Image Fusion: Theories, Techniques and Applications

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This textbook provides a comprehensive introduction to the theories, techniques and applications of image fusion. It is aimed at advanced undergraduate and first-year graduate students in electrical engineering and computer science. It should also be useful to practicing engineers who wish to learn the concepts of image fusion and use them in real-life applications.

The book is intended to be self-contained. No previous knowledge of image fusion is assumed, although some familiarity with elementary image processing and the basic tools of linear algebra is recommended. The book may also be used as a supplementary text for a course on advanced image processing.

Apart from two preliminary chapters, the book is divided into three parts. Part I deals with the conceptual theories and ideas which underlie image fusion. Particular emphasis is given to the concept of a common representational framework and includes detailed discussions on the techniques of image registration, radiometric calibration and semantic equivalence. Part II deals with a wide range of techniques and algorithms which are in common use in image fusion. Among the topics considered are: sub-space transformations, multi-resolution analysis, wavelets, ensemble learning, bagging, boosting, color spaces, image thresholding, Markov random fields, image similarity measures and the expectation-maximization algorithm. Together Parts I and II form an integrated and comprehensive overview of image fusion. Part III deals with applications. In it several real-life examples of image fusion are examined in detail, including panchromatic sharpening, ensemble color image segmentation and the Simultaneous Truth and Performance algorithm of Warfield et al.

The book is accompanied by a webpage from which supplementary material may be obtained. This includes support for course instructors and links to relevant matlab code.

Author(s): H. B. Mitchell (auth.)
Edition: 1
Publisher: Springer-Verlag Berlin Heidelberg
Year: 2010

Language: English
Pages: 247
Tags: Signal, Image and Speech Processing; Image Processing and Computer Vision; Computational Intelligence; Artificial Intelligence (incl. Robotics); Applications of Mathematics

Front Matter....Pages -
Introduction....Pages 1-8
Image Sensors....Pages 9-17
Front Matter....Pages 19-19
Common Representational Format....Pages 21-33
Spatial Alignment....Pages 35-51
Semantic Equivalence....Pages 53-62
Radiometric Calibration....Pages 63-73
Pixel Fusion....Pages 75-90
Front Matter....Pages 91-91
Multi-resolution Analysis....Pages 93-106
Image Sub-space Techniques....Pages 107-124
Ensemble Learning....Pages 125-142
Re-sampling Methods....Pages 143-153
Image Thresholding....Pages 155-161
Image Key Points....Pages 163-166
Image Similarity Measures....Pages 167-185
Vignetting, White Balancing and Automatic Gain Control Effects....Pages 187-193
Color Image Spaces....Pages 195-204
Markov Random Fields....Pages 205-209
Image Quality....Pages 211-215
Front Matter....Pages 217-217
Pan-sharpening....Pages 219-227
Ensemble Color Image Segmentation....Pages 229-232
Front Matter....Pages 217-217
STAPLE: Simultaneous Truth and Performance Level Estimation....Pages 233-236
Biometric Technologies....Pages 237-242
Back Matter....Pages -