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    Optics Using MATLAB

    AvScott W. Teare

    Häftad, Engelska, 2017

    Del i serien Tutorial Texts

    733 kr

    Slutsåld

    Beskrivning

    Optics Using MATLAB® provides a functional overview of the development of MATLAB code that can be used to enhance and increase one’s understanding of optics though the use of visualization tools. The book ties a variety of optical topics to MATLAB programming activities and can act as a supplement to other textbooks or can stand alone. Part I focuses on a wide range of basic programming fundamentals using MATLAB and includes such topics as curve fitting, image processing, and file storage. Part II provides a review of selected topics in optics and demonstrates how these can be explored using MATLAB scripts. Part III discusses how to use MATLAB to improve the usability of custom programs through graphical user interfaces and incorporation of other programming languages. Those who need flexibility and special calculations in their optical design or optical engineering work will find value in the book’s explanations and examples of user-programmable software.

    Produktinformation

    • Utgivningsdatum:2017-03-30
    • Mått:152 x 229 x undefined mm
    • Vikt:450 g
    • Format:Häftad
    • Språk:Engelska
    • Serie:Tutorial Texts
    • Antal sidor:246
    • Förlag:SPIE Press
    • ISBN:9781510608313

    Utforska kategorier

    • Elektronik och kommunikationer inom Naturvetenskap och teknik
    • Övrig teknik och tillämpad vetenskap inom Naturvetenskap och teknik
    • Programmeringsböcker inom Data och IT

    Innehållsförteckning

    • PrefaceAcronyms and AbbreviationsI MATLAB® Overview1 Introduction to MATLAB1.1 Getting Started with MATLAB1.2 Anatomy of a Program1.3 MATLAB Basic Functions and Operators1.4 Simple Calculations using MATLAB1.5 Vectorization and Matrix Indexing1.6 MATLAB Scripts1.7 MATLAB Functions1.8 Practice ProblemsReferences2 Plotting Mathematical Functions2.1 Mathematical Functions2.2 Visualization Functions: plot()2.3 Visualization Functions: histogram()2.4 Visualization Functions: 3D plotting2.5 Visualization Functions: contour() and quiver()2.6 Visualization Functions: images2.7 Practice ProblemsReferences3 Linear Amplifiers3.1 Polynomial Synthesis and Curve Fitting3.2 Polynomial Curve Fitting3.3 Signal-to-Noise Ratio3.4 Best Fit through the Data3.5 Best Fit to the Data3.6 Practice ProblemsReferences4 Data and Data Files4.1 Text versus Binary4.2 Writing Data Files4.3 Generating Data to be Saved4.4 Reading and Using Data Files4.5 Binary MAT Files4.6 Binary Image Files4.7 Practice ProblemReferences5 Images and Image Processing5.1 Image Files5.2 Image Commands5.3 Image Size and Superpixels5.4 Color Models and Conversions5.5 Spatial Filtering5.6 Practice ProblemsReferencesII OPTICS APPLICATIONS6 Ray Optics and Glass Equations6.1 Lensmaker's Equation and Spot Size6.2 Paraxial Region and Snell's Law6.3 Matrix Approach to Ray Tracing6.4 Ray Tracing through Multiple Elements6.5 Glass Equations6.6 Practice ProblemsReferences7 Spectrometers7.1 Dispersion in a Material7.2 Prisms7.3 Gratings7.4 Blazed Gratings7.5 Grisms7.6 Spectrometers and Monochrometers7.7 Practice ProblemsReferences8 Modulation Transfer Function and Contrast8.1 Image Quality8.2 Spatial Frequency and Modulation Transfer Function8.3 Point Spread Function8.4 MTF Measurement8.5 Effect of Annular Optics on MTF8.6 Image Transformation8.7 Practice ProblemsReferences9 Diffraction and Interference9.1 Interference9.2 Coherence9.3 Diffraction9.4 Young's Double-Slit Experiment9.5 Michelson Stellar Interferometer9.6 Mach–Zhender Interferometer9.7 Practice ProblemsReferences10 Zernike Polynomials and Wavefronts10.1 Wavefront Sensing in Adaptive Optics10.2 Wavefront Aberrations10.3 Zernike Polynomials10.4 Wavefront Construction10.5 Practice ProblemsReferencesFurther Reading11 Polarizations11.1 Polarized Light11.2 Double Refraction11.3 The Jones Calculus: Polarizers11.4 The Jones Calculus: Phase Retarders11.5 The Mueller Calculus11.6 Jones-to-Mueller Transformation11.7 Practice ProblemsReferences12 Optical Interference Filters12.1 Transfer Matrix for Thin Films12.2 Antireflection Systems12.3 High-Reflectance Systems12.4 Bandpass Filters12.5 Composite Filters12.6 Index of Refraction Calculation12.7 Practice ProblemsReferences13 Metals and Complex Index of Refraction13.1 Physical Vapor Deposition13.2 Index of Refraction in Absorbing Media13.3 Reflectivity of Metal Films13.4 Absorption and Transmission in Metal Films13.5 Impedance Matching13.6 Practice ProblemsReferencesIII More with MATLAB14 User Interfaces14.1 Simple User Interfaces14.2 Built-In Interfaces14.3 Graphical User Interfaces: GUIDE14.4 Applications: App Designer14.5 Zernike GUI Project14.6 Practice ProblemsReferences15 Completing and Packaging Programs15.1 P-Code15.2 Publishing15.3 Version Control15.4 Interfacing with other Programming Languages15.5 Object-Oriented Programming and MoreReferencesBibliographyIndex