DocumentCode :
2883331
Title :
Multi-beam receiver apertures using multiplierless 8-point approximate DFT
Author :
Kulasekera, Sunera ; Madanayake, Arjuna ; Suarez, Dora ; Cintra, Renato J. ; Bayer, Fabio M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Akron, Akron, OH, USA
fYear :
2015
fDate :
10-15 May 2015
Firstpage :
1244
Lastpage :
1249
Abstract :
A low-complexity multiplierless approximation for the 8-point DFT is presented for RF multi- beamforming using only 26 hardware adders. The algorithm provides eight simultaneous aperture beams that closely resemble the antenna array patterns of an FFT-based beamformer. The multiplicative complexity is used as a benchmark for comparing the performance-complexity-power trade-offs between the traditional FFT and the proposed approximate DFT algorithms. Metrics based on maximum throughput, chip area, and power consumption are used for the comparison. The paper discusses the theory behind the proposed new algorithm, and the proposed 8-point DFT will be presented in the form of an 8 × 8 matrix. Furthermore simulation examples are provided for both 1-D and 2-D antenna array patters along with synthesized results for 45 nm CMOS technology at 1.1 V supply voltage. Cadence designs show a reduction of 30.6% , 33.2%, 29.0% , 26.1% and 52.0% in chip area, dynamic power consumption, critical path delay, gate-count and area-time and an increase in 45.5% in maximum clock frequency (throughput) for the proposed 8-point DFT approximation in comparison with a traditional radix-2 FFT algorithm, where both algorithms assumed 16-bit input signals.
Keywords :
CMOS integrated circuits; antenna radiation patterns; aperture antennas; approximation theory; array signal processing; discrete Fourier transforms; fast Fourier transforms; radar antennas; radar signal processing; 1D antenna array pattern; 2D antenna array pattern; 45 nm CMOS technology; FFT-based beamformer; area-time; chip area; critical path delay; discrete Fourier transform; dynamic power consumption; fast Fourier transform; gate-count; low-complexity multiplierless approximation; maximum clock frequency; multibeam receiver apertures; multiplicative complexity; multiplierless 8-point approximate DFT; radar apertures; simultaneous aperture beams; Apertures; Approximation algorithms; Approximation methods; Arrays; Complexity theory; Discrete Fourier transforms; Radio frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radar Conference (RadarCon), 2015 IEEE
Conference_Location :
Arlington, VA
Print_ISBN :
978-1-4799-8231-8
Type :
conf
DOI :
10.1109/RADAR.2015.7131185
Filename :
7131185
Link To Document :
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