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portada Spatial Regression Analysis Using Eigenvector Spatial Filtering (in English)
Type
Physical Book
Publisher
Year
2019
Language
English
Pages
286
Format
Paperback
ISBN13
9780128150436
Edition No.
1

Spatial Regression Analysis Using Eigenvector Spatial Filtering (in English)

Daniel Griffith; Yongwan Chun; Bin Li (Author) · Academic Press · Paperback

Spatial Regression Analysis Using Eigenvector Spatial Filtering (in English) - Daniel Griffith; Yongwan Chun; Bin Li

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Synopsis "Spatial Regression Analysis Using Eigenvector Spatial Filtering (in English)"

Spatial Regression Analysis Using Eigenvector Spatial Filtering provides theoretical foundations and guides practical implementation of the Moran eigenvector spatial filtering (MESF) technique. MESF is a novel and powerful spatial statistical methodology that allows spatial scientists to account for spatial autocorrelation in their georeferenced data analyses. Its appeal is in its simplicity, yet its implementation drawbacks include serious complexities associated with constructing an eigenvector spatial filter. This book discusses MESF specifications for various intermediate-level topics, including spatially varying coefficients models, (non) linear mixed models, local spatial autocorrelation, space-time models, and spatial interaction models. Spatial Regression Analysis Using Eigenvector Spatial Filtering is accompanied by sample R codes and a Windows application with illustrative datasets so that readers can replicate the examples in the book and apply the methodology to their own application projects. It also includes a Foreword by Pierre Legendre.Reviews the uses of ESF across linear regression, generalized linear regression, spatial autocorrelation measurement, and spatially varying coefficient modelsIncludes computer code and template datasets for further modelingProvides comprehensive coverage of related concepts in spatial data analysis and spatial statistics

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The book is written in English.
The binding of this edition is Paperback.

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