Optimization Techniques in Computer Vision
Springer International Publishing (Verlag)
978-3-319-83501-3 (ISBN)
Optimization plays a major role in a wide variety of theories for image processing and computer vision. Various optimization techniques are used at different levels for these problems, and this volume summarizes and explains these techniques as applied to image processing and computer vision.
Ill-Posed Problems in Imaging and Computer Vision.- Selection of the Regularization Parameter.- Introduction to Optimization.- Unconstrained Optimization.- Constrained Optimization.- Frequency-Domain Implementation of Regularization.- Iterative Methods.- Regularized Image Interpolation Based on Data Fusion.- Enhancement of Compressed Video.- Volumetric Description of Three-Dimensional Objects for Object Recognition.- Regularized 3D Image Smoothing.- Multi-Modal Scene Reconstruction Using Genetic Algorithm-Based Optimization.- Appendix A: Matrix-Vector Representation for Signal Transformation.- Appendix B: Discrete Fourier Transform.- Appendix C: 3D Data Acquisition and Geometric Surface Reconstruction.- Appendix D: Mathematical Appendix.- Index.
"The presentation of the problems is accompanied by illustrating examples. The book contains both a great theoretical background and practical applications and is thus self-contained. It is useful for master and doctoral students, as well as for researchers and practitioners dealing with computer vision and image processing, but also working in mathematical optimization." (Ruxandra Stoean, zbMATH 1362.68003, 2017)
Erscheinungsdatum | 05.03.2022 |
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Reihe/Serie | Advances in Computer Vision and Pattern Recognition |
Zusatzinfo | XV, 293 p. 127 illus., 23 illus. in color. |
Verlagsort | Cham |
Sprache | englisch |
Maße | 155 x 235 mm |
Gewicht | 480 g |
Themenwelt | Informatik ► Grafik / Design ► Digitale Bildverarbeitung |
Informatik ► Theorie / Studium ► Künstliche Intelligenz / Robotik | |
Schlagworte | 3D image smoothing • 3D volumetric description • Algorithm analysis and problem complexity • image interpolation algorithms • one dimensional optimization • optimization with linear constraints • regularization methods for linear inverse problems • regularization parameter selection • shape representation in image processing • unconstrained optimization methods |
ISBN-10 | 3-319-83501-7 / 3319835017 |
ISBN-13 | 978-3-319-83501-3 / 9783319835013 |
Zustand | Neuware |
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