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Spatial Statistics GeoSpatial Information Modeling and Thematic Mapping [Hardcover]

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  • Category: Books (Technology & Engineering)
  • Author:  Kalkhan, Mohammed A.
  • Author:  Kalkhan, Mohammed A.
  • ISBN-10:  1420069764
  • ISBN-10:  1420069764
  • ISBN-13:  9781420069761
  • ISBN-13:  9781420069761
  • Publisher:  CRC Press
  • Publisher:  CRC Press
  • Pages:  184
  • Pages:  184
  • Binding:  Hardcover
  • Binding:  Hardcover
  • Pub Date:  01-Oct-2011
  • Pub Date:  01-Oct-2011
  • SKU:  1420069764-11-MPOD
  • SKU:  1420069764-11-MPOD
  • Item ID: 100888302
  • Seller: ShopSpell
  • Ships in: 2 business days
  • Transit time: Up to 5 business days
  • Delivery by: Jan 18 to Jan 20
  • Notes: Brand New Book. Order Now.

Geospatial information modeling and mapping has become an important tool for the investigation and management of natural resources at the landscape scale. Spatial Statistics: GeoSpatial Information Modeling and Thematic Mappingreviews the types and applications of geospatial information data, such as remote sensing, geographic information systems (GIS), and GPS as well as their integration into landscape-scale geospatial statistical models and maps.

The book explores how to extract information from remotely sensed imagery, GIS, and GPS, and how to combine this with field datavegetation, soil, and environmentalto produce a spatial model that can be reconstructed and displayed using GIS software. Readers learn the requirements and limitations of each geospatial modeling and mapping tool. Case studies with real-life examples illustrate important applications of the models.

Topics covered in this book include:

  • An overview of the geospatial information sciences and technology and spatial statistics
  • Sampling methods and applications, including probability sampling and nonrandom sampling, and issues to consider in sampling and plot design
  • Fine and coarse scale variability
  • Spatial sampling schemes and spatial pattern
  • Linear and spatial correlation statistics, including Morans I, Gearys C, cross-correlation statistics, and inverse distance weighting
  • Geospatial statistics analysis using stepwise regression, ordinary least squares (OLS), variogram, kriging, spatial auto-regression, binary classification trees, cokriging, and geospatial models for presence and absence data
  • How to use R statistical software to work on statistical al-
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