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Automated Verification of Spatial Resolution in Remotely Sensed ImageryImage spatial resolution characteristics can vary widely among sources. In the case of aerial-based imaging systems, the image spatial resolution characteristics can even vary between acquisitions. In these systems, aircraft altitude, speed, and sensor look angle all affect image spatial resolution. Image spatial resolution needs to be verified with estimators that include the ground sample distance (GSD), the modulation transfer function (MTF), and the relative edge response (RER), all of which are key components of image quality, along with signal-to-noise ratio (SNR) and dynamic range. Knowledge of spatial resolution parameters is important to determine if features of interest are distinguishable in imagery or associated products, and to develop image restoration algorithms. An automated Spatial Resolution Verification Tool (SRVT) was developed to rapidly determine the spatial resolution characteristics of remotely sensed aerial and satellite imagery. Most current methods for assessing spatial resolution characteristics of imagery rely on pre-deployed engineered targets and are performed only at selected times within preselected scenes. The SRVT addresses these insufficiencies by finding uniform, high-contrast edges from urban scenes and then using these edges to determine standard estimators of spatial resolution, such as the MTF and the RER. The SRVT was developed using the MATLAB programming language and environment. This automated software algorithm assesses every image in an acquired data set, using edges found within each image, and in many cases eliminating the need for dedicated edge targets. The SRVT automatically identifies high-contrast, uniform edges and calculates the MTF and RER of each image, and when possible, within sections of an image, so that the variation of spatial resolution characteristics across the image can be analyzed. The automated algorithm is capable of quickly verifying the spatial resolution quality of all images within a data set, enabling the appropriate use of those images in a number of applications.
Document ID
20120000830
Acquisition Source
Stennis Space Center
Document Type
Other - NASA Tech Brief
Authors
Davis, Bruce
(NASA Stennis Space Center Stennis Space Center, MS, United States)
Ryan, Robert
(Science Systems and Applications, Inc. Bay Saint Louis, MS, United States)
Holekamp, Kara
(Science Systems and Applications, Inc. Bay Saint Louis, MS, United States)
Vaughn, Ronald
(Computer Sciences Corp. Bay Saint Louis, MS, United States)
Date Acquired
August 25, 2013
Publication Date
July 1, 2011
Publication Information
Publication: NASA Tech Briefs, July 2011
Subject Category
Man/System Technology And Life Support
Report/Patent Number
SSC-00339
Distribution Limits
Public
Copyright
Public Use Permitted.
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