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Spectral Zooming and Resolution Limits of Spatial Spectral Compressive Spectral Imagers

机译:空间光谱压缩光谱成像仪的光谱缩放和分辨率极限

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The recently introduced Spatial Spectral Compressive Spectral Imager (SSCSI) has been proposed as an alternative to carry out spatial and spectral coding using a binary ON-OFF coded aperture. In SSCSI, the pixel pitch size of the coded aperture, as well as its location with respect to the detector array, plays a critical role in the quality of image reconstruction. In this paper, a rigorous discretization model for this architecture is developed, based on a light propagation analysis across the imager. The attainable spatial and spectral resolution, and the various parameters affecting them, is derived through this process. Much like the displacement of zoom lens components leads to higher spatial resolution of a scene, a shift of the coded aperture in the SSCSI in reference to the detector leads to higher spectral resolution. This allows the recovery of spectrally detailed datacubes by physically displacing the mask toward the spectral plane. To prove the underlying concepts, computer simulations and experimental data are presented in this paper.
机译:已经提出了最近推出的空间光谱压缩光谱成像器(SSCSI),作为使用二进制开-关编码孔径进行空间和光谱编码的替代方案。在SSCSI中,编码孔径的像素间距大小及其相对于检测器阵列的位置在图像重建质量中起着至关重要的作用。在本文中,基于跨成像器的光传播分析,针对该体系结构开发了严格的离散化模型。通过此过程可以得出可达到的空间和光谱分辨率,以及影响它们的各种参数。就像变焦镜头组件的移位会导致场景的空间分辨率更高一样,SSCSI中编码孔径相对于检测器的偏移也会导致光谱分辨率更高。这可以通过将遮罩物理地移向光谱平面来恢复光谱详细的数据立方体。为了证明基本概念,本文提供了计算机仿真和实验数据。

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