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Cardio-metabolic risk modeling and assessment through sensor-based measurements

Articolo
Data di Pubblicazione:
2022
Abstract:
Objective: Cardio-metabolic risk assessment in the general population is of paramount importance to reduce diseases burdened by high morbility and mortality. The present paper defines a strategy for out-of-hospital cardio-metabolic risk assessment, based on data acquired from contact-less sensors. Methods: We employ Structural Equation Modeling to identify latent clinical variables of cardio-metabolic risk, related to anthropometric, glycolipidic and vascular function factors. Then, we define a set of sensor-based measurements that correlate with the clinical latent variables. Results: Our measurements identify subjects with one or more risk factors in a population of 68 healthy volunteers from the EU-funded SEMEOTICONS project with accuracy 82.4%, sensitivity 82.5%, and specificity 82.1%. Conclusions: Our preliminary results strengthen the role of self-monitoring systems for cardio-metabolic risk prevention.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Cardio-metabolic risk; Risk modeling; Self-monitoring; Smart mirror; Sensor-based measurements; Structural Equation Modeling; Self Organizing Maps
Elenco autori:
Colantonio, Sara; Giorgi, Daniela; Bastiani, Luca; Pascali, MARIA ANTONIETTA; Coppini, Giuseppe; Morales, MARIA AURORA
Autori di Ateneo:
BASTIANI LUCA
COLANTONIO SARA
GIORGI DANIELA
PASCALI MARIA ANTONIETTA
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/416943
Pubblicato in:
INTERNATIONAL JOURNAL OF MEDICAL INFORMATICS
Journal
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URL

https://authors.elsevier.com/sd/article/S1386-5056(22)00137-X
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