Title :
Binary faster than Nyquist optical transmission via non-uniform power allocation
Author :
Kim, Yong Jin Daniel ; Bajcsy, Jan
Author_Institution :
Dept. of Electr. & Comput. Eng., McGill Univ., Montréal, QC, Canada
Abstract :
Recently, faster-than-Nyquist (FTN) signaling (or also sub-Nyquist filtering) has been proposed as a means to increase the spectral efficiency of the next generation long-haul optical fiber transmission systems. In the high spectral efficiency regime, however, the severe intersymbol interference (ISI) inherent to the FTN signaling poses a significant challenge in implementing a practical FTN system. In this work, we propose to use non-uniform power allocation at the optical FTN transmitter and establish its optimality in the achievable capacity. Consequently, we utilize the non-uniform power allocation to design a low-complexity FTN receiver that can operate close to the channel capacity limit. Presented simulation results also illustrate that the proposed optical FTN signaling transceiver with non-uniform power allocation allows supporting very high spectral efficiencies.
Keywords :
intersymbol interference; optical receivers; optical transceivers; optical transmitters; telecommunication channels; telecommunication signalling; FTN system; Nyquist optical transmission; channel capacity limit; faster-than-Nyquist signaling; high spectral efficiency regime; intersymbol interference; low-complexity FTN receiver; next generation long-haul optical fiber transmission systems; nonuniform power allocation; optical FTN signaling transceiver; optical FTN transmitter; spectral efficiency; subNyquist filtering; system; Optical filters; Optical modulation; Optical pulses; Optical receivers; Optical transmitters; Resource management; Faster-than-Nyquist signaling; multistage decoding; non-uniform power allocation; optical fiber communications; spectral efficiency;
Conference_Titel :
Information Theory (CWIT), 2013 13th Canadian Workshop on
Conference_Location :
Toronto, ON
DOI :
10.1109/CWIT.2013.6621616