Model Order Reduction
Model Order Reduction (MOR) is the art of reducing a system's complexity while preserving its input-output behavior as much as possible.
Processes in all fields of todays technological world, like physics, chemistry and electronics, but also in finance, are very often described by dynamical systems. With the help of these dynamical systems, computer simulations, i.e. virtual experiments, are carried out. In this way, new products can be designed without having to build costly prototyps.
Due to the demand of more and more realistic simulations, the dynamical systems, i.e., the mathematical models, have to reflect more and more details of the real world problem. By this, the models' dimensions are increasing and simulations can often be carried out at high computational cost only.
In the design process, however, results are needed quickly. In circuit design, e.g., structures may need to be changed or parameters may need to be altered, in order to satisfy design rules or meet the prescribed performance. One cannot afford idle time, waiting for long simulation runs to be ready.
Model Order Reduction allows to speed up simulations in cases where one is not interested in all details of a system but merely in its input-output behavior. That means, considering a system, one may ask:
- How do varying parameters influence certain performances ?
Using the example of circuit design: How do widths and lengths of transistor channels, e.g., influence the voltage gain of a circuit. - Is a system stable?
Using the example of circuit design: In which frequency range, e.g., of voltage sources, does the circuit perform as expected - How do coupled subproblems interact?
Using the example of circuit design: How are signals applied at input-terminals translated to output-pins?
Classical situations in circuit design, where one does not need to know internals of blocks are optimization of design parameters (widths, lengths, ...) and post layout simulations and full system verifications. In the latter two cases, systems of coupled models are considered. In post layout simulations one has to deal with artificial, parasitic circuits, describing wiring effects.
Model Order Reduction automatically captures the essential features of a structure, omitting information which are not decisive for the answer to the above questions. Model Order reduction replaces in this way a dynamical system with another dynamical system producing (almost) the same output, given the same input with less internal states.
MOR replaces high dimensional (e.g. millions of degrees of freedom) with low dimensional (e.g. a hundred of degrees of freedom ) problems, that are then used instead in the numerical simulation.
The working group "Applied Mathematics/Numerical Analysis" has gathered expertise in MOR, especially in circuit design. Within the EU-Marie Curie Initial Training Network COMSON, attention was concentrated on MOR for Differential Algebraic Equations. Members that have been working on MOR in the EU-Marie Curie Transfer of Knowledge project O-MOORE-NICE! gathered knowledge especially in the still immature field of MOR for nonlinear problems.
Current research topics include:
- MOR for nonlinear, parameterized problems
- structure preserving MOR
- MOR for Differential Algebraic Equations
- MOR in financial applications, i.e., option prizing
Group members working on that field
- Jan ter Maten
- Roland Pulch
Publications
- 2015
3196.
Predoi-Cross, Adriana; Jensen, Per
Corrigendum: Foreword, Special issue: Mid- and Far-Infrared Spectroscopy: Techniques and Applications
Canadian Journal of Physics, 93 (1) :105
20153195.
Predoi-Cross, Adriana; Jensen, Per
Corrigendum: Foreword, Special issue: Mid- and Far-Infrared Spectroscopy: Techniques and Applications
Canadian Journal of Physics, 93 (1) :105
20153194.
Predoi-Cross, Adriana; Jensen, Per
Corrigendum: Foreword, Special issue: Mid- and Far-Infrared Spectroscopy: Techniques and Applications
Canadian Journal of Physics, 93 (1) :105
20153193.
Günther, Michael
Coupled Multiscale Simulation and Optimization in Nanoelectronics
20153192.
Coupled Multiscale Simulation and Optimization in Nanoelectronics
In Günther, Michael, Editor
Publisher: Springer Berlin Heidelberg
2015ISBN: 978-3-662-46671-1
3191.
Coupled Multiscale Simulation and Optimization in Nanoelectronics
In Günther, Michael, Editor
Publisher: Springer Berlin Heidelberg
2015ISBN: 978-3-662-46671-1
3190.
Gausling, Kai; Bartel, Andreas
Coupling interfaces and their impact in field/circuit co-simulation
IEEE Transactions on Magnetics, 52 (3) :1--4
2015
Publisher: IEEE3189.
Jacob, Birgit; Wegner, Sven-Ake; Wintermayr, Jens
Desch-{S}chappacher perturbation of one-parameter semigroups on locally convex spaces
Math. Nachr., 288 (8-9) :925--934
20153188.
Jacob, Birgit; Wegner, Sven-Ake; Wintermayr, Jens
Desch-Schappacher perturbation of one-parameter semigroups on locally convex spaces
Math. Nachr., 288 (8-9) :925--934
20153187.
Melnikov, V. V.; Yurchenko, Sergey N.; Jensen, Per; Potekaev, A. I.
Development of a General Approach to the Modeling of Free and Confined Polyatomic Systems
Russian Physics Journal, 58 (8) :1040-1043
20153186.
Melnikov, V. V.; Yurchenko, Sergey N.; Jensen, Per; Potekaev, A. I.
Development of a General Approach to the Modeling of Free and Confined Polyatomic Systems
Russian Physics Journal, 58 (8) :1040-1043
20153185.
Melnikov, V. V.; Yurchenko, Sergey N.; Jensen, Per; Potekaev, A. I.
Development of a General Approach to the Modeling of Free and Confined Polyatomic Systems
Russian Physics Journal, 58 (8) :1040-1043
20153184.
Klee, Sonja; Brockhaus, Albrecht; Wissdorf, Walter; Thinius, Marco; Hartmann, Nele; Benter, Thorsten
Development of an ion activation stage for atmospheric pressure ionization sources
Rapid Communications in Mass Spectrometry, 29 (2) :143-154
20153183.
Klee, Sonja; Brockhaus, Albrecht; Wißdorf, Walter; Thinius, Marco; Hartmann, Nele; Benter, Thorsten
Development of an ion activation stage for atmospheric pressure ionization sources
Rapid Communications in Mass Spectrometry, 29 (2) :143-154
20153182.
Klee, Sonja; Brockhaus, Albrecht; Wissdorf, Walter; Thinius, Marco; Hartmann, Nele; Benter, Thorsten
Development of an ion activation stage for atmospheric pressure ionization sources
Rapid Communications in Mass Spectrometry, 29 (2) :143-154
20153181.
Bohrmann-Linde, Claudia
Die Ordnung macht's - Didaktische Erschließung der Flüssigkristalle
GDCh Wochenschau
2015
Publisher: GDCh Wochenschau3180.
Ehrhardt, Matthias
Discrete Artificial Boundary Conditions for the Korteweg-de Vries Equation
arXiv preprint arXiv:1511.01734
20153179.
Bartel, Andreas; Ehrhardt, Matthias
Discrete artificial boundary conditions for the lattice Boltzmann method in 2D
ESAIM: Proceedings and Surveys, 52 :47--65
2015
Publisher: EDP Sciences3178.
Bartel, Andreas; Ehrhardt, Matthias
Discrete artificial boundary conditions for the lattice Boltzmann method in 2D
ESAIM: Proceedings and Surveys, 52 :47–65
2015
Publisher: EDP Sciences3177.
Bartel, Andreas; Ehrhardt, Matthias
Discrete artificial boundary conditions for the lattice Boltzmann method in 2D
ESAIM: Proceedings and Surveys, 52 :47–65
2015
Publisher: EDP Sciences3176.
[german] Tausch, Michael W.; Spinnen, Sebastian
Ein multiples Chamäleon - Photochromie, Solvatochromie und aggregationsinduzierte Fluoreszenz
Praxis der Naturwissenschaften - Chemie in der Schule, 64 (6) :46--49
20153175.
Günther, Michael
Electrical circuits
In Engquist, Björn, Editor
Page 411–417
Publisher: Springer Berlin Heidelberg
2015
411–4173174.
Günther, Michael
Electrical circuits
In Engquist, Björn, Editor
Page 411–417
Publisher: Springer Berlin Heidelberg
2015
411–4173173.
Günther, Michael
Electrical Circuits
Encyclopedia of Applied and Computational Mathematics
Page 411--417
Publisher: Springer
2015
411--4173172.
Setzer, Klaus Dieter; Fink, Ewald H.; Hill, Christian; Brown, John M.
Electronic states and spectra of BiH
Journal of Molecular Spectroscopy, 312 :97-109
2015
Publisher: Academic Press