Garch-like Models with Dynamic Crash Probabilities: a Parametric Approach for Modelling Extreme Events - Paul Koether - Livres - VDM Verlag - 9783639014402 - 5 mai 2008
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Garch-like Models with Dynamic Crash Probabilities: a Parametric Approach for Modelling Extreme Events

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We work in the setting of time series of financial returns. Our starting point are the GARCH models, which are very common in practice. We introduce the possibility of having crashes in such GARCH models. A crash will be modeled by drawing innovations from a distribution with much mass on extremely negative events, while in normal times the innovations will be drawn from a normal distribution. The probability of a crash is modeled to be time dependent, depending on the past of the observed time series and/or exogenous variables. The aim is a splitting of risk into normal risk coming mainly from the GARCH dynamic and extreme event risk coming from the modeled crashes. For the ARCH case we formulate (quasi) maximum likelihood estimators and can derive conditions for consistency and asymptotic normality of the parameter estimates. On the practical side we look for the outcome of estimating models with genuine GARCH dynamic and compare the result toclassical GARCH models. We apply the models to Value at Risk estimation and see that in comparison to the classical modelsmany of ours seem to work better although we chose the crash distributions quite heuristically.

Médias Livres     Paperback Book   (Livre avec couverture souple et dos collé)
Validé 5 mai 2008
ISBN13 9783639014402
Éditeurs VDM Verlag
Pages 172
Dimensions 150 × 220 × 10 mm   ·   235 g
Langue et grammaire Anglais