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Target Imaging Based on Generative Adversarial Nets in Through-wall Radar Imaging

机译:穿墙雷达成像中基于生成对抗网络的目标成像

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For multi-input multi-output (MIMO) through-wall radar imaging (TWRI), multipath ghosts, side/grating lobe artifacts and wall penetration effect degrade the imaging quality of the obscured targets inside an enclosed building, there in hindering target detection. In this paper, an approach based on generative adversarial nets (GAN) is proposed to achieve multipath ghosts, side/grating lobe artifacts and wall penetration effect suppression with regard to MIMO TWRI. Specifically, the whole task is divided into two steps (Firstly, multipath ghosts and wall penetration effect are suppressed but the side/grating lobes are preserved. Secondly, side/grating lobes are eliminated.) Then a GAN network is applied to solve those two steps. Extensive electromagnetic simulations and comparisons demonstrate that the proposed approach achieves better suppression of multipath ghosts, side/grating lobe artifacts, wall penetration effect and other significant superiorities, including priori wall information not being required and robustness for different array deployments and building layouts.
机译:对于多输入多输出(MIMO)穿墙雷达成像(TWRI),多路径重影,侧面/光栅波瓣伪影和墙穿透效果会降低封闭建筑物内被遮挡目标的成像质量,从而阻碍目标检测。在本文中,提出了一种基于生成对抗网络(GAN)的方法,以针对MIMO TWRI实现多径重影,侧面/光栅波瓣伪影和壁穿透效应抑制。具体来说,将整个任务分为两个步骤(首先,抑制多路径重影和壁穿透效果,但保留侧面/光栅裂片;其次,消除侧面/光栅裂片。)然后,应用GAN网络解决这两个问题脚步。广泛的电磁仿真和比较结果表明,所提出的方法可以更好地抑制多径重影,侧面/光栅波瓣伪影,壁穿透效果以及其他显着优势,包括不需要先验的壁信息以及针对不同阵列部署和建筑布局的鲁棒性。

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