Title :
Exploiting directionality for millimeter-wave wireless system improvement
Author :
MacCartney, George R., Jr. ; Samimi, Mathew K. ; Rappaport, Theodore S.
Author_Institution :
NYU WIRELESS, NYU Polytechnic School of Engineering, Brooklyn, NY 11201, USA
Abstract :
This paper presents directional and omnidirectional RMS delay spread statistics obtained from 28 GHz and 73 GHz ultrawideband propagation measurements carried out in New York City using a 400 Megachips per second broadband sliding correlator channel sounder and highly directional steerable horn antennas. The 28 GHz measurements did not systematically seek the optimum antenna pointing angles and resulted in 33% outage for 39 T-R separation distances within 200 m. The 73 GHz measurements systematically found the best antenna pointing angles and resulted in 14.3% outage for 35 T-R separation distances within 200 m, all for mobile height receivers. Pointing the antennas to yield the strongest received power is shown to significantly reduce RMS delay spreads in line-of-sight (LOS) environments. A new term, distance extension exponent (DEE) is defined, and used to mathematically describe the increase in coverage distance that results by combining beams from angles with the strongest received power at a given location. These results suggest that employing directionality in millimeter-wave communications systems will reduce inter-symbol interference, improve link margin at cell edges, and enhance overall system performance.
Keywords :
Antenna measurements; Delays; Directive antennas; Loss measurement; Power measurement; Receiving antennas; Wireless communication; 28 GHz; 5G; 73 GHz; RMS delay spread; distance extension; mmWave; multipath; omnidirectional models;
Conference_Titel :
Communications (ICC), 2015 IEEE International Conference on
Conference_Location :
London, United Kingdom
DOI :
10.1109/ICC.2015.7248687