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3D-Var Data Assimilation using a Variational Autoencoder

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arxiv 2308.16073 v3 pith:4BEE73SY submitted 2023-08-30 physics.ao-ph

classification physics.ao-ph
keywords assimilationdatavariationalbackground-errorspaceautoencodercostcovariances
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abstract

Data assimilation of atmospheric observations traditionally relies on variational and Kalman filter methods. Here, an alternative neural-network data assimilation (NNDA) with variational autoencoder (VAE) is proposed. The three-dimensional variational (3D-Var) data assimilation cost function is utilised to determine the analysis that optimally fuses simulated observations and the encoded short-range persistence forecast (background), accounting for their errors. The minimisation is performed in the reduced-order latent space, discovered by the VAE. The variational problem is auto-differentiable, simplifying the computation of the cost function gradient necessary for efficient minimisation. We demonstrate that the background-error covariance ($\mathbf{B}$) matrix measured and represented in the latent space is quasi-diagonal. The background-error covariances in the grid-point space are flow-dependent, evolving seasonally and depending on the current state of the atmosphere. Data assimilation experiments with a single temperature observation in the lower troposphere indicate that the $\mathbf{B}$-matrix simultaneously describes both tropical and extratropical background-error covariances.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Tensor-Var: Efficient Four-Dimensional Variational Data Assimilation

    cs.LG 2025-01 conditional novelty 6.0 of 10

    Tensor-Var turns nonlinear 4D-Var into a convex quadratic program in a learned linear feature space, reporting accuracy and speed gains on chaotic systems and global weather assimilation.

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