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Optimized compressive sampling for passive millimeter-wave imaging

机译:针对无源毫米波成像的优化压缩采样

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摘要

In this paper, we briefly describe a single detector passive millimeter-wave imaging system, which has been previously presented. The system uses a cyclic sensing matrix to acquire incoherent measurements of the observed scene and then reconstructs the image using a Bayesian approach. The cyclic nature of the sensing matrix allows for the design of a single unified and compact mask that provides all the required random masks in a convenient way, such that no mechanical mask exchange is needed. Based on this setup, we primarily propose the optimal adaptive selection of sampling submasks out of the full cyclic mask to obtain improved reconstruction results. The reconstructed images show the feasibility of the imaging system as well as its improved performance through the proposed sampling scheme.
机译:在本文中,我们简要介绍了先前已经介绍过的单探测器无源毫米波成像系统。该系统使用循环感测矩阵来获取观察场景的非相干测量,然后使用贝叶斯方法重建图像。感测矩阵的循环性质允许设计单个统一且紧凑的掩模,该掩模以方便的方式提供所有所需的随机掩模,从而不需要机械掩模的更换。基于此设置,我们主要提出从全循环掩码中选择采样子掩码的最佳自适应选择,以获得改进的重建结果。通过提出的采样方案,重建的图像显示了成像系统的可行性及其改进的性能。

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