PDF ISBN: 9781510607958 | Print ISBN: 9780819423771
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This textbook addresses imaging from the system engineering point of view, examining advantages and disadvantages of imaging in various spectral regions. Focuses on imaging principles and system concepts, rather than devices. Intended as a senior-year undergraduate or graduate level engineering textbook. A solution manual is included.
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1.4.2 Reflection and Transmission Coefficients (Fields)
11.4.3 Reflection and Transmission Coefficients (Power)
1.4.4 Brewster and Critical Angles
1.5 Interfaces in Series
1.6 The Eikonal Equation
1.7 The Ray Equation
References
Excercises
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2.1.1 Application to Imaging: Thin Lens Formula and Magnification
2.2 Paraxial Rays
2.3 The Thin Lens
2.3.1 The Shape of a Thin Lens Surface for Perfect Focusing
2.3.2 Phase Implications
2.3.3 Spherical Surfaces
2.4 Description of a Thins Lens
2.5 Physical Explanation
2.6 Image Formulation by a Thin Lens via Ray Tracing
2.6.1 The Thin Lens Formula
2.6.2 Lateral Magnification
2.6.3 Longitudinal or Axial Magnification
2.7 Two-Lens Combination
2.8 Thick Lens
2.9 Virtual Images and Angular Magnification
2.9.1 Angular Magnification
2.10 Selfoc Lenses
2.11 Mirrors
2.12 Transmitting and Receiving Optics
2.13 Matrix Optics
2.14 Aberrations
References
Exercises
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5.4 Electronic Signal-to-Noise Ratio: Detection Versus Imaging
5.4.1 Detection
5.4.2 Imaging
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6.1.6 Effects of Integration of Signal-to-Noise Ratio
6.2 Detectors
6.2.1 Quantum Detectors
6.2.1.1 Electron Tubes
6.2.1.2 Semiconductor Detectors
6.2.2 Thermal Detectors
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7.1 The Fundamental Equation of Scalar Diffraction
7.2 Fraunhofer and Fresnel Diffraction
7.3 Diffraction Through a Lens
7.4 Fourier Transforms in Polar Coordinates
7.5 Array Theorem
7.6 Optical Computing
7.7 Van der Lugt Filter
7.8 Holography
7.9 Coherence
7.9.1 The Van Cittert-Zernike Theorem
7.9.2 Coherence Diameter
7.9.3 Measurement of Diameters of Extended Sources
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8.2 Optical Transfer Function for Incoherent Imaging
8.3 Optical Transfer Function for Diffraction-Limited Incoherent Imaging
8.4 Slit Aperture
8.5 Circular Aperture
8.6 Coherence and Linearity
8.6.1 Incoherent Illumination
8.6.2 Coherent Illumination
8.7 Resolution of Two Points: Coherent Versus Incoherent Imaging
8.8 Image Quality in the Spatial-Frequency Domain
8.9 System Properties of Spread Functions and Optical Transfer Functions
8.10 Cascade Properties of Optical Transfer Functions
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9.7.1 Point Spread Function: Dependence on Pixel Size
9.7.2 Edge Response
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12.2 The Spectral Response of the Human Visual System
12.3 Brightness Constancy
12.4 Visual Acuity
12.5 MTF of the Human Visual System
12.6 Threshold Contrast Curve
12.7 Moving Images
12.8 Nearsightedness and Farsightedness
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14.6 Target Acquisition in the Presence of Vibrations
14.7 Conclusions
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15.4.1 Fluctuations in Refractive Index: Power Spectral Density
15.4.2 Fluctuations in Refractive Index: Structure Function
15.4.3 Path-Integrated Measurements of C
15.4.4 Environmental Effects on C
15.4.5 Prediction of C
15.5 Conclusions
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17.7 Imaging Through the Atmosphere: Comparison of Turbulence to Aerosol MTFs
17.8 Techniques for Correction of Aerosol MTF Blur
17.8.1 Active Imaging
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18.5 Atmospheric Wiener Filter for Correction of Atmospheric Degradation
18.5.1 Fractal Model
18.5.2 Scene Representation by a Wide Sense Markovian Model
18.5.3 Atmospheric Wiener Filter
18.6 Maximum Entropy Restoration
18.7 Modified Backus-Gilbert Filter
18.8 Resolution Improvement via Image Restoration
18.9 Contrast Enhancement
18.10 Noise Reduction
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19.2.4 Incorporating Atmospheric Effects into Target Acquisition Modeling
19.2.5 Angular Magnification Results
19.2.6 Image Restoration Effects on Target Acquisition
19.2.7 Conclusions
19.3 Atmospheric Effects on Noise-Limited Target Acquisition
19.3.1 Examples
19.3.2 Conclusions
References
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