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 1B (AST_L1B) Registered Radiance at the Sensor data product is radiometrically calibrated and geometrically co-registered. Application of intra-telescope and inter-telescope registration corrections for all bands are relative to the reference band for each telescope: Visible and Near Infrared (VNIR) Band 2, Shortwave Infrared (SWIR) Band 6, and Thermal Infrared (TIR) Band 11. The AST_L1B 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.
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 |
|---|---|---|---|
| The Reflectance Distribution of Shallow Cumulus and Its Environs From | Liu, Mengqi, Horvath, Akos, Buehler, Stefan A., Xia, Xiangao, Sakradzija, Mirjana | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Mineralogy and Geochemistry of Jasperoid Veins in Neoproterozoic Metavolcanics: Evidence of Silicification, Pyritization and Hematization | Khedr, Mohamed Zaki, Sayed, Mahmoud A., Ali, Shehata, Azer, Mokhles K., Ichiyama, Yuji, Takazawa, Eiichi, Kahal, Ali Y., Abdelrahman, Kamal, Mahdi, Ali M. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Remote sensing-based mapping of the Wadi Sa'al-Wadi Zaghara basement rocks, southern Sinai, Egypt | Ali-Bik, Mohamed W., Hassan, Safaa M. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Using remote sensing data for geological mapping in semi-arid environmentA machine learning approach | El Fels, Abdelhafid El Alaoui, El Ghorfi, Mustapha | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Geochemical and hydrothermal alteration patterns of the Abrisham-Rud Porphyry Copper District, Semnan Province, Iran | Timkin, Timofey, Abedini, Mahnaz, Ziaii, Mansour, Ghasemi, Mohammad Reza | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Mapping sequences and mineral deposits in poorly exposed lithologies of inaccessible regions in Azad Jammu and Kashmir using SVM with ASTER satellite data | Imran, Muhammad, Ahmad, Sultan, Sattar, Amir, Tariq, Aqil | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Optically thin clouds in the trades | Mieslinger, Theresa, Stevens, Bjorn, Kolling, Tobias, Brath, Manfred, Wirth, Martin, Buehler, Stefan A. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Multisource and temporal thermal infrared remote sensing of Hasandag Stratovolcano (Central Anatolia, Turkey) | Ulusoy, Inan, Diker, Caner, Sen, Erdal, Cubukcu, H. Evren, Gumus, Erdal | Land Surface Temperature, Emissivity, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Study of the urban heat island (UHI) using remote sensing data/techniquesA systematic review | Almeida, Catia Rodrigues de, Teodoro, Ana Claudia, Goncalves, Artur | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Land Surface Temperature, Emissivity, Sea Surface Temperature, Albedo, Reflectance | |
| Subpixel temperature estimation by information transfer with adaptive ensemble extreme learning machine (IT-AEELM) | Hu, Yue, Zhou, Xinyu, Zhang, Ye, Shi, Shaoqi | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Successful spectral remote sensing techniques for mapping apatite mineral of phosphatic rocks at eastern side of Abu Tartur Plateau, Western Desert, Egypt | El-Arafy, Reda A. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Targeting the bauxite rich pockets from lateritic terrain utilizing ASTER dataA case study from Kabirdham District, Chhattisgarh, India | Sarkar, Debjani, Sur, Pradipta | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Synergistic use of ASTER, L-band ALOS PALSAR, and hyperspectral AVIRIS-NG data for exploration of lode type gold deposit - A study in Hutti Maski Schist Belt, India | Guha, Arindam, Chatterjee, Snehamoy, Oommen, Thomas, Kumar, K. Vinod, Roy, Sandip Kumar | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Synergy of remote sensing data for exploring hydrothermal mineral resources using gis-based fuzzy logic approach | Abdelkareem, Mohamed, Al-Arifi, Nassir | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Soil total carbon mapping, in Djerid Arid area, using ASTER multispectral remote sensing data combined with laboratory spectral proximal sensing data | Aichi, Hamouda, Fouad, Youssef, Lili Chabaane, Zohra, Sanaa, Mustapha, Walter, Christian | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Satellite-based hydrocarbon exploration employing ASTER and fuzzy logic | Taheri, Reza, Tait, Alan Merville | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Remote sensing and gamma-ray spectrometry based gold related alteration zones detectionCase study (Um Balad area), North Eastern Desert, Egypt | Hegab, Mahmoud A. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Using ASTER images and field work data for geological mapping around Wadi Umm Ashira and Wadi Tilal Al-Qulieb, Northwestern part of Wadi Allaqi, South Eastern Desert, Egypt | Soliman, Nehal Mohamed, El-Desoky, Hatem Mohamed, Heikal, Mohamed Ahmed, Abdel-Rahman, Ahmed Mohamed | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Warm arctic proglacial lakes in the ASTER surface temperature product | Dye, Adrian, Bryant, Robert, Dodd, Emma, Falcini, Francesca, Rippin, David M. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| The potential use of remote sensing and GIS techniques for sustainable development in the coastal plain between Halayb and Shalateen, Egypt | Saad, Ahmed, Aboelkhair, Hatem | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Using multispectral and radar remote sensing data for geological investigation, Qena-Safaga Shear Zone, Eastern Desert, Egypt | Kamal El-Din, Gamal M., El-Noby, Eman, Abdelkareem, Mohamed, Hamimi, Zakaria | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Using reflectance spectroscopy and Advanced Spaceborne Thermal Emission and Reflection Radiometer data to identify bauxite deposits in vicinity of Az Zabirah, northern Saudi Arabia | Ghrefat, Habes, Al Mutairi, Yasir, ElAraby, Hesham, Galmed, Mahmoud, Mohamed, Essam | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Tungsten skarn mineral resource assessment of the Great Basin region of western Nevada and eastern California | Lederer, Graham W., Solano, Federico, Coyan, Joshua A., Denton, Kevin M., Watts, Kathryn E., Mercer, Celestine N., Bickerstaff, Damon P., Granitto, Matthew | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Exploration radioactive mineralization using mappable data integration approach: example from Wadi Dahab area, Southeastern Sinai, Egypt | Arnous, Mohamed O., ElMowafy, Ali A., Azzaz, Sayed A., Omar, Ali E., Abdel Hafeez, Waheed M. | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, 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 |
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 |
|---|---|---|---|---|---|---|---|
| SWIR_Band4 | 30 meter resolution SWIR Band 4 (1.600 to 1.700 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band5 | 30 meter resolution SWIR Band 5 (2.145 to 2.185 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band6 | 30 meter resolution SWIR Band 6 (2.185 to 2.225 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band7 | 30 meter resolution SWIR Band 7 (2.235 to 2.285 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band8 | 30 meter resolution SWIR Band 8 (2.295 to 2.365 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band9 | 30 meter resolution SWIR Band 9 (2.360 to 2.430 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| TIR_Band10 | 90 meter resolution TIR Band 10 (8.125 to 8.475 µm) | W/m²/sr/μm | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band11 | 90 meter resolution TIR Band 11 (8.475 to 8.825 µm) | W/m²/sr/μm | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band12 | 90 meter resolution TIR Band 12 (8.925 to 9.275 µm) | W/m²/sr/μm | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band13 | 90 meter resolution TIR Band 13 (10.25 to 10.95 µm) | W/m²/sr/μm | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band14 | 90 meter resolution TIR Band 14 (10.95 to 11.65 µm) | W/m²/sr/μm | uint16 | N/A | 0 to 65535 | N/A | N/A |
| VNIR_Band1 | 15 meter resolution VNIR Band 1 (0.52 to 0.60 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band2 | 15 meter resolution VNIR Band 2 (0.63 to 0.69 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band3B | 15 meter resolution VNIR Band 3B (0.78 to 0.86 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band3N | 15 meter resolution VNIR Band 3 (0.78 to 0.86 µm) | W/m²/sr/μm | uint8 | N/A | 0 to 255 | N/A | N/A |