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Data transmission through up to 74.8 km of hollow-core fiber with coherent and direct-detect transceivers., , , , , , , , , and 10 other author(s). ECOC, page 1-3. IEEE, (2015)X-ray tomography for structural analysis of microstructured optical fibres and preforms., , , , , , , , , and 5 other author(s). ECOC, page 1-3. IEEE, (2014)High capacity, low latency data transmission using hollow core-photonic bandgap fibers., , , , , , , , , and 6 other author(s). OFC, page 1-3. IEEE, (2016)Mitigating spectral leakage and sampling errors in spatial and spectral (S2) imaging., , , , , , , and . OFC, page 1-3. IEEE, (2015)Towards real-time mode content characterization of multimode fibers., , , , , , , and . ECOC, page 1-3. IEEE, (2014)Photonic bandgap fibres for low-latency data transmission., , , , , , , , , and 5 other author(s). ECOC, page 1-3. IEEE, (2015)High dynamic range technique for discrete and distributed scattering loss measurement in microstructured optical fibres., , , , , , , , , and 2 other author(s). ECOC, page 1-3. IEEE, (2015)Demonstration of an 11km hollow core photonic bandgap fiber for broadband low-latency data transmission., , , , , , , , , and 4 other author(s). OFC, page 1-3. IEEE, (2015)First demonstration of a broadband 37-cell hollow core photonic bandgap fiber and its application to high capacity mode division multiplexing., , , , , , , , , and 8 other author(s). OFC/NFOEC, page 1-3. IEEE, (2013)Linear microcircuit fault modeling and detection., , , and . VTS, page 59-61. IEEE Computer Society, (1991)