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 |
|---|---|---|---|
| A new band ratio approach for discriminating calcite and dolomite by ASTER imagery in arid and semiarid regions | Rasouli Beirami, Meisam, Tangestani, Majid H. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Geochemical and geochronological characteristics of the Um Rus granite intrusion and associated gold deposit, Eastern Desert, Egypt | Zoheir, Basem, Goldfarb, Richard, Holzheid, Astrid, Helmy, Hassan, El Sheikh, Ahmed | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Evapotranspiration in the Tono reservoir catchment in upper east region of Ghana estimated by a novel TSEB approach from ASTER imagery | Alhassan, Abdullah, Jin, Menggui | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| ASTER spectral band ratios for lithological mapping: a case study for measuring geological offset along the Erkenek Segment of the East Anatolian Fault Zone, Turkey | Khalifa, Abdelrahman, Cakr, Ziyadin, Kaya, Sinasi, Gabr, Safwat | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Application of thermal remote sensing technique for mapping of ultramafic, carbonate and siliceous rocks using ASTER data in Southern Rajasthan, India | Jain, Ronak, Bhu, Harsh, Purohit, Ritesh | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Comparison of emissivity retrieval methods from ASTER data using Fourier-Transform Infrared Spectroscopy | Rolim, Silvia Beatriz Alves, Veettil, Bijeesh Kozhikkodan, Kafer, Pamela Suelen, Grondona, Atilio Efrain Bica, Iglesias, Maria Lujan, Diaz, Lucas Ribeiro, Hackmann, Cristiano Lima | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Emissivity | |
| Integration of selective dimensionality reduction techniques for mineral exploration using ASTER satellite data | Shirmard, Hodjat, Farahbakhsh, Ehsan, Beiranvand Pour, Amin, Muslim, Aidy M, Muller, R. Dietmar, Chandra, Rohitash | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integration of the bands of ASTER, OLI, MSI remote sensing sensors for detection of hydrothermal alterations in southwestern area of the Ardestan, Isfahan Province, Central Iran | Forouzan, Mohammad, Arfania, Ramin | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Iterative Reward Learning for Robotic Exploration | Acharya, Aastha, Wakayama, Shohei, Hayes, Bradley, Ahmed, Nisar R. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Satellite ASTER mineral mapping the provenance of the loess used by the ming to build their earthen Great Wall | Cudahy, Tom, Shi, Pilong, Novikova, Yulia, Fu, Bihong | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| The Global Land Carbon Cycle Simulated With ISBA-CTRIP: Improvements | Delire, Christine, Seferian, Roland, Decharme, Bertrand, Alkama, Ramdane, Calvet, JeanChristophe, Carrer, Dominique, Gibelin, AnneLaure, Joetzjer, Emilie, Morel, Xavier, Rocher, Matthias, Tzanos, Diane | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Carbonaceous Aerosols, Nitrogen Oxides, Particulates, Hydrogen Cyanide, Emissions, Non-methane Hydrocarbons/Volatile Organic Compounds, Particulate Matter, Fire Occurrence, Nitrogen Oxides, Sulfur Dioxide, Carbon And Hydrocarbon Compounds, Litter Characteristics | |
| The estimation of lava flow temperatures using Landsat night-time images: Case studies from eruptions of Mt. Etna and Stromboli (Sicily, Italy), Kilauea (Hawaii Island), and Eyjafjallajokull and Holuhraun (Iceland) | Nadudvari, Adam, Abramowicz, Anna, Maniscalco, Rosanna, Viccaro, Marco | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Spectral unmixing for mapping a hydrothermal field in a volcanic environment applied on ASTER, Landsat-8/OLI, and Sentinel-2 MSI satellite multispectral dataThe Nisyros (Greece) case study | Tompolidi, Athanasia-Maria, Sykioti, Olga, Koutroumbas, Konstantinos, Parcharidis, Issaak | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Sub-pixel mapping of copper- and iron-bearing metamorphic rocks using ASTER data: A case study of Toutak and Surian Complexes, NE Shiraz, Iran | Esmaeili, Soheyla, Tangestani, Majid H., Tayebi, Mohammad H. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Retrieval of precise land surface temperature from ASTER night-time thermal infrared data by split window algorithm for improved coal fire detection in Jharia Coalfield, India | Singh, Narendra, Chatterjee, R.S., Kumar, Dheeraj, Panigrahi, D.C., Mujawdiya, Ritesh | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Per-pixel analysis of ASTER data for porphyry copper hydrothermal alteration mapping: A case study of NE Isfahan, Iran | Salehi, Touba, Tangestani, Majid H. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Radiometric degradation curves for the ASTER VNIR processing using vicarious and lunar calibrations | Tsuchida, Satoshi, Yamamoto, Hirokazu, Kouyama, Toru, Obata, Kenta, Sakuma, Fumihiro, Tachikawa, Tetsushi, Kamei, Akihide, Arai, Kohei, Czapla-Myers, Jeffrey S., Biggar, Stuart F., Thome, Kurtis J. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Relationship between hydrocarbon micro-seepages and structures by detection of altered minerals using ASTER remote sensing data in the West of Coastal Fars, Zagros, Iran | Hosseinpour, Mehdi | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| How does urbanization influence PM2. 5 concentrations? Perspective of spillover effect of multi-dimensional urbanization impact | Du, Yueyue, Wan, Qing, Liu, Haimeng, Liu, Hao, Kapsar, Kelly, Peng, Jian | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integrated coastal-terrestrial conservation planning for landscape-scale reserve design in Southeastern Iran | Shafiezadeh, Mohammad, Moradi, Hossein, Fakheran, Sima, Pourmanafi, Saeid, Senn, Josef | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Analysis of thermal anomalies in volcanic areas using multiscale and multitemporal monitoringVulcano Island test case | Silvestri, Malvina, Rabuffi, Federico, Pisciotta, Antonino, Musacchio, Massimo, Diliberto, Iole Serena, Spinetti, Claudia, Lombardo, Valerio, Colini, Laura, Buongiorno, Maria Fabrizia | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Monitoring thermal anomaly and radiative heat flux using thermal infrared satellite imagery A case study at Tuzla geothermal region | Sekertekin, Aliihsan, Arslan, Niyazi | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Geothermal resource assessment of the Gediz Graben utilizing TOPSIS methodology | Cambazoglu, Selim, Yal, Gozde Pnar, Eker, Arif Mert, Sen, Osman, Akgun, Haluk | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Exploration of hydrothermal alteration and monitoring of thermal activity using multi-source satellite imagesA case study of the recently active Kirishima volcano complex on Kyushu Island, Japan | Mia, Md. Bodruddoza, Fujimitsu, Yasuhiro, Nishijima, Jun | Land Surface Temperature, Sea Surface Temperature, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Emissivity | |
| ASTER cloud coverage assessment and mission operations analysis using Terra/MODIS cloud mask products | Tonooka, Hideyuki, Tachikawa, Tetsushi | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance |