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5G R&D Achievements for High-Data-Rate and Low-Power-Consumption Radio Access Technologies with Higher-Frequency-Band and Wider-Bandwidth Massive MIMO.

, , , , , , , and . VTC Spring, page 1-5. IEEE, (2019)

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60 GHz OFDM experimental system employing decision-directed phase noise compensation., , , and . RWS, page 191-194. IEEE, (2012)Outdoor DL MU-MIMO and Inter Access Point Coordination Performance of Low-SHF-Band C-RAN Massive MIMO System for 5G., , , , , , , , and . VTC Spring, page 1-5. IEEE, (2018)A maximum likelihood OFDM receiver with smoothed FFT-window for large multipath delay difference over the guard interval., , , , and . VTC Spring, page 1247-1251. IEEE, (2002)DL MU-MIMO Field Trial with 5G Low SHF Band Massive MIMO Antenna., , , , , , and . VTC Spring, page 1-5. IEEE, (2017)Evaluation of 30 Gbps super high bit rate mobile communications using channel data in 11 GHz band 24×24 MIMO experiment., , , , and . ICC, page 5203-5208. IEEE, (2014)Low-Complexity Signal Detection by Multi-Dimensional Search for Correlated MIMO Channels., , , and . ICC, page 1-5. IEEE, (2011)Performance Evaluation of 44GHz Band Massive MIMO Based on Channel Measurement., , , , , , , , , and . GLOBECOM Workshops, page 1-6. IEEE, (2015)MIMO-OFDM MAP Receiver with Spatial-Temporal Filters Employing Decision-Directed Recursive Eigenvalue Decomposition Parameter Estimation., , , and . IEICE Trans. Commun., 91-B (4): 1112-1121 (2008)MLSE Detection with Blind Linear Prediction for Differential Space-Time Block Code Systems., , , and . IEICE Trans. Commun., 90-B (4): 926-933 (2007)ML Detection with Blind Linear Prediction for Differential Space-Time Block Code Systems., , , and . VTC Spring, page 2144-2148. IEEE, (2006)