N: 90 S: -60 E: 180 W: -180
Description
NASA Global Land Data Assimilation System Version 2 (GLDAS-2) has three components: GLDAS-2.0, GLDAS-2.1, and GLDAS-2.2. GLDAS-2.0 is forced entirely with the Princeton meteorological forcing input data and provides a temporally consistent series from 1948 through 2014. GLDAS-2.1 is forced with a combination of model and observation data from 2000 to present. GLDAS-2.2 product suites use data assimilation (DA), whereas the GLDAS-2.0 and GLDAS-2.1 products are "open-loop" (i.e., no data assimilation). The choice of forcing data, as well as DA observation source, variable, and scheme, vary for different GLDAS-2.2 products.
GLDAS-2.1 data products are now available in two production streams: one stream is forced with combined forcing data including GPCP version 1.3 (the main production stream), and the other stream is processed without this forcing data (the early production stream). Since the GPCP Version 1.3 data have a 3-4 month latency, the GLDAS-2.1 data products are first created without it, and are designated as Early Products (EPs), with about 1.5 month latency. Once the GPCP Version 1.3 data become available, the GLDAS-2.1 data products are processed in the main production stream and are removed from the Early Products archive.
This data product, reprocessed in January 2020, is for GLDAS-2.1 Noah 3-hourly 1.0 degree data from the main production stream and it is a replacement to its previous version.
The 3-hourly data product was simulated with the Noah Model 3.6 in Land Information System (LIS) Version 7. The data product contains 36 land surface fields from January 2000 to present. The GLDAS-2.1 data are archived and distributed in NetCDF format. The GLDAS-2.1 products supersede their corresponding GLDAS-1 products.
The GLDAS-2.1 simulation started on January 1, 2000 using the conditions from the GLDAS-2.0 simulation. This simulation was forced with National Oceanic and Atmospheric Administration (NOAA)/Global Data Assimilation System (GDAS) atmospheric analysis fields (Derber et al., 1991), the disaggregated Global Precipitation Climatology Project (GPCP) V1.3 Daily Analysis precipitation fields (Adler et al., 2003; Huffman et al., 2001), and the Air Force Weather Agency's AGRicultural METeorological modeling system (AGRMET) radiation fields. The simulation used with GDAS and GPCP only from 2000 to February 2001, followed by addition of AGRMET for March 1, 2001 onwards.
In October 2020, all 3-hourly and monthly GLDAS-2 data were post-processed with the MOD44W MODIS land mask. Previously, some grid boxes over inland water were considered as over land and, thus, had non-missing values. The post-processing corrected this issue and masked out all model output data over inland water; the post-processing did not affect the meteorological forcing variables. More information can be found in the GLDAS-2 README. The MOD44W MODIS land mask is available on the GLDAS Project site.
If you had downloaded the GLDAS data prior to November 2020, please download the data again to receive the post-processed data.
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Product Summary
Citation
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READ-ME
GENERAL DOCUMENTATION
IMPORTANT NOTICE
Publications Citing This Dataset
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Remote control of North China autumn rainfall by Tibetan Plateau soil conditions | Mi, Jiaqin, Xie, Yongkun, Bao, Zhongrui, Zhao, Min, Su, Zifan | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Widespread and Divergent Post-Drought Loss of Gross Primary Production | Zhao, Zhuoyi, Zhou, Yanlian, Ju, Weimin, Xiao, Jingfeng, Li, Xing | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff, Canopy Characteristics, Evergreen Vegetation, Crown, Deciduous Vegetation, Leaf Characteristics, Vegetation Cover, Land Use/Land Cover Classification, Photosynthesis, Primary Production, VEGETATION PRODUCTIVITY, Fraction Of Absorbed Photosynthetically Active Radiation (fapar), Gross Primary Production (gpp), Reflectance | |
| Generation and evaluation of energy and water fluxes from the HOLAPS | Garcia-Garcia, Almudena, Peng, Jian | Evapotranspiration, Photosynthesis, Primary Production, Latent Heat Flux, Albedo, Anisotropy, Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff, Precipitation, Precipitation Amount | |
| Which global reanalysis dataset has better representativeness in snow cover on the Tibetan Plateau? | Yan, Shirui, Chen, Yang, Hou, Yaliang, Liu, Kexin, Li, Xuejing, Xing, Yuxuan, Wu, Dongyou, Cui, Jiecan, Zhou, Yue, Pu, Wei, Wang, Xin | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff, Air Temperature, 24 Hour Maximum Temperature, 24 Hour Minimum Temperature, Albedo, Snow Depth, Snow Water Equivalent, Soil Heat Budget, Soil Heat Budget, Soil Temperature, Soil Infiltration, Soil Infiltration, 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) | |
| Spatial-temporal dynamics of meteorological and soil moisture drought on the Tibetan Plateau: Trend, response, and propagation process | Lin, Hui, Yu, Zhongbo, Chen, Xuegao, Gu, Huanghe, Ju, Qin, Shen, Tongqing | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| How well do global snow products characterize snow storage in High Mountain Asia? | Liu, Yufei, Fang, Yiwen, Li, Dongyue, Margulis, Steven A. | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff, Air Temperature, Skin Temperature, Specific Humidity, Water Vapor, Snow/Ice, Evaporation, Latent Heat Flux, Latent Heat Flux, Sensible Heat Flux, Diffusion, Surface Winds, Wind Speed, U/V Wind Components, Wind Stress, Wind Stress, Surface Roughness, Planetary Boundary Layer Height, Ice Fraction, Liquid Precipitation, Albedo, Snow Depth, Snow Water Equivalent, Soil Heat Budget, Soil Heat Budget, Soil Temperature, Soil Infiltration, Soil Infiltration, Surface Soil Moisture, Root Zone Soil Moisture, Soil Moisture/Water Content, Surface Water, Runoff Rate, Average Flow, Average Flow, Precipitation, Snow Depth, Snow Melt, Snow/Ice Temperature, Leaf Area Index (LAI), Leaf Area Index (LAI), Geopotential Height, Altitude, Upper Air Temperature, Dew Point Temperature, Cloud Top Temperature, Atmospheric Winds, Upper Level Winds, U/V Wind Components, Vertical Wind Velocity/Speed, Atmospheric Pressure, Sea Level Pressure, Cloud Top Pressure, Sea Level Pressure, Total Precipitable Water, Cloud Liquid Water/Ice, Atmospheric Water Vapor, Atmospheric Ozone, Oxygen Compounds, Boundary Layer Winds, Total Ozone | |
| Characteristics and changes in the atmospheric water cycle of the Tibetan Plateau Vortex | Cheng, Qiaoxi, Fan, Guangzhou, Zhu, Lihua | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Expanding the application of soil moisture monitoring systems through regression-based transformation | Crow, Wade T., Reichle, Rolf H., Dong, Jianzhi | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Passive microwave brightness temperature assimilation to improve snow mass estimation across complex terrain in Pakistan, Afghanistan, and Tajikistan | Ahmad, Jawairia A., Forman, Barton A., Bair, Edward H., Kumar, Sujay V. | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Comparison of modeled snow properties in Afghanistan, Pakistan, and Tajikistan | Bair, Edward H., Rittger, Karl, Ahmad, Jawairia A., Chabot, Doug | Geopotential Height, Altitude, Surface Temperature, Skin Temperature, Upper Air Temperature, Dew Point Temperature, Air Temperature, Cloud Top Temperature, Atmospheric Winds, Surface Winds, U/V Wind Components, Upper Level Winds, U/V Wind Components, Vertical Wind Velocity/Speed, Atmospheric Pressure, Sea Level Pressure, Cloud Top Pressure, Sea Level Pressure, Surface Pressure, Specific Humidity, Total Precipitable Water, Cloud Liquid Water/Ice, Atmospheric Water Vapor, Atmospheric Ozone, Oxygen Compounds, Boundary Layer Winds, Total Ozone, Heat Flux, Longwave Radiation, Shortwave Radiation, Humidity, Evapotranspiration, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff | |
| Global Soil Moisture-Air Temperature Coupling Based on GRACE-Derived | Chen, Ajiao, Guan, Huade, Batelaan, Okke, Zhang, Xinping, He, Xinguang | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff, Emissivity | |
| Land surface parameter and state perturbations in the global ensemble forecast system | Gehne, Maria, Hamill, Thomas M., Bates, Gary T., Pegion, Philip, Kolczynski, Walter | Surface Pressure, Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Evapotranspiration, Surface Winds, Rain, Precipitation Rate, Snow, Soil Moisture/Water Content, Soil Temperature, Land Surface Temperature, Snow Water Equivalent, Runoff |
Variables
The table below lists the variables contained within a single granule for this dataset. Variables often contain observed or derived geophysical measurements collected from a variety of sources, including remote sensing instruments on satellite and airborne platforms, field campaigns, in situ measurements, and model outputs. The terms variable, parameter, scientific data set, layer, and band have been used across NASA’s Earth science disciplines; however, variable is the designated nomenclature in NASA’s Common Metadata Repository (CMR). Variable metadata attributes such as Name, Description, Units, Data Type, Fill Value, Valid Range, and Scale Factor allow users to efficiently process and analyze the data. The full range of attributes may not be applicable to all variables. Additional information on variable attributes is typically available in the data, user guide, and/or other product documentation.
For questions on a specific variable, please use the Earthdata Forum.
| Name Sort descending | Description | Units | Data Type | Fill Value | Valid Range | Scale Factor | Offset |
|---|---|---|---|---|---|---|---|
| Albedo_inst | Albedo_inst | % | float32 | -9999 | N/A | 1 | 0 |
| AvgSurfT_inst | AvgSurfT_inst | K | float32 | -9999 | N/A | 1 | 0 |
| CanopInt_inst | CanopInt_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| ECanop_tavg | ECanop_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| ESoil_tavg | ESoil_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Evap_tavg | Evap_tavg | kg m-2 s-1 | float32 | -9999 | N/A | 1 | 0 |
| lat | lat | degrees_north | float32 | -9999 | N/A | 1 | 0 |
| lon | lon | degrees_east | float32 | -9999 | N/A | 1 | 0 |
| LWdown_f_tavg | LWdown_f_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Lwnet_tavg | Lwnet_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| PotEvap_tavg | PotEvap_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Psurf_f_inst | Psurf_f_inst | Pa | float32 | -9999 | N/A | 1 | 0 |
| Qair_f_inst | Qair_f_inst | kg kg-1 | float32 | -9999 | N/A | 1 | 0 |
| Qg_tavg | Qg_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Qh_tavg | Qh_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Qle_tavg | Qle_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Qsb_acc | Qsb_acc | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| Qsm_acc | Qsm_acc | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| Qs_acc | Qs_acc | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| Rainf_f_tavg | Rainf_f_tavg | kg m-2 s-1 | float32 | -9999 | N/A | 1 | 0 |
| Rainf_tavg | Rainf_tavg | kg m-2 s-1 | float32 | -9999 | N/A | 1 | 0 |
| RootMoist_inst | RootMoist_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| SnowDepth_inst | SnowDepth_inst | m | float32 | -9999 | N/A | 1 | 0 |
| Snowf_tavg | Snowf_tavg | kg m-2 s-1 | float32 | -9999 | N/A | 1 | 0 |
| SoilMoi0_10cm_inst | SoilMoi0_10cm_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| SoilMoi10_40cm_inst | SoilMoi10_40cm_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| SoilMoi40_100cm_inst | SoilMoi40_100cm_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| SoilMoi100_200cm_inst | SoilMoi100_200cm_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| SoilTMP0_10cm_inst | SoilTMP0_10cm_inst | K | float32 | -9999 | N/A | 1 | 0 |
| SoilTMP10_40cm_inst | SoilTMP10_40cm_inst | K | float32 | -9999 | N/A | 1 | 0 |
| SoilTMP40_100cm_inst | SoilTMP40_100cm_inst | K | float32 | -9999 | N/A | 1 | 0 |
| SoilTMP100_200cm_inst | SoilTMP100_200cm_inst | K | float32 | -9999 | N/A | 1 | 0 |
| SWdown_f_tavg | SWdown_f_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| SWE_inst | SWE_inst | kg m-2 | float32 | -9999 | N/A | 1 | 0 |
| Swnet_tavg | Swnet_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Tair_f_inst | Tair_f_inst | K | float32 | -9999 | N/A | 1 | 0 |
| time | time | minutes since 2000-01-01 03:00:00 | float64 | N/A | N/A | N/A | N/A |
| time_bnds | time_bnds | N/A | float64 | N/A | N/A | N/A | N/A |
| Tveg_tavg | Tveg_tavg | W m-2 | float32 | -9999 | N/A | 1 | 0 |
| Wind_f_inst | Wind_f_inst | m s-1 | float32 | -9999 | N/A | 1 | 0 |