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Data-driven Discovery of Snow Cover Parameterization

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NIAID Data Ecosystem2026-05-02 收录
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https://zenodo.org/record/11081594
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All data were derived from SNOTEL, Version 1, and were preprocessed for training symbolic regression models in convenience. Train and test data are range from water years of 2001-2009, and of 2010-2018. All NaN value were removed from data and shape as [Sample, feat]. The dataset contains preprocessed dimensonless features: The name and unit of each feature were listed in sequence as follows:     1. Snow depth (mm)    2. Snow water equivalent (mm)    3. Standard deviation of sub-grid topography (m)    4. Air temperature (K)    5. Precipitation (mm/day)    6. 1/snow density (mm/mm)    7. 1/Standard deviation of sub-grid topography (m^-1) The name and unit of target were listed as follows:      1. Snow cover fraction [%] Some own defined constant: surface roughness (0.1 m) 0 degree of temperature (273.16 K) own defined std threshold (200 m) mean SWE (122.3 mm)
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2024-09-02
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