Title :
Fast beamforming of electronically steerable parasitic array radiator antennas: theory and experiment
Author :
Sun, Chen ; Hirata, Akifumi ; Ohira, Takashi ; Karmakar, Nemai C.
Author_Institution :
Adv. Telecommun. Res. Inst. Int., Kyoto, Japan
fDate :
7/1/2004 12:00:00 AM
Abstract :
A low-power consumption, small-size smart antenna, named electronically steerable parasitic array radiator (ESPAR), has been designed. Beamforming is achieved by tuning the load reactances at parasitic elements surrounding the active central element. A fast beamforming algorithm based on simultaneous perturbation stochastic approximation with a maximum cross correlation coefficient criterion is proposed. The simulation and experimental results validate the algorithm. In an environment where the signal-to-interference-ratio is 0 dB, the algorithm converges within 50 iterations and achieves an output signal-to-interference-plus-noise-ratio of 10 dB. With the fast beamforming ability and its low-power consumption attribute, the ESPAR antenna makes the mass deployment of smart antenna technologies practical.
Keywords :
ad hoc networks; adaptive antenna arrays; antenna phased arrays; array signal processing; interference suppression; perturbation techniques; space division multiple access; stochastic processes; wireless LAN; SDMA; ad hoc network; aerial beamforming; cross correlation coefficient criterion; digital beamforming; electronically steerable parasitic array radiator; fast beamforming; load reactance tuning; low-power consumption; signal-to-interference-ratio; simultaneous perturbation stochastic approximation; small-size smart antenna; spatial division multiple access; Antenna arrays; Antenna theory; Antennas and propagation; Array signal processing; Baseband; Costs; Digital signal processing chips; Phased arrays; Sensor arrays; Signal processing algorithms; ABF; Ad hoc network; DBF; ESPAR; SDMA; SPSA; aerial beamforming; digital beamforming; electronically steerable parasitic array radiator; simultaneous perturbation stochastic approximation; smart antennas; spatial division multiple access;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2004.831314