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Chand, and F. Effenberger, \u201cExperimental demonstration of high-throughput low-latency mobile fronthaul supporting 48 20-MHz LTE signals with 59-Gb\/s CPRI-Equivalent rate and 2-ms processing latency,\u201d European Conference on Optical Communication (ECOC2015), We.4.4.3, 2015. 10.1109\/ecoc.2015.7342015","DOI":"10.1109\/ECOC.2015.7342015"},{"key":"13","doi-asserted-by":"publisher","unstructured":"[13] F. Effenberger and X. Liu, \u201cPower-efficient method for IM-DD optical transmission of multiple OFDM signals,\u201d Opt. Express., vol.23, no.10, pp.13571-13579, 2015. 10.1364\/oe.23.013571","DOI":"10.1364\/OE.23.013571"},{"key":"14","doi-asserted-by":"publisher","unstructured":"[14] C. Han, M. Sung, S.H. Cho, H.S. Chung, S.M. Kim, and J.H. Lee, \u201cPerformance improvement of multi-IFoF-based mobile fronthaul using dispersion-induced distortion mitigation with IF optimization,\u201d J. Lightwave Technol., vol.34, no.20, pp.4772-4778, 2016. 10.1109\/jlt.2016.2561297","DOI":"10.1109\/JLT.2016.2561297"},{"key":"15","doi-asserted-by":"crossref","unstructured":"[15] M. Sung, C. Han, S.H. Cho, H.S. Chung, S.M. Kim, and J.H. Lee, \u201cBandwidth efficient transmission of 96 LTE-A signals with 118-Gb\/s CPRI-equivalent rate using 2-GHz frequency span and intermixing mitigation,\u201d International Conference on Information and Communication Technology Convergence (ICTC2016), pp.775-777, 2016. 10.1109\/ictc.2016.7763293","DOI":"10.1109\/ICTC.2016.7763293"},{"key":"16","unstructured":"[16] B.G. Kim, S.R. Bae, H. Kim, and Y.C. Chung, \u201cMobile fronthaul optical link for LTE-A system using directly-modulated 1.5-\u00b5m VCSEL,\u201d OptoElectronics and Communications Conference (OECC2016), TuA2-3, 2016."},{"key":"17","unstructured":"[17] B.G. Kim, K. Tanaka, T. Kobayashi, A. Bekkali, K. Nishimura, H. Kim, M. Suzuki, and Y.C. 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