EEG-Based Brain-Computer Interfaces Using Motor-Imagery: Techniques and Challenges

Интерфейсы мозг — компьютер на основе ЭЭГ с использованием воображаемых движений: методы и проблемы
Jinchang Ren, Huimin Zhao, Jaime Zabalza, Natasha Padfield, Valentín Masero
2019-03-22

EEG-based brain-computer interfacesclassificationfeature extractionmotor imagerysignal processing
Electroencephalography (EEG)-based brain-computer interfaces (BCIs), particularly those using motor-imagery (MI) data, have the potential to become groundbreaking technologies in both clinical and entertainment settings. MI data is generated when a subject imagines the movement of a limb. This paper reviews state-of-the-art signal processing techniques for MI EEG-based BCIs, with a particular focus on the feature extraction, feature selection and classification techniques used. It also summarizes the main applications of EEG-based BCIs, particularly those based on MI data, and finally presents a detailed discussion of the most prevalent challenges impeding the development and commercialization of EEG-based BCIs.
1
It focuses on feature extraction, feature selection, and classification techniques used to decode motor-imagery EEG data.
2
It identifies and discusses the principal challenges hindering the development and commercialization of EEG-based BCIs.
3
The paper reviews state-of-the-art signal-processing methods for motor-imagery EEG-based brain-computer interfaces.
4
The review summarizes clinical and entertainment applications of EEG-based BCIs, particularly systems using motor-imagery signals.

motor-imagery EEG-based brain-computer interfaces

signal processing techniques, applications, and development challenges, particularly feature extraction, feature selection, and classification of MI EEG data

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2019-03-22
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Authors
Jinchang Ren
Huimin Zhao
Jaime Zabalza
Natasha Padfield
Valentín Masero
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