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JOURNALS // Avtomatika i Telemekhanika // Archive

Avtomat. i Telemekh., 2005 Issue 2, Pages 55–72 (Mi at1325)

This article is cited in 2 papers

Stochastic Systems

Accuracy of transformed kernel density estimates for a heavy-tailed distribution

N. M. Markovich

Trapeznikov Institute of Control Sciences, Russian Academy of Sciences, Moscow, Russia

Abstract: Nonparametric estimation for the density of a heavy-tailed probability distribution is studied through transformation of initial observations. The accuracy of transformed kernel estimates with constant and variable window width in the sense of mean integrated squared error for different transformations is determined. Boundary kernel are designed for improving estimation on distribution tails. For a kernel estimate with variable window width, the mismatch method ensures a mean integrated squared estimation error close to the optimal error.

Presented by the member of Editorial Board: A. I. Kibzun

Received: 28.03.2003


 English version:
Automation and Remote Control, 2005, 66:2, 217–232

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