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  • title: Identifying latent climate signals using sparse hierarchical Gaussian processes
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            Identifying latent climate signals using sparse hierarchical Gaussian processes
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            Identifying latent climate signals using sparse hierarchical Gaussian processes

            Dec 2, 2022

            Speakers

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            Matt Amos

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            Thomas Pinder

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            Paul Young

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            About

            Extracting latent climate signals from multiple climate model simulations is important to estimate future climate change. To tackle this we develop a sparse hierarchical Gaussian process (SHGP), which probabilistically learns a latent distribution from a set of vectors. We use this to predict the latent surface temperature change globally and for central England from an ensemble of climate models, in a scalable manner and with robust uncertainty propagation.…

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            NeurIPS 2022

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