246
Multiscale Hydrologic Remote Sensing: Perspectives and Applications
Dozier, J., Painter, T. H., Rittger, K., and Frew, J. E. (2008). Time–Space continuity of daily
maps of fractional snow cover and albedo from MODIS. Advances in Water Resources,
31, 1515–1526.
Dressler, K. A., Leavesley, G. H., Bales, R. C., and Fassnact, S. R. (2006). Evaluation of gridded snow water equivalent and satellite snow cover products for mountain basins in a
hydrological model. Hydrological Processes, 20, 673–688.
Egli, L. (2008). Spatial variability of new snow amounts derived from a dense network of
Alpine automatic stations. Annals of Glaciology, 49, 51–55.
Farinotti, D., Magnusson, J., Huss, M., and Bauder, A. (2010). Snow accumulation distribution
inferred from time-lapse photography and simple modeling. Hydrological Processes,
24, 2087–2097.
Ferguson, R. I. (1999). Snowmelt runoff models. Progress in Physical Geography, 23(2), 205–227.
Finsterwalder, S. and Schunk, H. (1887). Der Suldenterner. Zeitschrift des Deutschen and
Oesterreichischen Alpenvereins, 18, 72–89.
Flerchinger, G. N. and Saxton, K. E. (1989). Simultaneous heat and water model of a freezing
snow-residue-soil system. I. Theory and development. Transactions of the American
Society of Agricultural Engineers, 32(2), 565–571.
Foster, J. L., Hall, D. K., Eylander, J. B., Kim, E., Riggs, G., Tedesco, M., Nghiem, S.,
Kelly, R., Choudhury, B., and Reichle, R. (2007). Blended visible, passive-microwave
and scatterometer global snow products, in Proceedings of the 64th Eastern Snow
Conference, 28 May–1 June 2007, St. John’s Newfoundland, Canada.
Gafurov, A. and Bárdossy, A. (2009). Cloud removal methodology from MODIS snow cover
product. Hydrology and Earth System Sciences, 13(7), 1361–1373.
Gao, Y., Xie, H., Yao, T., and Xue, C. (2010a). Integrated assessment on multitemporal and multisensor combinations for reducing cloud obscuration of MODIS snow cover products of
the Pacific Northwest USA. Remote Sensing of Environment, 114, 1662–1675.
Gao, Y., Xie, H., Lu, N., Yao, T., and Liang, T. (2010b). Toward advanced daily cloud-free
snow cover and snow water equivalent products from Terra–Aqua MODIS and Aqua
AMSR-E measurements. Journal of Hydrology, 385, 23–35.
Garen, D. C. and Marks, D. (2005). Spatially distributed energy balance snowmelt modeling
in a mountainous river basin: Estimation of meteorological inputs and verification of
model results. Journal of Hydrology, 315, 126–153.
Gillan, B. J., Harper, J. T., and Moore, J. N. (2010). Timing of present and future snowmelt
from high elevations in northwest Montana. Water Resources Research, 46, W01507,
doi:10, 1029/2009WR007861.
Grody, N. C. and Basist, A. N. (1996). Global identification of snowcover using SSM/I measurements. IEEE Transactions on Geoscience and Remote Sensing, 34(1), 237–249.
Hall, D. K., Foster, J. L., Verbyla, D. L., Kelin, A. G., and Benson, C. S. (1998). Assessment
of snow-cover mapping accuracy in a variety of vegetation-cover densities in Central
Alaska. Remote Sensing of Environment, 66(2), 129–137.
Hall, D. K. and Martinec, J. (1985). Remote Sensing of Ice and Snow. Chapman and Hall Ltd.,
New York.
Hall, D. K. and Riggs, G. A. (2007). Accuracy assessment of the MODIS snow products.
Hydrological Processes, 21(12), 1534–1547, doi:0.1002/hyp.6715.
Hall, D. K., Riggs, G. A., and Salomonson, V. V. (2006, updated weekly). MODIS Terra/Aqua
Snow Cover 8-day L3 global 500 m Grid V005, January 2003 to August 2006, National
Snow and Ice Data Center, Boulder, CO, USA. Digital media.
Hall, D. K., Riggs, G. A., Salomonson, V. V., DiGirolamo, N. E., and Bayr, K. J. (2002).
MODIS snow-cover products. Remote Sensing of Environment, 83, 181–194.
Hallikainen, M. T. and Jolma, P. A. (1986). Retrieval of the water equivalent of snow cover
in Finland by satellite microwave radiometry. IEEE Transactions on Geoscience and
Remote Sensing, GRS-6, 885–862.
Multiscale Hydrologic Remote Sensing: Perspectives and Applications
Dozier, J., Painter, T. H., Rittger, K., and Frew, J. E. (2008). Time–Space continuity of daily
maps of fractional snow cover and albedo from MODIS. Advances in Water Resources,
31, 1515–1526.
Dressler, K. A., Leavesley, G. H., Bales, R. C., and Fassnact, S. R. (2006). Evaluation of gridded snow water equivalent and satellite snow cover products for mountain basins in a
hydrological model. Hydrological Processes, 20, 673–688.
Egli, L. (2008). Spatial variability of new snow amounts derived from a dense network of
Alpine automatic stations. Annals of Glaciology, 49, 51–55.
Farinotti, D., Magnusson, J., Huss, M., and Bauder, A. (2010). Snow accumulation distribution
inferred from time-lapse photography and simple modeling. Hydrological Processes,
24, 2087–2097.
Ferguson, R. I. (1999). Snowmelt runoff models. Progress in Physical Geography, 23(2), 205–227.
Finsterwalder, S. and Schunk, H. (1887). Der Suldenterner. Zeitschrift des Deutschen and
Oesterreichischen Alpenvereins, 18, 72–89.
Flerchinger, G. N. and Saxton, K. E. (1989). Simultaneous heat and water model of a freezing
snow-residue-soil system. I. Theory and development. Transactions of the American
Society of Agricultural Engineers, 32(2), 565–571.
Foster, J. L., Hall, D. K., Eylander, J. B., Kim, E., Riggs, G., Tedesco, M., Nghiem, S.,
Kelly, R., Choudhury, B., and Reichle, R. (2007). Blended visible, passive-microwave
and scatterometer global snow products, in Proceedings of the 64th Eastern Snow
Conference, 28 May–1 June 2007, St. John’s Newfoundland, Canada.
Gafurov, A. and Bárdossy, A. (2009). Cloud removal methodology from MODIS snow cover
product. Hydrology and Earth System Sciences, 13(7), 1361–1373.
Gao, Y., Xie, H., Yao, T., and Xue, C. (2010a). Integrated assessment on multitemporal and multisensor combinations for reducing cloud obscuration of MODIS snow cover products of
the Pacific Northwest USA. Remote Sensing of Environment, 114, 1662–1675.
Gao, Y., Xie, H., Lu, N., Yao, T., and Liang, T. (2010b). Toward advanced daily cloud-free
snow cover and snow water equivalent products from Terra–Aqua MODIS and Aqua
AMSR-E measurements. Journal of Hydrology, 385, 23–35.
Garen, D. C. and Marks, D. (2005). Spatially distributed energy balance snowmelt modeling
in a mountainous river basin: Estimation of meteorological inputs and verification of
model results. Journal of Hydrology, 315, 126–153.
Gillan, B. J., Harper, J. T., and Moore, J. N. (2010). Timing of present and future snowmelt
from high elevations in northwest Montana. Water Resources Research, 46, W01507,
doi:10, 1029/2009WR007861.
Grody, N. C. and Basist, A. N. (1996). Global identification of snowcover using SSM/I measurements. IEEE Transactions on Geoscience and Remote Sensing, 34(1), 237–249.
Hall, D. K., Foster, J. L., Verbyla, D. L., Kelin, A. G., and Benson, C. S. (1998). Assessment
of snow-cover mapping accuracy in a variety of vegetation-cover densities in Central
Alaska. Remote Sensing of Environment, 66(2), 129–137.
Hall, D. K. and Martinec, J. (1985). Remote Sensing of Ice and Snow. Chapman and Hall Ltd.,
New York.
Hall, D. K. and Riggs, G. A. (2007). Accuracy assessment of the MODIS snow products.
Hydrological Processes, 21(12), 1534–1547, doi:0.1002/hyp.6715.
Hall, D. K., Riggs, G. A., and Salomonson, V. V. (2006, updated weekly). MODIS Terra/Aqua
Snow Cover 8-day L3 global 500 m Grid V005, January 2003 to August 2006, National
Snow and Ice Data Center, Boulder, CO, USA. Digital media.
Hall, D. K., Riggs, G. A., Salomonson, V. V., DiGirolamo, N. E., and Bayr, K. J. (2002).
MODIS snow-cover products. Remote Sensing of Environment, 83, 181–194.
Hallikainen, M. T. and Jolma, P. A. (1986). Retrieval of the water equivalent of snow cover
in Finland by satellite microwave radiometry. IEEE Transactions on Geoscience and
Remote Sensing, GRS-6, 885–862.
