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Editorial

Editorial for the Special Issue “ASTER 20th Anniversary”

by
Yasushi Yamaguchi
1,* and
Michael Abrams
2
1
Graduate School of Environmental Studies, Nagoya University, Nagoya 464-8601, Japan
2
Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91104, USA
*
Author to whom correspondence should be addressed.
Submission received: 5 March 2020 / Accepted: 9 March 2020 / Published: 10 March 2020
(This article belongs to the Special Issue ASTER 20th Anniversary)
The Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) is a research facility instrument on NASA’s Terra spacecraft. We celebrated the 20th anniversary of ASTER since its launch in December 1999. ASTER has been providing high spatial resolution multispectral data in the visible to near infrared (VNIR), short wave infrared (SWIR) and thermal infrared (TIR) regions, and along-track stereo data. Starting April 2016, ASTER data have been distributed to the public at no cost. Another important, and the most popular data set, is the ASTER Global digital elevation model (DEM), which covers almost the entire land surface at 30 m grid size. ASTER data have been widely used in a variety of application areas such as land surface mapping and change detection, volcano and other natural hazard monitoring, mineral exploration, and urban heat island monitoring.
This special issue consists of 12 papers (2 reviews, 9 articles and 1 technical note), and covers topics including the development of new techniques to process ASTER data, calibration activities to ensure long-term consistency of ASTER data, validation of the ASTER data products, and scientific achievements using ASTER data. Abrams and Yamaguchi [1] provide a comprehensive review on ASTER contribution to lithological mapping and mineral exploration. Ramsey and Flynn [2] present the history of ASTER’s contribution to volcanology, highlighting unique aspects of the instrument and its data. Kurata and Yamaguchi [3] propose a method of combining and visualizing multiple lithological indices derived from ASTER data and topographical information derived from DEM data. Gonzalez et al. [4] propose a new methodology to build an Earth-wide mosaic using ASTER images in pseudo-true color. Fu et al. [5] analyze the geomorphologic and lithologic features of Wudalianchi volcanoes in northeastern China by using the ASTER multispectral and DEM data. Kouyama et al. [6] assess sensitivity degradations of the ASTER bands based upon lunar and deep-space observation data obtained in 2003 and 2017. Tonooka and Tachikawa [7] develop a method for ASTER cloud coverage assessment using the Moderate Resolution Imaging Spectroradiometer (MODIS) cloud mask product, and also evaluated performance of the cloud avoidance function implemented in the ASTER observation scheduler. Cudahy et al. [8] show that ASTER mineral maps revealed both the compositional heterogeneity of loess, as well as the complexity of the sediment transport pathways of individual loess components around the Great Wall of China, built during the Ming Dynasty. Tsuchida et al. [9] discuss the sensor degradation curves of the ASTER VNIR bands based on the results of the onboard calibrator, the vicarious calibration, and the cross calibration since February 2014. Batbaatar et al. [10] propose a method to map the “zero curtain” as a precursor for delineating permafrost boundaries, determined from ASTER and MODIS land-surface temperature data. Mushkin et al. [11] provide validation of the ASTER emissivity product by using data from the airborne TIR hyperspectral Mako sensor. Fujisada et al. [12] describe the technical methodology for improving the initial tile-based waterbody data that are created during production of the ASTER GDEM.

Author Contributions

The two guest editors contributed equally to all aspects of this editorial. All authors have read and agreed to the published version of the manuscript.

Acknowledgments

The guest editors would like to thank the authors who contributed to this Special Issue and to the reviewers who dedicated their time to provide the authors with valuable and constructive recommendations.

Conflicts of Interest

The guest editors declare no conflict of interest.

References

  1. Abrams, M.; Yamaguchi, Y. Twenty Years of ASTER Contributions to Lithologic Mapping and Mineral Exploration. Remote Sens. 2019, 11, 1394. [Google Scholar] [CrossRef] [Green Version]
  2. Ramsey, M.S.; Flynn, I.T.W. The Spatial and Spectral Resolution of ASTER Infrared Image Data: A Paradigm Shift in Volcanological Remote Sensing. Remote Sens. 2020, 12, 738. [Google Scholar] [CrossRef] [Green Version]
  3. Kurata, K.; Yamaguchi, Y. Integration and Visualization of Mineralogical and Topographical Information Derived from ASTER and DEM Data. Remote Sens. 2019, 11, 162. [Google Scholar] [CrossRef] [Green Version]
  4. Gonzalez, L.; Vallet, V.; Yamamoto, H. Global 15-Meter Mosaic Derived from Simulated True-Color ASTER Imagery. Remote Sens. 2019, 11, 441. [Google Scholar] [CrossRef] [Green Version]
  5. Fu, H.; Fu, B.; Ninomiya, Y.; Shi, P. New Insights of Geomorphologic and Lithologic Features on Wudalianchi Volcanoes in the Northeastern China from the ASTER Multispectral Data. Remote Sens. 2019, 11, 2663. [Google Scholar] [CrossRef] [Green Version]
  6. Kouyama, T.; Kato, S.; Kikuchi, M.; Sakuma, F.; Miura, A.; Tachikawa, T.; Tsuchida, S.; Obata, K.; Nakamura, R. Lunar Calibration for ASTER VNIR and TIR with Observations of the Moon in 2003 and 2017. Remote Sens. 2019, 11, 2712. [Google Scholar] [CrossRef] [Green Version]
  7. Tonooka, H.; Tachikawa, T. ASTER Cloud Coverage Assessment and Mission Operations Analysis Using Terra/MODIS Cloud Mask Products. Remote Sens. 2019, 11, 2798. [Google Scholar] [CrossRef] [Green Version]
  8. Cudahy, T.; Shi, P.; Novikova, Y.; Fu, B. Satellite ASTER Mineral Mapping the Provenance of the Loess Used by the Ming to Build their Earthen Great Wall. Remote Sens. 2020, 12, 270. [Google Scholar] [CrossRef] [Green Version]
  9. Tsuchida, S.; Yamamoto, H.; Kouyama, T.; Obata, K.; Sakuma, F.; Tachikawa, T.; Kamei, A.; Arai, K.; Czapla-Myers, J.S.; Biggar, S.F.; et al. Radiometric Degradation Curves for the ASTER VNIR Processing Using Vicarious and Lunar Calibrations. Remote Sens. 2020, 12, 427. [Google Scholar] [CrossRef] [Green Version]
  10. Batbaatar, J.; Gillespie, A.R.; Sletten, R.S.; Mushkin, A.; Amit, R.; Trombotto Liaudat, D.; Liu, L.; Petrie, G. Toward the Detection of Permafrost Using Land-Surface Temperature Mapping. Remote Sens. 2020, 12, 695. [Google Scholar] [CrossRef] [Green Version]
  11. Mushkin, A.; Gillespie, A.R.; Abbott, E.A.; Batbaatar, J.; Hulley, G.; Tan, H.; Tratt, D.M.; Buckland, K.N. Validation of ASTER Emissivity Retrieval Using the Mako Airborne TIR Imaging Spectrometer at the Algodones Dune Field in Southern California, USA. Remote Sens. 2020, 12, 815. [Google Scholar] [CrossRef] [Green Version]
  12. Fujisada, H.; Urai, M.; Iwasaki, A. Technical Methodology for ASTER Global Water Body Data Base. Remote Sens. 2018, 10, 1860. [Google Scholar] [CrossRef] [Green Version]

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MDPI and ACS Style

Yamaguchi, Y.; Abrams, M. Editorial for the Special Issue “ASTER 20th Anniversary”. Remote Sens. 2020, 12, 884. https://0-doi-org.brum.beds.ac.uk/10.3390/rs12050884

AMA Style

Yamaguchi Y, Abrams M. Editorial for the Special Issue “ASTER 20th Anniversary”. Remote Sensing. 2020; 12(5):884. https://0-doi-org.brum.beds.ac.uk/10.3390/rs12050884

Chicago/Turabian Style

Yamaguchi, Yasushi, and Michael Abrams. 2020. "Editorial for the Special Issue “ASTER 20th Anniversary”" Remote Sensing 12, no. 5: 884. https://0-doi-org.brum.beds.ac.uk/10.3390/rs12050884

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