Robust Nonlinear Regression

Robust Nonlinear Regression
Author: Hossein Riazoshams
Publisher: John Wiley & Sons
Total Pages: 258
Release: 2018-08-20
Genre: Mathematics
ISBN: 1118738063


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The first book to discuss robust aspects of nonlinear regression—with applications using R software Robust Nonlinear Regression: with Applications using R covers a variety of theories and applications of nonlinear robust regression. It discusses both parts of the classic and robust aspects of nonlinear regression and focuses on outlier effects. It develops new methods in robust nonlinear regression and implements a set of objects and functions in S-language under SPLUS and R software. The software covers a wide range of robust nonlinear fitting and inferences, and is designed to provide facilities for computer users to define their own nonlinear models as an object, and fit models using classic and robust methods as well as detect outliers. The implemented objects and functions can be applied by practitioners as well as researchers. The book offers comprehensive coverage of the subject in 9 chapters: Theories of Nonlinear Regression and Inference; Introduction to R; Optimization; Theories of Robust Nonlinear Methods; Robust and Classical Nonlinear Regression with Autocorrelated and Heteroscedastic errors; Outlier Detection; R Packages in Nonlinear Regression; A New R Package in Robust Nonlinear Regression; and Object Sets. The first comprehensive coverage of this field covers a variety of both theoretical and applied topics surrounding robust nonlinear regression Addresses some commonly mishandled aspects of modeling R packages for both classical and robust nonlinear regression are presented in detail in the book and on an accompanying website Robust Nonlinear Regression: with Applications using R is an ideal text for statisticians, biostatisticians, and statistical consultants, as well as advanced level students of statistics.


Robust Nonlinear Regression
Language: en
Pages: 258
Authors: Hossein Riazoshams
Categories: Mathematics
Type: BOOK - Published: 2018-08-20 - Publisher: John Wiley & Sons

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The first book to discuss robust aspects of nonlinear regression—with applications using R software Robust Nonlinear Regression: with Applications using R cov
Robust Nonlinear Regression
Language: en
Pages: 261
Authors: Hossein Riazoshams
Categories: Mathematics
Type: BOOK - Published: 2018-06-11 - Publisher: John Wiley & Sons

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The first book to discuss robust aspects of nonlinear regression—with applications using R software Robust Nonlinear Regression: with Applications using R cov
Robust Methods and Asymptotic Theory in Nonlinear Econometrics
Language: en
Pages: 211
Authors: H. J. Bierens
Categories: Mathematics
Type: BOOK - Published: 2012-12-06 - Publisher: Springer Science & Business Media

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This Lecture Note deals with asymptotic properties, i.e. weak and strong consistency and asymptotic normality, of parameter estimators of nonlinear regression m
Robust Regression
Language: en
Pages: 320
Authors: Kenneth D. Lawrence
Categories: Mathematics
Type: BOOK - Published: 2019-05-20 - Publisher: Routledge

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Robust Regression: Analysis and Applications characterizes robust estimators in terms of how much they weight each observation discusses generalized properties
Robust Non-Linear Regression Using The Dogleg Algorithm
Language: en
Pages: 0
Authors: Roy E. Welsch
Categories:
Type: BOOK - Published: 1975 - Publisher:

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What are the statistical and computational problems associated with robust nonlinear regression? This paper presents a number of possible approaches to these pr