Title :
Robust Transmit Code and Receive Filter Design for Extended Targets in Clutter
Author :
Karbasi, Seyyed Mohammad ; Aubry, Augusto ; De Maio, Antonio ; Bastani, Mohammad Hasan
Author_Institution :
Fac. of Electr. Eng., Sharif Univ. of Tech., Tehran, Iran
Abstract :
We propose a novel robust design method to jointly optimize the radar transmit code and receive filter, exploiting the Signal-to-Interference plus Noise Ratio (SINR) at the receiver end as design figure of merit. We confer robustness to our method against uncertainties on the target impulse response (TIR) using a worst-case optimization approach based on two different uncertainty sets. The former is composed of a finite collection of TIRs, obtained by sampling the actual TIR at some aspect angles; the latter is a spherical uncertainty set. We further enforce a peak-to-average power ratio (PAR) constraint to the transmit code, which is very important for radar applications where the transmitter operates close to saturation. The design problem is tackled using a sequential optimization procedure alternating between two semi-definite programming (SDP) problems, followed by randomization steps. Our numerical results highlight the robustness and applicability of the proposed method in different scenarios.
Keywords :
codes; filtering theory; mathematical programming; radar clutter; radar receivers; radar transmitters; transient response; PAR constraint; SDP problems; SINR; TIR; peak-to-average power ratio constraint; radar transmit code; receive filter design; robust transmit code; semidefinite programming problems; sequential optimization procedure; signal-to-interference plus noise ratio; spherical uncertainty set; target impulse response; Interference; Optimization; Radar; Robustness; Signal to noise ratio; Uncertainty; Vectors; Extended target model; PAR constraint; robust design; semi-definite programming; signal-dependent interference;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2015.2404301