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Advancing Wildfire Monitoring with TEMPO and ML tools: Hourly Smoke and Fire‑Front Mapping and Near‑Surface NO₂ Predictions Wildfires impose substantial impacts on communities and regions downwind of wildfire smoke. We present a TEMPO‑enabled workflow that generates value‑added Level‑3 smoke‑plume masks and fire‑front maps for large wildfires, such as 2024 Park Fire, using the self‑supervised deep learning system SIT‑FUSE, along with near‑surface NO₂ predictions produced by a foundation model (Microsoft Aurora). We conclude by outlining a roadmap for expanding these capabilities to additional Western U.S. wildfire events and for delivering actionable tools to stakeholders. This open-source, reproducible workflow provides a scalable framework for cross-agency wildfire monitoring to overcome traditional limitations in smoke-cloud discrimination and air-quality forecasting by incorporating TEMPO data and beyond.
Document ID
20260005025
Acquisition Source
Goddard Space Flight Center
Document Type
Presentation
Authors
Xiaohua Pan
(Adnet Systems (United States) Bethesda, United States)
Kyo Hugo Lee
(Jet Propulsion Laboratory Pasadena, United States)
Nicholas LaHaye
(Spatial Informatics Group, LLC Pleasanton, CA, United States)
Thilanka Munasinghe
(Rensselaer Polytechnic Institute Troy, United States)
Jennifer Wei
(Goddard Space Flight Center Greenbelt, United States)
Gonzalo Gonzalez Abad
(Center for Astrophysics Harvard & Smithsonian Cambridge, United States)
Hazem Mahmoud
(Adnet Systems (United States) Bethesda, United States)
Kyunghwa Lee
(National Institute of Environmental Research Incheon, South Korea)
Date Acquired
June 3, 2026
Subject Category
Earth Resources and Remote Sensing
Meteorology and Climatology
Meeting Information
Meeting: TEMPO DART Team Meeting
Location: Iowa City, IA
Country: US
Start Date: June 15, 2026
End Date: June 18, 2026
Sponsors: National Aeronautics and Space Administration
Funding Number(s)
CONTRACT_GRANT: 80NSSC26K0428
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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