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Simultaneous Scalp Electroencephalography (EEG), Electromyography (EMG), and Whole-body Segmental Inertial Recording for Multi-modal Neural Decoding
Authors:Thomas C Bulea  Atilla Kilicarslan  Recep Ozdemir  William H Paloski  Jose L Contreras-Vidal
Institution:1.Functional and Applied Biomechanics Group, National Institutes of Health;2.Laboratory for Non-invasive Brain-Machine Interface Systems, Department of Electrical and Computer Engineering, University of Houston;3.Department of Health and Human Performance, University of Houston;4.Center for Neuromotor & Biomechanics Research, University of Houston;5.Department of Biomedical Engineering, University of Houston
Abstract:Recent studies support the involvement of supraspinal networks in control of bipedal human walking. Part of this evidence encompasses studies, including our previous work, demonstrating that gait kinematics and limb coordination during treadmill walking can be inferred from the scalp electroencephalogram (EEG) with reasonably high decoding accuracies. These results provide impetus for development of non-invasive brain-machine-interface (BMI) systems for use in restoration and/or augmentation of gait- a primary goal of rehabilitation research. To date, studies examining EEG decoding of activity during gait have been limited to treadmill walking in a controlled environment. However, to be practically viable a BMI system must be applicable for use in everyday locomotor tasks such as over ground walking and turning. Here, we present a novel protocol for non-invasive collection of brain activity (EEG), muscle activity (electromyography (EMG)), and whole-body kinematic data (head, torso, and limb trajectories) during both treadmill and over ground walking tasks. By collecting these data in the uncontrolled environment insight can be gained regarding the feasibility of decoding unconstrained gait and surface EMG from scalp EEG.
Keywords:Behavior  Issue 77  Neuroscience  Neurobiology  Medicine  Anatomy  Physiology  Biomedical Engineering  Molecular Biology  Electroencephalography  EEG  Electromyography  EMG  electroencephalograph  gait  brain-computer interface  brain machine interface  neural decoding  over-ground walking  robotic gait  brain  imaging  clinical techniques
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