Advances And Challenges In Parametric And Semi Parametric Analysis For Correlated Data


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Advances and Challenges in Parametric and Semi-parametric Analysis for Correlated Data


Advances and Challenges in Parametric and Semi-parametric Analysis for Correlated Data

Author: Brajendra C. Sutradhar

language: en

Publisher: Springer

Release Date: 2016-06-15


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This proceedings volume contains eight selected papers that were presented in the International Symposium in Statistics (ISS) 2015 On Advances in Parametric and Semi-parametric Analysis of Multivariate, Time Series, Spatial-temporal, and Familial-longitudinal Data, held in St. John’s, Canada from July 6 to 8, 2015. The main objective of the ISS-2015 was the discussion on advances and challenges in parametric and semi-parametric analysis for correlated data in both continuous and discrete setups. Thus, as a reflection of the theme of the symposium, the eight papers of this proceedings volume are presented in four parts. Part I is comprised of papers examining Elliptical t Distribution Theory. In Part II, the papers cover spatial and temporal data analysis. Part III is focused on longitudinal multinomial models in parametric and semi-parametric setups. Finally Part IV concludes with a paper on the inferences for longitudinal data subject to a challenge of important covariates selection from a set of large number of covariates available for the individuals in the study.

New Developments for Embracing Genomic Selection in Breeding Applications


New Developments for Embracing Genomic Selection in Breeding Applications

Author: Diego Jarquin

language: en

Publisher: Frontiers Media SA

Release Date: 2022-02-18


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Modern Statistical Methods for Astronomy


Modern Statistical Methods for Astronomy

Author: Eric D. Feigelson

language: en

Publisher: Cambridge University Press

Release Date: 2012-07-12


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Modern astronomical research is beset with a vast range of statistical challenges, ranging from reducing data from megadatasets to characterizing an amazing variety of variable celestial objects or testing astrophysical theory. Linking astronomy to the world of modern statistics, this volume is a unique resource, introducing astronomers to advanced statistics through ready-to-use code in the public domain R statistical software environment. The book presents fundamental results of probability theory and statistical inference, before exploring several fields of applied statistics, such as data smoothing, regression, multivariate analysis and classification, treatment of nondetections, time series analysis, and spatial point processes. It applies the methods discussed to contemporary astronomical research datasets using the R statistical software, making it invaluable for graduate students and researchers facing complex data analysis tasks. A link to the author's website for this book can be found at www.cambridge.org/msma. Material available on their website includes datasets, R code and errata.


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