Digital Image Processing
eBook - ePub

Digital Image Processing

Theory, Practice, and AI Applications

  1. 486 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Digital Image Processing

Theory, Practice, and AI Applications

About this book

Integrate machine learning and AI-based approaches into practical image processing with Python

Engineers and researchers implementing image processing systems need methods that bridge classical techniques with modern machine learning approaches. This book delivers both traditional and modern AI-based methods and algorithms in image enhancement, restoration, segmentation, compression, and analysis. Written by an educator and researcher with more than 40 years' experience in signal/image processing and machine learning, this reference provides theoretical and practical tools using the Python platform for a wide range of applications.

The book consists of twenty chapters covering fundamental and advanced topics including two-dimensional image modeling, wavelet transform, Kalman filters, image reconstruction and computerized tomography, layered machines, linear and nonlinear autoencoders, and associative memories. Each chapter includes practical examples demonstrating real-world applications, supported by Python code, solution manuals, and presentation materials.

This book also covers:

  • Fundamental supervised and unsupervised machine learning methods with specific deep learning applications for image enhancement, segmentation, feature extraction, data compression, and classification
  • Wavelet transform and filter banks integrated with state-of-the-art image analysis and processing
  • Advanced filtering techniques including Wiener and Kalman filters, and two-dimensional image modeling
  • Python implementations via Google colab platform enabling immediate application of theoretical concepts to practical image processing problems
  • Instructor resources including solution manuals and presentation materials supporting adoption in digital image processing and computer vision courses

Essential for professionals in industry and research laboratories requiring implementation-ready image processing methods, this reference also serves graduate students and advanced undergraduates in electrical and computer engineering, biomedical engineering, and computer science programs studying digital image processing and computer vision.

Information

Publisher
Wiley
Year
2026
Print ISBN
9781394240449
Edition
1
eBook ISBN
9781394240456

Table of contents

  1. Cover
  2. Table of Contents
  3. Title Page
  4. Copyright
  5. Dedication
  6. Preface
  7. Conventions and Notations
  8. About the Companion Website
  9. Chapter 1: Introduction
  10. Chapter 2: Review of 1-D Signal Processing
  11. Chapter 3: Theoretical Background
  12. Chapter 4: Image Formation and Perception
  13. Chapter 5: Image Sampling and Quantization
  14. Chapter 6: Image Transforms
  15. Chapter 7: Wavelet Transform
  16. Chapter 8: Image Enhancement
  17. Chapter 9: Image Modeling
  18. Chapter 10: Image Restoration
  19. Chapter 11: Image Compression and Encoding
  20. Chapter 12: Image Segmentation
  21. Chapter 13: Feature Extraction
  22. Chapter 14: Morphological Operations
  23. Chapter 15: Image Reconstruction
  24. Chapter 16: Traditional Image Classification
  25. Chapter 17: Modern Image Classification: Elements of Machine Learning
  26. Chapter 18: Modern Image Classification-Layered Machines
  27. Chapter 19: Dimensionality Reduction Networks and Autoencoders
  28. Chapter 20: AI Applications in Digital Image Processing
  29. Appendix A: Review of 1-D z-Transform
  30. Appendix B: 2-D z-Transform
  31. Index
  32. End User License Agreement

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Yes, you can access Digital Image Processing by Mahmood R. Azimi-Sadjadi in PDF and/or ePUB format, as well as other popular books in Technology & Engineering & Signals & Signal Processing. We have over 1.5 million books available in our catalogue for you to explore.