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Experimental demonstration of capacity increase and rate-adaptation by probabilistically shaped 64-QAM.

, , , , , and . ECOC, page 1-3. IEEE, (2015)

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Spectral pre-distortion with FPGA and DAC at 448-Gb/s DP-16QAM improving nonlinear threshold power., , , , , and . OFC/NFOEC, page 1-3. IEEE, (2013)1-Tbit/s dual-carrier DP 64QAM transmission at 64Gbaud with 40% overhead soft-FEC over 320km SSMF., , , , , and . OFC/NFOEC, page 1-3. IEEE, (2013)800 Gbit/s dual channel transmitter with 1.056 Tbit/s gross rate., , , , , , , , and . OFC, page 1-3. IEEE, (2017)Experiments and Shaping Tradeoffs for Long-Haul Transmissions., , , , , , and . CoRR, (2018)Performance and advantages of 100 Gb/s QPSK/8QAM hybrid modulation formats., , , and . OFC, page 1-3. IEEE, (2015)Experimental demonstration of capacity increase and rate-adaptation by probabilistically shaped 64-QAM., , , , , and . ECOC, page 1-3. IEEE, (2015)Spectrally Efficient Probabilistically Shaped Square 64QAM to 256 QAM., , , , and . ECOC, page 1-3. IEEE, (2017)Hybrid modulation formats outperforming 16QAM and 8QAM in transmission distance and filtering with cascaded WSS., , , , and . OFC, page 1-3. IEEE, (2015)Single carrier 1.2 Tbit/s transmission over 300 km with PM-64 QAM at 100 GBaud., , , , , , , , , and 1 other author(s). OFC, page 1-3. IEEE, (2017)Transmission of 4-D modulation formats at 28-Gbaud., , , , and . OFC/NFOEC, page 1-3. IEEE, (2013)