New estimation methods for extremal bivariate return curves

Author:

Murphy‐Barltrop C. J. R.1,Wadsworth J. L.2,Eastoe E. F.2

Affiliation:

1. STOR‐i Centre for Doctoral Training Lancaster University Lancaster UK

2. Department of Mathematics and Statistics Lancaster University Lancaster UK

Abstract

AbstractIn the multivariate setting, estimates of extremal risk measures are important in many contexts, such as environmental planning and structural engineering. In this paper, we propose new estimation methods for extremal bivariate return curves, a risk measure that is the natural bivariate extension to a return level. Unlike several existing techniques, our estimates are based on bivariate extreme value models that can capture both key forms of extremal dependence. We devise tools for validating return curve estimates, as well as representing their uncertainty, and compare a selection of curve estimation techniques through simulation studies. We apply the methodology to two metocean data sets, with diagnostics indicating generally good performance.

Funder

Engineering and Physical Sciences Research Council

Publisher

Wiley

Subject

Ecological Modeling,Statistics and Probability

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