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Mapping seamless monthly XCO2 in East Asia: Utilizing OCO-2 data and machine learning

High spatial resolution XCO2 data is key to investigating the mechanisms of carbon sources and sinks. However, current carbon satellites have a narrow swath and uneven observation points, making it difficult to obtain seamless and full-coverage data. We propose a novel method combining extreme gradi...

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Auteurs principaux: Terigelehu Te, Chunling Bao, Hasi Bagan, Yuxin Xie, Meihui Che, Takahiro Yoshida, Bayarsaikhan Uudus
Format: Artigo
Langue:Inglês
Publié: Elsevier 2024-09-01
Collection:International Journal of Applied Earth Observations and Geoinformation
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Accès en ligne:http://www.sciencedirect.com/science/article/pii/S1569843224004710
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