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Long-Term Evaluation of Landsat 9 Oli Data Product Uniformity at Focal Plane Module-Boundaries Using Earth ScenesThe uniformity performance characteristic in remote sensing data products is a metric that helps evaluate how an image accurately represents radiometric responses to geophysical variability at the Earth’s surface or within the atmosphere. These uniformity attributes are used in Earth remote sensing science applications such as investigating water quality, land-cover/land-use classifications, and crop health assessments. To ensure these applications perform effectively, it is crucial to maintain and regularly assess the uniformity of calibrated remote sensing data products. In the Landsat missions, data from the onboard radiometric reference Solar diffuser device are used as the standard approach to derive the calibration parameters, ensuring the maintenance of both absolute radiance and radiometric uniformity through quarterly updates. This publication presents an alternative approach that leverages Earth scene data to assess the on-orbit uniformity performance of the Landsat 9 (L9) mission. The analysis characterizes uniformity at a specific set of spatial positions (the focal-plane boundary zones) that are intrinsic to the Operational Land Imager (OLI) focal plane design. By employing these Earth data statistics, the article further explores the temporal trends in the radiometric uniformity results. The results shown in this article demonstrate that for pushbroom imaging design systems with staggered sensor chip focal plane architectures, the co-registered pixels, i.e., overlapping measurements of the same ground target viewed by different detectors, offer a self-contained mechanism for assessing product uniformity. Remarkably, this alternative approach achieves a level of radiometric quality comparable to that delivered by a stable, well-characterized onboard Solar diffuser calibration device. The findings demonstrate the potential and capability of such Earth scene statistics in maintaining radiometric uniformity in calibrated data products to better than 1% (1-sigma) throughout the mission’s operational lifetime.
Document ID
20260008611
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Raviv Levy ORCID
(Science Systems and Applications (United States) Lanham, United States)
Cibele Teixeira Pinto
(Science Systems and Applications (United States) Lanham, United States)
Jeffrey A Miller
(Science Systems and Applications (United States) Lanham, United States)
Kurtis Thome
(Goddard Space Flight Center Greenbelt, United States)
Date Acquired
September 4, 2026
Publication Date
July 2, 2026
Publication Information
Publication: Journal of Applied Remote Sensing
Publisher: Society Photo-optical Instrumentation Engineers
Volume: 20
Issue: 3
Issue Publication Date: July 2, 2026
e-ISSN: 1931-3195
URL: https://caps.luminad.com:8443/stockage/stock/SPIE/LDL-SPIE-JARS-260298G/JARS-260298G_online.pdf
Subject Category
Earth Resources and Remote Sensing
Funding Number(s)
WBS: 372720.04.03.01
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Professional Review
Keywords
trend
stability
Landsat 9
Operational Land Imager
uniformity
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