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Millimeter-wave compressive holography

机译:毫米波压缩全息

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摘要

We describe an active millimeter-wave holographic imaging system that uses compressive measurements for three-dimensional (3D) tomographic object estimation. Our system records a two-dimensional (2D) digitized Gabor hologram by translating a single pixel incoherent receiver. Two approaches for compressive measurement are undertaken: nonlinear inversion of a 2D Gabor hologram for 3D object estimation and nonlinear inversion of a randomly subsampled Gabor hologram for 3D object estimation. The object estimation algorithm minimizes a convex quadratic problem using total variation (TV) regularization for 3D object estimation. We compare object reconstructions using linear backpropagation and TV minimization, and we present simulated and experimental reconstructions from both compressive measurement strategies. In contrast with backpropagation, which estimates the 3D electromagnetic field, TV minimization estimates the 3D object that produces the field. Despite undersampling, range resolution is consistent with the extent of the 3D object band volume.
机译:我们描述了一种主动的毫米波全息成像系统,该系统使用压缩测量进行三维(3D)层析成像对象估计。我们的系统通过平移单个像素非相干接收器来记录二维(2D)数字化Gabor全息图。进行压缩测量的两种方法:用于3D对象估计的2D Gabor全息图的非线性反演和用于3D对象估计的随机二次采样Gabor全息图的非线性反演。使用3D对象估计的总变化(TV)正则化,对象估计算法将凸二次问题最小化。我们比较了使用线性反向传播和电视最小化的物体重建,并且我们从两种压缩测量策略中给出了模拟和实验重建。与估计3D电磁场的反向传播相反,TV最小化估计产生磁场的3D对象。尽管采样不足,但范围分辨率与3D对象带体积的范围一致。

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