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This repository contains input files to train the Deep-SDM model described in the preprint Predicting species distributions in the open oceans with convolutional neural networks. This deposit contains: 1. Training data: CSV dataset + 38 subfolders with data for each species (named after its GBIF id) 2. Prediction data: 2.1. Global use case (solstices & equinoxes of 2021): CSV dataset + data folder 2.2. Western Indian Ocean use case: CSV dataset + data folder 3. species.csv contains the taxonomic name of each taxon, as well as its GBIF id. 4. stats.npy contains normalization factors for the data files meds, perc1, perc99 = np.load("stats.npy") item = np.load(file)[:,:,:25] real_values = (perc99 - perc1) * item + perc1 Each of these elements can be downloaded separately by scrolling to the Files section.
This project is being developed as part of the G2OI project, co-financed by the European Union, the Reunion region, and the French Republic.
megafauna, open oceans, pelagic species, deep learning, species distribution models
megafauna, open oceans, pelagic species, deep learning, species distribution models
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