248
Multiscale Hydrologic Remote Sensing: Perspectives and Applications
Molotch, N. P. (2009). Reconstructing snow water equivalent in the Rio Grande headwaters
using remotely sensed snow cover data and a spatially distributed snowmelt model.
Hydrological Processes, 23, 1076–1089.
Molotch, N. P. and Margulis, S. A. (2008). Estimating the distribution of snow water equivalent
using remotely sensed snow cover data and a spatially distributed snowmelt model: A
multi-resolution, multi-sensor comparison. Advances in Water Resources, 31, 1503–1514.
Morris, E. M. (1982). Sensitivity of the European hydrological system snow models.
International Association of Hydrological Sciences Publication, 138, 222–231.
Mote, P. W. (2003). Trends in snow water equivalent in the Pacific Northwest and their climatic
causes. Geophysical Research Letters, 30(12), 1601, doi:10.1029/2003GL017258.
Mote, P. W. (2006). Climate-driven variability and trends in mountain snowpack in western
North America. Journal of Climate, 19(23), 6209–6220, doi:10.1175/JCLI3971.1.
Parajka, J., and Blöschl, G. (2006). Validation of MODIS snow cover images over Austria.
Hydrology and Earth System Sciences, 10, 679–689.
Parajka, J. and Blöschl, G. (2008a). Spatio-temporal combination of MODIS images potential
for snow cover mapping. Water Resources Research, 44, 1–13, W03406, doi:10.1029/
2007WR006204.
Parajka, J. and Blöschl, G. (2008b). The value of MODIS snow cover data in validating and
calibrating conceptual hydrologic models. Journal of Hydrology, 358, 240–258.
Parajka, J., Pepe, M., Rampini, A., Rossi, S., and Bloschl, G. (2010). A regional snowline method for estimating snow cover from MODIS during cloud cover. Journal of
Hydrology, 381, 203–212.
Paugoulia, D. (1991). Hydrological response of a medium-sized mountainous catchment to
climate change. Hydrological Sciences Journal, 36, 525–547.
Pulliainen, J. (2006). Mapping of snow water equivalent and snow depth in boreal and subarctic zones by assimilating space-borne microwave radiometer data and ground-based
observations. Remote Sensing of Environment, 101, 257–269.
Quick, M. C. and Pipes, A. (1977). U.B.C. Watershed model. Hydrological Sciences Bulletin,
22(1), 153–161.
Rango, A. and Martinec, J. (1994). Model accuracy in snowmelt-runoff forecasts extending
from 1 to 20 days. Water Resources Bulletin, 30(3), 463–470.
Rango, A. and Martinec, J. (1995). Revisiting the degree-day method for snowmelt computations. Water Resources Bulletin, 31(4), 657–669.
Regonda, S. K., Rajagopalan, B., Clark, M., and Pitlick, J. (2005). Seasonal cycle shifts in
hydroclimatology over the western United States. Journal of Climate, 18(2), 372–384,
doi:10.1175/JCLI-3272.1.
Robinson, D. A. (1999). Northern hemisphere snow cover during the satellite era, in Proc.
5th Conference on Polar Meteorology and Oceanography, pp. 255–260. American
Meteorological Society, Boston, MA, 1999.
Robinson, D. A., Dewey, K. F., and Heim, R. R. (1993). Global Snow Cover Monitoring:
An Update. U.S. Dept. Comm. Publications. http://digitalcommons.unl.edu/usdeptcom
mercepub/40.
Salomonson, V. V. and Appel, I. (2004). Estimating fractional snow cover from MODIS using
the normalized difference snow index. Remote Sensing of Environment, 89, 351–360,
doi:10.1016/jrse.2003.10.016.
Seaber, P. R., Kapinos, F. P., and Knapp, G. L. (1987). Hydrologic Unit Maps: U.S. Geologic
Survey, Water Supply Paper 2294, 63 pp.
Serreze, M. C., Clark, M. P., Armstrong, D. A., McGinnis, D. A., and Pulwarty, R. S. (1999).
Characteristics of the western United States snowpack from snowpack telemetry (SNOTEL)
data. Water Resources Research, 35, 2145–2160, doi:10.1029/1999/WR900090.
Singh, P., Kumar, N., and Arora, M. (2000). Degree-day factors for snow and ice for Dokriani
Glacier, Garhwal Himalayas. Journal of Hydrology, 235, 1–11.
Multiscale Hydrologic Remote Sensing: Perspectives and Applications
Molotch, N. P. (2009). Reconstructing snow water equivalent in the Rio Grande headwaters
using remotely sensed snow cover data and a spatially distributed snowmelt model.
Hydrological Processes, 23, 1076–1089.
Molotch, N. P. and Margulis, S. A. (2008). Estimating the distribution of snow water equivalent
using remotely sensed snow cover data and a spatially distributed snowmelt model: A
multi-resolution, multi-sensor comparison. Advances in Water Resources, 31, 1503–1514.
Morris, E. M. (1982). Sensitivity of the European hydrological system snow models.
International Association of Hydrological Sciences Publication, 138, 222–231.
Mote, P. W. (2003). Trends in snow water equivalent in the Pacific Northwest and their climatic
causes. Geophysical Research Letters, 30(12), 1601, doi:10.1029/2003GL017258.
Mote, P. W. (2006). Climate-driven variability and trends in mountain snowpack in western
North America. Journal of Climate, 19(23), 6209–6220, doi:10.1175/JCLI3971.1.
Parajka, J., and Blöschl, G. (2006). Validation of MODIS snow cover images over Austria.
Hydrology and Earth System Sciences, 10, 679–689.
Parajka, J. and Blöschl, G. (2008a). Spatio-temporal combination of MODIS images potential
for snow cover mapping. Water Resources Research, 44, 1–13, W03406, doi:10.1029/
2007WR006204.
Parajka, J. and Blöschl, G. (2008b). The value of MODIS snow cover data in validating and
calibrating conceptual hydrologic models. Journal of Hydrology, 358, 240–258.
Parajka, J., Pepe, M., Rampini, A., Rossi, S., and Bloschl, G. (2010). A regional snowline method for estimating snow cover from MODIS during cloud cover. Journal of
Hydrology, 381, 203–212.
Paugoulia, D. (1991). Hydrological response of a medium-sized mountainous catchment to
climate change. Hydrological Sciences Journal, 36, 525–547.
Pulliainen, J. (2006). Mapping of snow water equivalent and snow depth in boreal and subarctic zones by assimilating space-borne microwave radiometer data and ground-based
observations. Remote Sensing of Environment, 101, 257–269.
Quick, M. C. and Pipes, A. (1977). U.B.C. Watershed model. Hydrological Sciences Bulletin,
22(1), 153–161.
Rango, A. and Martinec, J. (1994). Model accuracy in snowmelt-runoff forecasts extending
from 1 to 20 days. Water Resources Bulletin, 30(3), 463–470.
Rango, A. and Martinec, J. (1995). Revisiting the degree-day method for snowmelt computations. Water Resources Bulletin, 31(4), 657–669.
Regonda, S. K., Rajagopalan, B., Clark, M., and Pitlick, J. (2005). Seasonal cycle shifts in
hydroclimatology over the western United States. Journal of Climate, 18(2), 372–384,
doi:10.1175/JCLI-3272.1.
Robinson, D. A. (1999). Northern hemisphere snow cover during the satellite era, in Proc.
5th Conference on Polar Meteorology and Oceanography, pp. 255–260. American
Meteorological Society, Boston, MA, 1999.
Robinson, D. A., Dewey, K. F., and Heim, R. R. (1993). Global Snow Cover Monitoring:
An Update. U.S. Dept. Comm. Publications. http://digitalcommons.unl.edu/usdeptcom
mercepub/40.
Salomonson, V. V. and Appel, I. (2004). Estimating fractional snow cover from MODIS using
the normalized difference snow index. Remote Sensing of Environment, 89, 351–360,
doi:10.1016/jrse.2003.10.016.
Seaber, P. R., Kapinos, F. P., and Knapp, G. L. (1987). Hydrologic Unit Maps: U.S. Geologic
Survey, Water Supply Paper 2294, 63 pp.
Serreze, M. C., Clark, M. P., Armstrong, D. A., McGinnis, D. A., and Pulwarty, R. S. (1999).
Characteristics of the western United States snowpack from snowpack telemetry (SNOTEL)
data. Water Resources Research, 35, 2145–2160, doi:10.1029/1999/WR900090.
Singh, P., Kumar, N., and Arora, M. (2000). Degree-day factors for snow and ice for Dokriani
Glacier, Garhwal Himalayas. Journal of Hydrology, 235, 1–11.
