Statistical Modelling With Quantile Functions

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Galton used quantiles more than a hundred years ago in describing data. Tukey and Parzen used them in the 60s and 70s in describing populations. Since then, the authors of many papers, both theoretical and practical, have used various aspects of quantiles in their work. Until now, however, no one put all the ideas together to form what turns out to

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Genre : Mathematics
Author : Warren Gilchrist
Publisher : CRC Press
Release : 2000-05-15
File : 346 Pages
ISBN-13 : 9781420035919


Statistical Modeling With R

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To date, statistics has tended to be neatly divided into two theoretical approaches or frameworks: frequentist (or classical) and Bayesian. Scientists typically choose the statistical framework to analyse their data depending on the nature and complexity of the problem, and based on their personal views and prior training on probability and uncertainty. Although textbooks and courses should reflect and anticipate this dual reality, they rarely do so. This accessible textbook explains, discusses, and applies both the frequentist and Bayesian theoretical frameworks to fit the different types of statistical models that allow an analysis of the types of data most commonly gathered by life scientists. It presents the material in an informal, approachable, and progressive manner suitable for readers with only a basic knowledge of calculus and statistics. Statistical Modeling with R is aimed at senior undergraduate and graduate students, professional researchers, and practitioners throughout the life sciences, seeking to strengthen their understanding of quantitative methods and to apply them successfully to real world scenarios, whether in the fields of ecology, evolution, environmental studies, or computational biology.

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Genre : Science
Author : Pablo Inchausti
Publisher : Oxford University Press
Release : 2022-11-02
File : 519 Pages
ISBN-13 : 9780192675033


Quantile Processes With Statistical Applications

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Provides a comprehensive theory of the approximations of quantile processes in light of recent advances, as well as some of their statistical applications.

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Genre : Distribution (Probability theory)
Author : Miklos Csorgo
Publisher : SIAM
Release : 1983-01-01
File : 169 Pages
ISBN-13 : 1611970288


Statistical Models For Data Analysis

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The papers in this book cover issues related to the development of novel statistical models for the analysis of data. They offer solutions for relevant problems in statistical data analysis and contain the explicit derivation of the proposed models as well as their implementation. The book assembles the selected and refereed proceedings of the biannual conference of the Italian Classification and Data Analysis Group (CLADAG), a section of the Italian Statistical Society. ​

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Genre : Mathematics
Author : Paolo Giudici
Publisher : Springer Science & Business Media
Release : 2013-07-01
File : 413 Pages
ISBN-13 : 9783319000329


Advances In Statistical Models For Data Analysis

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This edited volume focuses on recent research results in classification, multivariate statistics and machine learning and highlights advances in statistical models for data analysis. The volume provides both methodological developments and contributions to a wide range of application areas such as economics, marketing, education, social sciences and environment. The papers in this volume were first presented at the 9th biannual meeting of the Classification and Data Analysis Group (CLADAG) of the Italian Statistical Society, held in September 2013 at the University of Modena and Reggio Emilia, Italy.

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Genre : Mathematics
Author : Isabella Morlini
Publisher : Springer
Release : 2015-09-04
File : 264 Pages
ISBN-13 : 9783319173771


Statistical Modeling Using Local Gaussian Approximation

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Statistical Modeling using Local Gaussian Approximation extends powerful characteristics of the Gaussian distribution, perhaps, the most well-known and most used distribution in statistics, to a large class of non-Gaussian and nonlinear situations through local approximation. This extension enables the reader to follow new methods in assessing dependence and conditional dependence, in estimating probability and spectral density functions, and in discrimination. Chapters in this release cover Parametric, nonparametric, locally parametric, Dependence, Local Gaussian correlation and dependence, Local Gaussian correlation and the copula, Applications in finance, and more. Additional chapters explores Measuring dependence and testing for independence, Time series dependence and spectral analysis, Multivariate density estimation, Conditional density estimation, The local Gaussian partial correlation, Regression and conditional regression quantiles, and a A local Gaussian Fisher discriminant. - Reviews local dependence modeling with applications to time series and finance markets - Introduces new techniques for density estimation, conditional density estimation, and tests of conditional independence with applications in economics - Evaluates local spectral analysis, discovering hidden frequencies in extremes and hidden phase differences - Integrates textual content with three useful R packages

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Genre : Business & Economics
Author : Dag Tjøstheim
Publisher : Academic Press
Release : 2021-10-05
File : 460 Pages
ISBN-13 : 9780128154458


Handbook Of Fitting Statistical Distributions With R

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With the development of new fitting methods, their increased use in applications, and improved computer languages, the fitting of statistical distributions to data has come a long way since the introduction of the generalized lambda distribution (GLD) in 1969. Handbook of Fitting Statistical Distributions with R presents the latest and best methods

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Genre : Mathematics
Author : Zaven A. Karian
Publisher : CRC Press
Release : 2016-04-19
File : 1722 Pages
ISBN-13 : 9781584887126


Advances In Mathematical And Statistical Modeling

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Enrique Castillo is a leading figure in several mathematical and engineering fields. Organized to honor Castillo’s significant contributions, this volume is an outgrowth of the "International Conference on Mathematical and Statistical Modeling," and covers recent advances in the field. Applications to safety, reliability and life-testing, financial modeling, quality control, general inference, as well as neural networks and computational techniques are presented.

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Genre : Mathematics
Author : Barry C. Arnold
Publisher : Springer Science & Business Media
Release : 2009-04-09
File : 374 Pages
ISBN-13 : 9780817646264


Advances In Statistical Modeling And Inference

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There have been major developments in the field of statistics over the last quarter century, spurred by the rapid advances in computing and data-measurement technologies. These developments have revolutionized the field and have greatly influenced research directions in theory and methodology. Increased computing power has spawned entirely new areas of research in computationally-intensive methods, allowing us to move away from narrowly applicable parametric techniques based on restrictive assumptions to much more flexible and realistic models and methods. These computational advances have also led to the extensive use of simulation and Monte Carlo techniques in statistical inference. All of these developments have, in turn, stimulated new research in theoretical statistics. This volume provides an up-to-date overview of recent advances in statistical modeling and inference. Written by renowned researchers from across the world, it discusses flexible models, semi-parametric methods and transformation models, nonparametric regression and mixture models, survival and reliability analysis, and re-sampling techniques. With its coverage of methodology and theory as well as applications, the book is an essential reference for researchers, graduate students, and practitioners.

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Genre : Mathematics
Author : Vijay Nair
Publisher : World Scientific
Release : 2007
File : 698 Pages
ISBN-13 : 9789812708298


Nonparametric Econometric Methods And Application

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The present Special Issue collects a number of new contributions both at the theoretical level and in terms of applications in the areas of nonparametric and semiparametric econometric methods. In particular, this collection of papers that cover areas such as developments in local smoothing techniques, splines, series estimators, and wavelets will add to the existing rich literature on these subjects and enhance our ability to use data to test economic hypotheses in a variety of fields, such as financial economics, microeconomics, macroeconomics, labor economics, and economic growth, to name a few.

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Genre : Business & Economics
Author : Thanasis Stengos
Publisher : MDPI
Release : 2019-05-20
File : 224 Pages
ISBN-13 : 9783038979647