• DocumentCode
    1426543
  • Title

    Capacity Limits of Optical Fiber Networks

  • Author

    Essiambre, René-Jean ; Kramer, Gerhard ; Winzer, Peter J. ; Foschini, Gerard J. ; Goebel, Bernhard

  • Author_Institution
    Bell Labs., Alcatel-Lucent, Holmdel, NJ, USA
  • Volume
    28
  • Issue
    4
  • fYear
    2010
  • Firstpage
    662
  • Lastpage
    701
  • Abstract
    We describe a method to estimate the capacity limit of fiber-optic communication systems (or ¿fiber channels¿) based on information theory. This paper is divided into two parts. Part 1 reviews fundamental concepts of digital communications and information theory. We treat digitization and modulation followed by information theory for channels both without and with memory. We provide explicit relationships between the commonly used signal-to-noise ratio and the optical signal-to-noise ratio. We further evaluate the performance of modulation constellations such as quadrature-amplitude modulation, combinations of amplitude-shift keying and phase-shift keying, exotic constellations, and concentric rings for an additive white Gaussian noise channel using coherent detection. Part 2 is devoted specifically to the "fiber channel.\´\´ We review the physical phenomena present in transmission over optical fiber networks, including sources of noise, the need for optical filtering in optically-routed networks, and, most critically, the presence of fiber Kerr nonlinearity. We describe various transmission scenarios and impairment mitigation techniques, and define a fiber channel deemed to be the most relevant for communication over optically-routed networks. We proceed to evaluate a capacity limit estimate for this fiber channel using ring constellations. Several scenarios are considered, including uniform and optimized ring constellations, different fiber dispersion maps, and varying transmission distances. We further present evidences that point to the physical origin of the fiber capacity limitations and provide a comparison of recent record experiments with our capacity limit estimation.
  • Keywords
    AWGN; amplitude shift keying; channel capacity; information theory; optical fibre communication; optical fibre networks; phase shift keying; quadrature amplitude modulation; telecommunication network routing; additive white Gaussian noise channel; amplitude-shift keying; capacity limits; coherent detection; concentric rings; digital communications; exotic constellations; fiber Kerr nonlinearity; fiber channels; fiber-optic communication systems; information theory; optical fiber networks; optical filtering; optical signal-to-noise ratio; optically-routed networks; phase-shift keying; quadrature-amplitude modulation; ring constellations; Amplitude modulation; Communication systems; Information theory; Optical fiber communication; Optical fiber networks; Optical fiber theory; Optical filters; Optical noise; Phase modulation; Signal to noise ratio; , Amplified spontaneous emission; Brillouin scattering; Raman scattering; channel coding; detection; fiber nonlinearity; information rates; information theory; modulation; noise; optical networks;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2009.2039464
  • Filename
    5420239