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Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability)
 
 
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Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) [Hardcover]

M.P. Wand (Author), M.C. Jones (Author)
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Book Description

0412552701 978-0412552700 December 1, 1994 1
Kernel smoothing refers to a general methodology for recovery of underlying structure in data sets. The basic principle is that local averaging or smoothing is performed with respect to a kernel function.

This book provides uninitiated readers with a feeling for the principles, applications, and analysis of kernel smoothers. This is facilitated by the authors' focus on the simplest settings, namely density estimation and nonparametric regression. They pay particular attention to the problem of choosing the smoothing parameter of a kernel smoother, and also treat the multivariate case in detail.

Kernal Smoothing is self-contained and assumes only a basic knowledge of statistics, calculus, and matrix algebra. It is an invaluable introduction to the main ideas of kernel estimation for students and researchers from other discipline and provides a comprehensive reference for those familiar with the topic.

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Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) + Local Polynomial Modelling and Its Applications: Monographs on Statistics and Applied Probability 66 (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) + Nonparametric Regression and Generalized Linear Models: A roughness penalty approach (Chapman & Hall/CRC Monographs on Statistics & Applied Probability)
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Product Details

  • Hardcover: 224 pages
  • Publisher: Chapman and Hall/CRC; 1 edition (December 1, 1994)
  • Language: English
  • ISBN-10: 0412552701
  • ISBN-13: 978-0412552700
  • Product Dimensions: 9.2 x 6.3 x 0.8 inches
  • Shipping Weight: 1.1 pounds (View shipping rates and policies)
  • Average Customer Review: 5.0 out of 5 stars  See all reviews (4 customer reviews)
  • Amazon Best Sellers Rank: #1,207,002 in Books (See Top 100 in Books)

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4 of 4 people found the following review helpful:
5.0 out of 5 stars Excellent book on kernel density methods, January 4, 2006
This review is from: Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) (Hardcover)
If your work requires the use of kernel density methods, there are three books you must have: (1) Density Estimation by Silverman, (2) Multivariate Density Estimation by David Scott, and (3) Kernel smoothing by Wand & Jones. Of the three, Wand & Jones' book is the best written one. Concepts are explained clearly and the book chapters are organized well. Strongly recommended alongwith the other two.
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2 of 3 people found the following review helpful:
5.0 out of 5 stars An intuitive explanation on an o/w very tough subject., May 20, 1999
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This review is from: Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) (Hardcover)
(From the view point of an economist only) Don't know a thing about kernel smoothing? No problem! This book brilliantly explains the idea of kernel smoothing using English! (You remember how advanced econometrics quickly become an alien language.), with minimum requirement on econometrics.It is a must buy if you are working on this subject.
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5.0 out of 5 stars Excellent Introduction to Kernel Smoothing, March 6, 2010
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This review is from: Kernel Smoothing (Chapman & Hall/CRC Monographs on Statistics & Applied Probability) (Hardcover)
This book is an excellent introduction to Kernel Smoothing. Its easy to follow and I strongly recommend it.
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Inside This Book (learn more)
First Sentence:
Kernel smoothing provides a simple way of finding structure in data sets without the imposition of a parametric model. Read the first page
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
polynomial kernel estimators, local linear kernel estimator, other kernel estimators, univariate kernel density estimator, multivariate kernel density estimator, bandwidth selectors, leading bias term, standard normal kernel, pilot bandwidth, integrated squared bias, normal mixture densities, local linear estimator, bandwidth selection, effective kernel, canonical kernels, bias approximation, boundary bias, kernel regression estimator, integrated variance, grid counts, mean integrated squared error, kernel density estimation, bin edges, conditional bias, kernel estimate
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