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Aerosol-Calibrated Matched Filter applied on retrievals of methane point source emissions over Los Angeles Basin

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DataCite Commons2024-08-19 更新2025-04-16 收录
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http://dataverse.jpl.nasa.gov/citation?persistentId=doi:10.48577/jpl.LTLSX5
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Methane, with a global warming potential roughly 80 times greater than carbon dioxide over a 20-year timeframe, plays a crucial role in global warming. Remote sensing retrieval is a pivotal methodology for identifying methane emission sources, with accuracy influenced largely by surface and atmospheric properties, including aerosols. In this study, we propose an Aerosol-Calibrated Matched Filter (ACMF) algorithm as the improvement of the Matched Filter (MF) method, incorporating an aerosol scattering correction factor to reduce the aerosol-induced bias on methane retrieval. Validating our algorithm through simulated spectra, we demonstrate that considering the aerosol scattering effect significantly reduces retrieval errors compared to traditional MF methods by an average of approximately 90%. We apply our newly developed algorithm to hyperspectral data obtained from the Airborne Visible/Infrared Imaging Spectrometer – Next Generation during the period of 2020 in the Los Angeles Basin, and focus on 11 plumes identified through case studies. Our results reveal that ACMF estimates of emission rates and inversion uncertainties exhibit an average reduction of approximately 4% compared to traditional MF, with deviation increasing with aerosol optical depth.
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Root
创建时间:
2024-08-18
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