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Towards automated near-real-time global monitoring of atmospheric SO<sub>2</sub> plumes from satellite data using U-Net segmentation

delete2026-06-24
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OA
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D
Douglas Finch *
P
Paul I. Palmer
DOI:10.5194/amt-19-4049-2026delete
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Abstract

Abstract

En 中文
Abstract. Sulphur dioxide (SO2) is a major atmospheric pollutant from fossil fuel combustion; metal smelting; and volcanic degassing; impacting human health; acid deposition; and climate forcing. Existing emission inventories are often temporally lagged and spatially coarse; failing to capture high-intensity; sporadic events. To address this; we present a novel; near real-time approach using a U-Net image segmentation model to automatically isolate SO2 plumes from over 31 000 TROPOMI satellite swaths (January 2019–December 2024). The model successfully identified 53 993 individual plumes. The highest annual detection rate in 2019 was attributed to massive stratospheric SO2 injections from the Raikoke and Ulawun volcanic eruptions. Clustering analysis confirmed plume origins around expected volcanic and industrial hotspots (e.g.; Popocatépetl; Norilsk); with volcanic sources dominating the top ten clusters. However; the algorithm struggles to detect sources in high-background regions like China; where high SO2 saturation likely prevents individual plume isolation. This study demonstrates machine learning as a powerful tool for transforming atmospheric monitoring; providing the high-cadence; fine-grained quantification of SO2 emissions crucial for validating global inventories and ensuring effective environmental management.
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Journal

Atmospheric Measurement Techniques cover
Atmospheric Measurement Techniques
IF:
3.3
Papers:
5.3K
Citations:
1.6W

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U
University of Edinburgh
Scholars:
5.1W
Papers: 4.5W
Citations: 70
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