N: 90 S: -90 E: 180 W: -180
30 Meters x 30 Meters
90 Meters x 90 Meters
The Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) Level 1A (AST_L1A) contains reconstructed, instrument digital numbers (DNs) derived from the acquired telemetry streams of the telescopes: Visible and Near Infrared (VNIR), Shortwave Infrared (SWIR), and Thermal Infrared (TIR). Additionally, geometric correction coefficients and radiometric calibration coefficients are calculated and appended to the metadata but not applied. The AST_L1A 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 |
|---|---|---|---|
| SMOTE-BN-FLA: enhanced Bayesian network for rainfall-induced flood loss | Xu, Yuanyuan, Wu, Jidong | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Lithobiomes Heterogeneity and Geographic Distance Shape the Landscape | Cabrini, Mylena, Trovo, Marcelo, Takahashi, Daiki, Suyama, Yoshihisa, Ramos, Renato, Lira, Catarina | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Consecutive Glacier Sub-Surge Events Within Five Years Were Identified in an Unexplored Glacier of the Karakoram | Zhu, Q. H., Li, H. L., Ke, C. Q. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Record grounded glacier retreat caused by an ice plain calving process | Ochwat, Naomi, Scambos, Ted, Anderson, Robert S., Winberry, J. Paul, Luckman, Adrian, Berthier, Etienne, Bernat, Maud, Antropova, Yulia K. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Ice Velocity, Glacier Elevation/Ice Sheet Elevation, Glacier Thickness/Ice Sheet Thickness | |
| Joint Visual Coverage and Energy Consumption Optimization for UAV-Aided 5G-and-Beyond Communications | Huang, Zhengrui, Wang, Shujie | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Observing glacier elevation changes from spaceborne optical and radar sensorsan inter-comparison experiment using ASTER and TanDEM-X data | Piermattei, Livia, Zemp, Michael, Sommer, Christian, Brun, Fanny, Braun, Matthias H., Andreassen, Liss M., Belart, Joaquin M. C., Berthier, Etienne, Bhattacharya, Atanu, Boehm Vock, Laura, Bolch, Tobias, Dehecq, Amaury, Dussaillant, Ines, Falaschi, Daniel, Florentine, Caitlyn, Floricioiu, Dana, Ginzler, Christian, Guillet, Gregoire, Hugonnet, Romain, Huss, Matthias, Kaab, Andreas, King, Owen, Klug, Christoph, Knuth, Friedrich, Krieger, Lukas, La Frenierre, Jeff, McNabb, Robert, McNeil, Christopher, Prinz, Rainer, Sass, Louis, Seehaus, Thorsten, Shean, David, Treichler, Desiree, Wendt, Anja, Yang, Ruitang | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Twenty-first century global glacier evolution under CMIP6 scenarios and the role of glacier-specific observations | Zekollari, Harry, Huss, Matthias, Schuster, Lilian, Maussion, Fabien, Rounce, David R., Aguayo, Rodrigo, Champollion, Nicolas, Compagno, Loris, Hugonnet, Romain, Marzeion, Ben, Mojtabavi, Seyedhamidreza, Farinotti, Daniel | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Glacier Ablation, Glacier Accumulation, Glacier Area, Glacier Mass, Glacier Melt, Glacier Refreeze, Glacier Runoff | |
| Hybrid Device-to-Device and Device-to-Vehicle Networks for Energy-Efficient Emergency Communications | Huang, Zhengrui | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Multi-decadal glacier area and mass balance change in the southern Peruvian Andes | Taylor, Liam S., Quincey, Duncan J., Smith, Mark W., Potter, Emily R., Castro, Joshua, Fyffe, Catriona L. | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Identification of Unstable Glacier Flow in the Western Tibetan Plateau and Karakoram Using Machine Learning | Zhu, Q. H., Ke, C. Q., Li, H. L., Yu, X. N. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Topographical Relief Maps, Terrain Elevation, Digital Elevation/Terrain Model (DEM), Visible Radiance, Infrared Radiance | |
| High-Precision Measurement of Height Differences from Shadows in Non-Stereo Imagery: New Methodology and Accuracy Assessment | Rada Giacaman, Camilo Andres | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Recent 50-Year Glacier Mass Balance Changes over the Yellow River Source | Zhou, Min, Xu, Song, Wang, Yetang, Wang, Yuzhe, Hou, Shugui | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Rapid glacier mass loss in the Southeastern Tibetan Plateau since the year 2000 from satellite observations | Zhao, Fanyu, Long, Di, Li, Xingdong, Huang, Qi, Han, Pengfei | Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Reflectance | |
| Characteristics of surge-type tributary glaciers, Karakoram | Bhambri, Rakesh, Hewitt, Kenneth, Haritashya, Umesh K., Chand, Pritam, Kumar, Amit, Verma, Akshaya, Tiwari, Sameer Kumar, Rai, Santosh Kumar | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Topographical Relief Maps, Terrain Elevation, Digital Elevation/Terrain Model (DEM), Visible Radiance, Infrared Radiance | |
| Co-Registration Methods and Error Analysis for Four Decades (19792018) of Glacier Elevation Changes in the Southern Patagonian Icefield | Vacaflor, Paulina, Lenzano, Maria Gabriela, Vich, Alberto, Lenzano, Luis | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Analysis of regional changes in geodetic mass balance for all Caucasus glaciers over the past two decades | Tielidze, Levan G., Jomelli, Vincent, Nosenko, Gennady A. | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| The Cerro Uyarani Metamorphic Complex on the Bolivian AltiplanoNew constraints on the tectonic evolution of the Central Andean basement between1.8 and 1.0 Ga | Oliveira, Juliana Rezende de, Hauser, Natalia, Reimold, Wolf Uwe, Salina Ruiz, Amarildo, Matos, Ramiro, Werlang, Thassio | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Surface evolution and dynamics of the Kangriz glacier, western Himalaya in past 50 years | Garg, Siddhi, Shukla, Aparna, Garg, Purushottam Kumar, Yousuf, Bisma, Shukla, Uma Kant | RADAR IMAGERY, Terrain Elevation, Topographical Relief Maps, Digital Elevation/Terrain Model (DEM), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Using spectral indices and terrain attribute datasets and their combination in the prediction of cadmium content in agricultural soil | Agyeman, Prince Chapman, Khosravi, Vahid, Michael Kebonye, Ndiye, John, Kingsley, Boruvka, Lubos, Vasat, Radim | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Uncertainty Analysis of Digital Elevation Models by Spatial Inference | Hugonnet, Romain, Brun, Fanny, Berthier, Etienne, Dehecq, Amaury, Mannerfelt, Erik Schytt, Eckert, Nicolas, Farinotti, Daniel | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Terrain Elevation, RADAR IMAGERY, Topographical Relief Maps | |
| Integration of thermal infrared and synthetic aperture radar images to identify geothermal steam spots under thick vegetation cover | Saepuloh, Asep, Saputro, Rezky Heidi, Heriawan, Mohamad Nur, Malik, Dwiyogarani | RADAR IMAGERY, Terrain Elevation, Topographical Relief Maps, Digital Elevation/Terrain Model (DEM), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Lateglacial and Holocene environmental history of the central Kola | Lenz, Matthias, Savelieva, Larisa, Frolova, Larisa, Cherezova, Anna, Moros, Matthias, Baumer, Marlene M., Gromig, Raphael, Kostromina, Natalia, Nigmatullin, Niyaz, Kolka, Vasili, Wagner, Benrd, Fedorov, Grigory, Melles, Martin | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Surface Water Features | |
| Fine-Scale Urban Heat Patterns in New York City Measured by ASTER | Nath, Bibhash, Ni-Meister, Wenge, Ozdogan, Mutlu | Land Surface Temperature, Sea Surface Temperature, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance, Emissivity | |
| Identification of the characteristic scale of fine ground objects: A case study of the core observation area in the middle reaches of the Heihe river basin | Wu, Xiuyi, Yu, Wenping, Shi, Jinan, Ma, Mingguo, Li, Xiaolu, Wu, Wenjian | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Glacier changes over the past 144 years at Alexandra Fiord, Ellesmere Island, Canada | Curley, Allison N., Kochtitzky, William H., Edwards, Benjamin R., Copland, Luke | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Glacier-Related Hazards Along the International Karakoram Highway: Status and Future Perspectives | Gao, Yongpeng, Liu, Shiyin, Qi, Miaomiao, Xie, Fuming, Wu, Kunpeng, Zhu, Yu | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Implementation of the NHI (Normalized hot spot indices) algorithm on infrared aster dataResults and future perspectives | Mazzeo, Giuseppe, Ramsey, Micheal S., Marchese, Francesco, Genzano, Nicola, Pergola, Nicola | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Implication of remote sensing data under GIS environment for appraisal of irrigation system performance | Rizvi, Sultan Ahmad, Ahmad, Afeef, Latif, Muhammad, Shakir, Abdul Sattar, Khan, Aftab Ahmad, Naseem, Waqas, Gondal, Muhammad Riaz | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| High resolution mapping of alteration zones in Daghbag and Bakriya gold occurrences (Central Eastern Desert, Egypt) using field, mineralogical-geochemical, and remote sensing data | Hagag, Wael, Abdelnasser, Amr | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Reappraisal of DEMs, Radar and optical datasets in lineaments extraction with emphasis on the spatial context | Shebl, Ali, Csamer, Arpad | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, RADAR IMAGERY, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Accelerated global glacier mass loss in the early twenty-first century | Hugonnet, Romain, McNabb, Robert, Berthier, Etienne, Menounos, Brian, Nuth, Christopher, Girod, Luc, Farinotti, Daniel, Huss, Matthias, Dussaillant, Ines, Brun, Fanny, Kaab, Andreas | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| The presence and influence of glacier surging around the Geladandong ice caps, North East Tibetan Plateau | King, Owen, Bhattacharya, Atanu, Bolch, Tobias | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Soil organic carbon prediction with terrain derivatives using geostatistics and sequential Gaussian simulation | John, Kingsley, Abraham, Isong Isong, Kebonye, Ndiye Michael, Agyeman, Prince Chapman, Ayito, Esther Okon, Kudjo, Ahado Samuel | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| 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 | |
| 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 | |
| A doubling of glacier mass loss in the Karlik Range, easternmost Tien Shan, between the periods 19722000 and 20002015 | Wan, Zhujun, Wang, Yetang, Hou, Shugui, Huai, Baojuan, Liu, Qi | Topographical Relief Maps, Terrain Elevation, Digital Elevation/Terrain Model (DEM), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Interaction between sediment transport rate and tectonic activity: the case of Kzlrmak Basin on the tectonically active NAFZ, Turkey | Sarp, Gulcan | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Mapping and assessing limestone as a raw material for the cement industry using satellite data: a case study of areas between Riyadh and Al Kharj, Saudi Arabia | Selim, El Sayed, Aboelkhair, Hatem, Aboezz, Eid R. | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Recessional pattern and surface elevation change of the Parvati Glacier, North-Western Himalaya (1965-2018) using remote sensing | Chand, Pritam, Jain, Sanjay Kumar, Thakur, Hitesh Prasad, Kumar, Sachin, Sharma, Milap Chand | RADAR IMAGERY, Terrain Elevation, Digital Elevation/Terrain Model (DEM), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| ASTER-based remote sensing investigation of gypsum in the Kohat Plateau, north Pakistan | Khan, Asad, Faisal, Shah, Shafique, Muhammad, Khan, Saad, Bacha, Alam Sher | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Theoretical Evaluation of Anisotropic Reflectance Correction Approaches | Bishop, Michael P., Young, Brennan W., Colby, Jeffrey D., Furfaro, Roberto, Schiassi, Enrico, Chi, Zhaohui | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Geodetic mass balance of the northern patagonian icefield from 2000 to 2012 using two independent methods | Dussaillant, Ines, Berthier, Etienne, Brun, Fanny | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Improving landslide susceptibility mapping using morphometric features in the Mawat area, Kurdistan Region, NE IraqComparison of different statistical models | Othman, Arsalan Ahmed, Gloaguen, Richard, Andreani, Louis, Rahnama, Mehdi | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Region-wide glacier mass budgets for the tanggula mountains between1969 and2015 derived from remote sensing data | Chen, Anan, Wang, Ninglian, Li, Zhen, Wu, Yuwei, Zhang, Wei, Guo, Zhongming | RADAR IMAGERY, Terrain Elevation, Topographical Relief Maps, Digital Elevation/Terrain Model (DEM), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Asynchronous behavior of outlet glaciers feeding Godthabsfjord (Nuup Kangerlua) and the triggering of Narsap Sermia's retreat in SW Greenland | MOTYKA, ROMAN J., CASSOTTO, RYAN, TRUFFER, MARTIN, KJELDSEN, KRISTIAN K., VAN AS, DIRK, KORSGAARD, NIELS J., FAHNESTOCK, MARK, HOWAT, IAN, LANGEN, PETER L., MORTENSEN, JOHN, LENNERT, KUNUK, RYSGAARD, SREN | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| Assessing the status of glaciers in part of the Chandra basin, Himachal Himalayaa multiparametric approach | Garg, Purushottam Kumar, Shukla, Aparna, Tiwari, Reet Kamal, Jasrotia, Avtar Singh | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY | |
| The impact of persistent volcanic degassing on vegetationa case study at Turrialba volcano, Costa Rica | Tortini, R., van Manen, S.M., Parkes, B.R.B, Carn, S.A. | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY, Visible Radiance | |
| Assessment of the evolution in velocity of two debris-covered valley glaciers in nepal and new zealand | Haritashya, Umesh K., Pleasants, Mark S., Copland, Luke | REFLECTED INFRARED, THERMAL INFRARED, VISIBLE IMAGERY |
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) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band5 | 30 meter resolution SWIR Band 5 (2.145 to 2.185 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band6 | 30 meter resolution SWIR Band 6 (2.185 to 2.225 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band7 | 30 meter resolution SWIR Band 7 (2.235 to 2.285 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band8 | 30 meter resolution SWIR Band 8 (2.295 to 2.365 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| SWIR_Band9 | 30 meter resolution SWIR Band 9 (2.360 to 2.430 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| TIR_Band10 | 90 meter resolution TIR Band 10 (8.125 to 8.475 µm) | N/A | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band11 | 90 meter resolution TIR Band 11 (8.475 to 8.825 µm) | N/A | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band12 | 90 meter resolution TIR Band 12 (8.925 to 9.275 µm) | N/A | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band13 | 90 meter resolution TIR Band 13 (10.25 to 10.95 µm) | N/A | uint16 | N/A | 0 to 65535 | N/A | N/A |
| TIR_Band14 | 90 meter resolution TIR Band 14 (10.95 to 11.65 µm) | N/A | uint16 | N/A | 0 to 65535 | N/A | N/A |
| VNIR_Band1 | 15 meter resolution VNIR Band 1 (0.52 to 0.60 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band2 | 15 meter resolution VNIR Band 2 (0.63 to 0.69 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band3B | 15 meter resolution VNIR Band 3B (0.78 to 0.86 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |
| VNIR_Band3N | 15 meter resolution VNIR Band 3N (0.78 to 0.86 µm) | N/A | uint8 | N/A | 0 to 255 | N/A | N/A |