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Analytical Methods in Statistics

Cover von Analytical Methods in Statistics

AMISTAT, Liberec, Czech Republic, September 2019, Springer Proceedings in Mathematics & Statistics 329

Matús Maciak/Michal Pesta/Martin Schindler

Springer Verlag GmbH

106.99

(inklusive MwSt.)

Verfügbarkeit: Besorgungstitel, Festbezug

Autorenportrait

Matús Maciak is an Assistant Professor at the Department of Probability and Mathematical Statistics, Charles University, Prague, Czech Republic. His research interests include innovative statistical approaches concerning nonparametric and semiparametric regression models, sparse fitting via convex optimization (atomic pursuit / LASSO), estimation under various shape constraints, robustness and quantiles, and changepoint detection and estimation within various data structures. He also has practical experience in applied statistics, especially in empirical econometrics and finance, insurance, ecology, and the medical sciences.Michal Pesta is an Associate Professor at the Department of Probability and Mathematical Statistics, Charles University, Prague, Czech Republic. His research interests include asymptotic methods for changepoint, weak dependence, copulae, resampling methods, panel data, nonparametric regression, and errors-in-variables modeling. He is also interested in developing complex statistical methodology frameworks for various real-life settings, including empirical econometrics, finance, and non-life insurance.Martin Schindler is an Assistant Professor of Applied Mathematics at the Technical University of Liberec, Czech Republic. His research interests include robust and nonparametric statistics, statistical computing and simulations. He has also worked on various inference procedures based on regression rank scores used in both linear and nonlinear models. During his postdoctoral studies at the University of Tampere he worked on nonparametric procedures for microarray data.

Weitere Details

Erschienen: 20.07.2020

Umfang: x, 156 S., 7 s/w Illustr., 8 farbige Illustr., 156

Sprache: ENG

Einband: GEB

ISBN/EAN: 9783030488130

Umbreit-Nr.: 9077784

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