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PROXIMAL-LANGEVIN SAMPLERS FOR NONSMOOTH COMPOSITE POSTERIORS: APPLICATION TO THE ESTIMATION OF COVID19 REPRODUCTION NUMBER

  • Ecole Normale Supérieure de Lyon
  • Université de Toulouse
  • Ecole Centrale de Nantes

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionContribution à une conférenceRevue par des pairs

2 Citations (Scopus)

Résumé

Providing a level of confidence in the estimation of epidemiological indicators during pandemics is essential to inform decision makers. Monitoring the time evolution of the epidemic intensity despite the limited quality of the data is both crucial and challenging. For the estimation of the Covid-19 reproduction number through credibility intervals, a Bayesian model robust to errors in reported counts were proposed, yielding a non differentiable composite a posteriori log-density which required the design of advanced Proximal Langevin schemes. The first goal of this paper is to customize and compare on a pedagogically designed toy example, four different Hastings-Metropolis algorithms combining Langevin approaches and proximal operators. Then, the most efficient one is plugged into a Metropolis-within-Gibbs algorithm performing a credibility intervals-based estimation of Covid-19 pandemic indicators, exemplified for several countries worldwide.

langue originaleAnglais
titre31st European Signal Processing Conference, EUSIPCO 2023 - Proceedings
EditeurEuropean Signal Processing Conference, EUSIPCO
Pages1813-1817
Nombre de pages5
ISBN (Electronique)9789464593600
Les DOIs
étatPublié - 1 janv. 2023
Modification externeOui
Evénement31st European Signal Processing Conference, EUSIPCO 2023 - Helsinki, Finlande
Durée: 4 sept. 20238 sept. 2023

Série de publications

NomEuropean Signal Processing Conference
ISSN (Electronique)2076-1465

Une conférence

Une conférence31st European Signal Processing Conference, EUSIPCO 2023
Pays/TerritoireFinlande
La villeHelsinki
période4/09/238/09/23

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