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Chimeric forecasting: combining probabilistic predictions from computational models and human judgment.
McAndrew, Thomas; Codi, Allison; Cambeiro, Juan; Besiroglu, Tamay; Braun, David; Chen, Eva; De Cèsaris, Luis Enrique Urtubey; Luk, Damon.
  • McAndrew T; College of Health, Lehigh University, Bethlehem, PA, USA. mcandrew@lehigh.edu.
  • Codi A; College of Health, Lehigh University, Bethlehem, PA, USA.
  • Cambeiro J; Metaculus, Santa Cruz, CA, USA.
  • Besiroglu T; Department of Epidemiology, Mailman School of Public Health, Columbia University, New York, USA.
  • Braun D; Metaculus, Santa Cruz, CA, USA.
  • Chen E; Massachusetts Institute of Technology, Cambridge, MA, USA.
  • De Cèsaris LEU; Department of Psychology, Lehigh University, Bethlehem, PA, USA.
  • Luk D; Good Judgment Inc., New York, NY, USA.
BMC Infect Dis ; 22(1): 833, 2022 Nov 10.
Article in English | MEDLINE | ID: covidwho-2117326
ABSTRACT
Forecasts of the trajectory of an infectious agent can help guide public health decision making. A traditional approach to forecasting fits a computational model to structured data and generates a predictive distribution. However, human judgment has access to the same data as computational models plus experience, intuition, and subjective data. We propose a chimeric ensemble-a combination of computational and human judgment forecasts-as a novel approach to predicting the trajectory of an infectious agent. Each month from January, 2021 to June, 2021 we asked two generalist crowds, using the same criteria as the COVID-19 Forecast Hub, to submit a predictive distribution over incident cases and deaths at the US national level either two or three weeks into the future and combined these human judgment forecasts with forecasts from computational models submitted to the COVID-19 Forecasthub into a chimeric ensemble. We find a chimeric ensemble compared to an ensemble including only computational models improves predictions of incident cases and shows similar performance for predictions of incident deaths. A chimeric ensemble is a flexible, supportive public health tool and shows promising results for predictions of the spread of an infectious agent.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: COVID-19 Type of study: Observational study / Prognostic study Limits: Humans Language: English Journal: BMC Infect Dis Journal subject: Communicable Diseases Year: 2022 Document Type: Article Affiliation country: S12879-022-07794-5

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Full text: Available Collection: International databases Database: MEDLINE Main subject: COVID-19 Type of study: Observational study / Prognostic study Limits: Humans Language: English Journal: BMC Infect Dis Journal subject: Communicable Diseases Year: 2022 Document Type: Article Affiliation country: S12879-022-07794-5