TY - JOUR
T1 - Experimental demonstration of wavelength-division-multiplexing passive optical network employing probabilistic shaping 4-level pulse amplitude modulation
AU - Xiao, Qinghua
AU - He, Hailian
AU - Chen, Yifan
AU - Wu, Xinxing
AU - You, Jialin
AU - Zeng, Youxu
AU - Dong, Ze
N1 - Publisher Copyright:
© 2019 Society of Photo-Optical Instrumentation Engineers (SPIE).
PY - 2019/9/1
Y1 - 2019/9/1
N2 - A 5 × 25-Gbaud wavelength-division-multiplexing passive optical network (WDM-PON) employing probabilistic shaping 4-level pulse amplitude modulation (PS-PAM4) with direct detection is proposed and experimentally demonstrated. Each optical carrier at the optical line terminal (OLT) carries a 25-Gbaud PS-PAM4 signal based on Maxwell-Boltzmann distribution. By employing PS-PAM4, the receiver power sensitivity (RPS) and fiber nonlinear effect tolerance of the system can be significantly improved and enhanced compared with the unshaped one, which can provide abundant system loss budget for the legacy optical distribution networks. The experimental results show that, compared with the WDM-PON employing uniform PAM4, the superior RPS of 1.44 dB and the fiber nonlinear effect tolerance improvement of 3.07 dB over 20-km standard single-mode fiber transmission are obtained for the proposed system. In addition, the system performance by introducing a blind adaptive pre-equalization based on the joint applications of constant modulus algorithm and decision-directed least-mean-square error algorithm, which can accurately compensate for the signal high-frequency loss caused by the electro-optical components, such as digital-To-Analog converter, optical modulators, and electrical drivers at the OLT, is also experimentally investigated.
AB - A 5 × 25-Gbaud wavelength-division-multiplexing passive optical network (WDM-PON) employing probabilistic shaping 4-level pulse amplitude modulation (PS-PAM4) with direct detection is proposed and experimentally demonstrated. Each optical carrier at the optical line terminal (OLT) carries a 25-Gbaud PS-PAM4 signal based on Maxwell-Boltzmann distribution. By employing PS-PAM4, the receiver power sensitivity (RPS) and fiber nonlinear effect tolerance of the system can be significantly improved and enhanced compared with the unshaped one, which can provide abundant system loss budget for the legacy optical distribution networks. The experimental results show that, compared with the WDM-PON employing uniform PAM4, the superior RPS of 1.44 dB and the fiber nonlinear effect tolerance improvement of 3.07 dB over 20-km standard single-mode fiber transmission are obtained for the proposed system. In addition, the system performance by introducing a blind adaptive pre-equalization based on the joint applications of constant modulus algorithm and decision-directed least-mean-square error algorithm, which can accurately compensate for the signal high-frequency loss caused by the electro-optical components, such as digital-To-Analog converter, optical modulators, and electrical drivers at the OLT, is also experimentally investigated.
KW - 4-level pulse amplitude modulation
KW - blind adaptive pre-equalization
KW - loss budget
KW - probabilistic shaping
KW - wavelength-division-multiplexing passive optical network
UR - http://www.scopus.com/inward/record.url?scp=85073067961&partnerID=8YFLogxK
U2 - 10.1117/1.OE.58.9.096111
DO - 10.1117/1.OE.58.9.096111
M3 - Article
AN - SCOPUS:85073067961
SN - 0091-3286
VL - 58
JO - Optical Engineering
JF - Optical Engineering
IS - 9
M1 - 096111
ER -