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KRISM-Krylov Subspace-based Optical Computing of Hyperspectral Images

机译:基于KRISM-Krylov子空间的高光谱图像光学计算

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We present an adaptive imaging technique that optically computes a low-rank approximation of a scene's hyperspectral image, conceptualized as a matrix. Central to the proposed technique is the optical implementation of two measurement operators: a spectrally coded imager and a spatially coded spectrometer. By iterating between the two operators, we show that the top singular vectors and singular values of a hyperspectral image can be adaptively and optically computed with only a few iterations. We present an optical design that uses pupil plane coding for implementing the two operations and show several compelling results using a lab prototype to demonstrate the effectiveness of the proposed hyperspectral imager.
机译:我们提出了一种自适应成像技术,该技术可以光学计算场景的高光谱图像的低秩逼近,其概念化为矩阵。所提出的技术的核心是两个测量算子的光学实现:光谱编码成像仪和空间编码光谱仪。通过在两个算子之间进行迭代,我们表明高光谱图像的顶部奇异矢量和奇异值仅需几次迭代就可以自适应地进行光学计算。我们提出了一种使用光瞳平面编码来实现这两种操作的光学设计,并使用实验室原型展示了一些令人信服的结果,以证明所提出的高光谱成像仪的有效性。

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