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Optical Communications from a Fourier Perspective

Fourier Theory and Optical Fiber Devices and Systems

Specificaties
Paperback, blz. | Engels
Elsevier Science | e druk, 2023
ISBN13: 9780443238000
Rubricering
Elsevier Science e druk, 2023 9780443238000
Verwachte levertijd ongeveer 9 werkdagen

Samenvatting

Optical Communications from a Fourier Perspective: Fourier Theory and Optical Fiber Devices and Systems covers Fourier theory and signal analysis over photonic components, including time lenses in optical communication. Sections cover wave propagation in optical waveguides based on Maxwell equations and the nonlinear Schrödinger equation. Optical Fourier transform in the form of time lens is covered, for example in modulation format conversion and spectrum magnification, and couplers and their use for optical discrete Fourier transformation are also discussed. Other important subjects are discussed such as shot noise, thermal noise and also the basics of four wave mixing in relation to time lenses. Detailed derivations and a deeper background for the chapters are provided in appendices where appropriate. Some of the theory is more generally applicable beyond optical communication and is of relevance also for communications engineering. The Fourier theory dimension of the book presents the relationship between Fourier series and Fourier integrals and also the related Laplace transform.

Specificaties

ISBN13:9780443238000
Taal:Engels
Bindwijze:Paperback

Inhoudsopgave

1. The Dirac delta function and Heaviside step function<br>2. Fourier series, Parseval's theorem, FFT and Cooley-Tukey algorithm<br>3. Fourier integrals and Fourier series<br>4. Properties of the Fourier transform and Heaviside's step function<br>5. Complex signal, complex envelope and Hilbert transform<br>6. Correlation functions, spectral density, Wiener-Khinchine theorem<br>7. Linear, time-invariant systems<br>8. Transfer matrices and frequency filters<br>9. Laplace transforms, transfer functions, Nyquist criterion<br>10. Maxwell's equations, optical waveguides and Poynting's vector<br>11. Pulse propagation in optical fibers<br>12. Split step Fourier method and nonlinear Schrodinger equation<br>13. Introduction to modulation formats<br>14. Required bandwidth for heterodyne and homodyne detection<br>15. Bandpass noise<br>16. Bit error rate<br>17. Pulse shaping using optical Fourier transform<br>18. Spectrum magnification<br>19. Optical Fourier transformation, dispersion compensation, jitter suppression<br>20. Regeneration of WDM phase-modulated signals<br>21. Time-space duality, dispersion and diffraction, time lens<br>22. Couplers and their use for optical DFT<br>23. Multicarrier modulation, OFDM, DFT, Nyquist modulation<br>24. Optical orthogonal frequency division modulation

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        Optical Communications from a Fourier Perspective