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A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting

Decoding motor intentions from non-invasive brain activity monitoring is one of the most challenging aspects in the Brain Computer Interface (BCI) field. This is especially true in online settings, where classification must be performed in real-time, contextually with the user’s movements. In this w...

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Detalles Bibliográficos
Autores principales: Valenti, Andrea, Barsotti, Michele, Bacciu, Davide, Ascari, Luca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915535/
https://www.ncbi.nlm.nih.gov/pubmed/33562814
http://dx.doi.org/10.3390/bioengineering8020021
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author Valenti, Andrea
Barsotti, Michele
Bacciu, Davide
Ascari, Luca
author_facet Valenti, Andrea
Barsotti, Michele
Bacciu, Davide
Ascari, Luca
author_sort Valenti, Andrea
collection PubMed
description Decoding motor intentions from non-invasive brain activity monitoring is one of the most challenging aspects in the Brain Computer Interface (BCI) field. This is especially true in online settings, where classification must be performed in real-time, contextually with the user’s movements. In this work, we use a topology-preserving input representation, which is fed to a novel combination of 3D-convolutional and recurrent deep neural networks, capable of performing multi-class continual classification of subjects’ movement intentions. Our model is able to achieve a higher accuracy than a related state-of-the-art model from literature, despite being trained in a much more restrictive setting and using only a simple form of input signal preprocessing. The results suggest that deep learning models are well suited for deployment in challenging real-time BCI applications such as movement intention recognition.
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spelling pubmed-79155352021-03-01 A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting Valenti, Andrea Barsotti, Michele Bacciu, Davide Ascari, Luca Bioengineering (Basel) Article Decoding motor intentions from non-invasive brain activity monitoring is one of the most challenging aspects in the Brain Computer Interface (BCI) field. This is especially true in online settings, where classification must be performed in real-time, contextually with the user’s movements. In this work, we use a topology-preserving input representation, which is fed to a novel combination of 3D-convolutional and recurrent deep neural networks, capable of performing multi-class continual classification of subjects’ movement intentions. Our model is able to achieve a higher accuracy than a related state-of-the-art model from literature, despite being trained in a much more restrictive setting and using only a simple form of input signal preprocessing. The results suggest that deep learning models are well suited for deployment in challenging real-time BCI applications such as movement intention recognition. MDPI 2021-02-05 /pmc/articles/PMC7915535/ /pubmed/33562814 http://dx.doi.org/10.3390/bioengineering8020021 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Valenti, Andrea
Barsotti, Michele
Bacciu, Davide
Ascari, Luca
A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title_full A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title_fullStr A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title_full_unstemmed A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title_short A Deep Classifier for Upper-Limbs Motor Anticipation Tasks in an Online BCI Setting
title_sort deep classifier for upper-limbs motor anticipation tasks in an online bci setting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915535/
https://www.ncbi.nlm.nih.gov/pubmed/33562814
http://dx.doi.org/10.3390/bioengineering8020021
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