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Security screening via computational imaging using frequency-diverse metasurface apertures

机译:通过使用分频超表面孔径的计算成像进行安全筛选

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Computational imaging is a proven strategy for obtaining high-quality images with fast acquisition rates and simpler hardware. Metasurfaces provide exquisite control over electromagnetic fields, enabling the radiated field to be molded into unique patterns. The fusion of these two concepts can bring about revolutionary advances in the design of imaging systems for security screening. In the context of computational imaging, each field pattern serves as a single measurement of a scene; imaging a scene can then be interpreted as estimating the reflectivity distribution of a target from a set of measurements. As with any computational imaging system, the key challenge is to arrive at a minimal set of measurements from which a diffraction-limited image can be resolved. Here, we show that the information content of a frequency-diverse metasurface aperture can be maximized by design, and used to construct a complete millimeter-wave imaging system spanning a 2 m by 2 m area, consisting of 96 metasurfaces, capable of producing diffraction-limited images of human-scale targets. The metasurface-based frequency-diverse system presented in this work represents an inexpensive, but tremendously flexible alternative to traditional hardware paradigms, offering the possibility of low-cost, real-time, and ubiquitous screening platforms.
机译:计算成像是一种行之有效的策略,可用于以快速采集速率和更简单的硬件获得高质量图像。超颖表面提供了对电磁场的精确控制,使辐射场可以模制成独特的图案。这两个概念的融合可以为安全检查成像系统的设计带来革命性的进步。在计算成像的情况下,每个场模式都可以用作场景的单个测量值。然后,对场景进行成像可以解释为从一组测量值估计目标的反射率分布。与任何计算成像系统一样,关键的挑战是要获得最小的测量集,从中可以分辨出衍射极限图像。在这里,我们表明,可以通过设计最大化分频超表面孔径的信息内容,并将其用于构建一个完整的毫米波成像系统,该系统跨2 m×2 m区域,包括96个超表面,能够产生衍射人体目标的有限图像。这项工作中介绍的基于超表面的分频系统代表了传统硬件范式的一种廉价但极为灵活的替代方案,提供了低成本,实时且无所不在的筛选平台的可能性。

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