Optimal Designs for Copula Models

Elisa Perrone, Werner Müller

Research output: Contribution to journalArticlepeer-review

Abstract

Copula modelling has in the past decade become a standard tool in many areas of applied statistics. However, a largely neglected aspect concerns the design of related experiments. Particularly the issue of whether the estimation of copula parameters can be enhanced by optimizing experimental conditions and how robust all the parameter estimates for the model are with respect to the type of copula employed. In this paper an equivalence theorem for (bivariate) copula models is provided that allows formulation of efficient design algorithms and quick checks of whether designs are optimal or at least efficient. Some examples illustrate that in practical situations considerable gains in design efficiency can be achieved. A natural comparison between different copula models with respect to design efficiency is provided as well.
Original languageEnglish
Pages (from-to)917-929
Number of pages13
JournalStatistics
Volume50
Issue number4
DOIs
Publication statusPublished - 2016

Fields of science

  • 305907 Medical statistics
  • 101018 Statistics
  • 101024 Probability theory
  • 101026 Time series analysis
  • 101029 Mathematical statistics
  • 504006 Demography
  • 502025 Econometrics
  • 502051 Economic statistics
  • 509 Other Social Sciences

JKU Focus areas

  • Computation in Informatics and Mathematics

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