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Bayesian Networks - (Statistics in Practice) by Olivier Pourret & Patrick Na¿m & Bruce Marcot (Hardcover)

Bayesian Networks - (Statistics in Practice) by  Olivier Pourret & Patrick Na¿m & Bruce Marcot (Hardcover) - 1 of 1
$116.85 sale price when purchased online
$142.95 list price
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About this item

Highlights

  • Bayesian Networks, the result of the convergence of artificial intelligence with statistics, are growing in popularity.
  • About the Author: Editors OLIVIER POURRET, Electricité de France PATRICK NAÏM, ELSEWARE, France BRUCE MARCOT, USDA Forest Service, Oregon, USA
  • 446 Pages
  • Mathematics, Probability & Statistics
  • Series Name: Statistics in Practice

Description



Book Synopsis



Bayesian Networks, the result of the convergence of artificial intelligence with statistics, are growing in popularity. Their versatility and modelling power is now employed across a variety of fields for the purposes of analysis, simulation, prediction and diagnosis.

This book provides a general introduction to Bayesian networks, defining and illustrating the basic concepts with pedagogical examples and twenty real-life case studies drawn from a range of fields including medicine, computing, natural sciences and engineering.

Designed to help analysts, engineers, scientists and professionals taking part in complex decision processes to successfully implement Bayesian networks, this book equips readers with proven methods to generate, calibrate, evaluate and validate Bayesian networks.

The book:

  • Provides the tools to overcome common practical challenges such as the treatment of missing input data, interaction with experts and decision makers, determination of the optimal granularity and size of the model.
  • Highlights the strengths of Bayesian networks whilst also presenting a discussion of their limitations.
  • Compares Bayesian networks with other modelling techniques such as neural networks, fuzzy logic and fault trees.
  • Describes, for ease of comparison, the main features of the major Bayesian network software packages: Netica, Hugin, Elvira and Discoverer, from the point of view of the user.
  • Offers a historical perspective on the subject and analyses future directions for research.

Written by leading experts with practical experience of applying Bayesian networks in finance, banking, medicine, robotics, civil engineering, geology, geography, genetics, forensic science, ecology, and industry, the book has much to offer both practitioners and researchers involved in statistical analysis or modelling in any of these fields.



From the Back Cover



Bayesian Networks
A Practical Guide to Applications

Bayesian Networks, the result of the convergence of artificial intelligence with statistics, are growing in popularity. Their versatility and modelling power is now employed across a variety of fields for the purposes of analysis, simulation, prediction and diagnosis.

This book provides a general introduction to Bayesian networks, defining and illustrating the basic concepts with pedagogical examples and twenty real-life case studies drawn from a range of fields including medicine, computing, natural sciences and engineering.

Designed to help analysts, engineers, scientists and professionals taking part in complex decision processes to successfully implement Bayesian networks, this book equips readers with proven methods to generate, calibrate, evaluate and validate Bayesian networks.

The book:

  • Provides the tools to overcome common practical challenges such as the treatment of missing input data, interaction with experts and decision makers, determination of the optimal granularity and size of the model.
  • Highlights the strengths of Bayesian networks whilst also presenting a discussion of their limitations.
  • Compares Bayesian networks with other modelling techniques such as neural networks, fuzzy logic and fault trees.
  • Describes, for ease of comparison, the main features of the major Bayesian network software packages: Netica, Hugin, Elvira and Discoverer, from the point of view of the user.
  • Offers a historical perspective on the subject and analyses future directions for research.

Written by leading experts with practical experience of applying Bayesian networks in finance, banking, medicine, robotics, civil engineering, geology, geography, genetics, forensic science, ecology, and industry. The book has much to offer both practitioners and researchers involved in statistical analysis or modelling in any of these fields.



About the Author



Editors

OLIVIER POURRET, Electricité de France

PATRICK NAÏM, ELSEWARE, France

BRUCE MARCOT, USDA Forest Service, Oregon, USA

Dimensions (Overall): 9.07 Inches (H) x 6.27 Inches (W) x 1.16 Inches (D)
Weight: 1.71 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 446
Series Title: Statistics in Practice
Genre: Mathematics
Sub-Genre: Probability & Statistics
Publisher: Wiley
Theme: Bayesian Analysis
Format: Hardcover
Author: Olivier Pourret & Patrick Na¿m & Bruce Marcot
Language: English
Street Date: May 1, 2008
TCIN: 90955144
UPC: 9780470060308
Item Number (DPCI): 247-08-1850
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 1.16 inches length x 6.27 inches width x 9.07 inches height
Estimated ship weight: 1.71 pounds
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