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Field trial transmission of 1.5 Tb/s superchannel over 875 km, with 250 Gb/s real-time transponders and EDFA amplification.

, , , , , , , , , , and . OFC, page 1-3. IEEE, (2017)

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Suitability of 130 Gb/s and 260 Gb/s real time transponders for advanced A/D stages in wavelength cross-connects., , , , , , and . OFC, page 1-3. IEEE, (2014)Influence of the Maturity of Technology on the Benefit of 75 GHz-spaced 64 GBaud Channels in WDM Elastic Networks., , and . OFC, page 1-3. IEEE, (2018)Benefit of pure N×M WSS for optical multiflow application., and . OFC/NFOEC, page 1-3. IEEE, (2013)20.8 Tb/s Transmission over 1200 km Using G654E Fibers, Hybrid Amplification and 400 Gb/s CFP2-DCO Interfaces., , , , , , , , , and . OFC, page 1-3. IEEE, (2021)How Efficient Can Routing of Individual 37.5 GHz-Spaced 100 Gb/s 33 GBaud Carriers be in WDM Mesh Core Networks?, , , and . ECOC, page 1-3. IEEE, (2018)Benchmarking of Opaque Versus Transparent Core WDM Networks Featuring 400ZR+ QSFP-DD or CFP2 Interfaces., , and . ECOC, page 1-4. IEEE, (2020)Real-time 200 Gb/s 8-QAM transmission over a 1800-km long SSMF-based system using add/drop 50 GHz-wide filters., , , , , , , , and . OFC, page 1-3. IEEE, (2016)Impact of crosstalk on 800 Gb/s 90 GBaud 64QAM channel., , , , , and . OFC, page 1-3. IEEE, (2021)Is There a Most Appropriate Channel Spacing in WDM Networks When Individually Routing 67 GBaud Carriers?, and . OFC, page 1-3. IEEE, (2020)Simple self-optimization of WDM networks based on probabilistic constellation shaping Invited., , , , , , , , , and 6 other author(s). JOCN, 12 (1): A82-A94 (2020)