2022
DOI: 10.1109/access.2022.3229696
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MGDGAN: Multiple Generator and Discriminator Generative Adversarial Networks for Solving Stochastic Partial Differential Equations

Abstract: We propose novel structures of generator and discriminator in physics-informed generative adversarial networks called multiple-generator-and-discriminator generative adversarial networks (MGDGANs), that are designed to solve stochastic partial differential equations (SPDEs). MGDGANs for SPDEs consist of three steps: a generator that samples a solution to the SPDEs, a physics-informed operator that enforces the governing equation, and a discriminator that distinguishes between samples from the generator and tra… Show more

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Cited by 3 publications
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