Title :
Equalization for Outdoor mmW Deployments
Author :
Ghosh, Monisha ; Bielinski, Magdalena ; Ferrante, Steven
Abstract :
Millimeter wave (mmW) frequencies are considered to be indispensable for next generation wireless systems, both cellular and Wi-Fi, primarily due to the large amounts of spectrum available in these bands. However, the higher frequency-dependent path loss at these frequencies needs to be overcome by the use of high-gain directional antenna arrays at both transmitter and receiver. Due to the complexity and peak to average power ratio (PAPR) requirements of OFDM, single-carrier is being considered for the physical layer, which brings up the question of appropriate equalization. In this paper we present a simulation study of equalization structures specifically for a mmW outdoor system, using realistic ray tracing simulation software to generate multipath channels depending on the transmit and receive antenna beam-widths. We then compare decision feedback equalization (DFE) with linear equalization (LE) for these channels and show that in an urban multipath environment the use of DFEs can offer significant gains even with very narrow antenna beams, while the gains are smaller in a suburban environment with less multipath.
Keywords :
OFDM modulation; cellular radio; decision feedback equalisers; millimetre wave antenna arrays; multipath channels; next generation networks; ray tracing; receiving antennas; transmitting antennas; wireless LAN; DFE; OFDM; PAPR; Wi-Fi; antenna beams; cellular radio; decision feedback equalization; frequency-dependent path loss; high-gain directional antenna arrays; linear equalization; millimeter wave frequencies; mmW frequencies; mmW outdoor system; multipath channels; next generation wireless systems; orthogonal frequency division multiplexing; outdoor mmW deployments; peak to average power ratio; ray tracing simulation software; receive antenna beam-widths; transmit antenna beam-widths; urban multipath environment; Base stations; Decision feedback equalizers; Delays; OFDM; Ray tracing; Transmitters;
Conference_Titel :
Vehicular Technology Conference (VTC Spring), 2015 IEEE 81st
Conference_Location :
Glasgow
DOI :
10.1109/VTCSpring.2015.7145826