AIRSENSE-TO-ACT: A Concept Paper for COVID-19 Countermeasures based on Artificial Intelligence algorithms and multi-sources Data Processing
A. Sebastianelli, F. Mauro, G. Di Cosmo, F. Passarini, M. Carminati,, S. L. Ullo

TL;DR
This paper proposes a centralized AI-driven tool that integrates multi-source data to assess COVID-19 risk levels, supporting targeted countermeasures and scenario analysis for better pandemic management.
Contribution
It introduces a novel AI-based platform combining heterogeneous data sources for real-time risk assessment and scenario simulation in COVID-19 countermeasures.
Findings
Development of a neural network model correlating environmental, human activity, pollution, and epidemiological data.
The tool can serve as a decision support system with predictive capabilities.
It enables scenario testing to optimize restrictive strategies.
Abstract
Aim of this paper is the description of a new tool to support institutions in the implementation of targeted countermeasures, based on quantitative and multi-scale elements, for the fight and prevention of emergencies, such as the current COVID-19 pandemic. The tool is a centralized system (web application), single multi-user platform, which relies on Artificial Intelligence (AI) algorithms for the processing of heterogeneous data, and which can produce an output level of risk. The model includes a specific neural network which will be first trained to learn the correlation between selected inputs, related to the case of interest: environmental variables (chemical-physical, such as meteorological), human activity (such as traffic and crowding), level of pollution (in particular the concentration of particulate matter), and epidemiological variables related to the evolution of the…
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Taxonomy
TopicsAir Quality Monitoring and Forecasting · COVID-19 impact on air quality · COVID-19 diagnosis using AI
