N: 90 S: -90 E: 180 W: -180
TABLE OF CONTENTS
Description
This global Level-3 (L3) data set provides monthly mean snow cover extent within 0.05° (approx. 5 km) MODIS Climate Modeling Grid (CMG) cells. This data set is derived from snow cover observations in the 'MODIS/Terra Snow Cover Daily L3 Global 0.05Deg CMG’ data set (DOI:10.5067/MODIS/MOD10C1.061).
The terms "Version 61" and "Collection 6.1" are used interchangeably in reference to this release of MODIS data.
Version Description
Product Summary
Platforms
Instruments
Spatial Extent
Spatial Resolution
0.05 Decimal Degrees x 0.05 Decimal Degrees
Location
GLOBAL LAND
Coordinate System
CARTESIAN
Granule Spatial Representation
CARTESIAN
Temporal Extent
2000-03-01 to Present
Temporal Resolution
1 Month
Concept ID
C3050353608-NSIDC_CPRD
Data State
ACTIVE
Number of Files/Granules
308
Processing Level
3
Published
Science Keywords
Citation
Citation is critically important for dataset documentation and discovery. This dataset is openly shared, without restriction, in accordance with the EOSDIS Data Use and Citation Guidance.
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Citation Copied
Hall, D., & Riggs, G. (2021). MODIS/Terra Snow Cover Monthly L3 Global 0.05Deg CMG, Version 61 [Data set]. NASA National Snow and Ice Data Center Distributed Active Archive Center. https://doi.org/10.5067/MODIS/MOD10CM.061 Date Accessed: 2026-05-02
Hall, Dorothy, and George Riggs. “MODIS/Terra Snow Cover Monthly L3 Global 0.05Deg CMG, Version 61.” NASA National Snow and Ice Data Center Distributed Active Archive Center, 2021. doi:10.5067/MODIS/MOD10CM.061. Date Accessed: 2026-05-02
Hall, Dorothy, and George Riggs. MODIS/Terra Snow Cover Monthly L3 Global 0.05Deg CMG, Version 61. NASA National Snow and Ice Data Center Distributed Active Archive Center, 2021, doi:10.5067/MODIS/MOD10CM.061. Date Accessed: 2026-05-02
TABLE OF CONTENTS
Documents
DATA PRODUCT SPECIFICATION
GENERAL DOCUMENTATION
Publications Citing This Dataset
Filters
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Global risk pooling mitigates financial risk from drought in hydropower-dependent countries | Cuppari, Rosa Isabella, Pavelsky, Tamlin M., Characklis, Gregory W. | Snow Cover, Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Emissivity, Land Surface Temperature, Precipitation, Precipitation Amount, Precipitation Rate, Snow, Rain | |
| The observed near-surface thermal stability from 2002 to 2024 over | Yu, Kexing, Wang, Kaicun | Albedo, Anisotropy, Snow Cover | |
| A framework to explore the services value provided by snow cover: A case study for Heilongjiang Province, China | Fan, Yu, Jia, Changgeng, Song, Youtao, Yan, Denghua | Snow Cover | |
| Impact of topography and meteorological forcing on snow simulation in | Wang, Libo, Mudryk, Lawrence, Melton, Joe R., Mortimer, Colleen, Cole, Jason, Meyer, Gesa, Bartlett, Paul, Lalande, Mickael | Albedo, Anisotropy, Albedo, Snow Depth, Snow Water Equivalent, Snow Cover | |
| Factors behind the Rare Winter Asian Sand and Dust Storm in December 2022 | Hara, Yukari, Jin, Yoshitaka, Shimizu, Atsushi, Nishizawa, Tomoaki, Yumimoto, Keiya | Snow Cover | |
| Improving satellite remote sensing estimates of the global terrestrial | Heberger, Matthew, Aires, Filipe, Pellet, Victor | Emissivity, Land Surface Temperature, Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Terrestrial Water Storage, Snow Cover | |
| Patterns of snow drought under climate change: From dry to warm dominance | Wang, Chuan, Li, Zhi, Guyennon, Nicolas, Chen, Yaning, Li, Yupeng, Liang, Qixiang, Di, Yanfeng | Snow Cover | |
| Precipitation Trends and Andean Snow Cover: Climate Interactions and | Melo, Kennedy da Silva, Delgado, Rafael Coll, Mendonca, Ana Pamela Tavares | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Snow Cover | |
| Rainfall-Driven Extreme Snowmelt Will Increase in the Tianshan and Pamir | Yang, Tao, Chen, Xi, Hamdi, Rafiq, Li, Lanhai, Cui, Fengqi, De Maeyer, Philippe, Duan, Weili | Snow Cover | |
| Climate-change-induced seismicity: The recent onset of seasonal | Simon, Verena, Kraft, Toni, Marechal, Jean-Christophe, Helmstetter, Agnes, Diehl, Tobias | Snow Cover | |
| Modeling the Effects of Vegetation and Snow on Dust Storm Over the Gobi | Hao, Yueting, Wang, Zilin, Xue, Lian, Lou, Sijia, Ding, Ke, Qin, Yue, Huang, Xin | Snow Cover | |
| Performance of Common Land Model in Simulating the Land Surface Thermal | Zhang, Xindan, Huang, Anning, Yang, Xianyu, Gu, Chunlei, Cai, Shuxin, Luo, Jiangxin | Snow Cover | |
| A sub-monthly timescale causality between snow cover and surface air temperature in the Northern Hemisphere inferred by LiangKleeman information flow analysis | Takaya, Yuhei, Komatsu, Kensuke K., Ganeshi, Naresh Govind, Toyoda, Takahiro, Hasumi, Hiroyasu | Atmospheric Radiation, Longwave Radiation, Shortwave Radiation, Radiative Flux, Radiative Forcing, Surface Radiative Properties, Albedo, Emissivity, Cloud Properties, Cloud Fraction, Cloud Optical Depth/Thickness, Skin Temperature, Skin Temperature, Sea Surface Skin Temperature, Soil Heat Budget, Soil Heat Budget, Soil Temperature, Soil Temperature, Soil Infiltration, Soil Infiltration, Soil Moisture/Water Content, Surface Soil Moisture, Root Zone Soil Moisture, Soil Moisture/Water Content, Evaporation, Surface Water, Runoff Rate, Average Flow, Average Flow, Precipitation, Snow/Ice, Snow Depth, Snow Melt, Snow/Ice Temperature, Leaf Area Index (LAI), Leaf Area Index (LAI), Air Temperature, Precipitation Rate, 24 Hour Maximum Temperature, 24 Hour Minimum Temperature, Snow Cover | |
| Converging Findings of Climate Models and Satellite Observations on the | Caporaso, Luca, Duveiller, Gregory, Giuliani, Graziano, Giorgi, Filippo, Stengel, Martin, Massaro, Emanuele, Piccardo, Matteo, Cescatti, Alessandro | Snow Cover | |
| Decreasing Relative Importance of Drawdown Areas on Waters in CO2 Emissions in Drylands | Ma, Yuanzhi, Ling, Hongbo, Deng, Xiaoya, Han, Feifei, Chen, Chaoqun, Yan, Junjie, Gong, Yanming, Zhang, Guangpeng, Jiao, Ayong | Snow Cover | |
| SNOOPI: Demonstrating Earth remote sensing using P-band signals of | Garrison, James L., Vega, Manuel A., Shah, Rashmi, Mansell, Justin R., Nold, Benjamin, Raymond, Juan, Banting, Roger, Bindlish, Rajat, Larsen, Kameron, Kim, Seho, Li, Weihang, Kurum, Mehmet, Piepmeier, Jeffrey, Khalifi, Hasnaa, Tanner, Forrest A., Horgan, Kevin, Kielbasa, Chase E., Babu, Sachidananda R. | Snow Cover | |
| Satellite-based solar-induced fluorescence tracks seasonal and | Kunik, Lewis, Bowling, David R, Raczka, Brett, Frankenberg, Christian, Kohler, Philipp, Cheng, Rui, Smith, Kenneth R, Goulden, Michael, Jung, Martin, Lin, John C | Leaf Characteristics, Photosynthetically Active Radiation, Leaf Area Index (LAI), Fraction Of Absorbed Photosynthetically Active Radiation (fapar), Snow Cover | |
| Establishing a Series of Dust Event Case Studies for East Asia | Letcher, Theodore, Sparrow, Kent, LeGrand, Sandra | Snow Cover, Albedo, Infrared Radiance, REFLECTED INFRARED, Visible Radiance | |
| Improving climate model skill over High Mountain Asia by adapting snow cover parameterization to complex-topography areas | Lalande, Mickael, Menegoz, Martin, Krinner, Gerhard, Ottle, Catherine, Cheruy, Frederique | Albedo, Snow Depth, Snow Water Equivalent, Snow Cover | |
| A simplified multi-model statistical approach for predicting the effects of forest management on land surface temperature in Fennoscandia | Huang, Bo, Li, Yan, Liu, Yi, Hu, Xiangping, Zhao, Wenwu, Cherubini, Francesco | Emissivity, Land Surface Temperature, Snow Cover | |
| Oceanic climate changes threaten the sustainability of Asia's water tower | Zhang, Qiang, Shen, Zexi, Pokhrel, Yadu, Farinotti, Daniel, Singh, Vijay P., Xu, Chong-Yu, Wu, Wenhuan, Wang, Gang | Snow Cover | |
| Effect of Image-Processing Routines on Geographic Object-Based Image | Jawak, Shridhar D., Wankhede, Sagar F., Luis, Alvarinho J., Balakrishna, Keshava | Snow Cover |
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