After an acute stroke, accurately estimating stroke severity is crucial for healthcare professionals to effectively manage patient’s treatment. Graph theory methods have shown that brain connectivity undergoes frequency-dependent reorganization post-stroke, adapting to new conditions. Traditional methods often rely on handcrafted features that may not capture the complexities of clinical phenomena. In this study, we propose a novel approach using Graph Neural Networks (GNNs) to predict stroke severity, as measured by the NIH Stroke Scale (NIHSS). We analyzed electroencephalography (EEG) recordings from 71 patients at the time of hospitalization. For each patient, we generated five graphs weighted by Lagged Linear Coherence (LLC) between signals from distinct Brodmann Areas, covering δ (2-4 Hz), θ (4-8 Hz), α1 (8-10.5 Hz), α2 (10.5-13 Hz), and β1 (13-20 Hz) frequency bands. To emphasize key neurological connections and maintain sparsity, we applied a sparsification process based on structural and functional brain network properties. We then trained a graph attention model to predict the NIHSS. By examining its attention coefficients, our model reveals insights into brain reconfiguration, providing clinicians with a valuable tool for diagnosis, personalized treatment, and early intervention in neurorehabilitation.

Towards Explainable Graph Neural Networks for Neurological Evaluation on EEG Signals / Protani, Andrea; Giusti, Lorenzo; Iacovelli, Chiara; Aillet, Albert Sund; Santos, Diogo Reis; Reale, Giuseppe; Zauli, Aurelia; Moci, Marco; Garbuglia, Marta; Brutti, Pierpaolo; Caliandro, Pietro; Serio, Luigi. - (2024), pp. 1-7. ( 2024 IEEE International Conference on E-Health Networking, Application and Services, HealthCom 2024 jpn ) [10.1109/healthcom60970.2024.10880717].

Towards Explainable Graph Neural Networks for Neurological Evaluation on EEG Signals

Protani, Andrea;Giusti, Lorenzo;Iacovelli, Chiara;Reale, Giuseppe;Moci, Marco;Brutti, Pierpaolo;Serio, Luigi
2024

Abstract

After an acute stroke, accurately estimating stroke severity is crucial for healthcare professionals to effectively manage patient’s treatment. Graph theory methods have shown that brain connectivity undergoes frequency-dependent reorganization post-stroke, adapting to new conditions. Traditional methods often rely on handcrafted features that may not capture the complexities of clinical phenomena. In this study, we propose a novel approach using Graph Neural Networks (GNNs) to predict stroke severity, as measured by the NIH Stroke Scale (NIHSS). We analyzed electroencephalography (EEG) recordings from 71 patients at the time of hospitalization. For each patient, we generated five graphs weighted by Lagged Linear Coherence (LLC) between signals from distinct Brodmann Areas, covering δ (2-4 Hz), θ (4-8 Hz), α1 (8-10.5 Hz), α2 (10.5-13 Hz), and β1 (13-20 Hz) frequency bands. To emphasize key neurological connections and maintain sparsity, we applied a sparsification process based on structural and functional brain network properties. We then trained a graph attention model to predict the NIHSS. By examining its attention coefficients, our model reveals insights into brain reconfiguration, providing clinicians with a valuable tool for diagnosis, personalized treatment, and early intervention in neurorehabilitation.
2024
2024 IEEE International Conference on E-Health Networking, Application and Services, HealthCom 2024
Clinical Neuroscience; Explainable AI; Graph Neural Networks; NIHSS; Stroke
04 Pubblicazione in atti di convegno::04b Atto di convegno in volume
Towards Explainable Graph Neural Networks for Neurological Evaluation on EEG Signals / Protani, Andrea; Giusti, Lorenzo; Iacovelli, Chiara; Aillet, Albert Sund; Santos, Diogo Reis; Reale, Giuseppe; Zauli, Aurelia; Moci, Marco; Garbuglia, Marta; Brutti, Pierpaolo; Caliandro, Pietro; Serio, Luigi. - (2024), pp. 1-7. ( 2024 IEEE International Conference on E-Health Networking, Application and Services, HealthCom 2024 jpn ) [10.1109/healthcom60970.2024.10880717].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1748796
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