Massive and unobtrusive screening of people in public environments is a critical task to guarantee safety in congested shared spaces, as well as to support early non-invasive diagnosis and response to disease outbreaks. Among various sensors and Internet of Things (IoT) technologies, thermal vision systems, based on low-cost infrared (IR) array sensors, allow to track thermal signatures induced by moving people. Unlike contact tracing applications, based short-range communications, IR-based sensing systems are passive, as they do not need the cooperation of the subject(s) and do not pose a threat to user privacy. The paper develops a signal processing framework that enables the joint analysis of subject mobility while automating the temperature screening process. The system consists of IR-based sensors that monitor both subject motions and health status through temperature measurements. Sensors are networked via wireless IoT devices that are deployed according to different layouts. The system targets the joint passive localization of subjects by tracking their mutual distance and direction of arrival, in addition to the detection of anomalous body temperatures for subjects close to the IR sensors. Focusing on Bayesian methods, the paper also addresses best practices and relevant implementation challenges using on field measurements. Being privacy-neutral, the proposed framework can be employed in public and private services for healthcare, smart living and shared spaces scenarios without any privacy concerns. Wall- and ceilingmounted setups are considered targeting both industrial, smart space and living environments.

Processing of body-induced thermal signatures for physical distancing and temperature screening

Savazzi Stefano;Rampa Vittorio;Kianoush Sanaz;
2020

Abstract

Massive and unobtrusive screening of people in public environments is a critical task to guarantee safety in congested shared spaces, as well as to support early non-invasive diagnosis and response to disease outbreaks. Among various sensors and Internet of Things (IoT) technologies, thermal vision systems, based on low-cost infrared (IR) array sensors, allow to track thermal signatures induced by moving people. Unlike contact tracing applications, based short-range communications, IR-based sensing systems are passive, as they do not need the cooperation of the subject(s) and do not pose a threat to user privacy. The paper develops a signal processing framework that enables the joint analysis of subject mobility while automating the temperature screening process. The system consists of IR-based sensors that monitor both subject motions and health status through temperature measurements. Sensors are networked via wireless IoT devices that are deployed according to different layouts. The system targets the joint passive localization of subjects by tracking their mutual distance and direction of arrival, in addition to the detection of anomalous body temperatures for subjects close to the IR sensors. Focusing on Bayesian methods, the paper also addresses best practices and relevant implementation challenges using on field measurements. Being privacy-neutral, the proposed framework can be employed in public and private services for healthcare, smart living and shared spaces scenarios without any privacy concerns. Wall- and ceilingmounted setups are considered targeting both industrial, smart space and living environments.
2020
Istituto di Elettronica e di Ingegneria dell'Informazione e delle Telecomunicazioni - IEIIT
Bayes methods
Bayesian filtering
Infra-red array processing
Internet of Things
Monitoring
passive localization
Sensor arrays
Sensor phenomena and characterization
Sensors
social distancing
Temperature measurement
temperature screening
Temperature s
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/419034
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