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Design of an EEG-based Drone Swarm Control System using Endogenous BCI Paradigms

机译:使用内源BCI范式设计基于EEG的无人机群控制系统

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Non-invasive brain-computer interface (BCI) has been developed for understanding users' intentions by using electroencephalogram (EEG) signals. With the recent development of artificial intelligence, there have been many developments in the drone control system. BCI characteristic that can reflect the users' intentions led to the BCI-based drone control system. When using drone swarm, we can have more advantages, such as mission diversity, than using a single drone. In particular, BCI-based drone swarm control could provide many advantages to various industries such as military service or industry disaster. BCI Paradigms consist of the exogenous and endogenous paradigms. The endogenous paradigms can operate with the users' intentions independently of any stimulus. In this study, we designed endogenous paradigms (i.e., motor imagery (MI), visual imagery (VI), and speech imagery (SI)) specialized in drone swarm control, and EEG-based various task classifications related to drone swarm control were conducted. Five subjects participated in the experiment and the performance was evaluated using the basic machine learning algorithm. The grand-averaged accuracies were 37.6% (± 6.78), 43.2% (± 3.44), and 31.6% (± 1.07) in MI, VI, and SI, respectively. Hence, we confirmed the feasibility of increasing the degree of freedom for drone swarm control using various endogenous paradigms.
机译:通过使用脑电图(EEG)信号来开发非侵入性大脑 - 计算机接口(BCI)以了解用户的意图。随着近期人工智能的发展,无人机控制系统存在许多发展。 BCI特征可以反映用户的意图导致基于BCI的无人机控制系统。使用无人机群时,我们可以更具优势,例如任务多样性,而不是使用单个无人机。特别是,基于BCI的无人机群体控制可以为各种行业(如兵役或行业灾难)提供许多优势。 BCI范式包括外源性和内源性范式。内源范式可以与用户的意图独立于任何刺激操作。在这项研究中,我们设计了专门在无人机群体控制中专用于无人机群体控制的内源范例(即电动机图像(MI),视觉图像(SI)),并进行了与无人机群控制相关的基于EEG的各种任务分类。使用基本机器学习算法评估了参加实验的五个受试者和性能。宏伟平均的精度分别为37.6%(±6.78),43.2%(±3.44)和31.6%(±1.07),分别为MI,VI和Si。因此,我们确认使用各种内源范式增加了无人机群控制的自由度的可行性。

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