N: 60 S: -56 E: 180 W: -180
Description
The Land Processes Distributed Active Archive Center (LP DAAC) is responsible for the archive and distribution of the NASA Making Earth System Data Records for Use in Research Environments (MEaSUREs) Digital Elevation Model (DEM) version 1 (NASADEM_HGT) dataset, which provides global elevation data at 1 arc second spacing.
NASADEM data products were derived from original telemetry data from the Shuttle Radar Topography Mission (SRTM), a collaboration between NASA and the National Geospatial-Intelligence Agency (NGA), as well as participation from the German and Italian space agencies. SRTM's primary focus was to generate a near-global DEM of the Earth using radar interferometry. It was a primary component of the payload on space shuttle Endeavour during its STS-99 mission, which was launched on February 11, 2000, and flew for 11 days.
In addition to Terra Advanced Spaceborne Thermal and Reflection Radiometer (ASTER) Global Digital Elevation Model (GDEM) Version 2 data, NASADEM also relied on Ice, Cloud, and Land Elevation Satellite (ICESat) Geoscience Laser Altimeter System (GLAS) ground control points of its lidar shots to improve surface elevation measurements that led to improved geolocation accuracy. Other reprocessing improvements include the conversion to geoid reference and the use of GDEMs and Advanced Land Observing Satellite Panchromatic Remote-sensing instrument for Stereo Mapping (PRISM) AW3D30 DEM, and interpolation for void filling.
NASADEM are distributed in 1 degree latitude by 1 degree longitude tiles and consist of all land between 60° N and 56° S latitude. This accounts for about 80% of Earth's total landmass.
NASADEM_HGT data product layers include DEM, number of scenes (NUM), and an updated SRTM water body dataset (water mask). The NUM layer indicates the number of scenes that were processed for each pixel and the source of the data. A low-resolution browse image showing elevation is also available for each NASADEM_HGT granule.
The global 1 arc second NASADEM product is also available in NetCDF4 format as the NASADEM_NC dataset with the source of each elevation pixel in the corresponding NASADEM_NUMNC product.
Product Summary
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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File Naming Convention
The file name begins with the latitude and longitude of the lower left corner of the tile (s01w047) followed by the File Extension/Variable (hgt).
Documents
Publications Citing This Dataset
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Current and Projected Changes in Lake Ice Phenology on the Tibetan | Cai, Yu, Xiao, Yao, Shen, Xiaoyi, Li, Haili, Wang, Zifei, Wang, Jingjing, Ke, ChangQing | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Conservation effects of transboundary protected areas on mitigating | An, Li, Shen, Lei, Zhong, Shuai, Li, Delong, Zhu, Yidong | Reflectance, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Contrasting Daytime Habitat Selection in Wild Red Deer Within and | Rempfler, Thomas, Peters, Wibke, Signer, Claudio, Filli, Flurin, Jenny, Hannes, Hacklander, Klaus, Buchmann, Sven, Anderwald, Pia | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Deploying photovoltaic systems in global open-pit mines for a clean energy transition | Wang, Kechao, Zhou, Jiatong, Yang, Runjia, Xu, Suchen, Hu, Zhenqi, Xiao, Wu | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| DeepSARFlood: Rapid and automated SAR-based flood inundation mapping using vision transformer-based deep ensembles with uncertainty estimates | Sharma, Nirdesh Kumar, Saharia, Manabendra | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Determination of Fractional Vegetation Cover Threshold Based on the Integrated SynergySupply Capacity of Ecosystem Services | Liu, Zehui, Bi, Huaxing, Zhao, Danyang, Guan, Ning, Wang, Ning, Song, Yilin | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Evaluating satellite data and deep learning for identifying direct deforestation drivers in Cameroon | Debus, Amandine, Beauchamp, Emilie, Kamga, Justin, Verhegghen, Astrid, Zebaze, Christiane, Lines, Emily R. | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Evaluating Earth observation products for Catchment-Scale operational | Idowu, Dorcas, Peter, Brad G., Boakye, Jessica, Cohen, Sagy, Carter, Elizabeth | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Evaluation of the natural water vulnerability of watersheds through the | da Silva, Renan Rodrigues Campos, Ferreira-Santos, Jussara, de Melo Ribeiro, Celso Bandeira | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Forest edges are globally warmer than interiors and exceed optimal temperatures for vegetation productivity | Reek, Josephine Elena, Crowther, Thomas W., Lauber, Thomas, Schemm, Sebastian, Parastatidis, David, Chrysoulakis, Nektarios, Huang, Mengtian, Piao, Shilong, Zohner, Constantin M., Smith, Gabriel Reuben | Land Surface Temperature, Emissivity, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Impact of climate change on rainfall erosivity in the Amazon and Cerrado biomes under CMIP6 scenarios | de Mendonca, Leonardo Melo, Blanco, Claudio, Cruz, Josias da Silva | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| High-resolution soil organic carbon mapping for enhancing predictive | Trinco, Fabio D., Zeraatpisheh, Mojtaba, Turner, Hannah C., El Mujtar, Veronica, Tittonell, Pablo A., Galford, Gillian L. | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| High-resolution wall-to-wall time series of seasonal maize area and yield for Rwanda over 20192023 | Fankhauser, Katie, Thomas, Evan, Brook, Christopher, Gatera, Arsene, Mehrabi, Zia | Land Surface Temperature, Emissivity, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Impacts of changes in climate, cryosphere, and vegetation on freshwater supply in the southeastern Tibetan Plateau | Liu, Wen, Li, Yiyi, Li, Dongfeng, Lin, Peirong, Wang, Xiaoming, Pritchard, Hamish D., Kraaijenbrink, Philip D.A. | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Integrating Cloud Computing and Landscape Metrics to Enhance Land Use/Land Cover Mapping and Dynamic Analysis in the Shandong Peninsula Urban Agglomeration | Xiao, Jue, Chen, Longqian, Zhang, Ting, Teng, Gan, Ma, Linyu | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Integrating MultiLevel Sustainability and Ecosystem Integrity for Adaptive Scenario Planning in China | Wang, Yafei, He, Yao, Zhou, Hao, Kuiper, Jan J., Scown, Murray, CarpenterUrquhart, Liam R., Olin, Stefan, Olsson, Lennart, Ye, Yuxuan, Shen, Shuwei, Fan, Jie, Peterson, Garry D. | Photosynthesis, Primary Production, Vegetation Productivity, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Integrating satellite radar vegetation indices and environmental | dos Santos, Erli Pinto, Moreira, Michel Castro, Fernandes-Filho, Elpidio Inacio, Dematte, Jose A.M., Santos, Uemeson Jose dos, Moura-Bueno, Jean Michel, Cruz, Renata Ranielly Pedroza, Silva, Demetrius David da, Sampaio, Everardo Valadares de Sa Barreto | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Integrating self-organizing mapping and causal inference to assess | Tang, Xi, Huang, Jinliang, Chen, Shengyue, Wu, Jianyong, Zhang, Zhenyu, Zhang, Qian | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| A comparison of country-scale subsoil predictions between a numeric and | Flynn, Trevan, Clarke, Catherine, Kostecki, Rosana, Rebi, Ansa | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Digital Soil Mapping of Soil Organic Carbon at Eastern Slopes of Mount Kenya | Gelsleichter, Y. A., Toth, A. J., Micheli, E., Mutuma, E., Wawire, Amos, Csorba, A. | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Disentangling and integrating spatiotemporal features: Deep | Liang, Qixiang, Hao, Xingming, Ci, Mengtao, Yuan, Mengqi, Di, Yanfeng, Sun, Fan, Wang, Chuan, Zhang, Jingjing, Fan, Xue, Xiong, Haibin | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Divergent Trends of Open Surface Water Body Area of River and Lake | Zhao, Yunxuan, Liu, Hongxi, Du, Jizeng, Guo, Chao, Xiao, Leling, Yi, Yujun | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Environmental Determinants of Foraging Site Revisitation by African | Jacob, Suzanne Antoinette, De Boer, Willem Frederik, De Knegt, Henrik Johan, Engelen, Cassander Cassijn, Henley, Michelle | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Land Surface Temperature, Emissivity, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Energy landscapes direct the movement preferences of elephants | Berti, Emilio, Rosenbaum, Benjamin, Vollrath, Fritz | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Climate Change Risk to Giant Panda Populations: Insights From Changes in Both Habitat Area and Bioclimatic Velocity | Ning, Lehua, Yu, Shulin, Wang, Pan, Li, Renqiang, Zhu, Di, Zhang, Jingyong | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps |