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Adaptive Microwave Staring Correlated Imaging for Targets Appearing in Discrete Clusters

机译:离散星团中出现的目标的自适应微波凝视相关成像

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摘要

Microwave staring correlated imaging (MSCI) can achieve ultra-high resolution in real aperture staring radar imaging using the correlated imaging process (CIP) under all-weather and all-day circumstances. The CIP must combine the received echo signal with the temporal-spatial stochastic radiation field. However, a precondition of the CIP is that the continuous imaging region must be discretized to a fine grid, and the measurement matrix should be accurately computed, which makes the imaging process highly complex when the MSCI system observes a wide area. This paper proposes an adaptive imaging approach for the targets in discrete clusters to reduce the complexity of the CIP. The approach is divided into two main stages. First, as discrete clustered targets are distributed in different range strips in the imaging region, the transmitters of the MSCI emit narrow-pulse waveforms to separate the echoes of the targets in different strips in the time domain; using spectral entropy, a modified method robust against noise is put forward to detect the echoes of the discrete clustered targets, based on which the strips with targets can be adaptively located. Second, in a strip with targets, the matched filter reconstruction algorithm is used to locate the regions with targets, and only the regions of interest are discretized to a fine grid; sparse recovery is used, and the band exclusion is used to maintain the non-correlation of the dictionary. Simulation results are presented to demonstrate that the proposed approach can accurately and adaptively locate the regions with targets and obtain high-quality reconstructed images.
机译:微波凝视相关成像(MSCI)可以在全天候和全天情况下使用相关成像过程(CIP)在真实孔径凝视雷达成像中实现超高分辨率。 CIP必须将接收到的回波信号与时空随机辐射场进行组合。但是,CIP的前提条件是必须将连续成像区域离散化为细网格,并且必须精确计算测量矩阵,这在MSCI系统观察到较宽的区域时会使成像过程变得非常复杂。本文提出了一种针对离散聚类中目标的自适应成像方法,以降低CIP的复杂性。该方法分为两个主要阶段。首先,由于离散的聚类目标分布在成像区域中的不同距离条中,因此MSCI的发射器发出窄脉冲波形,以在时域中分离不同条中目标的回波;利用频谱熵,提出了一种抗噪声的改进方法来检测离散聚类目标的回波,基于该回声,可以自适应地定位具有目标的条带。其次,在具有目标的条带中,使用匹配的滤波器重建算法来定位具有目标的区域,并且仅将感兴趣的区域离散化为精细网格;使用稀疏恢复,并且使用频带排除来维护字典的非相关性。仿真结果表明,该方法可以准确,自适应地定位目标区域,并获得高质量的重建图像。

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