Articles | Volume 8, issue 4
https://doi.org/10.5194/tc-8-1317-2014
https://doi.org/10.5194/tc-8-1317-2014
Research article
 | 
23 Jul 2014
Research article |  | 23 Jul 2014

Debris thickness of glaciers in the Everest area (Nepal Himalaya) derived from satellite imagery using a nonlinear energy balance model

D. R. Rounce and D. C. McKinney

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Cited articles

Barsi, J. A., Schott, J. R., Palluconi, F. D., Helder, D. L., Hook, S. J., Markham, B. L., Chander, G., and O'Donnell, E. M.: Landsat TM and ETM+ thermal band calibration. Can. J. Remote Sens., 29, 141–153, 2003.
Benn, D. I., Bolch, T., Hands, K., Gulley, J., Luckman, A., Nicholson, L. I., Quincey, D., Thompson, S., Toumi, R., and Wiseman, S.: Response of debris-covered glaciers in the Mount Everest region to recent warming, and implications for outburst flood hazards, Earth-Sci. Rev., 114, 156–174, 2012.
Brock, B. W., Mihalcea, C., Kirkbride, M. P., Diolaiuti, G., Cutler, M. E. J., and Smiraglia, C.: Meteorology and surface energy fluxes in the 2005–2007 ablation seasons at the Miage debris-covered glacier, Mont Blanc Massif, Italian Alps. J. Geophys. Res., 115, D09106, https://doi.org/10.1029/2009JD013224, 2010.
Coll, C., Galve, J. M., Sanchez, J. M., and Caselles, V.: Validation of Landsat-7/ETM+ Thermal-Band Calibration and Atmospheric Correction With Ground-Based Measurements, IEEE Trans. Geosci. Remote Sens., 48, 547–555, 2010.
Coll, C., Caselles, V., Valor, E., and Niclos, R.: Comparison between different sources of atmospheric profiles for land surface temperature retrieval from single channel thermal infrared data, Remote Sens. Environ., 117, 199–210, 2012.
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