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      Enhancing Covid-19 Decision-Making by Creating an Assurance Case for Simulation Models

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          Abstract

          Simulation models have been informing the COVID-19 policy-making process. These models, therefore, have significant influence on risk of societal harms. But how clearly are the underlying modelling assumptions and limitations communicated so that decision-makers can readily understand them? When making claims about risk in safety-critical systems, it is common practice to produce an assurance case, which is a structured argument supported by evidence with the aim to assess how confident we should be in our risk-based decisions. We argue that any COVID-19 simulation model that is used to guide critical policy decisions would benefit from being supported with such a case to explain how, and to what extent, the evidence from the simulation can be relied on to substantiate policy conclusions. This would enable a critical review of the implicit assumptions and inherent uncertainty in modelling, and would give the overall decision-making process greater transparency and accountability.

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          Author and article information

          Journal
          17 May 2020
          Article
          2005.08381
          6829e2d5-6292-4479-baeb-9aa76e76cd32

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          6 pages and 2 figures
          cs.CY

          Applied computer science
          Applied computer science

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