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Data Analysis

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Data Analysis Synopsis

Statistics lectures have been a source of much bewilderment and frustration for generations of students. This book attempts to remedy the situation by expounding a logical and unified approach to the whole subject of data analysis. This text is intended as a tutorial guide for senior undergraduates and research students in science and engineering.

After explaining the basic principles of Bayesian probability theory, their use is illustrated with a variety of examples ranging from elementary parameter estimation to image processing. Other topics covered include reliability analysis, multivariate optimization, least-squares and maximum likelihood, error-propagation, hypothesis testing, maximum entropy and experimental design. The Second Edition of this successful tutorial book contains a new chapter on extensions to the ubiquitous least-squares procedure, allowing for the straightforward handling of outliers and unknown correlated noise, and a cutting-edge contribution from John Skilling on a novel numerical technique for Bayesian computation called 'nested sampling'.

About This Edition

ISBN: 9780198568322
Publication date:
Author: D S Sivia, J Skilling
Publisher: Oxford University Press an imprint of OUP OXFORD
Format: Paperback
Pagination: 264 pages
Series: Oxford Science Publications
Genres: Probability and statistics
Maths for scientists
Statistical physics
Maths for engineers

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