DocumentCode
2975686
Title
Constant-modulus partially correlated signal design for uniform linear and rectangular MIMO radar arrays
Author
Fuhrmann, Daniel R. ; Browning, J. Paul ; Rangaswamy, Muralidhar
Author_Institution
Dept. of Electr. & Comput. Eng., Michigan Technol. Univ., Houghton, MI
fYear
2009
fDate
8-13 Feb. 2009
Firstpage
197
Lastpage
201
Abstract
A method for generating partially correlated signals that result in arbitrary rectangular transmit beampatterns in a MIMO radar system is described. These signals are computed using frequency-offset complex exponentials (1-D) or Kronecker products of frequency-offset complex exponentials (2-D), followed by pointwise multiplication of the transmit signal vectors by a scalar pseudo-noise spreading sequence. Except for the spreading sequence, which can be pre-computed, the signals are given in closed form and thus require no numerical optimization. The transmit beampattern shape is controlled by one scalar parameter in 1-D and two scalar parameters in 2-D. The transmit beampattern is the convolution of a rectangle with a sincsquared function in 1-D, and the separable product of such functions in 2-D. The signals are constant-modulus, have desirable temporal autocorrelation properties, and are simple to compute.
Keywords
MIMO communication; correlation methods; functions; radar signal processing; sequences; spread spectrum radar; vectors; Kronecker product; constant-modulus; frequency-offset complex exponential; partially correlated signal design; pointwise multiplication; rectangular MIMO radar array; scalar pseudo-noise spreading sequence; signal vector; sincsquared function; transmit beampattern shape; Force sensors; Frequency; Laboratories; MIMO; Military computing; Phased arrays; Radar signal processing; Shape control; Signal design; Signal generators; MIMO radar; transmit beamforming;
fLanguage
English
Publisher
ieee
Conference_Titel
Waveform Diversity and Design Conference, 2009 International
Conference_Location
Kissimmee, FL
Print_ISBN
978-1-4244-2970-7
Electronic_ISBN
978-1-4244-2971-4
Type
conf
DOI
10.1109/WDDC.2009.4800344
Filename
4800344
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