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A Residual Guided strategy with Generative Adversarial Networks in training Physics-Informed Transformer Networks

About

Nonlinear partial differential equations (PDEs) are pivotal in modeling complex physical systems, yet traditional Physics-Informed Neural Networks (PINNs) often struggle with unresolved residuals in critical spatiotemporal regions and violations of temporal causality. To address these limitations, we propose a novel Residual Guided Training strategy for Physics-Informed Transformer via Generative Adversarial Networks (GAN). Our framework integrates a decoder-only Transformer to inherently capture temporal correlations through autoregressive processing, coupled with a residual-aware GAN that dynamically identifies and prioritizes high-residual regions. By introducing a causal penalty term and an adaptive sampling mechanism, the method enforces temporal causality while refining accuracy in problematic domains. Extensive numerical experiments on the Allen-Cahn, Klein-Gordon, and Navier-Stokes equations demonstrate significant improvements, achieving relative MSE reductions of up to three orders of magnitude compared to baseline methods. This work bridges the gap between deep learning and physics-driven modeling, offering a robust solution for multiscale and time-dependent PDE systems.

Ziyang Zhang, Feifan Zhang, Weidong Tang, Lei Shi, Tailai Chen• 2025

Related benchmarks

TaskDatasetResultRank
Partial Differential Equation SolvingAllen-Cahn equation Small regime, phi=0.5
Relative MSE2.08e-4
6
Partial Differential Equation SolvingAllen-Cahn equation Medium regime, phi=1
Relative MSE1.36e-4
6
Partial Differential Equation SolvingAllen-Cahn equation Large regime, phi=2
Relative MSE1.07e-4
6
Partial Differential Equation SolvingKlein-Gordon equation Small regime, m=1
Relative MSE0.0388
6
Partial Differential Equation SolvingKlein-Gordon equation Medium regime, m=3
Relative MSE8.09e-4
6
Partial Differential Equation SolvingNavier-Stokes equation Small regime, Re=500
Relative MSE0.0336
6
Partial Differential Equation SolvingNavier-Stokes equation Medium regime, Re=1000
Relative MSE7.14e-4
6
Partial Differential Equation SolvingNavier-Stokes equation Large regime, Re=2000
Relative MSE0.183
6
Partial Differential Equation SolvingKlein-Gordon equation Large regime, m=5
Relative MSE0.0017
6
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