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Data for learning-based prediction of the particles catchment area of deep ocean sediment traps

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DataCite Commons2024-09-26 更新2025-04-16 收录
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https://www.seanoe.org/data/00864/97556/
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资源简介:
In this study, we conducted a series of numerical Lagrangian experiments in the Porcupine Abyssal Plain region of the North Atlantic and developed a machine learning approach to predict the surface origin of particles trapped in a deep sediment trap. The data contain : - I. Probability density function of the particles position from the Lagrangian experiments. -II. The dynamic variables (temperature, vorticity, u, v, sea surface height) associated with each Lagrangian experiments and used for the training/ testing. -III. The saved parameters and logs of the machine learning models. -IV. Some processed data such as kinetic energy and okubo-weiss parameter used for analysis.
提供机构:
SEANOE
创建时间:
2023-12-04
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