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Metamizer: a versatile neural optimizer for fast and accurate physics simulations

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arxiv 2410.19746 v2 pith:VB56GJHX submitted 2024-10-10 physics.comp-ph cs.AI

classification physics.comp-phcs.AI
keywords neuralmetamizeroptimizersimulationsaccuracynumericalphysicstraining
verification ladder T0 review T1 audit T2 compute T3 formal
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Efficient physics simulations are essential for numerous applications, ranging from realistic cloth animations or smoke effects in video games, to analyzing pollutant dispersion in environmental sciences, to calculating vehicle drag coefficients in engineering applications. Unfortunately, analytical solutions to the underlying physical equations are rarely available, and numerical solutions require high computational resources. Latest developments in the field of physics-based Deep Learning have led to promising efficiency improvements but still suffer from limited generalization capabilities and low accuracy compared to numerical solvers. In this work, we introduce Metamizer, a novel neural optimizer that iteratively solves a wide range of physical systems with high accuracy by minimizing a physics-based loss function. To this end, our approach leverages a scale-invariant architecture that enhances gradient descent updates to accelerate convergence. Since the neural network itself acts as an optimizer, training this neural optimizer falls into the category of meta-optimization approaches. We demonstrate that Metamizer achieves unprecedented accuracy for deep learning based approaches - sometimes approaching machine precision - across multiple PDEs after training on the Laplace, advection-diffusion and incompressible Navier-Stokes equation as well as on cloth simulations. Remarkably, the model also generalizes to PDEs that were not covered during training such as the Poisson, wave and Burgers equation. Our results suggest that Metamizer could have a profound impact on future numerical solvers, paving the way for fast and accurate neural physics simulations without the need for retraining.

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  1. SAFT: Shape and Appearance of Fabrics from Template via Differentiable Physical Simulations from Monocular Video

    cs.CV 2025-09 conditional novelty 6.0 of 10

    A physics-based shape-from-template method with two regularization terms reduces cloth reconstruction error by about 2.6x versus prior work and enables SVBRDF and lighting recovery from monocular video.

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