Title :
Robust Performance of MIMO E-SDM Systems in Actual Time-Varying Indoor Fading Environments
Author :
Phu, Bui Huu ; Nishimura, Toshihiko ; Nishimoto, Hiroshi ; Ogawa, Yasutaka ; Ohgane, Takeo
Author_Institution :
Graduate Sch. of Inf. Sci. & Technol., Hokkaido Univ., Sapporo
Abstract :
Performance of multiple-input multiple-output (MIMO) systems applying the eigenbeam-space division multiplexing (E-SDM) technique may be degraded in time-varying fading environments due to a channel change during the time interval between the transmit weight matrix determination and the actual data transmission. We have proposed some channel prediction methods to compensate for the channel change. Simulation results based on computer generated channels showed better performance when using the prediction methods in rich scatterer environments assuming the Jakes model. However, actual MIMO systems may be used in line-of-sight (LOS) environments, and even in a non-LOS (NLOS) case scatterers may not be uniformly distributed around a receiver and/or a transmitter. In addition, mutual coupling between antenna elements should be considered in actual implementation since it affects the system performance. We conducted MIMO measurement campaigns at a 5.2 GHz frequency band to evaluate the channel prediction techniques. In this paper, we present the experiment and simulation results using the measured channel data. It is shown that robust BER performance is obtained when using the channel prediction methods, and that the performance in LOS environments is better than that in NLOS ones.
Keywords :
MIMO communication; channel estimation; eigenvalues and eigenfunctions; electromagnetic coupling; electromagnetic wave scattering; error statistics; fading channels; indoor communication; microwave antenna arrays; space division multiplexing; time-varying channels; 5.2 GHz; BER performance; MIMO E-SDM systems; antenna elements; channel prediction methods; eigenbeam-space division multiplexing; line-of-sight environments; multiple-input multiple-output systems; mutual coupling; nonline-of-sight environments; scatterers; time-varying indoor fading environments; transmit weight matrix; Antenna measurements; Data communication; Degradation; Fading; MIMO; Prediction methods; Predictive models; Robustness; Scattering; Time varying systems;
Conference_Titel :
Vehicular Technology Conference, 2007. VTC2007-Spring. IEEE 65th
Conference_Location :
Dublin
Print_ISBN :
1-4244-0266-2
DOI :
10.1109/VETECS.2007.305