Brain Computer Interfaces Employing Machine Learning Methods : A Systematic Review

S. Vyas
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引用次数: 1

Abstract

Research under the field of Brain Computer Interfaces is adapting various Machine Learning and Deep Learning techniques in recent times. With the advent of modern BCI, the data generated by various devices is now capable of detecting brain signals more accurately. This paper gives an overview of all the steps involved in the process of applying Machine Learning as well as Deep Learning methods from Data Acquisition to application of algorithms. It aims to study techniques currently employed to extract data, features from brain data, different algorithms employed to draw insights from the extracted features, and how it can be used in various BCI applications. By this study, I aim to put forward current Machine Learning and Deep Learning Trends in the field of BCI.
采用机器学习方法的脑机接口:系统回顾
近年来,脑机接口领域的研究正在采用各种机器学习和深度学习技术。随着现代脑机接口的出现,各种设备产生的数据现在能够更准确地检测大脑信号。本文概述了应用机器学习过程中涉及的所有步骤,以及从数据采集到算法应用的深度学习方法。它旨在研究目前用于提取数据的技术,从大脑数据中提取特征,从提取的特征中提取见解的不同算法,以及如何将其用于各种脑机接口应用。通过这项研究,我旨在提出当前脑机接口领域的机器学习和深度学习趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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