The CAPSARII Approach to Cyber-Secure Wearable, Ultra-Low-Power Networked Sensors for Soldier Health Monitoring

Fuente: arXiv
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Hauptverfasser: Bozzi, Luciano, Celidonio, Christian, Nuzzi, Umberto, Biagini, Massimo, Cherubin, Stefano, Djupdal, Asbjørn, Haugdahl, Tor Andre, Aliverti, Andrea, Angelucci, Alessandra, Agosta, Giovanni, Pelosi, Gerardo, Belluco, Paolo, Polistina, Samuele, Volpi, Riccardo, Malagò, Luigi, Schneider, Michael, Wieczorek, Florian, Eguiluz, Xabier
Format: Preprint
Veröffentlicht: 2026
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author Bozzi, Luciano
Celidonio, Christian
Nuzzi, Umberto
Biagini, Massimo
Cherubin, Stefano
Djupdal, Asbjørn
Haugdahl, Tor Andre
Aliverti, Andrea
Angelucci, Alessandra
Agosta, Giovanni
Pelosi, Gerardo
Belluco, Paolo
Polistina, Samuele
Volpi, Riccardo
Malagò, Luigi
Schneider, Michael
Wieczorek, Florian
Eguiluz, Xabier
author_facet Bozzi, Luciano
Celidonio, Christian
Nuzzi, Umberto
Biagini, Massimo
Cherubin, Stefano
Djupdal, Asbjørn
Haugdahl, Tor Andre
Aliverti, Andrea
Angelucci, Alessandra
Agosta, Giovanni
Pelosi, Gerardo
Belluco, Paolo
Polistina, Samuele
Volpi, Riccardo
Malagò, Luigi
Schneider, Michael
Wieczorek, Florian
Eguiluz, Xabier
contents The European Defence Agency's revised Capability Development Plan (CDP) identifies as a priority improving ground combat capabilities by enhancing soldiers' equipment for better protection. The CAPSARII project proposes in innovative wearable system and Internet of Battlefield Things (IoBT) framework to monitor soldiers' physiological and psychological status, aiding tactical decisions and medical support. The CAPSARII system will enhance situational awareness and operational effectiveness by monitoring physiological, movement and environmental parameters, providing real-time tactical decision support through AI models deployed on edge nodes and enable data analysis and comparative studies via cloud-based analytics. CAPSARII also aims at improving usability through smart textile integration, longer battery life, reducing energy consumption through software and hardware optimizations, and address security concerns with efficient encryption and strong authentication methods. This innovative approach aims to transform military operations by providing a robust, data-driven decision support tool.
format Preprint
id arxiv_https___arxiv_org_abs_2602_08080
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The CAPSARII Approach to Cyber-Secure Wearable, Ultra-Low-Power Networked Sensors for Soldier Health Monitoring
Bozzi, Luciano
Celidonio, Christian
Nuzzi, Umberto
Biagini, Massimo
Cherubin, Stefano
Djupdal, Asbjørn
Haugdahl, Tor Andre
Aliverti, Andrea
Angelucci, Alessandra
Agosta, Giovanni
Pelosi, Gerardo
Belluco, Paolo
Polistina, Samuele
Volpi, Riccardo
Malagò, Luigi
Schneider, Michael
Wieczorek, Florian
Eguiluz, Xabier
Emerging Technologies
Distributed, Parallel, and Cluster Computing
Machine Learning
The European Defence Agency's revised Capability Development Plan (CDP) identifies as a priority improving ground combat capabilities by enhancing soldiers' equipment for better protection. The CAPSARII project proposes in innovative wearable system and Internet of Battlefield Things (IoBT) framework to monitor soldiers' physiological and psychological status, aiding tactical decisions and medical support. The CAPSARII system will enhance situational awareness and operational effectiveness by monitoring physiological, movement and environmental parameters, providing real-time tactical decision support through AI models deployed on edge nodes and enable data analysis and comparative studies via cloud-based analytics. CAPSARII also aims at improving usability through smart textile integration, longer battery life, reducing energy consumption through software and hardware optimizations, and address security concerns with efficient encryption and strong authentication methods. This innovative approach aims to transform military operations by providing a robust, data-driven decision support tool.
title The CAPSARII Approach to Cyber-Secure Wearable, Ultra-Low-Power Networked Sensors for Soldier Health Monitoring
topic Emerging Technologies
Distributed, Parallel, and Cluster Computing
Machine Learning
url https://arxiv.org/abs/2602.08080