Multiscale Geographically Weighted Regression : Theory and Practice
Book Details
Format
Paperback / Softback
ISBN-10
1032564237
ISBN-13
9781032564234
Publisher
Taylor & Francis Ltd
Imprint
CRC Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jun 21st, 2026
Print length
176 Pages
Weight
360 grams
Product Classification:
Probability & statisticsProbability and statisticsHuman geographyEnvironmental science, engineering & technologyEnvironmental science, engineering and technologyAgricultural scienceDigital and Information technology: general topicsInformation technology: general issuesComputer science
Ksh 10,100.00
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Multiscale Geographically Weighted Regression (MGWR) is an important method for exploring spatial heterogeneity and modelling local spatial processes in spatial analysis. This book introduces and explains how to model continuous spatial processes within a regression framework, and serves as a hands-on resource for students and researchers.
Multiscale geographically weighted regression (MGWR) is an important method that is used across many disciplines for exploring spatial heterogeneity and modeling local spatial processes. This book introduces the concepts behind local spatial modeling and explains how to model heterogeneous spatial processes within a regression framework. It starts with the basic ideas and fundamentals of local spatial modeling followed by a detailed discussion of scale issues and statistical inference related to MGWR. A comprehensive guide to free, user-friendly, software for MGWR is provided, as well as an example of the application of MGWR to understand voting behavior in the 2020 US Presidential election. Multiscale Geographically Weighted Regression: Theory and Practice is the definitive guide to local regression modeling and the analysis of spatially varying processes, a very cutting-edge, hands-on, and innovative resource. FeaturesProvides a balance between conceptual and technical introduction to local modelsExplains state-of-the-art spatial analysis technique for multiscale regression modelingDescribes best practices and provides a detailed walkthrough of freely available software, through examples and comparisons with other common spatial data modeling techniquesIncludes a detailed case study to demonstrate methods and softwareTakes a new and exciting angle on local spatial modeling using MGWR, an innovation to the previous local modeling ‘bible’ GWRThe book is ideal for senior undergraduate and graduate students in advanced spatial analysis and GIS courses taught in any spatial science discipline as well as for researchers, academics, and professionals who want to understand how location can affect human behavior through local regression modeling.
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