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Statistical Pattern Recognition - 3rd Edition by  Andrew R Webb & Keith D Copsey (Paperback) - 1 of 1

Statistical Pattern Recognition - 3rd Edition by Andrew R Webb & Keith D Copsey Paperback

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About this item

Highlights

  • Statistical pattern recognition relates to the use of statistical techniques for analysing data measurements in order to extract information and make justified decisions.
  • About the Author: Dr Andrew Robert Webb, Senior Researcher, QinetiQ Ltd, Malvern, UK.
  • 672 Pages
  • Mathematics, Probability & Statistics

Description



About the Book



" Statistical Pattern Recognition provides an introduction to statistical pattern theory and techniques, with material drawn from a wide range of fields, including the areas of engineering, statistics, computer science and the social sciences. The book describes techniques for analysing data comprising measurements made on individuals or objects.. The techniques are used to make a prediction such as disease of a patient, the type of object illuminated by a radar, economic forecast. Emphasis is placed on techniques for classification, a term used for predicting the class or group an object belongs to (based on a set of exemplars) and for methods that seek to discover natural groupings in a data set. Each section concludes with a description of the wide range of practical applications that have been addressed and the further developments of theoretical techniques and includes a variety of exercises, from 'open-book' questions to more lengthy projects. New material is presented, including the analysis of complex networks and basic techniques for analysing the properties of datasets and also introduces readers to the use of variational methods for Bayesian density estimation and looks at new applications in biometrics and security. "--



Book Synopsis



Statistical pattern recognition relates to the use of statistical techniques for analysing data measurements in order to extract information and make justified decisions. It is a very active area of study and research, which has seen many advances in recent years. Applications such as data mining, web searching, multimedia data retrieval, face recognition, and cursive handwriting recognition, all require robust and efficient pattern recognition techniques.

This third edition provides an introduction to statistical pattern theory and techniques, with material drawn from a wide range of fields, including the areas of engineering, statistics, computer science and the social sciences. The book has been updated to cover new methods and applications, and includes a wide range of techniques such as Bayesian methods, neural networks, support vector machines, feature selection and feature reduction techniques.Technical descriptions and motivations are provided, and the techniques are illustrated using real examples.

Statistical Pattern Recognition, 3rd Edition:

  • Provides a self-contained introduction to statistical pattern recognition.
  • Includes new material presenting the analysis of complex networks.
  • Introduces readers to methods for Bayesian density estimation.
  • Presents descriptions of new applications in biometrics, security, finance and condition monitoring.
  • Provides descriptions and guidance for implementing techniques, which will be invaluable to software engineers and developers seeking to develop real applications
  • Describes mathematically the range of statistical pattern recognition techniques.
  • Presents a variety of exercises including more extensive computer projects.

The in-depth technical descriptions make the book suitable for senior undergraduate and graduate students in statistics, computer science and engineering. Statistical Pattern Recognition is also an excellent reference source for technical professionals. Chapters have been arranged to facilitate implementation of the techniques by software engineers and developers in non-statistical engineering fields.

http: //www.wiley.com/go/statistical_pattern_recognition



From the Back Cover



Statistical pattern recognition relates to the use of statistical techniques for analysing data measurements in order to extract information and make justified decisions. It is a very active area of study and research, which has seen many advances in recent years. Applications such as data mining, web searching, multimedia data retrieval, face recognition, and cursive handwriting recognition, all require robust and efficient pattern recognition techniques.

This third edition provides an introduction to statistical pattern theory and techniques, with material drawn from a wide range of fields, including the areas of engineering, statistics, computer science and the social sciences. The book has been updated to cover new methods and applications, and includes a wide range of techniques such as Bayesian methods, neural networks, support vector machines, feature selection and feature reduction techniques.Technical descriptions and motivations are provided, and the techniques are illustrated using real examples.

Statistical Pattern Recognition, 3rd Edition:

  • Provides a self-contained introduction to statistical pattern recognition.
  • Includes new material presenting the analysis of complex networks.
  • Introduces readers to methods for Bayesian density estimation.
  • Presents descriptions of new applications in biometrics, security, finance and condition monitoring.
  • Provides descriptions and guidance for implementing techniques, which will be invaluable to software engineers and developers seeking to develop real applications
  • Describes mathematically the range of statistical pattern recognition techniques.
  • Presents a variety of exercises including more extensive computer projects.

The in-depth technical descriptions make the book suitable for senior undergraduate and graduate students in statistics, computer science and engineering. Statistical Pattern Recognition is also an excellent reference source for technical professionals. Chapters have been arranged to facilitate implementation of the techniques by software engineers and developers in non-statistical engineering fields.

www.wiley.com/go/statistical_pattern_recognition



Review Quotes




"In the end I must add that this book is so appealing that I often found myself lost in the reading, pausing the overview of the manuscript in order to look more into some presented subject, and not being able to continue until I had finished seeing all about it." (Zentralblatt MATH, 1 December 2012)




About the Author



Dr Andrew Robert Webb, Senior Researcher, QinetiQ Ltd, Malvern, UK.

Dr Keith Derek Copsey, Senior Researcher, QinetiQ Ltd, Malvern, UK.

Dimensions (Overall): 9.52 Inches (H) x 6.62 Inches (W) x 1.43 Inches (D)
Weight: 2.43 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 672
Genre: Mathematics
Sub-Genre: Probability & Statistics
Publisher: Wiley
Theme: General
Format: Paperback
Author: Andrew R Webb & Keith D Copsey
Language: English
Street Date: November 7, 2011
TCIN: 1008778588
UPC: 9780470682289
Item Number (DPCI): 247-16-1237
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 1.43 inches length x 6.62 inches width x 9.52 inches height
Estimated ship weight: 2.43 pounds
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