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Bayesian Analysis of Stochastic Process Models

Part of the Wiley Series in Probability and Statistics series
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Bayesian analysis of complex models based on stochastic processes has in recent years become a growing area.

This book provides a unified treatment of Bayesian analysis of models based on stochastic processes, covering the main classes of stochastic processing including modeling, computational, inference, forecasting, decision making and important applied models. Key features: Explores Bayesian analysis of models based on stochastic processes, providing a unified treatment.

Provides a thorough introduction for research students.

Computational tools to deal with complex problems are illustrated along with real life case studies Looks at inference, prediction and decision making. Researchers, graduate and advanced undergraduate students interested in stochastic processes in fields such as statistics, operations research (OR), engineering, finance, economics, computer science and Bayesian analysis will benefit from reading this book.

With numerous applications included, practitioners of OR, stochastic modelling and applied statistics will also find this book useful.

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Product Details
John Wiley & Sons Inc
0470744537 / 9780470744536
Hardback
519.542
30/03/2012
United States
English
xiii, 290 p. : ill.
24 cm
Professional & Vocational Learn More