| Literature DB >> 35270961 |
Xiao Han1, Ivan B Djordjevic1.
Abstract
The growing data demands are pushing researchers to pay more attention to spectrally efficient modulation formats. The four-dimensional (4D) signal constellation modulation format has been investigated for metro networks' applications to achieve better power efficiency. To cope with such modulation formats, the requirement of better digital signal processing (DSP) is also increasing rapidly. More complicated DSPs bring us extra costs; thus, the DSP-free coherent receivers are also investigated because of the high-power consumption of conventional DSP-based receivers, but the transceivers upgrading also results in extra costs. In this invited paper we implement a 4-dimentional modulation format based on Slepian sequences. We applied LDPC coding and experimentally investigated the BER performance in a two-dimensional (2D) 40 km fiber link transmission and demonstrate that being error free is possible without employing the complicated DSP. We compared our proposed modulation scheme with regular 16QAM and found it outperforms 16QAM with DSP over back-to-back transmission by 3.8 dB improvement in OSNR when BER = 10-5, while over 40 km metro network communication link our proposed 4D modulation signals are still successfully transmitted, and the LDPC-coding still works properly with such a new transmission strategy. On the other hand, DSP-free transmission of LDPC-coded 16-QAM exhibits an early error floor phenomenon.Entities:
Keywords: 16QAM; 2D transmission; 4D modulation; DSP-free; Slepian sequence; metro network
Year: 2022 PMID: 35270961 PMCID: PMC8914958 DOI: 10.3390/s22051815
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Different orders of Slepian sequences with 32 samples/waveform used in experimental verification.
Figure 2Slepian sequences-based 4D LDPC-coded transmitter.
Figure 3Experimental setup for SS-based 16-4D LDPC coded modulation scheme. OADM: optical add-drop multiplexer emulator.
Figure 4The configuration of the correlation detector.
Figure 5The configuration of the DSP progress for 16QAM.
Figure 6Comparison of received and transmitted waveforms.
Figure 7BER performance over OSNR for 32 and 24 samples SS 4D modulation and regular 16QAM with and without DSP: (a) in the back-to-back configuration and (b) after 40 km SMF link transmission.