We introduce a space-time discretization for elastic and acoustic waves using a discontinuous Galerkin approximation in space and a Petrov–Galerkin scheme in time. For the dG method, the upwind flux is evaluated by explicitly solving a Riemann problem. Then we show well-posedness and convergence of the discrete system. Based on goal-oriented dualweighted error estimation an adaptive strategy is introduced. The full space-time linear system is solved with a parallel multilevel preconditioner. Numerical experiments for acoustic and elastic waves underline the efficiency of the overall adaptive solution process
We develop a convergence theory of space–time discretizations for the linear, second-order wave equa...
We develop a convergence theory of space-time discretizations for the linear, 2nd-order wave equatio...
We introduce a space–time Trefftz discontinuous Galerkin method for the first-order transient acoust...
We introduce a space-time discretization for linear first-order hyperbolic evolution systems using a...
We introduce a space-time discretization for linear first-order hyperbolic evolution systems using a...
We apply the discontinuous Petrov-Galerkin (DPG) method to linear acoustic waves in space and time u...
In this work we present a new high order space-time discretization method based on a discontinuous G...
We establish an abstract space-time DPG framework for the approximation of linear waves in heterogen...
We study weak solutions and its approximation of hyperbolic linear symmetric Friedrichs systems desc...
We study weak solutions and its approximation of hyperbolic linear symmetric Friedrichs systems desc...
A novel space-time discretization for the (linear) scalar-valued dissipative wave equation is presen...
Abstract — This paper gives an overview of adaptive discretization methods for lin-ear second-order ...
Comprehensive adaptive procedures with ecient sparse multi-level iterative solution algorithms for t...
This paper presents a numerical scheme of arbitrary order of accuracy in both space and time, based ...
International audienceWe introduce a time-domain, high-order in space, hybridizable discontinuous Ga...
We develop a convergence theory of space–time discretizations for the linear, second-order wave equa...
We develop a convergence theory of space-time discretizations for the linear, 2nd-order wave equatio...
We introduce a space–time Trefftz discontinuous Galerkin method for the first-order transient acoust...
We introduce a space-time discretization for linear first-order hyperbolic evolution systems using a...
We introduce a space-time discretization for linear first-order hyperbolic evolution systems using a...
We apply the discontinuous Petrov-Galerkin (DPG) method to linear acoustic waves in space and time u...
In this work we present a new high order space-time discretization method based on a discontinuous G...
We establish an abstract space-time DPG framework for the approximation of linear waves in heterogen...
We study weak solutions and its approximation of hyperbolic linear symmetric Friedrichs systems desc...
We study weak solutions and its approximation of hyperbolic linear symmetric Friedrichs systems desc...
A novel space-time discretization for the (linear) scalar-valued dissipative wave equation is presen...
Abstract — This paper gives an overview of adaptive discretization methods for lin-ear second-order ...
Comprehensive adaptive procedures with ecient sparse multi-level iterative solution algorithms for t...
This paper presents a numerical scheme of arbitrary order of accuracy in both space and time, based ...
International audienceWe introduce a time-domain, high-order in space, hybridizable discontinuous Ga...
We develop a convergence theory of space–time discretizations for the linear, second-order wave equa...
We develop a convergence theory of space-time discretizations for the linear, 2nd-order wave equatio...
We introduce a space–time Trefftz discontinuous Galerkin method for the first-order transient acoust...