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  • title: Modeling Accurate Long Rollouts with Temporal Neural PDE Solvers
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            Modeling Accurate Long Rollouts with Temporal Neural PDE Solvers
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            Modeling Accurate Long Rollouts with Temporal Neural PDE Solvers

            Jul 28, 2023

            Speakers

            PL

            Phillip Lippe

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            BV

            Bastiaan Veeling

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            PP

            Paris Perdikaris

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            About

            Time-dependent partial differential equations (PDEs) are ubiquitous in science and engineering. Recently, mostly due to the high computational cost of traditional solution techniques, deep neural network based surrogates have gained increased interest. The practical utility of such neural PDE solvers relies on their ability to provide accurate, stable predictions over long time horizons, which is a notoriously hard problem. In this work, we present a large-scale analysis of common temporal rollo…

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            ICML 2023

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