N: 90 S: -90 E: 180 W: -180
30 Meters x 30 Meters
90 Meters x 90 Meters
The AST_L1T.031 Version 3 data product was decommissioned on December 15, 2025. Users are encouraged to use the AST_L1T Version 4 data product.
The Terra Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) Level 1 Precision Terrain Corrected Registered At-Sensor Radiance (AST_L1T) Version 3.1 data contains calibrated at-sensor radiance, which corresponds with the ASTER Level 1B (AST_L1B), that has been geometrically corrected and rotated to a north-up UTM projection. The AST_L1T V3.1 is created from a single resampling of the corresponding ASTER Level 1A (AST_L1A) product. Radiometric calibration coefficients Version 5 (RCC V5) are applied to this product to improve the degradation curve derived from vicarious and lunar calibrations. The bands available in the AST_L1T V3.1 depend on the bands in the AST_L1A and can include up to three Visible and Near Infrared (VNIR) bands, six Shortwave Infrared (SWIR) bands, and five Thermal Infrared (TIR) bands. The AST_L1T V3.1 dataset does not include the aft-looking VNIR band 3. The AST_L1T product has a spatial resolution of 15 meters (m) for the VNIR bands, 30 m for the SWIR bands, and 90 m for the TIR bands.
The 3.1 version uses a precision terrain correction process that incorporates GLS2000 digital elevation data with derived ground control points (GCPs) to achieve topographic accuracy for all daytime scenes where correlation statistics reach a minimum threshold. Alternate levels of correction are possible (systematic terrain, systematic, or precision) for scenes acquired at night or that otherwise represent a reduced quality ground image (e.g., cloud cover).
For daytime images, if the VNIR or SWIR telescope collected data and precision correction was attempted, each precision terrain corrected image will have an accompanying independent quality assessment. It will include the geometric correction available for distribution in both a text file and a single band browse image with the valid GCPs overlaid.
This multi-file product also includes georeferenced full resolution browse images. The number of browse images and the band combinations of the images depend on the bands available in the corresponding AST_L1A dataset.
The AST_L1T V3.1 data product is only available through NASA's Earthdata Search. The ASTER L1T Earthdata Search Order Instructions provide step-by-step directions for ordering this product.
Known Issues
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.
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Application of spectral analysis to determine geothermal anomalies in the Tuzla region, NW Turkey | Erenoglu, R. Cuneyt, Arslan, Niyazi, Erenoglu, Oya, Arslan, Enis | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Satellite monitoring of thermal performance in smart urban designs | Mullerova, Daniela, Williams, Meredith | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| The origin and evolution of breakouts in a cooling-limited rhyolite lava flow | Magnall, Nathan, James, Mike R., Tuffen, Hugh, Vye-Brown, Charlotte, Schipper, C. Ian, Castro, Jonathan M., Davies, Ashley Gerard | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| A comparison of NDVI and EVI in the DisTrad model for thermal sub-pixel mapping in densely vegetated areas: A case study in Southern China | Qiu, Jizhong, Yang, Jingxue, Wang, Yunpeng, Su, Hua | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Direct and spillover effects of urbanization on PM2. 5 concentrations in China's top three urban agglomerations | Du, Yueyue, Sun, Tieshan, Peng, Jian, Fang, Kai, Liu, Yanxu, Yang, Yang, Wang, Yanglin | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| CART and IDC based classification of irrigated agricultural fields using multi-source satellite data | Patil, Virupakshagouda C., Al-Gaadi, Khalid A., Madugundu, Rangaswamy, Tola, ElKamil, Zeyada, Ahmed M., Marey, Samy, Biradar, Chandrashekhar M | Reflectance, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| A simple method based on the thermal anomaly index to detect industrial heat sources | Xia, Haiping, Chen, Yunhao, Quan, Jinling | Fire Occurrence, Surface Thermal Properties, Land Surface Temperature, THERMAL ANOMALIES, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Global snow zone maps and trends in snow persistence 20012016 | Hammond, John C., Saavedra, Freddy A., Kampf, Stephanie K. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Basal friction of Fleming Glacier, AntarcticaPart 1: Sensitivity of inversion to temperature and bedrock uncertainty | Zhao, Chen, Gladstone, Rupert M., Warner, Roland C., King, Matt A., Zwinger, Thomas, Morlighem, Mathieu | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Basal friction of Fleming Glacier, AntarcticaPart 2: Evolution from 2008 to 2015 | Zhao, Chen, Gladstone, Rupert M., Warner, Roland C., King, Matt A., Zwinger, Thomas, Morlighem, Mathieu | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Precipitation sensitivity to the uncertainty of terrestrial water flow in WRF-Hydro: An ensemble analysis for central Europe | Arnault, Joel, Rummler, Thomas, Baur, Florian, Lerch, Sebastian, Wagner, Sven, Fersch, Benjamin, Zhang, Zhenyu, Kerandi, Noah, Keil, Christian, Kunstmann, Harald | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Effects of land use/cover change on regional land surface temperatures: severe warming from drying Toshka lakes, the Western Desert of Egypt | Hereher, Mohamed E. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Effects of the Structure of Water Rights on Agricultural Production During Drought: A Spatiotemporal Analysis of California's Central Valley | Nelson, K. S., Burchfield, E. K. | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| A toolbox for sediment budget research in small catchments | Chalov, S., Golosov, V., Tsyplenkov, A., Theuring, Ph., Zakerinejad, R., Marker, M., Samokhin, M. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Tensorial neural networks and its application in longitudinal network data analysis | Bai, Mingyuan, Zhang, Boyan, Gao, Junbin | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance |