Advancing sensory neuroprosthetics using artificial brain networks
Author(s) -
David Haslacher,
Khaled Nasr,
Surjo R. Soekadar
Publication year - 2021
Publication title -
patterns
Language(s) - English
Resource type - Journals
ISSN - 2666-3899
DOI - 10.1016/j.patter.2021.100304
Subject(s) - neuroprosthetics , brain–computer interface , sensory system , neuroscience , neural engineering , computer science , artificial neural network , artificial intelligence , psychology , electroencephalography
Implementation of effective brain or neural stimulation protocols for restoration of complex sensory perception, e.g., in the visual domain, is an unresolved challenge. By leveraging the capacity of deep learning to model the brain’s visual system, optic nerve stimulation patterns could be derived that are predictive of neural responses of higher-level cortical visual areas in silico . This novel approach could be generalized to optimize different types of neuroprosthetics or bidirectional brain-computer interfaces (BCIs).
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