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Adaptation Strategies for Personalized Gait Neuroprosthetics

Personalization of gait neuroprosthetics is paramount to ensure their efficacy for users, who experience severe limitations in mobility without an assistive device. Our goal is to develop assistive devices that collaborate with and are tailored to their users, while allowing them to use as much of t...

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Autores principales: Koelewijn, Anne D., Audu, Musa, del-Ama, Antonio J., Colucci, Annalisa, Font-Llagunes, Josep M., Gogeascoechea, Antonio, Hnat, Sandra K., Makowski, Nathan, Moreno, Juan C., Nandor, Mark, Quinn, Roger, Reichenbach, Marc, Reyes, Ryan-David, Sartori, Massimo, Soekadar, Surjo, Triolo, Ronald J., Vermehren, Mareike, Wenger, Christian, Yavuz, Utku S., Fey, Dietmar, Beckerle, Philipp
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8716811/
https://www.ncbi.nlm.nih.gov/pubmed/34975445
http://dx.doi.org/10.3389/fnbot.2021.750519
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author Koelewijn, Anne D.
Audu, Musa
del-Ama, Antonio J.
Colucci, Annalisa
Font-Llagunes, Josep M.
Gogeascoechea, Antonio
Hnat, Sandra K.
Makowski, Nathan
Moreno, Juan C.
Nandor, Mark
Quinn, Roger
Reichenbach, Marc
Reyes, Ryan-David
Sartori, Massimo
Soekadar, Surjo
Triolo, Ronald J.
Vermehren, Mareike
Wenger, Christian
Yavuz, Utku S.
Fey, Dietmar
Beckerle, Philipp
author_facet Koelewijn, Anne D.
Audu, Musa
del-Ama, Antonio J.
Colucci, Annalisa
Font-Llagunes, Josep M.
Gogeascoechea, Antonio
Hnat, Sandra K.
Makowski, Nathan
Moreno, Juan C.
Nandor, Mark
Quinn, Roger
Reichenbach, Marc
Reyes, Ryan-David
Sartori, Massimo
Soekadar, Surjo
Triolo, Ronald J.
Vermehren, Mareike
Wenger, Christian
Yavuz, Utku S.
Fey, Dietmar
Beckerle, Philipp
author_sort Koelewijn, Anne D.
collection PubMed
description Personalization of gait neuroprosthetics is paramount to ensure their efficacy for users, who experience severe limitations in mobility without an assistive device. Our goal is to develop assistive devices that collaborate with and are tailored to their users, while allowing them to use as much of their existing capabilities as possible. Currently, personalization of devices is challenging, and technological advances are required to achieve this goal. Therefore, this paper presents an overview of challenges and research directions regarding an interface with the peripheral nervous system, an interface with the central nervous system, and the requirements of interface computing architectures. The interface should be modular and adaptable, such that it can provide assistance where it is needed. Novel data processing technology should be developed to allow for real-time processing while accounting for signal variations in the human. Personalized biomechanical models and simulation techniques should be developed to predict assisted walking motions and interactions between the user and the device. Furthermore, the advantages of interfacing with both the brain and the spinal cord or the periphery should be further explored. Technological advances of interface computing architecture should focus on learning on the chip to achieve further personalization. Furthermore, energy consumption should be low to allow for longer use of the neuroprosthesis. In-memory processing combined with resistive random access memory is a promising technology for both. This paper discusses the aforementioned aspects to highlight new directions for future research in gait neuroprosthetics.
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spelling pubmed-87168112021-12-31 Adaptation Strategies for Personalized Gait Neuroprosthetics Koelewijn, Anne D. Audu, Musa del-Ama, Antonio J. Colucci, Annalisa Font-Llagunes, Josep M. Gogeascoechea, Antonio Hnat, Sandra K. Makowski, Nathan Moreno, Juan C. Nandor, Mark Quinn, Roger Reichenbach, Marc Reyes, Ryan-David Sartori, Massimo Soekadar, Surjo Triolo, Ronald J. Vermehren, Mareike Wenger, Christian Yavuz, Utku S. Fey, Dietmar Beckerle, Philipp Front Neurorobot Neuroscience Personalization of gait neuroprosthetics is paramount to ensure their efficacy for users, who experience severe limitations in mobility without an assistive device. Our goal is to develop assistive devices that collaborate with and are tailored to their users, while allowing them to use as much of their existing capabilities as possible. Currently, personalization of devices is challenging, and technological advances are required to achieve this goal. Therefore, this paper presents an overview of challenges and research directions regarding an interface with the peripheral nervous system, an interface with the central nervous system, and the requirements of interface computing architectures. The interface should be modular and adaptable, such that it can provide assistance where it is needed. Novel data processing technology should be developed to allow for real-time processing while accounting for signal variations in the human. Personalized biomechanical models and simulation techniques should be developed to predict assisted walking motions and interactions between the user and the device. Furthermore, the advantages of interfacing with both the brain and the spinal cord or the periphery should be further explored. Technological advances of interface computing architecture should focus on learning on the chip to achieve further personalization. Furthermore, energy consumption should be low to allow for longer use of the neuroprosthesis. In-memory processing combined with resistive random access memory is a promising technology for both. This paper discusses the aforementioned aspects to highlight new directions for future research in gait neuroprosthetics. Frontiers Media S.A. 2021-12-16 /pmc/articles/PMC8716811/ /pubmed/34975445 http://dx.doi.org/10.3389/fnbot.2021.750519 Text en Copyright © 2021 Koelewijn, Audu, del-Ama, Colucci, Font-Llagunes, Gogeascoechea, Hnat, Makowski, Moreno, Nandor, Quinn, Reichenbach, Reyes, Sartori, Soekadar, Triolo, Vermehren, Wenger, Yavuz, Fey and Beckerle. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Koelewijn, Anne D.
Audu, Musa
del-Ama, Antonio J.
Colucci, Annalisa
Font-Llagunes, Josep M.
Gogeascoechea, Antonio
Hnat, Sandra K.
Makowski, Nathan
Moreno, Juan C.
Nandor, Mark
Quinn, Roger
Reichenbach, Marc
Reyes, Ryan-David
Sartori, Massimo
Soekadar, Surjo
Triolo, Ronald J.
Vermehren, Mareike
Wenger, Christian
Yavuz, Utku S.
Fey, Dietmar
Beckerle, Philipp
Adaptation Strategies for Personalized Gait Neuroprosthetics
title Adaptation Strategies for Personalized Gait Neuroprosthetics
title_full Adaptation Strategies for Personalized Gait Neuroprosthetics
title_fullStr Adaptation Strategies for Personalized Gait Neuroprosthetics
title_full_unstemmed Adaptation Strategies for Personalized Gait Neuroprosthetics
title_short Adaptation Strategies for Personalized Gait Neuroprosthetics
title_sort adaptation strategies for personalized gait neuroprosthetics
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8716811/
https://www.ncbi.nlm.nih.gov/pubmed/34975445
http://dx.doi.org/10.3389/fnbot.2021.750519
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