Applied and Computational Mathematics (ACM)

Artificial Boundary Conditions

When computing numerically the solution of a partial differential equation in an unbounded domain usually artificial boundaries are introduced to limit the computational domain. Special boundary conditions are derived at this artificial boundaries to approximate the exact whole-space solution. If the solution of the problem on the bounded domain is equal to the whole-space solution (restricted to the computational domain) these boundary conditions are called transparent boundary conditions (TBCs).

We are concerned with TBCs for general Schrödinger-type pseudo-differential equations arising from `parabolic' equation (PE) models which have been widely used for one-way wave propagation problems in various application areas, e.g. (underwater) acoustics, seismology, optics and plasma physics. As a special case the Schrödinger equation of quantum mechanics is included.

Existing discretizations of these TBCs induce numerical reflections at this artificial boundary and also may destroy the stability of the used finite difference method. These problems do not occur when using a so-called discrete TBC which is derived from the fully discretized whole-space problem. This discrete TBC is reflection-free and conserves the stability properties of the whole-space scheme. We point out that the superiority of discrete TBCs over other discretizations of TBCs is not restricted to the presented special types of partial differential equations or to our particular interior discretization scheme.

Another problem is the high numerical effort. Since the discrete TBC includes a convolution with respect to time with a weakly decaying kernel, its numerical evaluation becomes very costly for long-time simulations. As a remedy we construct new approximative TBCs involving exponential sums as an approximation to the convolution kernel. This special approximation enables us to use a fast evaluation of the convolution type boundary condition.

Finally, to illustrate the broad range of applicability of our approach we derived efficient discrete artificial boundary conditions for the Black-Scholes equation of American options.

Software

Our approach was implemented by C.A. Moyer in the QMTools software package for quantum mechanical applications.

Publications



2018

3917.

[English (US)] Stieff, Mike; Scheiter, Katharina; Ainsworth, Shaaron; Bohrmann-Linde, Claudia; Schall, Max
Drawing for learning from dynamic visualizations in science
Proceedings of International Conference of the Learning Sciences, ICLS, 2 (2018-June) :937-940
Januar 2018
Herausgeber: International Society of the Learning Sciences
ISSN: 1814-9316

3916.

Calore, Enrico; Gabbana, Alessandro
Early experience on using knights landing processors for lattice Boltzmann applications
In Wyrzykowski, Roman and Dongarra, Jack and Deelman, Ewa and Karczewski, Konrad, Editor, Parallel Processing and Applied Mathematics, Seite 519–530
In Wyrzykowski, Roman and Dongarra, Jack and Deelman, Ewa and Karczewski, Konrad, Editor
Herausgeber: Springer Cham
2018

3915.

Winterhoff, Giulia; Galleguillos Kempf, Sarah C.; Jensen, Per; Bunker, Philip R.
Empirical potential energy surface and bending angle probability densities for the electronic ground state of HCO\(^{+}\)
Journal of Molecular Spectroscopy, 354 :71-82
2018
Herausgeber: Academic Press

3914.

Winterhoff, Giulia; Galleguillos Kempf, Sarah C.; Jensen, Per; Bunker, Philip R.
Empirical potential energy surface and bending angle probability densities for the electronic ground state of HCO\(^{+}\)
Journal of Molecular Spectroscopy, 354 :71-82
2018
Herausgeber: Academic Press

3913.

Winterhoff, Giulia; Galleguillos Kempf, Sarah C.; Jensen, Per; Bunker, Philip R.
Empirical potential energy surface and bending angle probability densities for the electronic ground state of HCO+
Journal of Molecular Spectroscopy, 354 :71-82
2018
Herausgeber: Academic Press

3912.

Calore, Enrico; Gabbana, Alessandro
Energy-efficiency evaluation of Intel KNL for HPC workloads
aus Advances in Parallel Computing
Seite 733–742
Herausgeber: IOS Press
2018
733–742

3911.

Pohlberger, Robert Frédéric
Entwicklung nichtionischer Emulgatoren aus nachwachsenden Rohstoffen für die Anwendung in Kühlschmierstoffen
2018

3910.

Ekström, Sven-Erik; Furci, Isabella; Serra-Capizzano, Stefano
Exact formulae and matrix-less eigensolvers for block banded symmetric Toeplitz matrices
BIT, 58 (4) :937-968
2018

3909.

Ekström, Sven-Erik; Furci, Isabella; Serra-Capizzano, Stefano
Exact formulae and matrix-less eigensolvers for block banded symmetric Toeplitz matrices
BIT, 58 (4) :937-968
2018
ISSN: 0006-3835

3908.

Ekström, Sven-Erik; Furci, Isabella; Serra-Capizzano, Stefano
Exact formulae and matrix-less eigensolvers for block banded symmetric Toeplitz matrices
BIT, 58 (4) :937-968
2018
ISSN: 0006-3835

3907.

Bohrmann-Linde, Claudia; Strippel, C.
Fachsprache und Begriffsbildung im Chemieunterricht
In K. Sommer and J. Wambach-Laicher and P. Pfeifer, Editor
Kapitel Konkrete Fachdidaktik Chemie, Seite 10
Herausgeber: Aulis-Verlag
2018
10

3906.

Beelen, Theo G. J.; Dohmen, Jos J.; Maten, E. Jan W.; Tasic, Bratislav
Fitting generalized gaussian distributions for process capability index
In Langer, Ulrich and Amrhein, Wolfgang and Zulehner, Walter, Editor, Scientific Computing in Electrical Engineering, Seite 169–176
In Langer, Ulrich and Amrhein, Wolfgang and Zulehner, Walter, Editor
Herausgeber: Springer Cham
2018

3905.

Beelen, Theo G. J.; Dohmen, Jos J.; Maten, E. Jan W.; Tasi{\'{c}}, Bratislav
Fitting Generalized Gaussian Distributions for Process Capability Index
In U. Langer and W. Amrhein and W. Zulehner, Editor, Scientific Computing in Electrical Engineering at SCEE 2016 Band 28 aus Mathematics in Industry
Seite 169--176
Herausgeber: Springer International Publishing
2018
169--176

3904.

Bolten, Matthias; Rittich, H.
Fourier analysis of periodic stencils in multigrid methods
SIAM J. Sci. Comput., 40 (3) :A1642-A1668
2018

3903.

Bolten, M.; Rittich, H.
Fourier analysis of periodic stencils in multigrid methods
SIAM J. Sci. Comput., 40 (3) :A1642-A1668
2018

3902.

Bolten, M.; Rittich, H.
Fourier analysis of periodic stencils in multigrid methods
SIAM J. Sci. Comput., 40 (3) :A1642-A1668
2018

3901.

Biallas, Phillip; Heider, Janina
Functional polyamides with gem-diazido units: synthesis and diversification
Polymer Chemistry, 10 (1) :60–64
Dezember 2018
ISSN: 1759-9962

3900.

Gibilisco, Rodrigo G.; Barnes, Ian; Wiesen, Peter
Gas-phase oxidation of aromatic hydrocarbons: A kinetic study of the OH reaction with methoxybenzenes at atmospheric conditions
Chemical Physics Letters, 705 :38-43
2018
Herausgeber: North-Holland

3899.

Gibilisco, Rodrigo G.; Barnes, Ian; Wiesen, Peter
Gas-phase oxidation of aromatic hydrocarbons: A kinetic study of the OH reaction with methoxybenzenes at atmospheric conditions
Chemical Physics Letters, 705 :38-43
2018
Herausgeber: North-Holland

3898.

Gibilisco, Rodrigo G.; Barnes, Ian; Wiesen, Peter
Gas-phase oxidation of aromatic hydrocarbons: A kinetic study of the OH reaction with methoxybenzenes at atmospheric conditions
Chemical Physics Letters, 705 :38-43
2018
Herausgeber: North-Holland

3897.

Glück, Jochen
Growth rates and the peripheral spectrum of positive operators
Houston J. Math., 44 (3) :847--872
2018

3896.

Hendricks, C.; Ehrhardt, M.; Günther, M.
Hybrid finite difference / pseudospectral methods for the {Heston} and {Heston-Hull-White PDE}
JCF, 21 (5) :1--33
2018

3895.

Hendricks, Christian; Ehrhardt, Matthias; Günther, Michael
Hybrid Finite--Difference/Pseudospectral Methods for the Heston and Heston--Hull--White Partial Differential Equations
Journal of Computational Finance, 21 (5)
2018

3894.

Hendricks, Christian; Ehrhardt, Matthias; Günther, Michael
Hybrid finite-difference/pseudospectral methods for the Heston and Heston-Hull-White partial differential equations
Journal of Computational Finance, 21 (5) :1–33
2018
Herausgeber: Incisive Media

3893.

Hendricks, Christian; Ehrhardt, Matthias; Günther, Michael
Hybrid finite-difference/pseudospectral methods for the Heston and Heston-Hull-White partial differential equations
Journal of Computational Finance, 21 (5) :1–33
2018
Herausgeber: Incisive Media