In this work, we address time dependent wave propagation problems with strong multiscale features (in space and time). Our goal is to design a family of innovative high performance numerical methods suitable to the simulation of such multiscale problems. Particularly, we extend the Multiscale Hybrid-Mixed finite element method (MHM for short) for the two-and three-dimensional time-dependent Maxwell equations with heterogeneous coefficients. The MHM method arises from the decomposition of the exact electric and magnetic fields in terms of the solutions of locally independent Maxwell problems tied together with a one-field formulation on top of a coarse-mesh skeleton. The multiscale basis functions, which are responsible for upscaling, are dr...
International audienceThe numerical simulation of wave propagation in heterogeneous media comes with...
In this work, we apply the finite element heterogeneous multiscale method to a class of dispersive f...
International audienceIn the second part of this series of papers we consider highly oscillatory med...
International audienceIn this work, we address time dependent wave propagation problems with strong ...
International audienceIn this work, we are interested in the propagation of electromagnetic waves in...
International audienceIn this work, we address time-dependent electromagnetic wave propagation probl...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
In this work, we are interested in the propagation of electromagnetic waves in complex media. More p...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
International audienceIn this work, we are interested in the propagation of electromagnetic waves in...
The wave propagation phenomena in heterogeneous media is an actual challenging problem to numerical ...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
This work proposes a novel multiscale finite element method for acoustic wave propagation in highly ...
International audienceThe numerical simulation of wave propagation in heterogeneous media comes with...
International audienceThe numerical simulation of wave propagation in heterogeneous media comes with...
In this work, we apply the finite element heterogeneous multiscale method to a class of dispersive f...
International audienceIn the second part of this series of papers we consider highly oscillatory med...
International audienceIn this work, we address time dependent wave propagation problems with strong ...
International audienceIn this work, we are interested in the propagation of electromagnetic waves in...
International audienceIn this work, we address time-dependent electromagnetic wave propagation probl...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
In this work, we are interested in the propagation of electromagnetic waves in complex media. More p...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
International audienceIn this work, we are interested in the propagation of electromagnetic waves in...
The wave propagation phenomena in heterogeneous media is an actual challenging problem to numerical ...
International audienceThis work proposes a Multiscale Hybrid-Mixed (MHM) method for the Maxwell equa...
This work proposes a novel multiscale finite element method for acoustic wave propagation in highly ...
International audienceThe numerical simulation of wave propagation in heterogeneous media comes with...
International audienceThe numerical simulation of wave propagation in heterogeneous media comes with...
In this work, we apply the finite element heterogeneous multiscale method to a class of dispersive f...
International audienceIn the second part of this series of papers we consider highly oscillatory med...