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      Selecting and estimating regular vine copulae and application to financial returns

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          Abstract

          Regular vine distributions which constitute a flexible class of multivariate dependence models are discussed. Since multivariate copulae constructed through pair-copula decompositions were introduced to the statistical community, interest in these models has been growing steadily and they are finding successful applications in various fields. Research so far has however been concentrating on so-called canonical and D-vine copulae, which are more restrictive cases of regular vine copulae. It is shown how to evaluate the density of arbitrary regular vine specifications. This opens the vine copula methodology to the flexible modeling of complex dependencies even in larger dimensions. In this regard, a new automated model selection and estimation technique based on graph theoretical considerations is presented. This comprehensive search strategy is evaluated in a large simulation study and applied to a 16-dimensional financial data set of international equity, fixed income and commodity indices which were observed over the last decade, in particular during the recent financial crisis. The analysis provides economically well interpretable results and interesting insights into the dependence structure among these indices.

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          Most cited references24

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          Likelihood Ratio Tests for Model Selection and Non-Nested Hypotheses

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            Pair-copula constructions of multiple dependence

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              Everything You Always Wanted to Know about Copula Modeling but Were Afraid to Ask

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                Author and article information

                Journal
                09 February 2012
                2012-04-19
                Article
                1202.2002
                433e8d7b-efac-4615-ab1a-4501608a53a8

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Computational Statistics & Data Analysis, 59, 52-69, 2013
                stat.ME

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