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Burst-mode CDR performance in long-reach high-split passive optical networks

Cedric Mélange (UGent) , Bart Baekelandt (UGent) , Johan Bauwelinck (UGent) , Peter Ossieur (UGent) , Tine De Ridder (UGent) , Xing-Zhi Qiu (UGent) and Jan Vandewege (UGent)
(2009) JOURNAL OF LIGHTWAVE TECHNOLOGY. 27(17). p.3837-3844
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Organization
Abstract
This paper compares two burst-mode clock and data recovery (BM-CDR) techniques suitable for bursty upstream data transmission, namely a gated voltage controlled oscillator (GVCO) and an oversampling clock phase alignment (CPA). Numeric models were deduced with timing jitter and duty cycle distortion (DCD) present in the received data. The performance of the two techniques are analyzed and compared especially in an optically amplified long-reach high-split PON (LR-PON) system. It is shown that an oversampling CPA exhibits a large DCD tolerance and better jitter rejection than a GVCO without line coding, resulting in high network efficiency while keeping fast bit synchronisation. This makes the oversampling CPA technique the best option for the proposed network.
Keywords
DISPERSION, CLOCK, optical signal detection, PON, Active circuits, optical receivers, optical fiber communication, DATA RECOVERY, SYSTEMS

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MLA
Mélange, Cedric et al. “Burst-mode CDR Performance in Long-reach High-split Passive Optical Networks.” JOURNAL OF LIGHTWAVE TECHNOLOGY 27.17 (2009): 3837–3844. Print.
APA
Mélange, C., Baekelandt, B., Bauwelinck, J., Ossieur, P., De Ridder, T., Qiu, X.-Z., & Vandewege, J. (2009). Burst-mode CDR performance in long-reach high-split passive optical networks. JOURNAL OF LIGHTWAVE TECHNOLOGY, 27(17), 3837–3844.
Chicago author-date
Mélange, Cedric, Bart Baekelandt, Johan Bauwelinck, Peter Ossieur, Tine De Ridder, Xing-Zhi Qiu, and Jan Vandewege. 2009. “Burst-mode CDR Performance in Long-reach High-split Passive Optical Networks.” Journal of Lightwave Technology 27 (17): 3837–3844.
Chicago author-date (all authors)
Mélange, Cedric, Bart Baekelandt, Johan Bauwelinck, Peter Ossieur, Tine De Ridder, Xing-Zhi Qiu, and Jan Vandewege. 2009. “Burst-mode CDR Performance in Long-reach High-split Passive Optical Networks.” Journal of Lightwave Technology 27 (17): 3837–3844.
Vancouver
1.
Mélange C, Baekelandt B, Bauwelinck J, Ossieur P, De Ridder T, Qiu X-Z, et al. Burst-mode CDR performance in long-reach high-split passive optical networks. JOURNAL OF LIGHTWAVE TECHNOLOGY. 2009;27(17):3837–44.
IEEE
[1]
C. Mélange et al., “Burst-mode CDR performance in long-reach high-split passive optical networks,” JOURNAL OF LIGHTWAVE TECHNOLOGY, vol. 27, no. 17, pp. 3837–3844, 2009.
@article{875065,
  abstract     = {This paper compares two burst-mode clock and data recovery (BM-CDR) techniques suitable for bursty upstream data transmission, namely a gated voltage controlled oscillator (GVCO) and an oversampling clock phase alignment (CPA). Numeric models were deduced with timing jitter and duty cycle distortion (DCD) present in the received data. The performance of the two techniques are analyzed and compared especially in an optically amplified long-reach high-split PON (LR-PON) system. It is shown that an oversampling CPA exhibits a large DCD tolerance and better jitter rejection than a GVCO without line coding, resulting in high network efficiency while keeping fast bit synchronisation. This makes the oversampling CPA technique the best option for the proposed network.},
  author       = {Mélange, Cedric and Baekelandt, Bart and Bauwelinck, Johan and Ossieur, Peter and De Ridder, Tine and Qiu, Xing-Zhi and Vandewege, Jan},
  issn         = {0733-8724},
  journal      = {JOURNAL OF LIGHTWAVE TECHNOLOGY},
  keywords     = {DISPERSION,CLOCK,optical signal detection,PON,Active circuits,optical receivers,optical fiber communication,DATA RECOVERY,SYSTEMS},
  language     = {eng},
  number       = {17},
  pages        = {3837--3844},
  title        = {Burst-mode CDR performance in long-reach high-split passive optical networks},
  url          = {http://dx.doi.org/10.1109/JLT.2009.2016354},
  volume       = {27},
  year         = {2009},
}

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