Abstract
AbstractIn this paper, we present a new hyperspectral compact camera which is designed to have high spatial and spectral resolutions, to be vibrations tolerant, and to achieve state-of-the-art high optical throughput values compared to existing nanosatellite hyperspectral imaging payloads with space heritage. These properties make it perfect for airborne and spaceborne remote sensing tasks. The camera has both hyperspectral and panchromatic imaging capabilities, achieved by employing a wedge-shaped liquid crystal cell together with computational image processing. The hyperspectral images are acquired through passive along-track spatial scanning when no voltage is applied to the cell, and the panchromatic images are quickly acquired in a single snapshot at a high signal-to-noise ratio when the cell is voltage driven.
Funder
Ministry of Science, Technology and Space
Publisher
Springer Science and Business Media LLC
Reference59 articles.
1. Shaw, G. A. & Burke, H. K. Spectral imaging for remote sensing. Lincoln Lab. J. 14, 3–28 (2003).
2. Garini, Y. & Tauber, E. Biomedical optical imaging technologies 111–161 (Springer, 2013).
3. Hagen, N. A. & Kudenov, M. W. Review of snapshot spectral imaging technologies. Opt. Eng. 52, 090901 (2013).
4. Eismann, M. T. Hyperspectral remote sensing (SPIE Optical Engineering Press Bellingham 2012).
5. Vane, G. et al. The airborne visible/infrared imaging spectrometer (AVIRIS). Remote Sens. Environ. 44, 127–143 (1993).
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