Tractable Transmit MIMO Beampattern Design Under a Constant Modulus Constraint

被引:83
作者
Aldayel, Omar [1 ]
Monga, Vishal [1 ]
Rangaswamy, Muralidhar [2 ]
机构
[1] Penn State Univ, Dept Elect Engn, State Coll, PA 16801 USA
[2] US Air Force, RF Exploitat Branch, Res Lab, Dayton, OH 45433 USA
关键词
MIMO radar; wideband beampattern; constant modulus; successive algorithm; SCF; WAVE-FORM DESIGN; RADAR; OPTIMIZATION; PATTERNS;
D O I
10.1109/TSP.2017.2664040
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Multiple-input multiple-output (MIMO) radar systems allow each antenna element to transmit a different waveform. This waveform diversity can be exploited to enhance the beampattern design, in particular, effective management of radar radiation power in directions of interest. We address the problem of designing a beampattern for MIMO radar, which in turn is determined by the transmit waveform. While unconstrained design is straightforward, a key open challenge is enforcing the constant modulus constraint on the radar waveform. It is well known that the problem of minimizing deviation of the designed beampattern from an idealized one subject to the constant modulus constraint constitutes a hard nonconvex problem. Existing methods that address constant modulus invariably lead to a stiff tradeoff between analytical tractability (achieved by relaxations and approximations) and realistic design that exactly achieves constant modulus but is computationally burdensome. A new approach is proposed in our paper, which involves solving a sequence of convex equality constrained quadratic programs, each of which has a closed form solution and such that constantmodulus is achieved at convergence. We further prove that the converged solution satisfies the Karush-Kuhn-Tucker optimality conditions of the aforementioned hard nonconvex problem. We evaluate the proposed successive closed forms (SCF) algorithm against the state-of-the art MIMO beampattern design techniques in both narrowband and wideband setups and show that the SCF breaks the tradeoff between desirable performance and the associated computation cost.
引用
收藏
页码:2588 / 2599
页数:12
相关论文
共 45 条
[1]   MIMO Radar Transmit Beampattern Design Without Synthesising the Covariance Matrix [J].
Ahmed, Sajid ;
Alouini, Mohamed-Slim .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2014, 62 (09) :2278-2289
[2]   Successive QCQP Refinement for MIMO Radar Waveform Design Under Practical Constraints [J].
Aldayel, Omar ;
Monga, Vishal ;
Rangaswamy, Muralidhar .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2016, 64 (14) :3760-3774
[3]  
[Anonymous], 1999, Athena scientific Belmont
[4]  
[Anonymous], 2013, NONLINEAR PROGRAMMIN
[5]   Cognitive design of the receive filter and transmitted phase code in reverberating environment [J].
Aubry, A. ;
De Maio, A. ;
Piezzo, M. ;
Farina, A. ;
Wicks, M. .
IET RADAR SONAR AND NAVIGATION, 2012, 6 (09) :822-833
[6]  
Boyd S, 2004, CONVEX OPTIMIZATION
[7]   Design of wide-band arrays for low side-lobe level beam patterns by simulated annealing [J].
Cardone, G ;
Cincotti, G ;
Pappalardo, M .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2002, 49 (08) :1050-1059
[8]   MIMO Radar Waveform Optimization With Prior Information of the Extended Target and Clutter [J].
Chen, Chun-Yang ;
Vaidyanathan, P. P. .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2009, 57 (09) :3533-3544
[9]   Adaptive Transmit and Receive Beamforming for Interference Mitigation [J].
Chen, Zhu ;
Li, Hongbin ;
Cui, Guolong ;
Rangaswamy, Muralidhar .
IEEE SIGNAL PROCESSING LETTERS, 2014, 21 (02) :235-239
[10]  
Cheston T. C., 1990, RADAR HDB, P731