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Markus Apel

4 papers hereh-index 6142 citations11 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • middle author3
  • last author1

Across the 4 of 4 papers where every author was matched, so the position is known.

fields
  • cs.LG3
  • cs.CE1

identity via Semantic Scholar / OpenAlex

collaborators

4 papers

cs.LG2026

Tackling multiphysics problems via finite element-guided physics-informed operator learning

Yusuke Yamazaki, Reza Najian Asl, Markus Apel +2

This work presents a finite element-guided physics-informed operator learning framework for multiphysics problems with coupled partial differential equations (PDEs) on arbitrary do…

cs.LG2025

A Physics-Informed Meta-Learning Framework for the Continuous Solution of Parametric PDEs on Arbitrary Geometries

Reza Najian Asl, Yusuke Yamazaki, Kianoosh Taghikhani +3

In this work, we introduce implicit Finite Operator Learning (iFOL) for the continuous and parametric solution of partial differential equations (PDEs) on arbitrary geometries. We…

cs.CE2025

Finite Operator Learning: Bridging Neural Operators and Numerical Methods for Efficient Parametric Solution and Optimization of PDEs

Shahed Rezaei, Reza Najian Asl, Kianoosh Taghikhani +3

We introduce a method that combines neural operators, physics-informed machine learning, and standard numerical methods for solving PDEs. The proposed approach extends each of the…

cs.LG2025

Neural-Initialized Newton: Accelerating Nonlinear Finite Elements via Operator Learning

Kianoosh Taghikhani, Yusuke Yamazaki, Jerry Paul Varghese +3

We propose a Newton-based scheme, initialized by neural operator predictions, to accelerate the parametric solution of nonlinear problems in computational solid mechanics. First, a…

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