KRISM --- Krylov Subspace-based Optical Computing of Hyperspectral Images

January 26, 2018 Β· Declared Dead Β· πŸ› ACM Transactions on Graphics

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Authors Vishwanath Saragadam, Aswin C. Sankaranarayanan arXiv ID 1801.09343 Category eess.IV: Image & Video Processing Cross-listed cs.AI, cs.CV Citations 28 Venue ACM Transactions on Graphics Last Checked 5 months ago
Abstract
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.
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