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      KCI등재 SCOPUS

      Dispersion-Managed Link Configured with Repetitively Shaped Dispersion Maps and Embedded with Mid-span Spectral Inversion

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      https://www.riss.kr/link?id=A108394607

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      다국어 초록 (Multilingual Abstract)

      A dispersion map was proposed to improve the compensation effect of a distorted WDM (wavelength division multiplexed) channel in a dispersion-managed link coupled with optical phase conjugation. The dispersion map is an origin-symmetric structure arou...

      A dispersion map was proposed to improve the compensation effect of a distorted WDM (wavelength division multiplexed) channel in a dispersion-managed link coupled with optical phase conjugation. The dispersion map is an origin-symmetric structure around the optical phase conjugator in the middle of the transmission path. In addition, the dispersion map has a form in which a constant dispersion accumulation pattern is repeated regularly. Through simulation, we confirmed that the application of the origin-symmetric dispersion map with a repetitively shaped configuration was more effective in compensating for the distorted WDM channel than in the dispersion-managed link with a conventional dispersion map. In addition, we confirmed that the compensation effect could be increased when the cumulative dispersion distribution of the origin-symmetric distribution map had a positive value in the first half section and a negative value in the second half section. Further, we observed that as the number of repeated dispersion accumulation patterns increased, the residual dispersion per span should also be increased.

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      참고문헌 (Reference) 논문관계도

      1 M. D. Pelusi, "WDM signal all-optical precompensation of kerr nonlinearity in dispersion-managed fibers" 25 (25): 71-74, 2013

      2 P. Minzioni, "Unifying theory of compensation techniques for intrachannel nonlinear effects" 13 (13): 8460-8468, 2005

      3 "Spectral grids for WDM applications: DWDM frequency grid, ITU Recommendation G.694.1"

      4 R. I. Killey, "Reduction of intrachannel nonlinear distortion in 40-Gb/s-based WDM transmission over standard fiber" 12 (12): 1624-1626, 2000

      5 F. M. Mousavi, "Performance limit of long-distance WDM dispersion-managed transmission system using higher order dispersion compensation fibers" 11 (11): 608-610, 1999

      6 A. Chowdhury, "Optical phase conjugation and pseudolinear transmission" 29 (29): 1105-1107, 2004

      7 G. P. Agrawal, "Nonlinear Fiber Optics" Academic Press 2001

      8 M. Morshed, "Mid-span spectral inversion for coherent optical OFDM systems : Fundamental limits to performance" 31 (31): 58-66, 2013

      9 T. K-. Akino, "High-order statistical equalizer for nonlinearity compensation in dispersion-managed coherent optical communications" 20 (20): 15769-15780, 2012

      10 H. Hu, "Fiber nonlinearity mitigation of WDM-PDM QPSK/16-QAM signals using fiber-optic parametric amplifiers based multiple optical phase conjugations" 25 (25): 1618-1628, 2017

      1 M. D. Pelusi, "WDM signal all-optical precompensation of kerr nonlinearity in dispersion-managed fibers" 25 (25): 71-74, 2013

      2 P. Minzioni, "Unifying theory of compensation techniques for intrachannel nonlinear effects" 13 (13): 8460-8468, 2005

      3 "Spectral grids for WDM applications: DWDM frequency grid, ITU Recommendation G.694.1"

      4 R. I. Killey, "Reduction of intrachannel nonlinear distortion in 40-Gb/s-based WDM transmission over standard fiber" 12 (12): 1624-1626, 2000

      5 F. M. Mousavi, "Performance limit of long-distance WDM dispersion-managed transmission system using higher order dispersion compensation fibers" 11 (11): 608-610, 1999

      6 A. Chowdhury, "Optical phase conjugation and pseudolinear transmission" 29 (29): 1105-1107, 2004

      7 G. P. Agrawal, "Nonlinear Fiber Optics" Academic Press 2001

      8 M. Morshed, "Mid-span spectral inversion for coherent optical OFDM systems : Fundamental limits to performance" 31 (31): 58-66, 2013

      9 T. K-. Akino, "High-order statistical equalizer for nonlinearity compensation in dispersion-managed coherent optical communications" 20 (20): 15769-15780, 2012

      10 H. Hu, "Fiber nonlinearity mitigation of WDM-PDM QPSK/16-QAM signals using fiber-optic parametric amplifiers based multiple optical phase conjugations" 25 (25): 1618-1628, 2017

      11 A. Yariv, "Compensation for channel dispersion by nonlinear optical phase conjugation" 4 (4): 52-54, 1979

      12 N. Kikuchi, "Analytical evaluation technique of selfphase modulation effect on the performance of cascaded optical amplifier systems" 13 (13): 868-878, 1995

      13 T. Almeida, "A fast method for launch parameter optimization in longhaul dispersion-managed optical links" 33 (33): 4303-4310, 2015

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