An edition of Adaptive regression (2000)

Adaptive Regression

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Adaptive Regression
Yadolah Dodge, Jana Jureckova, ...
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Last edited by MARC Bot
September 28, 2024 | History
An edition of Adaptive regression (2000)

Adaptive Regression

  • 2 Want to read

Linear regression is an important area of statistics, theoretical or applied. There have been a large number of estimation methods proposed and developed for linear regression. Each has its own competitive edge but none is good for all purposes. This manuscript focuses on construction of an adaptive combination of two estimation methods. The purpose of such adaptive methods is to help users make an objective choice and to combine desirable properties of two estimators.

Publish Date
Publisher
Springer New York
Language
English
Pages
177

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Edition Availability
Cover of: Adaptive Regression
Adaptive Regression
2012, Springer London, Limited
in English
Cover of: Adaptive Regression
Adaptive Regression
2012, Springer New York
in English
Cover of: Adaptive Regression
Adaptive Regression
April 20, 2000, Springer
in English

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Book Details


Classifications

Library of Congress
QA276-280

The Physical Object

Number of pages
177
Weight
0.302

Edition Identifiers

Open Library
OL34485946M
ISBN 13
9781461264644

Work Identifiers

Work ID
OL18710807W

Work Description

"Since 1757, when Roger Joseph Boscovich addressed the fundamental mathematical problem in determining the parameters which best fits observational equations, a large number of estimation methods has been proposed and developed for linear regression. Four of the commonly used methods are the least absolute deviations, least squares, trimmed least squares, and the M-regression. Each of these methods has its own competitive edge but none is good for all purposes.

This book focuses on construction of an adaptive combination of several pairs of these estimation methods. The purpose of adaptive methods is to help users make an objective choice and combine desirable properties of two estimators.".

"With this single objective in mind, this book describes in detail the theory, method, and algorithm for combining several pairs of estimation methods. It will be of interest for those who wish to perform regression analyses beyond the least squares method, and for researchers in robust statistics and graduate students who wish to learn some asymptotic theory for linear models.".

"The methods presented in this book are illustrated on numerical examples based on real data. The computer programs in S-PLUS for all procedures presented are available for data analysts working with applications in industry, economics, and the experimental sciences."--BOOK JACKET.

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September 28, 2024 Edited by MARC Bot import existing book
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