号。对获得的脑电信号进行分段,然后使用椭圆滤波器进行处理。使用频谱分析,可以获得每个EEG信号的α,β和gamma频段频谱特征。然后将提取的特征关联到不同的控制信号,并开发了使用反向传播算法的神经网络模型。所提出的方法可以用于将颜色可视化信号转换成控制信号,并且可以用于控制移动机器人的运动。所提算法的性能具有95.2%的平均分类精度。

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