Stochastic Geometry: Likelihood and Computation

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Stochastic geometry involves the study of random geometric structures, and blends geometric, probabilistic, and statistical methods to provide powerful techniques for modeling and analysis. Recent developments in computational statistical analysis, particularly Markov chain Monte Carlo, have enormously extended the range of feasible applications. Stochastic Geometry: Likelihood and Computation provides a coordinated collection of chapters on important aspects of the rapidly developing field of stochastic geometry, including:
o a "crash-course" introduction to key stochastic geometry themes
o considerations of geometric sampling bias issues
o tesselations
o shape
o random sets
o image analysis
o spectacular advances in likelihood-based inference now available to stochastic geometry through the techniques of Markov chain Monte Carlo

Author(s): Wilfrid S. Kendall, M.N.M. van Lieshout
Edition: 1
Publisher: Chapman and Hall/CRC
Year: 1998

Language: English
Pages: 408
Tags: Probability & Statistics;Applied;Mathematics;Science & Math;Geometry & Topology;Algebraic Geometry;Analytic Geometry;Differential Geometry;Non-Euclidean Geometries;Topology;Mathematics;Science & Math;Geometry;Mathematics;Science & Mathematics;New, Used & Rental Textbooks;Specialty Boutique;Statistics;Mathematics;Science & Mathematics;New, Used & Rental Textbooks;Specialty Boutique