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Statistical Modeling by Wavelets (Wiley Series in Probability and Statistics)
 
 
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Statistical Modeling by Wavelets (Wiley Series in Probability and Statistics) [Hardcover]

Brani Vidakovic (Author)
5.0 out of 5 stars  See all reviews (1 customer review)

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Book Description

0471293652 978-0471293651 May 3, 1999 1
A comprehensive, step-by-step introduction to wavelets in statistics.

What are wavelets? What makes them increasingly indispensable in statistical nonparametrics? Why are they suitable for "time-scale" applications? How are they used to solve such problems as denoising, regression, or density estimation? Where can one find up-to-date information on these newly "discovered" mathematical objects? These are some of the questions Brani Vidakovic answers in Statistical Modeling by Wavelets. Providing a much-needed introduction to the latest tools afforded statisticians by wavelet theory, Vidakovic compiles, organizes, and explains in depth research data previously available only in disparate journal articles. He carefully balances both statistical and mathematical techniques, supplementing the material with a wealth of examples, more than 100 illustrations, and extensive references-with data sets and S-Plus wavelet overviews made available for downloading over the Internet. Both introductory and data-oriented modeling topics are featured, including:
* Continuous and discrete wavelet transformations.
* Statistical optimality properties of wavelet shrinkage.
* Theoretical aspects of wavelet density estimation.
* Bayesian modeling in the wavelet domain.
* Properties of wavelet-based random functions and densities.
* Several novel and important wavelet applications in statistics.
* Wavelet methods in time series.

Accessible to anyone with a background in advanced calculus and algebra, Statistical Modeling by Wavelets promises to become the standard reference for statisticians and engineers seeking a comprehensive introduction to an emerging field.

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Editorial Reviews

Review

It is well written and organized with compact derivations and extensive references and can serve as a very good reference on the exciting topic of wavelets. (Technometrics, August 2000, Vol. 42, No. 3) It is clearly an important and valuable addition to the area and deserves to be widely known and used.--(Statistics and Decisions, Volume 19, No.1, 2001)

"...an important and valuable addition to the area and deserves to be widely known and used." (Statistics and Decisions, Vol. 19, No. 1)

"It is clearly an important and valuable addition to the area and deserves to be widely known and used..." (Statistics & Decisions, Vol 19/1, 2001)

From the Back Cover

A comprehensive, step-by-step introduction to wavelets in statistics.

What are wavelets? What makes them increasingly indispensable in statistical nonparametrics? Why are they suitable for "time-scale" applications? How are they used to solve such problems as denoising, regression, or density estimation? Where can one find up-to-date information on these newly "discovered" mathematical objects? These are some of the questions Brani Vidakovic answers in Statistical Modeling by Wavelets. Providing a much-needed introduction to the latest tools afforded statisticians by wavelet theory, Vidakovic compiles, organizes, and explains in depth research data previously available only in disparate journal articles. He carefully balances both statistical and mathematical techniques, supplementing the material with a wealth of examples, more than 100 illustrations, and extensive references-with data sets and S-Plus wavelet overviews made available for downloading over the Internet. Both introductory and data-oriented modeling topics are featured, including:
* Continuous and discrete wavelet transformations.
* Statistical optimality properties of wavelet shrinkage.
* Theoretical aspects of wavelet density estimation.
* Bayesian modeling in the wavelet domain.
* Properties of wavelet-based random functions and densities.
* Several novel and important wavelet applications in statistics.
* Wavelet methods in time series.

Accessible to anyone with a background in advanced calculus and algebra, Statistical Modeling by Wavelets promises to become the standard reference for statisticians and engineers seeking a comprehensive introduction to an emerging field.

Product Details

  • Hardcover: 408 pages
  • Publisher: Wiley-Interscience; 1 edition (May 3, 1999)
  • Language: English
  • ISBN-10: 0471293652
  • ISBN-13: 978-0471293651
  • Product Dimensions: 9.6 x 6.4 x 1 inches
  • Shipping Weight: 1.7 pounds (View shipping rates and policies)
  • Average Customer Review: 5.0 out of 5 stars  See all reviews (1 customer review)
  • Amazon Best Sellers Rank: #1,940,383 in Books (See Top 100 in Books)

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3 of 4 people found the following review helpful:
5.0 out of 5 stars Statistical Modeling by Wavelets, May 30, 2000
This review is from: Statistical Modeling by Wavelets (Wiley Series in Probability and Statistics) (Hardcover)
This book is excellent as a comprehensive introduction to up-to-date statistics via wavelets, and it is well written too, though there are a few of printing mistakes.

It does require certain math background to read this book. But the book gives reader quite deep insight of how apply wavelets to statistics.

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Inside This Book (learn more)
First Sentence:
In this chapter, we give a brief overview of the history of wavelets, make a case for their use in statistics, and provide a real-life example that emphasizes specificities of wavelets in data processing problems. Read the first page
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
wavelet density estimators, wavelet packet table, decomposing wavelet, periodized wavelets, block thresholding, empirical wavelet coefficients, continuous wavelet transformation, orthogonal multiresolution analysis, thresholding rules, wavelet estimators, wavelet regression, discrete wavelet transformation, random densities, shrinkage rule, wavelet shrinkage, random density, whitening property, universal threshold, doppler function, cascade algorithm, wavelet estimation, wavelet spectrum, wavelet thresholding, wavelet domain, wavelet functions
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Duke Forest, Duke University, Stanford University
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