Wang X W, Xie H J, Liang T G. Evaluation of MODIS snow cover and cloud mask and its application in Northern Xinjiang, China. Remote Sensing of Environment, 2008, 112:1497-1513.
[9]
Lora S K, Richard R F. Evaluation of passive microwave snow water equivalent algorithms in the depth hoar-dominated snowpack of the Kuparuk River Watershed, Alaska, USA. Remote Sensing of Environment, 2004, 93: 511-527.
[10]
Wulder M A, Nelson T A, Derksen C. Snow cover variability across central Canada (1978-2002) derived from satellite passive microwave data. Climatic Change, 2007, 82(1): 113-130.
[11]
Liang T G, Zhang X T, Xie H J, et al. Toward improved daily snow cover mapping with advanced combination of MODIS and AMSR-E measurements. Remote Sensing of Environment, 2008, 112: 3750-3761.
[12]
Liang T G, Huang X D, Wu C X, et al. An application of MODIS data to snow cover monitoring in a pastoral area: A case study in Northern Xinjiang, China. Remote Sensing of Environment, 2008, 112: 1514-1526.
Wang X W, Xie H J, Liang T G, et al. Comparison and validation of MODIS standard and new combination of terra and aqua snow cover products in Northern Xinjiang, China. Hydrological Processes, 2008, doi: 10.1002/hyp.7151.
[15]
Gao Y, Xie H J, Lu N, et al. Toward advanced daily cloud-free snow cover and snow water equivalent products from Terra-Aqua MODIS and Aqua AMSR-E measurements. Journal of Hydrology, 2010, 385:23-35.
Maurer E P, Rhoads J D, Dubayah R O, et al. Evaluation of the snow-covered area data product from MODIS. Hydrological Processes, 2003, 17: 59-71.
[39]
Klein A G, Barnett A C. Validation of daily MODIS snow cover maps of the upper Rio Grande River Basin for the 2000-2001 snow year. Remote Sensing of Environment, 2003, 86: 162-176.
[40]
Simic A, Fernandes R, Brown R, et al. Validation of vegetation, MODIS, and GOES+SSM/I snow-cover products over Canada based on surface snow depth observations. Hydrological Process, 2004, 18: 1089-1104.