Title :
The Jakes fading model for antenna arrays incorporating azimuth spread
Author :
Fulghum, Tracy L. ; Molnar, Karl J. ; Duel-Hallen, Alexandra
Author_Institution :
Ericsson Inc., Research Triangle Park, NC, USA
fDate :
9/1/2002 12:00:00 AM
Abstract :
A new method for simulating the multiplicative fading of the narrow-band, flat wireless channel for antenna array receivers is presented. The new approach produces a set of fading waveforms, one waveform associated with each receiver element, in which the waveforms are appropriately correlated to take into account the spread, or dispersion, in the azimuth (arrival angle) of the received signal. The new method is an extension of the Jakes (1974) method of simulating fading in which the appropriate correlation of the set of waveforms is accomplished by directly considering the azimuth of scatterers in a particular distribution about the mobile transmitter. The models used for this cluster of scatterers are a ring and a disk of scatterers. Further modifications of the disk model permit the generation of fading waveforms which are correlated in a manner which reflect actual field measurements of azimuth dispersion. Analytical correlation of these models is reviewed for purposes of verification with the waveforms generated by the method.
Keywords :
adaptive antenna arrays; cellular radio; digital simulation; electromagnetic wave scattering; fading channels; land mobile radio; linear antenna arrays; radiowave propagation; receiving antennas; Jakes fading model; Jakes method; antenna array receivers; azimuth dispersion; azimuth spread; cellular radio; correlation waveforms; fading simulation; fading waveforms; field measurements; flat wireless channel; linear antenna array; mobile transmitter distribution; multiplicative fading; narrow-band wireless channel; received signal arrival angle; received signal azimuth; received signal dispersion; receiver element; scatterer azimuth; scatterers disk; scatterers ring; simulation method; smart antennas; Antenna arrays; Azimuth; Dispersion; Fading; Interference cancellation; Narrowband; Rayleigh channels; Rayleigh scattering; Receiving antennas; Transmitters;
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2002.801742