Real-time EEG-based brain-computer interface to a virtual avatar enhances cortical involvement in human treadmill walking
Recent advances in non-invasive brain-computer interface (BCI) technologies have shown the feasibility of neural decoding for both users’ gait intent and continuous kinematics. However, the dynamics of cortical involvement in human upright walking with a closed-loop BCI has not been investigated. This study aims to investigate the changes of cortical involvement in human treadmill walking with and without BCI control of a walking avatar. Source localization revealed significant differences in cortical network activity between walking with and without closed-loop BCI control. Our results showed sustained α/µ suppression in the Posterior Parietal Cortex and Inferior Parietal Lobe, indicating increases of cortical involvement during walking with BCI control. We also observed significant increased activity of the Anterior Cingulate Cortex (ACC) in the low frequency band suggesting the presence of a cortical network involved in error monitoring and motor learning. Additionally, the presence of low γ modulations in the ACC and Superior Temporal Gyrus may associate with increases of voluntary control of human gait. This work is a further step toward the development of a novel training paradigm for improving the efficacy of rehabilitation in a top-down approach.
Download PDF Subjects Brain–machine interface Neural decoding Abstract Recent advances in non-invasive brain-computer interface (BCI) technologies have shown the feasibility of neural decoding for both users’ gait intent and continuous kinematics. However, the dynamics of cortical involvement in human upright walking with a closed-loop BCI has not been investigated. This study aims to investigate the changes of cortical involvement in human treadmill walking with and without BCI control of a walking avatar. Source localization revealed significant differences in cortical network activity betwe
related reading
- Brain–computer interface - Wikipediaen.wikipedia.org
- Toward accessible, real-time brain decoding: Introducing ENIGMA | Alljoined Blogalljoined.com
- Volitional control of individual neurons in the human brainpmc.ncbi.nlm.nih.gov
- Semantic reconstruction of continuous language from non-invasive brain recordings | Nature Neurosciencenature.com
- PROGRAMMEesa.int
- Brain-to-Brain Interfaces: When Reality Meets Science Fiction - PMCncbi.nlm.nih.gov
- Brown scientist wins $1.5M innovator award for new approach to decoding brain signals | Brown Universitybrown.edu
- Brain2Qwerty — Decoding typed sentences from non-invasive brain activityfacebookresearch.github.io
- Neural Prosthetics - Scholarpediascholarpedia.org
- Decoding motor plans using a closed-loop ultrasonic brain–machine interface | Nature Neurosciencenature.com
- Exploring Markers of Brain-Computer Interface Performance in Childrenprism.ucalgary.ca
- High-performance brain-to-text communication via imagined handwriting | bioRxivbiorxiv.org