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Contextual Segmentation of Fire Spotting Regions Through Satellite-Augmented Autonomous Modular Sensor ImageGlobally, forest fires remain a significant threat to human and environmental wellbeing. Towards mitigating the impacts of forest fires, it is critical that accurate and updated information regarding not only the fire line, but also nearby human settlements, vegetation, and water sources is reported quickly to emergency services. However, while existing UAS-based fire detection methods are effective, they largely do not report the contextual environmental information necessary to best serve nearby communities in disaster response. Additionally, modern advancements in deep learning offer new approaches for image segmentation which may improve classification accuracy beyond current pixel-wise indices. In this work, we benchmark the performance of these modern segmentation techniques in locating both fire lines and environmental features in historical Autonomous Modular Sensor imagery. Furthermore, we augment these outputs with satellite imagery segmentation towards developing a robust contextual mapping tool for rapid emergency fire response and decision making.
Document ID
20210024365
Acquisition Source
Langley Research Center
Document Type
Conference Paper
Authors
Nikhil Behari
(LaRC Student Volunteer)
Henry Holbrook
(Universities Space Research Association Columbia, Maryland, United States)
Paris Garrett
(Universities Space Research Association Columbia, Maryland, United States)
Corey Ippolito
(Ames Research Center Mountain View, California, United States)
Chester Dolph
(Langley Research Center Hampton, Virginia, United States)
Date Acquired
November 15, 2021
Publication Date
December 2, 2021
Subject Category
Earth Resources And Remote Sensing
Meeting Information
Meeting: AIAA SciTech
Location: San Diego, CA
Country: US
Start Date: January 3, 2022
End Date: January 7, 2022
Sponsors: American Institute of Aeronautics and Astronautics
Funding Number(s)
WBS: 109492.02.07.07.07.06
CONTRACT_GRANT: NNX13AJ46A
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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