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Bootstrap Methods and Their Application

Bootstrap Methods and Their Application - Cambridge Series on Statistical and Probablistic Mathematics

Hardback (28 Oct 1997)

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Publisher's Synopsis

Bootstrap methods are computer-intensive methods of statistical analysis, which use simulation to calculate standard errors, confidence intervals, and significance tests. The methods apply for any level of modelling, and so can be used for fully parametric, semiparametric, and completely nonparametric analysis. This 1997 book gives a broad and up-to-date coverage of bootstrap methods, with numerous applied examples, developed in a coherent way with the necessary theoretical basis. Applications include stratified data; finite populations; censored and missing data; linear, nonlinear, and smooth regression models; classification; time series and spatial problems. Special features of the book include: extensive discussion of significance tests and confidence intervals; material on various diagnostic methods; and methods for efficient computation, including improved Monte Carlo simulation. Each chapter includes both practical and theoretical exercises. S-Plus programs for implementing the methods described in the text are available from the supporting website.

About the Publisher

Cambridge University Press

Cambridge University Press dates from 1534 and is part of the University of Cambridge. We further the University's mission by disseminating knowledge in the pursuit of education, learning and research at the highest international levels of excellence.

Book information

ISBN: 9780521573917
Publisher: Cambridge University Press
Imprint: Cambridge University Press
Pub date:
DEWEY: 519.544
DEWEY edition: 21
Language: English
Number of pages: 582
Weight: 1300g
Height: 253mm
Width: 177mm
Spine width: 40mm