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Estimating Temperature Retrieval Accuracy Associated With Thermal Band Spatial Resolution Requirements for Center Pivot Irrigation Monitoring and ManagementThis study explores the use of synthetic thermal center pivot irrigation scenes to estimate temperature retrieval accuracy for thermal remote sensed data, such as data acquired from current and proposed Landsat-like thermal systems. Center pivot irrigation is a common practice in the western United States and in other parts of the world where water resources are scarce. Wide-area ET (evapotranspiration) estimates and reliable water management decisions depend on accurate temperature information retrieval from remotely sensed data. Spatial resolution, sensor noise, and the temperature step between a field and its surrounding area impose limits on the ability to retrieve temperature information. Spatial resolution is an interrelationship between GSD (ground sample distance) and a measure of image sharpness, such as edge response or edge slope. Edge response and edge slope are intuitive, and direct measures of spatial resolution are easier to visualize and estimate than the more common Modulation Transfer Function or Point Spread Function. For these reasons, recent data specifications, such as those for the LDCM (Landsat Data Continuity Mission), have used GSD and edge response to specify spatial resolution. For this study, we have defined a 400-800 m diameter center pivot irrigation area with a large 25 K temperature step associated with a 300 K well-watered field surrounded by an infinite 325 K dry area. In this context, we defined the benchmark problem as an easily modeled, highly common stressing case. By parametrically varying GSD (30-240 m) and edge slope, we determined the number of pixels and field area fraction that meet a given temperature accuracy estimate for 400-m, 600-m, and 800-m diameter field sizes. Results of this project will help assess the utility of proposed specifications for the LDCM and other future thermal remote sensing missions and for water resource management.
Document ID
20060046587
Acquisition Source
Stennis Space Center
Document Type
Preprint (Draft being sent to journal)
Authors
Ryan, Robert E.
(NASA Stennis Space Center Stennis Space Center, MS, United States)
Irons, James
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Spruce, Joseph P.
(Science Systems and Applications, Inc. Bay Saint Louis, MS, United States)
Underwood, Lauren W.
(Science Systems and Applications, Inc. Bay Saint Louis, MS, United States)
Pagnutti, Mary
(Science Systems and Applications, Inc. Bay Saint Louis, MS, United States)
Date Acquired
August 23, 2013
Publication Date
January 1, 2006
Subject Category
Fluid Mechanics And Thermodynamics
Report/Patent Number
SSTI-2220-0090
Funding Number(s)
CONTRACT_GRANT: NNS04AB54T
Distribution Limits
Public
Copyright
Other

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