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Dive into the research topics where Emeric Thibaud is active.

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Featured researches published by Emeric Thibaud.


Mathematical Geosciences | 2013

Geostatistics of Dependent and Asymptotically Independent Extremes

A. C. Davison; Raphaël Huser; Emeric Thibaud

Spatial modeling of rare events has obvious applications in the environmental sciences and is crucial when assessing the effects of catastrophic events (such as heatwaves or widespread flooding) on food security and on the sustainability of societal infrastructure. Although classical geostatistics is largely based on Gaussian processes and distributions, these are not appropriate for extremes, for which max-stable and related processes provide more suitable models. This paper provides a brief overview of current work on the statistics of spatial extremes, with an emphasis on the consequences of the assumption of max-stability. Applications to winter minimum temperatures and daily rainfall are described.


The Annals of Applied Statistics | 2016

Bayesian inference for the Brown-Resnick process, with an application to extreme low temperatures

Emeric Thibaud; Juha Aalto; Daniel Cooley; A. C. Davison; Juha Heikkinen

The Brown-Resnick max-stable process has proven to be well-suited for modeling extremes of complex environmental processes, but in many applications its likelihood function is intractable and inference must be based on a composite likelihood, thereby preventing the use of classical Bayesian techniques. In this paper we exploit a case in which the full likelihood of a Brown-Resnick process can be calculated, using componentwise maxima and their partitions in terms of individual events, and we propose two new approaches to inference. The first estimates the partitions using declustering, while the second uses random partitions in a Markov chain Monte Carlo algorithm. We use these approaches to construct a Bayesian hierarchical model for extreme low temperatures in northern Fennoscandia.


Water Resources Research | 2013

Threshold modeling of extreme spatial rainfall

Emeric Thibaud; Raphaël Mutzner; A. C. Davison


Methods in Ecology and Evolution | 2014

Measuring the relative effect of factors affecting species distribution model predictions

Emeric Thibaud; Blaise Petitpierre; Olivier Broennimann; A. C. Davison; Antoine Guisan


spatial statistics | 2017

Bridging asymptotic independence and dependence in spatial extremes using Gaussian scale mixtures

Raphaël Huser; Thomas Opitz; Emeric Thibaud


arXiv: Methodology | 2018

Exploration and inference in spatial extremes using empirical basis functions.

Samuel A. Morris; Brian J. Reich; Emeric Thibaud


arXiv: Methodology | 2018

Penultimate modeling of spatial extremes: statistical inference for max-infinitely divisible processes

Raphaël Huser; Thomas Opitz; Emeric Thibaud


Archive | 2017

A Nonparametric Method for Producing Isolines of Bivariate Exceedance Probabilities

Daniel Cooley; Emeric Thibaud; Federico Castillo; Michael F. Wehner


arXiv: Methodology | 2016

Principal Component Decomposition and Completely Positive Decomposition of Dependence for Multivariate Extremes

Daniel Cooley; Emeric Thibaud


arXiv: Methodology | 2016

Decompositions of Dependence for High-Dimensional Extremes

Daniel Cooley; Emeric Thibaud

Collaboration


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A. C. Davison

École Polytechnique Fédérale de Lausanne

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Daniel Cooley

Colorado State University

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Raphaël Huser

King Abdullah University of Science and Technology

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Thomas Opitz

Institut national de la recherche agronomique

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Raphaël Mutzner

École Polytechnique Fédérale de Lausanne

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Juha Aalto

Finnish Meteorological Institute

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Juha Heikkinen

Finnish Forest Research Institute

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