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Multiresolution spectral imaging by combining different sampling strategies in a compressive imager, MR-CASSI

机译:通过在压缩成像器MR-CASSI中组合不同的采样策略进行多分辨率光谱成像

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The Coded Aperture Snapshot Spectral Imaging system (CASSI) is a remarkable architecture based on CS theory which senses the spectral scene by using two-dimensional coded focal plane array (FPA) projections. The CASSI system can be characterized by a measurement matrix which can be designed according to the requirements of a particular issue. Traditional approaches require recovering all the data with high resolution which involves a large amount of data and in consequence high costs of transmission and storage. However, in several applications, the data analysis is focused on only specific regions of the images. Therefore, this work proposes a multiresolution compressive architecture (MR-CASSI). MR-CASSI is focused on the most important spatial or spectral areas of the scene to be analyzed without background subtraction, allowing to reduce the amount of data preserving all the scene, selection of these areas of interest is pre-selected. The MR-CASSI is designed from a measurement matrix, such that the system samples the scene to recover multiresolution images low resolution for the background and high resolution for the spatial target or spectral regions. An important aspect of this proposal is that we can estimate multiresolution images without extra processing. From simulation results for the MR-CASSI architecture, it was found that compared to a traditional system, our approach overcomes an average 12dB of PSNR with a low-resolution system by using different decimation factors to obtain multiresolution SI with high-resolution target areas, and the low-resolution background in the reconstructions.
机译:编码孔径快照光谱成像系统(CASSI)是基于CS理论的出色体系结构,该体系结构通过使用二维编码焦平面阵列(FPA)投影来感测光谱场景。 CASSI系统的特点是可以根据特定问题的要求设计测量矩阵。传统方法需要以高分辨率恢复所有数据,这涉及大量数据,因此传输和存储成本很高。但是,在一些应用程序中,数据分析仅集中在图像的特定区域。因此,这项工作提出了一种多分辨率压缩体系结构(MR-CASSI)。 MR-CASSI专注于要分析的场景中最重要的空间或光谱区域,而无需扣除背景,从而减少了保留所有场景的数据量,因此预先选择了这些感兴趣的区域。 MR-CASSI是根据测量矩阵设计的,因此系统可以对场景进行采样,以恢复背景的低分辨率和空间目标或光谱区域的高分辨率的多分辨率图像。该建议的重要方面是,我们无需额外处理即可估算多分辨率图像。从MR-CASSI架构的仿真结果发现,与传统系统相比,我们的方法通过使用不同的抽取因子来获得具有高分辨率目标区域的多分辨率SI,从而克服了低分辨率系统平均PSNR达到12dB的问题,以及重建中的低分辨率背景。

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