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Modeling and Evaluating Epidemic Control Strategies with High-Order Temporal Networks

Articolo
Data di Pubblicazione:
2021
Abstract:
Non-Pharmaceutical Interventions (NPIs) are essential measures that reduce and control a severe outbreak or a pandemic, especially in the absence of drug treatments. However, estimating and evaluating their impact on society remains challenging, considering the numerous and closely tied aspects to examine. This article proposes a fine-grain modeling methodology for NPIs, based on high-order relationships between people and environments, mimicking direct and indirect contagion pathways over time. After assessing the ability of each intervention in controlling an epidemic propagation, we devise a multi-objective optimization framework, which, based on the epidemiological data, calculates the NPI combination that should be implemented to minimize the spread of an epidemic as well as the damage due to the intervention. Each intervention is thus evaluated through an agent-based simulation, considering not only the reduction in the fraction of infected but also to what extent its application damages the daily life of the population. We run experiments on three data sets, and the results illustrate how the application of NPIs should be tailored to the specific epidemic situation. They further highlight the critical importance of correctly implementing personal protective (e.g., using face masks) and sanitization measures to slow down a pathogen spreading, especially in crowded places.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
Agent-based modeling; complex networks; epidemic; high-order relationships; hypergraphs; non-pharmaceutical interventions
Elenco autori:
Antelmi A.; Cordasco G.; Scarano V.; Spagnuolo C.
Autori di Ateneo:
ANTELMI Alessia
Link alla scheda completa:
https://iris.unito.it/handle/2318/1943352
Link al Full Text:
https://iris.unito.it/retrieve/handle/2318/1943352/1208850/Modeling_and_Evaluating_Epidemic_Control_Strategies_With_High-Order_Temporal_Networks.pdf
Pubblicato in:
IEEE ACCESS
Journal
  • Dati Generali
  • Aree Di Ricerca

Dati Generali

URL

https://ieeexplore.ieee.org/abstract/document/9567682

Aree Di Ricerca

Settori (12)


PE1_16 - Discrete mathematics and combinatorics - (2022)

PE6_12 - Scientific computing, simulation and modelling tools - (2022)

PE6_6 - Algorithms and complexity, distributed, parallel and network algorithms, algorithmic game theory - (2022)

CIBO, AGRICOLTURA e ALLEVAMENTI - Farmacologia Veterinaria

CULTURA, ARTE e CREATIVITA' - Culture moderne

INFORMATICA, AUTOMAZIONE e INTELLIGENZA ARTIFICIALE - Digitalizzazione della Società e della Pubblica Amministrazione

INFORMATICA, AUTOMAZIONE e INTELLIGENZA ARTIFICIALE - Industria X.0

INFORMATICA, AUTOMAZIONE e INTELLIGENZA ARTIFICIALE - Salute e Informatica

PIANETA TERRA, AMBIENTE, CLIMA, ENERGIA e SOSTENIBILITA' - Diritto dell'Ambiente

PIANETA TERRA, AMBIENTE, CLIMA, ENERGIA e SOSTENIBILITA' - Informatica e Ambiente

SCIENZE MATEMATICHE, CHIMICHE, FISICHE - Fisica delle Particelle e dei Nuclei

SCIENZE MATEMATICHE, CHIMICHE, FISICHE - Laboratori innovativi, strumentazione e modellizzazione fisica
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