• DocumentCode
    934972
  • Title

    Parametric-gain approach to the analysis of single-channel DPSK/DQPSK systems with nonlinear phase noise

  • Author

    Serena, Paolo ; Orlandini, Alessandra ; Bononi, Alberto

  • Author_Institution
    Dipt. di Ingegneria dell´´Informazione, Univ. degli Studi di Parma, Italy
  • Volume
    24
  • Issue
    5
  • fYear
    2006
  • fDate
    5/1/2006 12:00:00 AM
  • Firstpage
    2026
  • Lastpage
    2037
  • Abstract
    This paper presents a novel method based on a parametric gain (PG) approach to study the impact of nonlinear phase noise in single-channel dispersion-managed differentially phase-modulated systems. This paper first shows through Monte Carlo simulations that the received amplified spontaneous emission (ASE) noise statistics, before photodetection, can be reasonably assumed to be Gaussian, provided a sufficiently large chromatic dispersion is present in the transmission fiber. This paper then evaluates in a closed form the ASE power spectral density by linearizing the interaction between a signal and a noise in the limit of a distributed system. Even if the received ASE is nonstationary in time due to pulse shape and modulation, this paper shows that it can be approximated by an equivalent stationary process, as if the signal were continuous wave (CW). This paper then applies the CW-equivalent ASE model to bit-error-rate evaluation by using an extension of a known Karhunen-Loe´ve method for quadratic detectors in colored Gaussian noise. Such a method avoids calculation of the nonlinear phase statistics and accounts for intersymbol interference due to a nonlinear waveform distortion and optical and electrical postdetection filtering. This paper compares binary and quaternary schemes with both nonreturn- and return-to-zero (RZ) pulses for various values of nonlinear phases and bit rates. The results confirm that PG deeply affects the system performance, especially with RZ pulses and with quaternary schemes. This paper also compares ON-OFF keying (OOK) differential phase-shifted keying (DPSK) systems, showing that the initial 3-dB advantage of DPSK is lost for increasing nonlinear phases because DPSK is less robust to PG than OOK.
  • Keywords
    Gaussian noise; Karhunen-Loeve transforms; Monte Carlo methods; amplitude shift keying; differential phase shift keying; error statistics; intersymbol interference; nonlinear optics; optical distortion; optical fibre communication; optical fibre dispersion; optical modulation; optical noise; optical pulse shaping; phase noise; photodetectors; statistical analysis; superradiance; Karhunen-Loeve method; Monte Carlo simulations; ON-OFF keying; RZ pulses; amplified spontaneous emission; binary schemes; bit-error-rate evaluation; chromatic dispersion; colored Gaussian noise; continuous wave signal; differential phase modulation; differential phase-shifted keying; dispersion management; distributed system limit; electrical postdetection filtering; equivalent ASE model; intersymbol interference; noise statistics; nonlinear phase noise; nonlinear phase statistics; nonlinear waveform distortion; nonreturn-to-zero pulses; optical modulation; optical postdetection filtering; optical pulse shape; parametric-gain approach; photodetection; quadratic detector; quaternary schemes; return-to-zero pulses; single-channel DPSK/DQPSK systems; transmission fiber; Differential quadrature phase shift keying; Gaussian noise; Optical distortion; Optical filters; Optical pulses; Parametric statistics; Phase noise; Pulse modulation; Spontaneous emission; Statistical distributions; Differential phase-shift keying (DPSK); Karhunen–LoÉve (KL) transforms; differential quadrature phase-shift keying (DQPSK); nonlinear phase noise; parametric gain (PG);
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2006.872686
  • Filename
    1632239