A microscopic approach to study the onset of a highly infectious disease spreading
Krithika Rathinakumar1, Annalisa Quaini1
1Department of Mathematics, University of Houston, 3551 Cullen Blvd, Houston TX 77204, United States of America.
Abstract:
We combine a pedestrian dynamics model with a contact tracking method to simulate the initial spreading of a highly infectious airborne disease in a confined environment. We focus on a medium size population (up to 1000 people) with a small number of infectious people (1 or 2) and the rest of the people are divided between immune and susceptible. We adopt a space-continuous model that represents pedestrian dynamics by the forces acting on them, i.e. a microscopic force-based model. Once discretized, the model results in a high-dimensional system of second order ordinary differential equations. Before adding the contact tracking to the pedestrian dynamics model, we calibrate the model parameters, compare the model results against empirical data, and show that pedestrian self-organization into lanes can be captured. We consider an explicit approach for contact tracking by introducing a sickness domain around a sick person. A healthy but susceptible person who remains in the sickness domain for a certain amount of time may get infected (with a prescribed probability) and become a so-called secondary contact. As a concrete setting to simulate the onset of disease spreading, we consider terminals in two US airports: Hobby Airport in Houston and the Atlanta International Airport. We consider different scenarios and we quantify the increase in average number of secondary contacts as a given terminal becomes more densely populated, the percentage of immune people decreases, the number of primary contacts increases, and areas of high density (such as the boarding buses) are present.
Insights
This study models airborne disease spread in public spaces using pedestrian dynamics and contact tracing. Higher density and fewer immune individuals increase secondary infections, crucial for public health planning.
Area of Science:
- Epidemiology
- Computational Social Science
- Physics
Background:
- Airborne disease transmission in crowded public spaces poses significant public health challenges.
- Accurate simulation of disease spread requires integrating human movement patterns with epidemiological models.
Purpose of the Study:
- To develop and validate a simulation model combining pedestrian dynamics and contact tracing for early-stage airborne disease spread.
- To analyze factors influencing disease transmission in confined, high-traffic environments like airports.
Main Methods:
- A space-continuous, microscopic force-based pedestrian dynamics model was developed and calibrated.
- Contact tracing was implemented using a 'sickness domain' around infectious individuals.
- The integrated model was applied to simulate disease onset in two US airport terminals.
Main Results:
- The pedestrian model successfully captured self-organization behaviors like lane formation.
- Increased population density, reduced immunity, and higher initial infectious contacts amplified secondary infections.
- Specific high-density areas, such as boarding zones, were identified as critical transmission points.
Conclusions:
- The integrated model provides a robust framework for understanding initial airborne disease spread in public venues.
- Simulation results highlight the critical role of population density and immunity levels in disease transmission dynamics.
- Findings can inform targeted public health interventions in transportation hubs and similar environments.
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