Center for Metamaterials and Integrated Plasmonics, Duke University, Durham, NC 27708, USA.
Science. 2013 Jan 18;339(6117):310-3. doi: 10.1126/science.1230054.
By leveraging metamaterials and compressive imaging, a low-profile aperture capable of microwave imaging without lenses, moving parts, or phase shifters is demonstrated. This designer aperture allows image compression to be performed on the physical hardware layer rather than in the postprocessing stage, thus averting the detector, storage, and transmission costs associated with full diffraction-limited sampling of a scene. A guided-wave metamaterial aperture is used to perform compressive image reconstruction at 10 frames per second of two-dimensional (range and angle) sparse still and video scenes at K-band (18 to 26 gigahertz) frequencies, using frequency diversity to avoid mechanical scanning. Image acquisition is accomplished with a 40:1 compression ratio.
利用超材料和压缩成像技术,展示了一种无需透镜、运动部件或相移器即可进行微波成象的低剖面孔径。这种设计孔径允许在物理硬件层上执行图像压缩,而不是在后期处理阶段执行,从而避免了与对场景进行全衍射极限采样相关的探测器、存储和传输成本。使用导波超材料孔径在 K 波段(18 至 26 千兆赫)频率下以每秒 10 帧的速度对二维(距离和角度)稀疏静态和视频场景进行压缩图像重建,利用频率分集避免机械扫描。图像采集的压缩比为 40:1。