Subsampling the distribution of diverging statistics with applications to finance
Date
2004Source
Journal of EconometricsVolume
120Issue
2Pages
295-326Google Scholar check
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In this paper we propose a subsampling estimator for the distribution of statistics diverging at either known or unknown rates when the underlying time series is strictly stationary and strong mixing. Based on our results we provide a detailed discussion of how to estimate extreme order statistics with dependent data and present two applications to assessing financial market risk. Our method performs well in estimating Value at Risk and provides a superior alternative to Hill's estimator in operationalizing Safety First portfolio selection. © 2003 Elsevier B.V. All rights reserved.