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  • title: An Interpretable Model of Climate Change Using Correlative Learning
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            An Interpretable Model of Climate Change Using Correlative Learning
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            An Interpretable Model of Climate Change Using Correlative Learning

            Dez 2, 2022

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            CA

            Charles Anderson

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            Jason Stock

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            Über

            Determining changes in global temperature and precipitation that may indicate climate change is complicated by annual variations. One approach for finding potential climate change indicators is to train a model that predicts the year from annual means of global temperatures and precipitations. Such data is available from the CMIP6 ensemble of simulations. Here a two-hidden-layer neural network trained on this data successfully predicts the year. Differences among temperature and precipitation pa…

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            NeurIPS 2022

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