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Model-based Geostatistics for Global Public Health : Methods and Applications (Chapman & Hall/CRC Interdisciplinary Statistics)

By: Emanuele Giorgi (Author) , Peter J. Diggle (Author)

Extended Catalogue

Ksh 23,300.00

Format: Hardback or Cased Book

ISBN-10: 1138732354

ISBN-13: 9781138732353

Collection / Series: Chapman & Hall/CRC Interdisciplinary Statistics

Collection Type: Publisher collection

Publisher: Taylor & Francis Ltd

Imprint: CRC Press

Country of Manufacture: GB

Country of Publication: GB

Publication Date: Mar 11th, 2019

Publication Status: Active

Product extent: 274 Pages

Weight: 606.00 grams

Dimensions (height x width x thickness): 16.20 x 24.00 x 2.30 cms

Product Classification / Subject(s): Personal & public health
Probability & statistics

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State-of-the-art methods in model-based geostatistics (MBG) and its application to problems in global public health. Scientific objective is to describe the pattern of spatial variation in a health outcome using explicit probability models and established principles of statistical inference.

Model-based Geostatistics for Global Public Health: Methods and Applications provides an introductory account of model-based geostatistics, its implementation in open-source software and its application in public health research. In the public health problems that are the focus of this book, the authors describe and explain the pattern of spatial variation in a health outcome or exposure measurement of interest. Model-based geostatistics uses explicit probability models and established principles of statistical inference to address questions of this kind.

Features:

  • Presents state-of-the-art methods in model-based geostatistics.
  • Discusses the application these methods some of the most challenging global public health problems including disease mapping, exposure mapping and environmental epidemiology.
  • Describes exploratory methods for analysing geostatistical data, including: diagnostic checking of residuals standard linear and generalized linear models; variogram analysis; Gaussian process models and geostatistical design issues.
  • Includes a range of more complex geostatistical problems where research is ongoing.
  • All of the results in the book are reproducible using publicly available R code and data-sets, as well as a dedicated R package.

This book has been written to be accessible not only to statisticians but also to students and researchers in the public health sciences.

The Authors

Peter Diggle is Distinguished University Professor of Statistics in the Faculty of Health and Medicine, Lancaster University. He also holds honorary positions at the Johns Hopkins University School of Public Health, Columbia University International Research Institute for Climate and Society, and Yale University School of Public Health. His research involves the development of statistical methods for analyzing spatial and longitudinal data and their applications in the biomedical and health sciences.

Dr Emanuele Giorgi is a Lecturer in Biostatistics and member of the CHICAS research group at Lancaster University, where he formerly obtained a PhD in Statistics and Epidemiology in 2015. His research interests involve the development of novel geostatistical methods for disease mapping, with a special focus on malaria and other tropical diseases. In 2018, Dr Giorgi was awarded the Royal Statistical Society Research Prize "for outstanding published contribution at the interface of statistics and epidemiology." He is also the lead developer of PrevMap, an R package where all the methodology found in this book has been implemented.


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