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Towards sign language recognition using EEG-based motor imagery brain computer interface

机译:使用基于EEG的运动图像脑计算机接口实现手语识别

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While BCIs have a wide range of applications, the majority of research in the field is concentrated on addressing the issues of controlling and communicating for paralysed patients. This research seeks to examine-through the completion of offline experimentation-a particular aspect; that is, the likelihood of linguistic communication with those paralysed patients, merely by means of neural activity in the brain. Electroencephalogram (EEG) brain activities obtained whilst imagining execution of six one-handed signs from American Sign Language (ASL) were investigated. Upon reviewing the findings, it is demonstrated that EEG signal analysis can be used efficiently to identify hand movement of sign language from the brain. SVM and LDA both showed the highest accuracy, achieving around 75% correct when the Entropy feature type was examined.
机译:尽管BCI具有广泛的应用,但该领域的大多数研究都集中在解决瘫痪患者的控制和沟通问题上。本研究旨在通过完成离线实验来研究特定方面;也就是说,仅通过大脑的神经活动就可以与那些瘫痪的患者进行语言交流。研究了脑电图(EEG)的大脑活动,同时想象了从美国手语(ASL)处死的六个单手手势的执行情况。回顾这些发现后,证明了脑电信号分析可以有效地从大脑中识别手语的手部运动。 SVM和LDA均显示出最高的准确性,在检查熵特征类型时,可以达到约75%的正确率。

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