DocumentCode :
1760587
Title :
Receiver Design for Range and Doppler Sidelobe Suppression Using MIMO and Phased-Array Radar
Author :
Guang Hua ; Abeysekera, Saman S.
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
Volume :
61
Issue :
6
fYear :
2013
fDate :
41348
Firstpage :
1315
Lastpage :
1326
Abstract :
This paper investigates the receiver instrumental variable (IV) filter design for sidelobe suppression using multiple-input-multiple-output (MIMO) and phased-array radar. First, we analyze the performance of existing integrated sidelobe level (ISL) and the zero sidelobe (ZS) methods for range sidelobe suppression, and show the latter´s superiority. The limitation of MIMO radar sidelobe suppression in a large number of range bins is discussed. It is shown that the phased-array radar avoids this limitation. Then we consider joint range and Doppler sidelobe suppression, and the solutions for both MIMO and phased-array radar are derived, classified, and analyzed. The conclusions are drawn through performance trade-off. The use of phased-array radar compromises the waveform diversity of MIMO radar. However, with the objective of range, and joint range and Doppler sidelobe suppression, phased-array radar has better performance in terms of computational complexity, sidelobe suppression level and signal-to-noise ratio (SNR) loss. This will relieve the design workload for large scale radar systems. In addition, we show via simulations that the bounds of clear area of matched filter output (ambiguity function) are inapplicable for the IV filter design.
Keywords :
Doppler shift; MIMO radar; computational complexity; matched filters; phased array radar; radar signal processing; radio receivers; Doppler sidelobe suppression; ISL; IV filter design; MIMO radar; SNR loss; ZS methods; ambiguity function; computational complexity; integrated sidelobe level; matched filter; multiple-input-multiple-output radar; phased-array radar; range bins; range sidelobe suppression; receiver design; receiver instrumental variable filter design; signal-to-noise ratio loss; waveform diversity; zero sidelobe method; Doppler effect; Doppler radar; Joints; MIMO; MIMO radar; Receivers; Clutter suppression; MIMO radar; instrumental variable filter; phased-array radar; receiver filter design; sidelobe suppression;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2012.2234743
Filename :
6384816
Link To Document :
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