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超材料微波全息成像系统。

Metamaterial microwave holographic imaging system.

作者信息

Hunt John, Gollub Jonah, Driscoll Tom, Lipworth Guy, Mrozack Alex, Reynolds Matthew S, Brady David J, Smith David R

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2014 Oct 1;31(10):2109-19. doi: 10.1364/JOSAA.31.002109.

Abstract

We demonstrate a microwave imaging system that combines advances in metamaterial aperture design with emerging computational imaging techniques. The flexibility inherent to guided-wave, complementary metamaterials enables the design of a planar antenna that illuminates a scene with dramatically varying radiation patterns as a function of frequency. As frequency is swept over the K-band (17.5-26.5 GHz), a sequence of pseudorandom radiation patterns interrogates a scene. Measurements of the return signal versus frequency are then acquired and the scene is reconstructed using computational imaging methods. The low-cost, frequency-diverse static aperture allows three-dimensional images to be formed without mechanical scanning or dynamic beam-forming elements. The metamaterial aperture is complementary to a variety of computational imaging schemes, and can be used in conjunction with other sensors to form a multifunctional imaging platform. We illustrate the potential of multisensor fusion by integrating an infrared structured-light and optical image sensor to accelerate the microwave scene reconstruction and to provide a simultaneous visualization of the scene.

摘要

我们展示了一种微波成像系统,该系统将超材料孔径设计的进展与新兴的计算成像技术相结合。导波互补超材料固有的灵活性使得能够设计出一种平面天线,该天线可根据频率以显著变化的辐射方向图照亮场景。当频率在K波段(17.5 - 26.5 GHz)范围内扫描时,一系列伪随机辐射方向图对场景进行探测。然后获取返回信号随频率的测量值,并使用计算成像方法重建场景。这种低成本、频率多样化的静态孔径允许在无需机械扫描或动态波束形成元件的情况下形成三维图像。超材料孔径与多种计算成像方案互补,并且可以与其他传感器结合使用以形成多功能成像平台。我们通过集成红外结构光和光学图像传感器来说明多传感器融合的潜力,以加速微波场景重建并同时提供场景的可视化。

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