Compressive Imaging: Structure, Sampling, Learning
Autor Anders C. Hansen, Ben Adcocken Limba Engleză Hardback – 16 sep 2021
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Specificații
ISBN-13: 9781108421614
ISBN-10: 110842161X
Pagini: 614
Dimensiuni: 178 x 252 x 34 mm
Greutate: 1.31 kg
Editura: Cambridge University Press
Locul publicării:Cambridge, United Kingdom
ISBN-10: 110842161X
Pagini: 614
Dimensiuni: 178 x 252 x 34 mm
Greutate: 1.31 kg
Editura: Cambridge University Press
Locul publicării:Cambridge, United Kingdom
Cuprins
1. Introduction; Part I. The Essentials of Compressive Imaging: 2. Images, transforms and sampling; 3. A short guide to compressive imaging; 4. Techniques for enhancing performance; Part II. Compressed Sensing, Optimization and Wavelets: 5. An introduction to conventional compressed sensing; 6. The LASSO and its cousins; 7. Optimization for compressed sensing; 8. Analysis of optimization algorithms; 9. Wavelets; 10. A taste of wavelet approximation theory; Part III. Compressed Sensing with Local Structure: 11. From global to local; 12. Local structure and nonuniform recovery; 13. Local structure and uniform recovery; 14. Infinite-dimensional compressed sensing; Part IV. Compressed Sensing for Imaging: 15. Sampling strategies for compressive imaging; 16. Recovery guarantees for wavelet-based compressive imaging; 17. Total variation minimization; Part V. From Compressed Sensing to Deep Learning: 18. Neural networks and deep learning; 19. Deep learning for compressive imaging; 20. Accuracy and stability of deep learning for compressive imaging; 21. Stable and accurate neural networks for compressive imaging; 22. Epilogue; Appendices: A. Linear Algebra; B. Functional analysis; C. Probability; D. Convex analysis and convex optimization; E. Fourier transforms and series; F. Properties of Walsh functions and the Walsh transform; Notation; Abbreviations; References; Index.
Descriere
This is a practical, rigorous guide to the compressive imaging revolution that has fundamentally changed modern image reconstruction.