Title :
MIMO radar ambiguity analysis of frequency hopping pulse waveforms
Author :
Sharma, G.V.K. ; Srihari, P. ; Rajeswari, K. Raja
Author_Institution :
Dept. of ECE, GITAM Univ., Visakhapatnam, India
Abstract :
Radar systems employing multiple transmit antennas and multiple receive antennas have received great interest over the last decade. While single-input multiple-output (SIMO) radar systems employ only spatial diversity, multiple-input multiple-output (MIMO) radars employ both spatial and waveform diversity to improve the system performance. Waveform design for MIMO radars involves optimization of desired delay, Doppler and spatial resolution characteristics. Designs of frequency hopping waveforms that optimize the MIMO radar ambiguity function under small and large Doppler scenarios were recently proposed. These waveforms are obtained by optimizing an appropriately formulated cost function using modified simulated annealing algorithms. In this paper, the MIMO radar ambiguity properties of large sets of frequency hopping waveforms based on algebraic theory are analyzed and their relative performance are compared.
Keywords :
Doppler radar; MIMO radar; algebraic codes; simulated annealing; spread spectrum radar; MIMO radar ambiguity analysis; SIMO radar systems; algebraic theory; frequency hopping pulse waveforms; large Doppler scenarios; modified simulated annealing algorithms; multiple receive antennas; multiple transmit antennas; multiple-input multiple-output radars; single-input multiple-output radar systems; small Doppler scenarios; spatial diversity; waveform design; waveform diversity; Bandwidth; Doppler effect; MIMO radar; Radar antennas; Receivers; Spread spectrum radar; MIMO radar; ambiguity properties; frequency hopping waveforms; signal design;
Conference_Titel :
Radar Conference, 2014 IEEE
Conference_Location :
Cincinnati, OH
Print_ISBN :
978-1-4799-2034-1
DOI :
10.1109/RADAR.2014.6875788