Brain machine interface using Emotiv EPOC to control robai cyton robotic arm

Daniel P. Prince, Mark Edmonds, Andrew J. Sutter, M. Cusumano, Wenjie Lu, V. Asari
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引用次数: 16

Abstract

The initial framework for an electroencephalography (EEG) thought recognition software suite is developed, built, and tested. This suite is designed to recognize human thoughts and pair them to actions for controlling a robotic arm. Raw EEG brain activity data is collected using an Emotiv EPOC headset. The EEG data is processed through linear discriminant analysis (LDA), where an intended action is identified. The EEG classification suite is being developed to increase the number of distinct actions that can be identified compared to the Emotiv recognition software. The EEG classifier was able to correctly distinguish between two separate physical movements. Future goals for this research include recognition of more gestures, and enabling of real time processing.
脑机接口使用Emotiv EPOC控制机器人手臂
开发、构建和测试了脑电图(EEG)思想识别软件套件的初始框架。这个套件的设计目的是识别人类的思想,并将其与控制机械臂的动作配对。使用Emotiv EPOC耳机收集原始脑电图大脑活动数据。EEG数据通过线性判别分析(LDA)进行处理,识别出预期的动作。与Emotiv识别软件相比,EEG分类套件正在开发中,以增加可以识别的不同动作的数量。EEG分类器能够正确区分两个独立的物理运动。这项研究的未来目标包括识别更多的手势,并使实时处理成为可能。
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