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Technical Note

Calibrating Geosynchronous and Polar Orbiting Satellites: Sharing Best Practices

1
United States Geological Survey Earth Resources Observation and Science Center, Sioux Falls, SD 57198, USA
2
National Aeronautics and Space Administration Langley Research Center, Hampton, VA 23666, USA
3
Science Systems and Applications Inc., National Aeronautics and Space Administration Langley Research Center, Hampton, VA 23666, USA
4
Global Science & Technology, National Oceanic and Atmospheric Administration, Greenbelt, MD 20770, USA
5
Science Systems and Applications Inc., National Aeronautics and Space Administration Goddard Space Flight Center, Greenbelt, MD 20771, USA
*
Author to whom correspondence should be addressed.
Remote Sens. 2020, 12(17), 2786; https://doi.org/10.3390/rs12172786
Submission received: 23 July 2020 / Revised: 17 August 2020 / Accepted: 25 August 2020 / Published: 27 August 2020
(This article belongs to the Special Issue Cross-Calibration and Interoperability of Remote Sensing Instruments)

Abstract

Earth remote sensing optical satellite systems are often divided into two categories—geosynchronous and sun-synchronous. Geosynchronous systems essentially rotate with the Earth and continuously observe the same region of the Earth. Sun-synchronous systems are generally in a polar orbit and view differing regions of the Earth at the same local time. Although similar in instrument design, there are enough differences in these two types of missions that often the calibration of the instruments can be substantially different. Thus, respective calibration teams develop independent methods and do not interact regularly or often. Yet, there are numerous areas of overlap and much to learn from one another. To address this issue, a panel of experts from both types of systems was convened to discover common areas of concern, areas where improvements can be made, and recommendations for the future. As a result of the panelist’s efforts, a set of eight recommendations were developed. Those that are related to improvements of current technologies include maintaining sun-synchronous orbits (not allowing orbital decay), standardization of spectral bandpasses, and expanded use of well-developed calibration techniques such as deep convective clouds, pseudo invariant calibration sites, and lunar methodologies. New techniques for expanded calibration capability include using geosynchronous instruments as transfer radiometers, continued development of ground-based prelaunch calibration technologies, expansion of RadCalNet, and development of space-based calibration radiometer systems.
Keywords: geosynchronous; sun-synchronous; calibration; radiometric calibration; radiometry geosynchronous; sun-synchronous; calibration; radiometric calibration; radiometry
Graphical Abstract

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MDPI and ACS Style

Helder, D.; Doelling, D.; Bhatt, R.; Choi, T.; Barsi, J. Calibrating Geosynchronous and Polar Orbiting Satellites: Sharing Best Practices. Remote Sens. 2020, 12, 2786. https://doi.org/10.3390/rs12172786

AMA Style

Helder D, Doelling D, Bhatt R, Choi T, Barsi J. Calibrating Geosynchronous and Polar Orbiting Satellites: Sharing Best Practices. Remote Sensing. 2020; 12(17):2786. https://doi.org/10.3390/rs12172786

Chicago/Turabian Style

Helder, Dennis, David Doelling, Rajendra Bhatt, Taeyoung Choi, and Julia Barsi. 2020. "Calibrating Geosynchronous and Polar Orbiting Satellites: Sharing Best Practices" Remote Sensing 12, no. 17: 2786. https://doi.org/10.3390/rs12172786

APA Style

Helder, D., Doelling, D., Bhatt, R., Choi, T., & Barsi, J. (2020). Calibrating Geosynchronous and Polar Orbiting Satellites: Sharing Best Practices. Remote Sensing, 12(17), 2786. https://doi.org/10.3390/rs12172786

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