遇见数据集

Neural networks weights related to "Recurrent patterns as a basis for two-dimensional turbulence: predicting statistics from structures"

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DataCite Commons2024-05-12 更新2024-07-13 收录
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The dataset contains neural network weights (checkpointed in TensorFlow) for two deep-convolutional autoencoders designed to generate low-dimensional representations of snapshots of vorticity in two-dimensional turbulence. The models have the same architecture apart from the size of the inner-most "embedding" layer. Code to construct the model architecture is also included as a python script. For details of loss function and training protocol please see associated publication "Recurrent patterns as a basis for two-dimensional turbulence: predicting statistics from structures" (accepted in PNAS, 2024)

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2024-05-08
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