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Enhancing resilience in construction against infectious diseases using stochastic multi-agent approach
1Department of Mechanical and Construction Engineering, Northumbria University, Newcastle Upon Tyne NE1 8ST, United Kingdom.
This study introduces a simulation framework to enhance construction industry resilience against infectious diseases. The model helps assess interventions and mitigate disease spread among construction workers, where risks are higher.
Area of Science:
- Epidemiology
- Construction Management
- Computational Modeling
Background:
- The COVID-19 pandemic highlighted vulnerabilities in the construction industry.
- A lack of micro-level simulation frameworks hinders effective pandemic response in construction projects.
- Construction workers face higher risks of infectious disease spread and fatalities.
Purpose of the Study:
- To develop a simulation framework for modeling infectious disease spread in construction projects.
- To enable data-informed decision-making for interventions against infectious diseases in construction.
- To enhance the resilience of the construction industry against future pandemics.
Main Methods:
- Stochastic agent-based modeling (ABM) was employed to simulate disease transmission dynamics.
- The framework allows for the testing of various intervention strategies at a micro-level.
- A case study of a building project was used to validate the model's findings.
Main Results:
- Infectious diseases can spread more rapidly among construction workers compared to the general population.
- The simulation indicated potentially significantly higher fatality rates within construction project settings.
- The developed framework effectively simulates disease spread and intervention impacts.
Conclusions:
- The proposed agent-based modeling framework addresses the gap in micro-level infectious disease simulation for construction.
- The findings underscore the heightened risk of infectious diseases in construction projects, necessitating targeted interventions.
- This research encourages further investigation into micro-level disease modeling and intervention strategies within the construction sector.
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