Title :
Millimeter Wave Channel Modeling and Cellular Capacity Evaluation
Author :
Akdeniz, Mustafa Riza ; Yuanpeng Liu ; Samimi, Mathew K. ; Shu Sun ; Rangan, Sundeep ; Rappaport, T.S. ; Erkip, E.
Author_Institution :
NYU WIRELESS, New York Univ. Polytech. Sch. of Eng., Brooklyn, NY, USA
Abstract :
With the severe spectrum shortage in conventional cellular bands, millimeter wave (mmW) frequencies between 30 and 300 GHz have been attracting growing attention as a possible candidate for next-generation micro- and picocellular wireless networks. The mmW bands offer orders of magnitude greater spectrum than current cellular allocations and enable very high-dimensional antenna arrays for further gains via beamforming and spatial multiplexing. This paper uses recent real-world measurements at 28 and 73 GHz in New York, NY, USA, to derive detailed spatial statistical models of the channels and uses these models to provide a realistic assessment of mmW micro- and picocellular networks in a dense urban deployment. Statistical models are derived for key channel parameters, including the path loss, number of spatial clusters, angular dispersion, and outage. It is found that, even in highly non-line-of-sight environments, strong signals can be detected 100-200 m from potential cell sites, potentially with multiple clusters to support spatial multiplexing. Moreover, a system simulation based on the models predicts that mmW systems can offer an order of magnitude increase in capacity over current state-of-the-art 4G cellular networks with no increase in cell density from current urban deployments.
Keywords :
4G mobile communication; array signal processing; microcellular radio; microwave antenna arrays; millimetre wave antenna arrays; next generation networks; picocellular radio; radio spectrum management; signal detection; space division multiplexing; statistical analysis; submillimetre wave antennas; wireless channels; 4G cellular network; angular dispersion; beamforming; cellular capacity evaluation; dense urban deployment; dimensional antenna array; distance 100 m to 200 m; frequency 28 GHz; frequency 30 GHz to 300 GHz; millimeter wave channel modeling; next-generation microcellular wireless network; next-generation picocellular wireless network; radio spectrum management; signal detection; spatial cluster; spatial multiplexing; spatial statistical model; Antenna measurements; Clustering algorithms; Delays; Gain; Mobile communication; Power measurement; Standards; 28 GHz; 3GPP LTE; 73 GHz; Millimeter wave radio; cellular systems; urban deployments; wireless propagation;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2014.2328154