Space-Time Trend Detection and Dependence Modeling in Extreme Event Approaches by Functional Peaks-Over-Thresholds: Application to Precipitation in Burkina Faso

Author:

Béwentaoré Sawadogo12,Barro Diakarya13ORCID

Affiliation:

1. LANIBIO, Université Joseph KI-ZERBO, BP: 7021, Ouagadougou 03, Burkina Faso

2. Université Paris Saclay, INRAe, AgroParisTech, UMR MIA-Paris Saclay, Paris 75005, France

3. UFR-SEG, Université Thomas SANKARA, BP: 417, Ouagadougou 12, Burkina Faso

Abstract

In this paper, we propose a new method for estimating trends in extreme spatiotemporal processes using both information from marginal distributions and dependence structure. We combine two statistical approaches of an extreme value theory: the temporal and spatial nonstationarities are handled via a tail trend function in the marginal distributions. The spatial dependence structure is modeled by a latent spatial process using generalized -Pareto processes. This methodology for trend analysis of extreme events is applied to precipitation data from Burkina Faso. We show that a significant increasing trend for the 50 and 100 year return levels in some parts of the country. We also show that extreme precipitation is spatially correlated with distance for a radius of approximately 200 km.

Funder

UMR 518 MIA-Paris-Saclay/AgroParisTech/INRAe

Publisher

Hindawi Limited

Subject

Mathematics (miscellaneous)

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