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Johannes Kraus 0001
Person information
- affiliation: Austrian Academy of Sciences, Linz, Austria
- affiliation: University of Duisburg-Essen, Germany
Other persons with the same name
- Johannes Kraus 0002 (aka: Johannes Maria Kraus) — University of Ulm, Germany
- Johannes Kraus 0003 — Johannes Gutenberg-University Mainz, Germany
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2020 – today
- 2024
- [i9]Johannes Kraus, Maria Lymbery, Kevin Osthues, Fadi Philo:
Analysis of a family of time-continuous strongly conservative space-time finite element methods for the dynamic Biot model. CoRR abs/2401.04609 (2024) - [i8]Stefan Meggendorfer, Guido Kanschat, Johannes Kraus:
Monolithic two-level Schwarz preconditioner for Biot's consolidation model in two space dimensions. CoRR abs/2404.16684 (2024) - 2023
- [j32]Johannes Kraus, Philip L. Lederer, Maria Lymbery, Kevin Osthues, Joachim Schöberl:
Hybridized Discontinuous Galerkin/Hybrid Mixed Methods for a Multiple Network Poroelasticity Model with Application in Biomechanics. SIAM J. Sci. Comput. 45(6): 802-827 (2023) - [i7]Johannes Kraus, Kundan Kumar, Maria Lymbery, Florin Adrian Radu:
A fixed-stress type splitting method for nonlinear poroelasticity. CoRR abs/2312.17698 (2023) - 2022
- [j31]Qingguo Hong, Johannes Kraus, Miroslav Kuchta, Maria Lymbery, Kent-André Mardal, Marie E. Rognes:
Robust Approximation of Generalized Biot-Brinkman Problems. J. Sci. Comput. 93(2): 77 (2022) - [j30]Qingguo Hong, Johannes Kraus, Maria Lymbery, Fadi Philo:
A new practical framework for the stability analysis of perturbed saddle-point problems and applications. Math. Comput. 92(340): 607-634 (2022) - [i6]Johannes Kraus, Philip L. Lederer, Maria Lymbery, Kevin Osthues, Joachim Schöberl:
Hybridized Discontinuous Galerkin Methods for a Multiple Network Poroelasticity Model with Medical Applications. CoRR abs/2205.06732 (2022) - 2021
- [j29]Svetoslav Nakov, Ekaterina Sobakinskaya, Thomas Renger, Johannes Kraus:
ARGOS: An adaptive refinement goal-oriented solver for the linearized Poisson-Boltzmann equation. J. Comput. Chem. 42(26): 1832-1860 (2021) - [j28]Radim Blaheta, Jaroslav Haslinger, Stanislav Sysala, Peter Arbenz, Johannes Kraus:
MATCOM special issue modelling 2019: International Conference on Mathematical Modelling and Computational Methods in Applied Sciences and Engineering. Math. Comput. Simul. 189: 1-2 (2021) - [i5]Qingguo Hong, Johannes Kraus, Maria Lymbery, Fadi Philo:
A new framework for the stability analysis of perturbed saddle-point problems and applications in poromechanics. CoRR abs/2103.09357 (2021) - [i4]Johannes K. Kraus, Sergey I. Repin:
A posteriori error estimates for domain decomposition methods. CoRR abs/2111.07706 (2021) - [i3]Qingguo Hong, Johannes K. Kraus, Miroslav Kuchta, Maria Lymbery, Kent-André Mardal, Marie E. Rognes:
Robust approximation of generalized Biot-Brinkman problems. CoRR abs/2112.13618 (2021) - 2020
- [j27]Johannes Kraus, Svetoslav Nakov, Sergey I. Repin:
Reliable Numerical Solution of a Class of Nonlinear Elliptic Problems Generated by the Poisson-Boltzmann Equation. Comput. Methods Appl. Math. 20(2): 293-319 (2020) - [j26]Johannes Kraus, Svetoslav Nakov, Sergey I. Repin:
Reliable Computer Simulation Methods for Electrostatic Biomolecular Models Based on the Poisson-Boltzmann Equation. Comput. Methods Appl. Math. 20(4): 643-676 (2020) - [j25]Qingguo Hong, Johannes Kraus, Maria Lymbery, Mary F. Wheeler:
Parameter-Robust Convergence Analysis of Fixed-Stress Split Iterative Method for Multiple-Permeability Poroelasticity Systems. Multiscale Model. Simul. 18(2): 916-941 (2020) - [i2]Johannes Kraus, Philip L. Lederer, Maria Lymbery, Joachim Schöberl:
Uniformly well-posed hybridized discontinuous Galerkin/hybrid mixed discretizations for Biot's consolidation model. CoRR abs/2012.08584 (2020)
2010 – 2019
- 2019
- [j24]Johannes Kraus, Carl-Martin Pfeiler, Dirk Praetorius, Michele Ruggeri, Bernhard Stiftner:
Iterative solution and preconditioning for the tangent plane scheme in computational micromagnetics. J. Comput. Phys. 398 (2019) - [j23]Qingguo Hong, Johannes Kraus, Maria Lymbery, Fadi Philo:
Conservative discretizations and parameter-robust preconditioners for Biot and multiple-network flux-based poroelasticity models. Numer. Linear Algebra Appl. 26(4) (2019) - [i1]Qingguo Hong, Johannes Kraus, Maria Lymbery, Fadi Philo:
Parameter-robust Uzawa-type iterative methods for double saddle point problems arising in Biot's consolidation and multiple-network poroelasticity models. CoRR abs/1910.05883 (2019) - 2018
- [j22]Johannes Kraus, Maria Lymbery:
Incomplete factorization by local exact factorization (ILUE). Math. Comput. Simul. 145: 50-61 (2018) - 2016
- [j21]Qingguo Hong, Johannes Kraus, Jinchao Xu, Ludmil T. Zikatanov:
A robust multigrid method for discontinuous Galerkin discretizations of Stokes and linear elasticity equations. Numerische Mathematik 132(1): 23-49 (2016) - [j20]Qingguo Hong, Johannes Kraus:
Uniformly Stable Discontinuous Galerkin Discretization and Robust Iterative Solution Methods for the Brinkman Problem. SIAM J. Numer. Anal. 54(5): 2750-2774 (2016) - [j19]Johannes K. Kraus, Raytcho D. Lazarov, Maria Lymbery, Svetozar Margenov, Ludmil T. Zikatanov:
Preconditioning Heterogeneous H(div) Problems by Additive Schur Complement Approximation and Applications. SIAM J. Sci. Comput. 38(2) (2016) - 2015
- [j18]N. R. Bayramov, J. K. Kraus:
On the stable solution of transient convection-diffusion equations. J. Comput. Appl. Math. 280: 275-293 (2015) - [j17]Johannes Kraus, Maria Lymbery, Svetozar Margenov:
Auxiliary space multigrid method based on additive Schur complement approximation. Numer. Linear Algebra Appl. 22(6): 965-986 (2015) - 2014
- [j16]Johannes Kraus, Maria Lymbery, Svetozar Margenov:
Robust multilevel methods for quadratic finite element anisotropic elliptic problems. Numer. Linear Algebra Appl. 21(3): 375-398 (2014) - 2013
- [j15]Johannes Kraus, Monika Wolfmayr:
On the robustness and optimality of algebraic multilevel methods for reaction-diffusion type problems. Comput. Vis. Sci. 16(1): 15-32 (2013) - [j14]James J. Brannick, Yao Chen, Johannes Kraus, Ludmil T. Zikatanov:
Algebraic Multilevel Preconditioners for the Graph Laplacian Based on Matching in Graphs. SIAM J. Numer. Anal. 51(3): 1805-1827 (2013) - [p2]James J. Brannick, Yao Chen, Johannes Kraus, Ludmil T. Zikatanov:
An Algebraic Multigrid Method Based on Matching in Graphs. Domain Decomposition Methods in Science and Engineering XX 2013: 143-150 - [p1]Erwin Karer, Johannes K. Kraus, Ludmil T. Zikatanov:
A Subspace Correction Method for Nearly Singular Linear Elasticity Problems. Domain Decomposition Methods in Science and Engineering XX 2013: 159-166 - 2012
- [j13]Johannes Kraus, Panayot S. Vassilevski, Ludmil T. Zikatanov:
Polynomial of Best Uniform Approximation to 1/x and Smoothing in Two-level Methods. Comput. Methods Appl. Math. 12(4): 448-468 (2012) - [j12]Johannes Kraus:
Additive Schur Complement Approximation and Application to Multilevel Preconditioning. SIAM J. Sci. Comput. 34(6) (2012) - 2011
- [c8]Johannes Kraus:
Additive Schur Complement Approximation for Elliptic Problems with Oscillatory Coefficients. LSSC 2011: 52-59 - [c7]Johannes Kraus, Maria Lymbery, Svetozar Margenov:
On the Robustness of Two-Level Preconditioners for Quadratic FE Orthotropic Elliptic Problems. LSSC 2011: 582-589 - 2010
- [c6]Blanca Ayuso de Dios, Ivan Georgiev, Johannes Kraus, Ludmil T. Zikatanov:
A Simple Preconditioner for the SIPG Discretization of Linear Elasticity Equations. NMA 2010: 353-360
2000 – 2009
- 2009
- [c5]Ivan Georgiev, Johannes Kraus, Svetozar Margenov:
Multilevel Preconditioning of Crouzeix-Raviart 3D Pure Displacement Elasticity Problems. LSSC 2009: 100-107 - 2008
- [j11]Ivan Georgiev, Johannes Kraus, Svetozar Margenov:
Multilevel preconditioning of rotated bilinear non-conforming FEM problems. Comput. Math. Appl. 55(10): 2280-2294 (2008) - [j10]Ivan Georgiev, Johannes Kraus, Svetozar Margenov:
Multilevel algorithms for Rannacher-Turek finite element approximation of 3D elliptic problems. Computing 82(4): 217-239 (2008) - [j9]Johannes Kraus, Svetozar Margenov, Josef Synka:
On the multilevel preconditioning of Crouzeix-Raviart elliptic problems. Numer. Linear Algebra Appl. 15(5): 395-416 (2008) - [j8]Johannes K. Kraus, Satyendra K. Tomar:
A multilevel method for discontinuous Galerkin approximation of three-dimensional anisotropic elliptic problems. Numer. Linear Algebra Appl. 15(5): 417-438 (2008) - [j7]J. K. Kraus:
Algebraic Multigrid Based on Computational Molecules, 2: Linear Elasticity Problems. SIAM J. Sci. Comput. 30(1): 505-524 (2008) - [j6]Johannes K. Kraus, Satyendra K. Tomar:
Multilevel Preconditioning of Two-dimensional Elliptic Problems Discretized by a Class of Discontinuous Galerkin Methods. SIAM J. Sci. Comput. 30(2): 684-706 (2008) - 2007
- [c4]Ivan Georgiev, Johannes Kraus, Svetozar Margenov:
Multilevel Preconditioning of Rotated Trilinear Non-conforming Finite Element Problems. LSSC 2007: 86-95 - [c3]Dalibor Lukás, Johannes Kraus:
A Fixed-Grid Finite Element Algebraic Multigrid Approach for Interface Shape Optimization Governed by 2-Dimensional Magnetostatics. LSSC 2007: 96-104 - 2006
- [j5]J. K. Kraus, Josef Schicho:
Algebraic Multigrid Based on Computational Molecules, 1: Scalar Elliptic Problems. Computing 77(1): 57-75 (2006) - [j4]J. K. Kraus:
Algebraic multilevel preconditioning of finite element matrices using local Schur complements. Numer. Linear Algebra Appl. 13(1): 49-70 (2006) - [c2]Ivan Georgiev, Johannes Kraus, Svetozar Margenov:
Multilevel Preconditioning of 2D Rannacher-Turek FE Problems; Additive and Multiplicative Methods. Numerical Methods and Applications 2006: 56-64 - 2005
- [j3]J. K. Kraus:
Computing Interpolation Weights in AMG Based on Multilevel Schur Complements. Computing 74(4): 319-335 (2005) - [c1]J. K. Kraus:
On the Utilization of Edge Matrices in Algebraic Multigrid. LSSC 2005: 121-129 - 2002
- [j2]J. K. Kraus:
An algebraic preconditioning method for M-matrices: linear versus non-linear multilevel iteration. Numer. Linear Algebra Appl. 9(8): 599-618 (2002) - 2000
- [j1]J. K. Kraus, C. W. Brand:
Condition Numbers of Approximate Schur Complements in Two- and Three-Dimensional Discretizations on Hierarchically Ordered Grids. Computing 65(2): 135-154 (2000)
Coauthor Index
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