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뇌파를 이용한 맞춤형 주행 제어 모델 설계
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Title
뇌파를 이용한 맞춤형 주행 제어 모델 설계
Alternative Title
EEG-based Customized Driving Control Model Design
Issued Date
2023-04
Citation
이진희. (2023-04). 뇌파를 이용한 맞춤형 주행 제어 모델 설계. 대한임베디드공학회논문지, 18(2), 81–87. doi: 10.14372/IEMEK.2023.18.2.81
Type
Article
Author Keywords
BCI (Brain Computer Interface)deep learningeye tracking
ISSN
1975-5066
Abstract
With the development of BCI devices, it is now possible to use EEG control technology to move the robot's arms or legs to help with daily life. In this paper, we propose a customized vehicle control model based on BCI.
This is a model that collects BCI-based driver EEG signals, determines information according to EEG signal analysis, and then controls the direction of the vehicle based on the determinated information through EEG signal analysis. In this case, in the process of analyzing noisy EEG signals, controlling direction is supplemented by using a camera-based eye tracking method to increase the accuracy of recognized direction . By synthesizing the EEG signal that recognized the direction to be controlled and the result of eye tracking, the vehicle was controlled in five directions: left turn, right turn, forward, backward, and stop. In experimental result, the accuracy of direction recognition of our proposed model is about 75% or higher.
URI
http://hdl.handle.net/20.500.11750/46197
DOI
10.14372/IEMEK.2023.18.2.81
Publisher
대한임베디드공학회
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