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Machine vision: Theory, algorithms, practicalities

✍ Scribed by E. R. Davies


Publisher
Elsevier
Year
2005
Tongue
English
Leaves
956
Series
Signal Processing and its Applications
Edition
3ed.
Category
Library

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✦ Synopsis


In the last 40 years, machine vision has evolved into a mature field embracing a wide range of applications including surveillance, automated inspection, robot assembly, vehicle guidance, traffic monitoring and control, signature verification, biometric measurement, and analysis of remotely sensed images. While researchers and industry specialists continue to document their work in this area, it has become increasingly difficult for professionals and graduate students to understand the essential theory and practicalities well enough to design their own algorithms and systems. This book directly addresses this need. As in earlier editions, E.R. Davies clearly and systematically presents the basic concepts of the field in highly accessible prose and images, covering essential elements of the theory while emphasizing algorithmic and practical design constraints. In this thoroughly updated edition, he divides the material into horizontal levels of a complete machine vision system. Application case studies demonstrate specific techniques and illustrate key constraints for designing real-world machine vision systems. · Includes solid, accessible coverage of 2-D and 3-D scene analysis. · Offers thorough treatment of the Hough Transform-a key technique for inspection and surveillance. · Brings vital topics and techniques together in an integrated system design approach. · Takes full account of the requirement for real-time processing in real applications.

✦ Table of Contents


Cover......Page 1
Title......Page 2
Copyright......Page 3
Contents......Page 4
About the Author......Page 18
Foreword......Page 20
Preface......Page 22
Acknowledgments......Page 26
1 Vision, the Challenge......Page 31
2 Images and Imaging Operations......Page 46
3 Basic Image Filtering Operations......Page 78
4 Thresholding Techniques......Page 134
5 Edge Detection......Page 162
6 Binary Shape Analysis......Page 190
7 Boundary Pattern Analysis......Page 237
8 Mathematical Morphology......Page 263
9 Line Detection......Page 294
10 Circle Detection......Page 312
11 The Hough Transform and\rIts Nature......Page 344
12 Ellipse Detection......Page 368
13 Hole Detection......Page 390
14 Polygon and Corner Detection......Page 408
15 Abstract Pattern Matching\rTechniques......Page 442
16 The Three-Dimensional World......Page 472
17 Tackling the Perspective\rn-point Problem......Page 514
18 Motion......Page 532
19 Invariants and Their Applications......Page 572
20 Egomotion and Related Tasks......Page 598
21 Image Transformations and\rCamera Calibration......Page 622
22 Automated Visual Inspection......Page 652
23 Inspection of Cereal Grains......Page 684
24 Statistical Pattern Recognition......Page 712
25 Biologically Inspired Recognition\rSchemes......Page 750
26 Texture......Page 782
27 Image Acquisition......Page 806
28 Real-Time Hardware and Systems Design Considerations......Page 830
29 Machine Vision: Art or Science?......Page 857
Appendix A: Robust Statistics......Page 868
List of Acronyms and Abbreviations......Page 890
References......Page 892
Author Index......Page 939
Subject Index......Page 947


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