Contemporary Optical Image Processing with MATLAB
- 1st Edition - April 18, 2001
- Latest edition
- Authors: T.-C. Poon, Partha P. Banerjee
- Language: English
This book serves two purposes: first to introduce readers to the concepts of geometrical optics, physical optics and techniques of optical imaging and image processing, and… Read more
Description
Description
MATLAB is a registered trademark of The MathWorks, Inc.
Readership
Readership
Table of contents
Table of contents
Chapter 2: Geometrical Optics. 2.1 Fermat's Principle. 2.2 Reflection and Refraction. 2.3 Refraction in an Inhomogeneous Medium. 2.4 Matrix Methods in Paraxial Optics - 2.4.1 The ray transfer matrix, 2.4.2 Illustrative examples. 2.5 Ray Optics using MATLAB.
Chapter 3: Propagation and Diffraction of Optical Waves. 3.1 Maxwell's Equations: A Review. 3.2 Linear Wave Propagation - 3.2.1 Traveling-wave solutions, 3.2.2 Intrinsic impedance, the Poynting vector, and polarization. 3.3 Spatial Frequency Transfer Function for Propagation - 3.3.1 Examples of Fresnel diffraction, 3.3.2 MATLAB example: the Cornu Spiral, 3.3.3 MATLAB example: Fresnel diffraction of a square aperture, 3.3.4 Fraunhofer diffraction and examples, 3.3.5 MATLAB example: Fraunhofer diffraction of a square aperture. 3.4 Fourier Transforming Property of Ideal Lenses. 3.5 Gaussian Beam Optics and MATLAB Example - 3.5.1 q-transformation of Gaussian beams, 3.5.2 Focusing of a Gaussian beam, 3.5.3 MATLAB example: propagation of a Gaussian beam.
Chapter 4: Optical Propagation in Inhomogeneous Media. 4.1 Introduction: The Paraxial Wave Equation. 4.2 The Split-step Beam Propagation Method. 4.3 Wave Propagation in a Linear Inhomogeneous Medium - 4.3.1 Optical propagation through graded index fiber, 4.3.2 Optical propagation through step index fiber, 4.3.3 Acousto-optic diffraction. 4.4 Wave Propagation in a Nonlinear Inhomogeneous Medium - 4.4.1 Kerr Media, 4.4.2 Photorefractive Media.
Chapter 5: Single and Double Lens Image Processing Systems. 5.1 Impulse Response and Single Lens Imaging System. 5.2 Two-Lens Image Processing System. 5.3 Examples of Coherent Image Processing. 5.4 Incoherent Image Processing and Optical Transfer Function. 5.5 MATLAB Examples of Optical Image Processing - 5.5.1 Coherent lowpass filtering, 5.5.2 Coherent bandpass filtering, 5.5.3 Incoherent spatial filtering.
Chapter 6: Holography and Complex Spatial Filtering. 6.1 Characteristics of Recording Devices. 6.2 The Principle of Holography. 6.3 Construction of Practical Holograms. 6.4 Reconstruction of Practical Holograms and Complex Filtering. 6.5 Holographic Magnification. 6.6 Ray Theory of Holograms: Construction and Reconstruction.
Chapter 7: Contemporary Topics in Optical Image Processing. 7.1 Theory of Optical Heterodyne Scanning - 7.1.1 Bipolar incoherent image processing, 7.1.2 Optical scanning holography. 7.2 Acousto-Optic Image Processing - 7.2.1 Experimental and numerical simulations of 1-D image processing using one acousto-optic cell, 7.2.2 Improvement with two cascaded acousto-optic cells, 7.2.3 Two-dimensional processing and four-corner edge enhancement. 7.3 Photorefractive Image Processing - 7.3.1 Edge enhancement, 7.3.2 Image broadcasting, 7.3.3 All-optical joint transform edge-enhanced correlation Dynamic Holography for Phase Distortion Correction of Images.
Subject Index.
Product details
Product details
- Edition: 1
- Latest edition
- Published: April 18, 2001
- Language: English
About the authors
About the authors
TP
T.-C. Poon
PB
Partha P. Banerjee
Dr. Partha P. Banerjee is a Professor in the Department of Electro-Optics and Photonics (EOP) at the University of Dayton, USA, where he served as Director and later Chair of the department from 2012 to 2020. He also served as Chair of the Department of Electrical and Computer Engineering from 2000 to 2005. Prior to joining the University of Dayton, he was a faculty member at the University of Alabama in Huntsville from 1991 to 2000 and at Syracuse University from 1984 to 1991.
His research interests include digital and dynamic holography, photorefractive materials, metamaterials, nonlinear optics, and optical trapping.
At the University of Dayton, Dr. Banerjee established the Holography and Metamaterials (HaM) Laboratory, where he currently leads the research group.