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Next-generation PONs: A performance investigation of candidate architectures for next-generation access stage 1.

, , , , and . IEEE Commun. Mag., 47 (8): 49-57 (2009)

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Bandwidth-Efficient Synchronous Transmission of I/Q Waveforms and Control Words via Frequency-Division Multiplexing for Mobile Fronthaul., , and . GLOBECOM, page 1-6. IEEE, (2015)Bandwidth Reduction via Localized Peer-to-Peer (P2P) Video., , and . Int. J. Digit. Multim. Broadcast., (2010)Dynamic spectrum managed passive optical networks., , and . IEEE Commun. Mag., 49 (11): 86-93 (2011)Next-generation PON-part II: Candidate systems for next-generation PON., , , and . IEEE Commun. Mag., 47 (11): 50-57 (2009)Wavelength management in time and wavelength division multiplexed passive optical networks (TWDM-PONs)., , and . GLOBECOM, page 2971-2976. IEEE, (2012)10 Gbit/s Delay Modulation Using a Directly Modulated DFB Laser for a TWDM PON With Converged Services Invited., , and . JOCN, 7 (1): A87-A96 (2015)Experimental demonstration of high-throughput low-latency mobile fronthaul supporting 48 20-MHz LTE signals with 59-Gb/s CPRI-equivalent rate and 2-μs processing latency., , , and . ECOC, page 1-3. IEEE, (2015)Demonstration of a FPGA-based CPRI-over-ethernet real-time system achieving 120 Gb/s throughput over a 10-km SSMF link with 16 bi-directional 10GE connections., , , and . OFC, page 1-3. IEEE, (2017)Flex-frame timing-critical passive optical networks for delay sensitive mobile and fixed access services., , , , and . OFC, page 1-3. IEEE, (2017)Experimental demonstration of sub-Nyquist sampling for bandwidth- and hardware-efficient mobile fronthaul supporting 128×128 MIMO with 100-MHz OFDM signals., , , , and . OFC, page 1-3. IEEE, (2016)