Pattern Recognition and Classification: An Introduction / Edition 1

Pattern Recognition and Classification: An Introduction / Edition 1

by Geoff Dougherty
ISBN-10:
1461453224
ISBN-13:
9781461453222
Pub. Date:
10/29/2012
Publisher:
Springer New York
ISBN-10:
1461453224
ISBN-13:
9781461453222
Pub. Date:
10/29/2012
Publisher:
Springer New York
Pattern Recognition and Classification: An Introduction / Edition 1

Pattern Recognition and Classification: An Introduction / Edition 1

by Geoff Dougherty

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Overview

The use of pattern recognition and classification is fundamental to many of the automated electronic systems in use today. However, despite the existence of a number of notable books in the field, the subject remains very challenging, especially for the beginner.

Pattern Recognition and Classification presents a comprehensive introduction to the core concepts involved in automated pattern recognition. It is designed to be accessible to newcomers from varied backgrounds, but it will also be useful to researchers and professionals in image and signal processing and analysis, and in computer vision. Fundamental concepts of supervised and unsupervised classification are presented in an informal, rather than axiomatic, treatment so that the reader can quickly acquire the necessary background for applying the concepts to real problems. More advanced topics, such as semi-supervised classification, combining clustering algorithms and relevance feedback are addressed in the laterchapters.

This book is suitable for undergraduates and graduates studying pattern recognition and machine learning.

Product Details

ISBN-13: 9781461453222
Publisher: Springer New York
Publication date: 10/29/2012
Edition description: 2013
Pages: 196
Product dimensions: 6.10(w) x 9.25(h) x 0.03(d)

About the Author

Geoff Dougherty is a Professor of Applied Physics and Medical Imaging at California State University, Channel Islands. He is the Author of Springer's Medical Image Processing, Techniques and Applications

Table of Contents

Introduction.- Classification.- Nonmetric Methods.- Statistical Pattern Recognition.- Supervised Learning.- Nonparametric Learning.- Feature Extraction and Selection.- Unsupervised Learning.- Estimating and Comparing Classifiers.- Projects
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