Abstract

Assessing useful reuse in neural PDE solvers is challenging: final accuracy can reflect source learning and target-time computation. Our reuse contract separates solution accuracy, learning contribution, and numerical utility through paired state comparisons, matched target information and budgets, and cost accounting. A literature audit extracts 18 version-specific protocol records from 12 papers, documenting retained states, target-time resources, and reported controls. For a fixed linear system and residual tolerance, we construct two initial guesses with identical solution-error, energy-error, and residual norms, reaching the same solution with different conjugate-gradient (CG) iteration counts. Across 240 source-training trajectories, two linear PDE families, Fourier neural operators and convolutional networks, a fixed predictor's benefit reverses across correction algorithms. Among pairs with both relative prediction errors less than or equal to 5 percent on 64 in-distribution tasks (63 by 63 interior grids), reductions in all three norms accompany more CG iterations, at mean taskwise rates of 23.5 percent and 23.9 percent in two libraries. Work-based selection saves 2.50-3.33 CG iterations on held-out in-distribution tasks; matched adaptation demonstrates finite-budget pretraining value. Independent batches confirm a 0.73 percent complete online saving for one physics-trained Fourier neural operator against zero-initialized Poisson-preconditioned CG. Reuse requires matched state comparisons and downstream computational evidence.

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Green open access

Cite this article

APA 7

Wang, S., Wen, H., Liu, S. L., Wang, X., Liu, L., & Deng, Z. (2026). Transferability of Learned States in Neural PDE Solvers. https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers

MLA 9

Wang, Shunye, et al. "Transferability of Learned States in Neural PDE Solvers." https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers.

Chicago (author–date)

Wang, Shunye, Haochen Wen, Shuo Li Liu, Xuanyi Wang, Lihao Liu, and Zhongying Deng. 2026. "Transferability of Learned States in Neural PDE Solvers." https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers.

Harvard

Wang, S., Wen, H., Liu, S. L., Wang, X., Liu, L. and Deng, Z. (2026) 'Transferability of Learned States in Neural PDE Solvers', Available at: https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers.

Vancouver

Wang S, Wen H, Liu SL, Wang X, Liu L, Deng Z. Transferability of Learned States in Neural PDE Solvers. https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers

IEEE

S. Wang, H. Wen, S. L. Liu, X. Wang, L. Liu, and Z. Deng, "Transferability of Learned States in Neural PDE Solvers," https://omanscience.com/en/articles/transferability-of-learned-states-in-neural-pde-solvers.