N: 90 S: -90 E: 180 W: -180
30 Meters x 30 Meters
90 Meters x 90 Meters
The Terra Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) Level 1 Precision Terrain Corrected Registered At-Sensor Radiance (AST_L1T) 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 is created from a single resampling of the corresponding ASTER L1A (AST_L1A) product. The bands available in the AST_L1T 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 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 precision terrain correction process 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 as both a text file and single band browse images 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 depends on the bands available in the corresponding AST_L1A dataset.
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 |
|---|---|---|---|
| Identification of phyllosilicates in the antarctic environment using aster satellite dataCase study from the mesa range, campbell and priestley glaciers, northern Victoria land | Pour, Amin Beiranvand, Sekandari, Milad, Rahmani, Omeid, Crispini, Laura, Laufer, Andreas, Park, Yongcheol, Hong, Jong Kuk, Pradhan, Biswajeet, Hashim, Mazlan, Hossain, Mohammad Shawkat, Muslim, Aidy M, Mehranzamir, Kamyar | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Identification of potential targets for kimberlite exploration using satellite imagery and map combination approach in the Lesotho Kimberlite Province | Muavhi, Nndanduleni, Tessema, Abera | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Gold prospectivity mapping in the Sonakhan Greenstone Belt, Central IndiaA knowledge-driven guide for target delineation in a region of low exploration maturity | Behera, Satyabrata, Panigrahi, Mruganka K. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Implementation of robust satellite techniques for volcanoes on aster data under the google earth engine platform | Genzano, Nicola, Marchese, Francesco, Neri, Marco, Pergola, Nicola, Tramutoli, Valerio | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integrated remote sensing and geophysical techniques for shallow base metal deposits (Zn, Pb, Cu) below the gossan zone at Kalabar, Western Aravalli Belt, India | Bhadra, B.K., Jain, Ashish Kumar, Karunakar, G., Meena, Hansraj, Rehpade, Sushilkumar B., Rao, S. Srinivasa | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integration of airborne geophysics and satellite imagery data for exploration targeting in porphyry Cu systems: Chahargonbad district, Iran | Riahi, Shokouh, Bahroudi, Abbas, Abedi, Maysam, Aslani, Soheila, Elyasi, GholamReza | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Application of dirichlet process and support vector machine techniques for mapping alteration zones associated with porphyry copper deposit using ASTER remote sensing imagery | Yousefi, Mastoureh, Tabatabaei, Seyed Hassan, Rikhtehgaran, Reyhaneh, Pour, Amin Beiranvand, Pradhan, Biswajeet | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Characterizing the behaviour of surge-type glaciers in the Geladandong Mountain Region, Inner Tibetan Plateau, from 1986 to 2020 | Gao, Yongpeng, Liu, Shiyin, Qi, Miaomiao, Zhu, Yu, Xie, Fuming, Wu, Kunpeng, Jiang, Zongli | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Characterizing Khetri copper mine environment using geospatial tools | Punia, Anita, Joshi, Pawan Kumar, Siddaiah, Neelam Siva | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| New insights into the pulang porphyry copper deposit in southwest china: Indication of alteration minerals detected using aster and worldview-3 data | Chen, Qi, Zhao, Zhifang, Zhou, Jiaxi, Zeng, Min, Xia, Jisheng, Sun, Tao, Zhao, Xin | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Mapping Carbonate-hosted Pb-Zn mineralization zones in Yahyali Province (Eastern Taurus - Turkey) Using ASTER Data | Traore, Mamadou, Can, Tolga, Tekin, Senem | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Mapping allochemical limestone formations in Hazara, Pakistan using google cloud architecture: Application of machine-learning algorithms on multispectral data | Khan, Muhammad Fawad Akbar, Muhammad, Khan, Bashir, Shahid, Ud Din, Shahab, Hanif, Muhammad | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Mapping Sandy Land Using the New Sand Differential Emissivity Index From Thermal Infrared Emissivity Data | Chen, Shanshan, Ren, Huazhong, Liu, Rongyuan, Tao, Yunzhu, Zheng, Yitong, Liu, Hongcheng | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Emissivity | |
| Mapping hydrocarbon microseepage prospect areas by integrated studies of ASTER processing, geochemistry and geophysical surveys in Assam-Arakan Fold Belt, NE India | Garain, Santosh, Mitra, Debashis, Das, Pranab | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Machine learning and multi-sensor data fusion for mapping lithologyA case study of Kowli-kosh area, SW Iran | Shayeganpour, Samira, Tangestani, Majid H., Gorsevski, Pece V. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| An integrated ASTER-based approach for mapping carbonatite and iron oxide-apatite deposits | Malainine, Cheikh-Elwali, Raji, Otmane, Ouabid, Muhammad, Khouakhi, Abdou, Bodinier, Jean-Louis, Laamrani, Ahmed, El Messbahi, Hicham, Youbi, Nasrrddine, Boumehdi, Moulay Ahmed | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| A simple approach for monitoring vegetation change using time series remote sensing analysis: A case study from the Thathe Vondo Area in Limpopo Province, South Africa | Muavhi, Nndanduleni | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| A new hybrid method for epithermal gold exploration using multi-sensor satellite data in Sistan and Baluchestan Province (Iran) | Seifi, Aliyeh, Esmaeily, Ali, Mokhtari, Zahra | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Global Land Cover Assessment Using Spatial Uniformity Validation Dataset | Ishii, Yoshie, Iwao, Koki, Kinoshita, Tsuguki | Land Use/Land Cover Classification, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| ASTER and WorldView-3 satellite data for mapping lithology and alteration minerals associated with Pb-Zn mineralization | Sekandari, Milad, Masoumi, Iman, Pour, Amin Beiranvand, Muslim, Aidy M, Hossain, Mohammad Shawkat, Misra, Ankita | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Assessment of k-Nearest Neighbor and Random Forest Classifiers for | Pacheco, Admilson da Penha, Junior, Juarez Antonio da Silva, Ruiz-Armenteros, Antonio Miguel, Henriques, Renato Filipe Faria | Reflectance, Fire Ecology, Biomass Burning, Wildfires, Fire Occurrence, Burned Area, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Lithological and alteration mapping using Landsat 8 and ASTER satellite data in the Reguibat Shield (West African Craton), North of MauritaniaImplications for uranium exploration | Ishagh, Mariem Mohameden, Pour, Amin Beiranvand, Benali, Hanafi, Idriss, Abdallahi Mohamedou, Reyoug, SidAhmed Sidi, Muslim, Aidy M., Hossain, Mohammad Shawkat | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integration of ASTER and geophysical data for delineating potential mineralization zones in Dungash-Atud area, Central Eastern Desert, Egypt | Ghazala, Hosni, Aboelkhair, Hatem, Thabet, Waleed | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Integration of ASTER satellite imagery and 3D inversion of aeromagnetic data for deep mineral exploration | Eldosouky, Ahmed M., El-Qassas, Reda A.Y., Pour, Amin Beiranvand, Mohamed, Hassan, Sekandari, Milad | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Landsat-7 and ASTER remote sensing satellite imagery for identification of iron skarn mineralization in metamorphic regions | Moradpour, Hooman, Rostami Paydar, Ghodratollah, Pour, Amin Beiranvand, Valizadeh Kamran, Khalil, Feizizadeh, Bakhtiar, Muslim, Aidy M., Hossain, Mohammad Shawkat | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance |