Articles | Volume 7, issue 6
https://doi.org/10.5194/tc-7-1879-2013
https://doi.org/10.5194/tc-7-1879-2013
Brief communication
 | 
13 Dec 2013
Brief communication |  | 13 Dec 2013

Brief Communication: Low-cost, on-demand aerial photogrammetry for glaciological measurement

K. Whitehead, B. J. Moorman, and C. H. Hugenholtz

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Cited articles

Arnold, N. S., Rees, W. G., Devereux, B. J. and Amable, G. S.: Evaluating the potential of high resolution airborne LiDAR data in glaciology, Int. J. Remote Sens., 27, 1233–1251, 2006.
d'Oleire-Oltmanns, S., Marzolff, I., Peter, K. D., and Ries, J. B.: Unmanned Aerial Vehicle (UAV) for monitoring soil erosion in Morocco, Remote Sens., 4, 3390–3416, 2012.
Fonstad, M. A., Dietrich, J. T., Courville, B. C., Jensen, J. L., and Carbonneau, P. E.: Topographic structure from motion: a new development in photogrammetric measurement, Earth Surface Processes and Landforms, 38, 421–430, 2013.
Herman, F., Anderson, B., and Leprince, S. B.: Mountain glacier velocity variation during a retreat/advance cycle quantified using sub-pixel analysis of ASTER images, J. Glaciol., 57, 197–207, 2011.
Hopkinson, C., Hayashi, M., and Peddle, D.: Comparing alpine watershed attributes from LiDAR, Photogrammetric, and Contour-based Digital Elevation Models, Hydrol. Process., 23, 451–463, 2009.
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