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Spatial resolution comparison of a diffractive plenoptic camera and an intermediate image diffractive plenoptic camera

机译:衍射全光相机和中间图像衍射全光相机的空间分辨率比较

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The diffractive plenoptic camera (DPC) was developed as a system that would capture the spectral and spatial information of a scene in one snapshot. While the DPC couples a diffractive optic with plenoptic camera designs to provide snapshot spectral imaging capabilities, it produces rendered images with low pixel count and low spatial resolution. A modified setup of the DPC, the intermediate image (II)DPC, was built and tested for the first time and compared to both the DPC and a diffractive-optic camera as a system that could improve the cutoff spatial frequency of the rendered images. This paper reports on the spatial resolution achieved for different configurations of the IIDPC and looks at the factors limiting performance. The IIDPC improved on the cutoff spatial resolution over the DPC over a wavelength range of 750 to 790 nm for a design wavelength of 770 nm and improved resolution over a diffractive-optic camera at wavelengths below 750 nm or above 790 nm, with the best results achieved for IIDPC configurations with the largest magnification. Frequency analysis of each system determined that the optic limiting performance was the microlens array. Models showed that decreasing the microlens size improved resolution but reduced the spectral range for the DPC, while decreasing the f/# of the microlenses improved the resolution for the IIDPC. These results will help optimize the designs of future systems.
机译:衍射全光相机(DPC)被开发为一种可以在一个快照中捕获场景的光谱和空间信息的系统。 DPC将衍射光学元件与全光相机设计结合在一起以提供快照光谱成像功能时,它会产生像素数少且空间分辨率低的渲染图像。首次构建并测试了DPC的修改设置,即中间图像(II)DPC,并将其与DPC和衍射光学相机(可改善渲染图像的截止空间频率)相比较。本文报告了针对IIDPC的不同配置所实现的空间分辨率,并探讨了限制性能的因素。对于770 nm的设计波长,IIDPC在750到790 nm的波长范围内,在DPC上的截止空间分辨率有所提高,并且在750 nm以下或790 nm以上的波长下,通过衍射光学相机的分辨率得到了改善。对于IIDPC配置具有最大的放大倍数。每个系统的频率分析确定光学极限性能是微透镜阵列。模型显示,减小微透镜的尺寸可以提高分辨率,但可以减小DPC的光谱范围,而减小微透镜的f /#可以提高IIDPC的分辨率。这些结果将有助于优化未来系统的设计。

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