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  4. Modeling approaches for early warning and monitoring of pandemic situations as well as decision support
 
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2022
Review
Title

Modeling approaches for early warning and monitoring of pandemic situations as well as decision support

Abstract
The COVID-19 pandemic has highlighted the lack of preparedness of many healthcare systems against pandemic situations. In response, many population-level computational modeling approaches have been proposed for predicting outbreaks, spatiotemporally forecasting disease spread, and assessing as well as predicting the effectiveness of (non-) pharmaceutical interventions. However, in several countries, these modeling efforts have only limited impact on governmental decision-making so far. In light of this situation, the review aims to provide a critical review of existing modeling approaches and to discuss the potential for future developments.
Author(s)
Botz, Jonas  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Wang, Danqi
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Lambert, Nicolas
Wagner, Nicolas
Génin, Marie
Thommes, Edward
Madan, Sumit  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Coudeville, Laurent
Fröhlich, Holger  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Journal
Frontiers in Public Health  
Project(s)
Artificial Intelligence Tools for Outbreak Detection and Response  
Funder
Bundesministerium für Wirtschaft und Klimaschutz  
Open Access
File(s)
Download (503.17 KB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.3389/fpubh.2022.994949
10.24406/publica-491
Additional link
Full text
Language
English
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Keyword(s)
  • Machine Learning

  • Artificial Intelligence

  • Agent-Based-Modeling

  • Compartmental Models

  • Pandemic

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