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Neuro-Symbolic Multitasking: A Unified Framework for Discovering Generalizable Solutions to PDE Families

About

Solving Partial Differential Equations (PDEs) is fundamental to numerous scientific and engineering disciplines. A common challenge arises from solving the PDE families, which are characterized by sharing an identical mathematical structure but varying in specific parameters. Traditional numerical methods, such as the finite element method, need to independently solve each instance within a PDE family, which incurs massive computational cost. On the other hand, while recent advancements in machine learning PDE solvers offer impressive computational speed and accuracy, their inherent ``black-box" nature presents a considerable limitation. These methods primarily yield numerical approximations, thereby lacking the crucial interpretability provided by analytical expressions, which are essential for deeper scientific insight. To address these limitations, we propose a neuro-assisted multitasking symbolic PDE solver framework for PDE family solving, dubbed NMIPS. In particular, we employ multifactorial optimization to simultaneously discover the analytical solutions of PDEs. To enhance computational efficiency, we devise an affine transfer method by transferring learned mathematical structures among PDEs in a family, avoiding solving each PDE from scratch. Experimental results across multiple cases demonstrate promising improvements over existing baselines, achieving up to a $\sim$35.7% increase in accuracy while providing interpretable analytical solutions.

Yipeng Huang, Dejun Xu, Zexin Lin, Zhenzhong Wang, Min Jiang• 2026

Related benchmarks

TaskDatasetResultRank
Symbolic Regression3D Advection Equation (test)
MSE0.123
60
1D Advection Equation Modeling1D Advection Equation
MSE0.146
38
Modeling 1D Advection-Diffusion Equation1D Advection-Diffusion Equation S-I (test)
MSE0.0108
38
Symbolic Regression2D Advection Equation (test)
MSE0.241
38
1D Physics Modeling1d Burgers' equation (test)
MSE0.0062
38
Symbolic Regression2D Navier-Stokes Equation v=0.020
MSE0.0436
8
Symbolic Regression2D Navier-Stokes Equation v=0.050
MSE0.014
8
Symbolic Regression2D Navier-Stokes Equation v=0.035
MSE0.021
8
Symbolic Regression2D Navier-Stokes Equation v=0.005
MSE0.118
8
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