EEG-Based Lower-Limb Movement Onset Decoding: Continuous Classification and Asynchronous Detection

IEEE Transactions on Neural Systems and Rehabilitation Engineering : a Publication of the IEEE Engineering in Medicine and Biology Society
Dong LiuJ D R Millán

Abstract

Brain-machine interfaces have been used to incorporate the user intention to trigger robotic devices by decoding movement onset from electroencephalography. Active neural participation is crucial to promote brain plasticity thus to enhance the opportunity of motor recovery. This paper presents the decoding of lower-limb movement-related cortical potentials with continuous classification and asynchronous detection. We executed experiments in a customized gait trainer, where 10 healthy subjects performed self-initiated ankle plantar flexion. We further analyzed the features, evaluated the impact of the limb side, and compared the proposed framework with other typical decoding methods. No significant differences were observed between the left and right legs in terms of neural signatures of movement and classification performance. We obtained a higher true positive rate, lower false positives, and comparable latencies with respect to the existing online detection methods. This paper demonstrates the feasibility of the proposed framework to build a closed-loop gait trainer. Potential applications include gait training neurorehabilitation in clinical trials.

Citations

Oct 2, 2019·Journal of Neural Engineering·Rozhin YousefiTom Chau
Feb 12, 2021·Frontiers in Human Neuroscience·Haroon KhanPeyman Mirtaheri
Nov 14, 2020·Disability and Rehabilitation. Assistive Technology·Mahdie Khaliq FardAli Maleki

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