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An agent-based model for simulating COVID-19 transmissions on university campus and its implications on mitigation interventions: a case study

Yuan Zhou (Industrial, Manufacturing and Systems Engineering, The University of Texas at Arlington, Arlington, Texas, USA)
Lin Li (Industrial and Systems Engineering, Kennesaw State University, Kennesaw, Georgia, USA)
Yasaman Ghasemi (Industrial, Manufacturing and Systems Engineering, The University of Texas at Arlington, Arlington, Texas, USA)
Rakshitha Kallagudde (Industrial, Manufacturing and Systems Engineering, The University of Texas at Arlington, Arlington, Texas, USA)
Karan Goyal (Industrial, Manufacturing and Systems Engineering, The University of Texas at Arlington, Arlington, Texas, USA)
Deependra Thakur (Computer Science and Engineering, The University of Texas at Arlington, Arlington, Texas, USA)

Information Discovery and Delivery

ISSN: 2398-6247

Article publication date: 6 May 2021

Issue publication date: 22 September 2021

302

Abstract

Purpose

Universities across the USA are facing challenging decision-making problems amid the COVID-19 pandemic. The purpose of this study is to facilitate universities in planning disease mitigation interventions as they respond to the pandemic.

Design/methodology/approach

An agent-based model is developed to mimic the virus transmission dynamics on campus. Scenario-based experiments are conducted to evaluate the effectiveness of various interventions including course modality shift (from face-to-face to online), social distancing, mask use and vaccination. A case study is performed for a typical US university.

Findings

With 10%, 30%, 50%, 70% and 90% course modality shift, the number of total cases can be reduced to 3.9%, 20.9%, 35.6%, 60.9% and 96.8%, respectively, comparing against the baseline scenario (no interventions). More than 99.9% of the total infections can be prevented when combined social distancing and mask use are implemented even without course modality shift. If vaccination is implemented without other interventions, the reductions are 57.1%, 90.6% and 99.6% with 80%, 85% and 90% vaccine efficacies, respectively. In contrast, more than 99% reductions are found with all three vaccine efficacies if mask use is combined.

Practical implications

This study provides useful implications for supporting universities in mitigating transmissions on campus and planning operations for the upcoming semesters.

Originality/value

An agent-based model is developed to investigate COVID-19 transmissions on campus and evaluate the effectiveness of various mitigation interventions.

Keywords

Citation

Zhou, Y., Li, L., Ghasemi, Y., Kallagudde, R., Goyal, K. and Thakur, D. (2021), "An agent-based model for simulating COVID-19 transmissions on university campus and its implications on mitigation interventions: a case study", Information Discovery and Delivery, Vol. 49 No. 3, pp. 216-224. https://doi.org/10.1108/IDD-12-2020-0154

Publisher

:

Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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