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An Investigation of Manifold-Based Direct Control for a Brain-to-Body Neural Bypass.
Losanno, E; Badi, M; Roussinova, E; Bogaard, A; Delacombaz, M; Shokur, S; Micera, S.
Affiliation
  • Losanno E; The Biorobotics Institute and Department of Excellence in Robotics and AIScuola Superiore Sant'Anna 56025 Pisa Italy.
  • Badi M; Modular Implantable Neuroprostheses (MINE) LaboratoryUniversità Vita-Salute San Raffaele and Scuola Superiore Sant'Anna Milan Italy.
  • Roussinova E; Bertarelli Foundation Chair in Translational Neuroengineering, Center for Neuroprosthetics and Institute of BioengineeringÉcole Polytechnique Fédérale de Lausanne (EPFL) 1015 Lausanne Switzerland.
  • Bogaard A; Bertarelli Foundation Chair in Translational Neuroengineering, Center for Neuroprosthetics and Institute of BioengineeringÉcole Polytechnique Fédérale de Lausanne (EPFL) 1015 Lausanne Switzerland.
  • Delacombaz M; Department of Neuroscience and Movement Sciences, Platform of Translational Neurosciences, Section of Medicine, Faculty of Sciences and MedicineUniversity of Fribourg 1700 Fribourg Switzerland.
  • Shokur S; Department of Neuroscience and Movement Sciences, Platform of Translational Neurosciences, Section of Medicine, Faculty of Sciences and MedicineUniversity of Fribourg 1700 Fribourg Switzerland.
  • Micera S; Bertarelli Foundation Chair in Translational Neuroengineering, Center for Neuroprosthetics and Institute of BioengineeringÉcole Polytechnique Fédérale de Lausanne (EPFL) 1015 Lausanne Switzerland.
IEEE Open J Eng Med Biol ; 5: 271-280, 2024.
Article in En | MEDLINE | ID: mdl-38766541
ABSTRACT

Objective:

Brain-body interfaces (BBIs) have emerged as a very promising solution for restoring voluntary hand control in people with upper-limb paralysis. The BBI module decoding motor commands from brain signals should provide the user with intuitive, accurate, and stable control. Here, we present a preliminary investigation in a monkey of a brain decoding strategy based on the direct coupling between the activity of intrinsic neural ensembles and output variables, aiming at achieving ease of learning and long-term robustness.

Results:

We identified an intrinsic low-dimensional space (called manifold) capturing the co-variation patterns of the monkey's neural activity associated to reach-to-grasp movements. We then tested the animal's ability to directly control a computer cursor using cortical activation along the manifold axes. By daily recalibrating only scaling factors, we achieved rapid learning and stable high performance in simple, incremental 2D tasks over more than 12 weeks of experiments. Finally, we showed that this brain decoding strategy can be effectively coupled to peripheral nerve stimulation to trigger voluntary hand movements.

Conclusions:

These results represent a proof of concept of manifold-based direct control for BBI applications.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: IEEE Open J Eng Med Biol Year: 2024 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: IEEE Open J Eng Med Biol Year: 2024 Document type: Article