Robust time series analysis: a survey
Norbert Stockinger, Rudolf Dutter (1987)
Kybernetika
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Norbert Stockinger, Rudolf Dutter (1987)
Kybernetika
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Teresa Ledwina, Jan Mielniczuk (2010)
Applicationes Mathematicae
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The problem of estimating an unknown variance function in a random design Gaussian heteroscedastic regression model is considered. Both the regression function and the logarithm of the variance function are modelled by piecewise polynomials. A finite collection of such parametric models based on a family of partitions of support of an explanatory variable is studied. Penalized model selection criteria as well as post-model-selection estimates are introduced based on Maximum Likelihood...
María Luisa Menéndez, Domingo Morales, Leandro Pardo, Igor Vajda (2001)
Applications of Mathematics
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Disparities of discrete distributions are introduced as a natural and useful extension of the information-theoretic divergences. The minimum disparity point estimators are studied in regular discrete models with i.i.d. observations and their asymptotic efficiency of the first order, in the sense of Rao, is proved. These estimators are applied to continuous models with i.i.d. observations when the observation space is quantized by fixed points, or at random, by the sample quantiles...
Witkovský, V. (1996)
Acta Mathematica Universitatis Comenianae. New Series
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Linton, Oliver B., Yan, Yang (2011)
Journal of Probability and Statistics
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Michal Horváth (1989)
Aplikace matematiky
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AR models are frequently used but usually with normally distributed white noise. In this paper AR model with uniformly distributed white noise are introduces. The maximum likelihood estimation of unknown parameters is treated, iterative method for the calculation of estimates is presented. A numerical example of this procedure and simulation results are also given.