Title :
Dynamic ISAR Imaging of Maneuvering Targets Based on Sequential SL0
Author :
Zhen Liu ; Peng You ; Xizhang Wei ; Xiang Li
Author_Institution :
Sch. of Electron. Sci. & Eng., Nat. Univ. of Defense Technol., Changsha, China
Abstract :
For maneuvering targets, the time-varying Doppler shifts will produce blurred inverse synthetic aperture radar (ISAR) images for a long coherent processing interval (CPI). By exploiting sparsity of the target scene, sparse recovery (SR) algorithms have been applied to achieve high cross-range resolution within a short CPI, during which the Doppler shifts nearly remain constant. For practical applications, however, the required pulse number for attaining an acceptable image is difficult to designate in various scenarios, and the common recovery procedure suffers from low efficiency because of having to solve a new SR problem from scratch when the new echo pulses are sequentially available. In this letter, we present a dynamic ISAR imaging algorithm based on sequential smoothed L0, which is proposed as an efficient recursive implementation of the SR approach. Furthermore, by defining the proper stopping rules, we can seek the optimal pulse number required in each CPI. Simulation results show that the proposed dynamic algorithm is more suitable for ISAR imaging of uncooperative targets.
Keywords :
Doppler shift; geophysical image processing; radar cross-sections; radar imaging; radar tracking; synthetic aperture radar; target tracking; CPI; blurred ISAR image; blurred inverse synthetic aperture radar image; coherent processing interval; cross-range resolution; dynamic ISAR imaging algorithm; echo pulse; maneuvering target; optimal pulse number; proper stopping rules; recovery procedure; recursive implementation; sequential SL0; sequential smoothed L0; sparse recovery algorithm; target scene sparsity; time-varying Doppler shift; uncooperative target; Heuristic algorithms; Image resolution; Imaging; Radar imaging; Scattering; Signal resolution; Inverse synthetic aperture radar (ISAR); sequential smoothed L0 (SL0); sparse recovery (SR);
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
DOI :
10.1109/LGRS.2012.2227936