Applied and Computational Mathematics (ACM)

Finance

The famous Black-Scholes equation is an effective model for option pricing. It was named after the pioneers Black, Scholes and Merton who suggested it 1973.

In this research field our aim is the development of effective numerical schemes for solving linear and nonlinear problems arising in the mathematical theory of derivative pricing models.

An option is the right (not the duty) to buy (`call option') or to sell (`put option') an asset (typically a stock or a parcel of shares of a company) for a price E by the expiry date T. European options can only be exercised at the expiration date T. For American options exercise is permitted at any time until the expiry date. The standard approach for the scalar Black-Scholes equation for European (American) options results after a standard transformation in a diffusion equation posed on an bounded (unbounded) domain.

Another problem arises when considering American options (most of the options on stocks are American style). Then one has to compute numerically the solution on a semi-unbounded domain with a free boundary. Usually finite differences or finite elements are used to discretize the equation and artificial boundary conditions are introduced in order to confine the computational domain.

In this research field we want to design and analyze new efficient and robust numerical methods for the solution of highly nonlinear option pricing problems. Doing so, we have to solve adequately the problem of unbounded spatial domains by introducing artificial boundary conditions and show how to incorporate them in a high-order time splitting method.

Nonlinear Black-Scholes equations have been increasingly attracting interest over the last two decades, since they provide more accurate values than the classical linear model by taking into account more realistic assumptions, such as transaction costs, risks from an unprotected portfolio, large investor's preferences or illiquid markets, which may have an impact on the stock price, the volatility, the drift and the option price itself.



Special Interests

Publications



1999

878.

Benter, Thorsten; Appel, Matthew F.; Garnica, R. M.; Schmidt, Sven; Schindler, Ralph N.
Atmospheric pressure laser ionization mass spectrometry (APLI MS): Potential analytical applications in medical diagnostics and environmental chemistry.
Abstracts of Papers of The Americal Chemical Society, 218 (1) :U174-U175
1999

877.

Schmidt, Sven; Appel, Matthew F.; Garnica, R. M.; Schindler, Ralph N.; Benter, Thorsten
Atmospheric Pressure Laser Ionization. An Analytical Technique for Highly Selective Detection of Ultralow Concentrations in the Gas Phase
Analytical Chemistry, 71 (17) :3721-3729
1999

876.

Schmidt, Sven; Appel, Matthew F.; Garnica, R. M.; Schindler, Ralph N.; Benter, Thorsten
Atmospheric Pressure Laser Ionization. An Analytical Technique for Highly Selective Detection of Ultralow Concentrations in the Gas Phase
Analytical Chemistry, 71 (17) :3721-3729
1999

875.

Schmidt, Sven; Appel, Matthew F.; Garnica, R. M.; Schindler, Ralph N.; Benter, Thorsten
Atmospheric Pressure Laser Ionization. An Analytical Technique for Highly Selective Detection of Ultralow Concentrations in the Gas Phase
Analytical Chemistry, 71 (17) :3721-3729
1999

874.

Günther, M.; Feldmann, U.
CAD-based electric circuit modeling in industry I: mathematical structure and index of network equations
Surveys on Mathematics for Industry, 8 :97–129
1999
Herausgeber: Springer

873.

Günther, M.; Feldmann, U.
CAD-based electric circuit modeling in industry II: impact of circuit configurations and parameters
Surveys on Mathematics for Industry, 8 :131–157
1999
Herausgeber: Springer

872.

Caldwell, Tracy E.; Foster, Krishna L.; Benter, Thorsten; Langer, Sarka; Hemminger, John C.; Finlayson-Pitts, Barbara J.
Characterization of HOCl Using Atmospheric Pressure Ionization Mass Spectrometry
The Journal of Physical Chemistry A, 103 (41) :8231-8238
1999

871.

Caldwell, Tracy E.; Foster, Krishna L.; Benter, Thorsten; Langer, Sarka; Hemminger, John C.; Finlayson-Pitts, Barbara J.
Characterization of HOCl Using Atmospheric Pressure Ionization Mass Spectrometry
The Journal of Physical Chemistry A, 103 (41) :8231-8238
1999

870.

Caldwell, Tracy E.; Foster, Krishna L.; Benter, Thorsten; Langer, Sarka; Hemminger, John C.; Finlayson-Pitts, Barbara J.
Characterization of HOCl Using Atmospheric Pressure Ionization Mass Spectrometry
The Journal of Physical Chemistry A, 103 (41) :8231-8238
1999

869.

Jacob, Birgit; Winkin, Joseph; Zwart, Hans
Continuity of the spectral factorization on a vertical strip
Systems Control Lett., 37 (4) :183--192
1999

868.

Osmann, Gerald; Bunker, Philip R.; Kraemer, Wolfgang P.; Jensen, Per
Coulomb explosion imaging and the CH\(_{2}\)\(^{+}\) molecule
Chemical Physics Letters, 309 (3-4) :299-306
1999

867.

Osmann, Gerald; Bunker, Philip R.; Kraemer, Wolfgang P.; Jensen, Per
Coulomb explosion imaging and the CH\(_{2}\)\(^{+}\) molecule
Chemical Physics Letters, 309 (3-4) :299-306
1999

866.

Osmann, Gerald; Bunker, Philip R.; Kraemer, Wolfgang P.; Jensen, Per
Coulomb explosion imaging and the CH2+ molecule
Chemical Physics Letters, 309 (3-4) :299-306
1999

865.

Korn, Silke; Eisel, Christian; Tausch, Michael W.
Das leuchtende Labor
{CHEMKON}, 6 (3) :142--142
1999
Herausgeber: Wiley

864.

Tyuterev, Vladimir G.; Tashkun, Sergey A.; Jensen, Per; Barbe, Alain; Cours, T.
Determination of the Effective Ground State Potential Energy Function of Ozone from High-Resolution Infrared Spectra
Journal of Molecular Spectroscopy, 198 (1) :57-76
1999

863.

Tyuterev, Vladimir G.; Tashkun, Sergey A.; Jensen, Per; Barbe, Alain; Cours, T.
Determination of the Effective Ground State Potential Energy Function of Ozone from High-Resolution Infrared Spectra
Journal of Molecular Spectroscopy, 198 (1) :57-76
1999

862.

Tyuterev, Vladimir G.; Tashkun, Sergey A.; Jensen, Per; Barbe, Alain; Cours, T.
Determination of the Effective Ground State Potential Energy Function of Ozone from High-Resolution Infrared Spectra
Journal of Molecular Spectroscopy, 198 (1) :57-76
1999

861.

Ehrhardt, Matthias
Discrete transparent boundary conditions for general Schrödinger-type equations
VLSI Design, 9 (4) :325–338
1999
Herausgeber: Hindawi Publishing

860.


Discrete transparent boundary conditions for general Schrödinger-type equations
Computer Physics Communications, 121 (4) :598--598
1999
Herausgeber: Hindawi

859.

[german] Tausch, Michael W.; Grolmuss, A.
Ein low-cost Selbstbau-Spektroskop
Praxis der Naturwissenschaften (Chemie), 48 (7) :36
1999

858.

Zwart, Hans; Jacob, Birgit
Equivalent conditions for stabilizability of infinite-dimensional systems with admissible control operators
SIAM J. Control Optim., 37 (5) :1419--1455
1999

857.

Chudej, Kurt; Günther, Michael
Global state space approach for the efficient numerical solution of state-constrained trajectory optimization problems
Journal of optimization theory and applications, 103 :75--93
1999
Herausgeber: Kluwer Academic Publishers-Plenum Publishers

856.

Kleffmann, Jörg; Becker, Karl Heinz; Lackhoff, Marion; Wiesen, Peter
Heterogeneous conversion of NO\(_{2}\) on carbonaceous surfaces
Physical Chemistry Chemical Physics, 1 (24) :5443-5450
1999
Herausgeber: The Royal Society of Chemistry

855.

Kleffmann, Jörg; Becker, Karl Heinz; Lackhoff, Marion; Wiesen, Peter
Heterogeneous conversion of NO\(_{2}\) on carbonaceous surfaces
Physical Chemistry Chemical Physics, 1 (24) :5443-5450
1999
Herausgeber: The Royal Society of Chemistry

854.

Kleffmann, Jörg; Becker, Karl Heinz; Lackhoff, Marion; Wiesen, Peter
Heterogeneous conversion of NO2 on carbonaceous surfaces
Physical Chemistry Chemical Physics, 1 (24) :5443-5450
1999
Herausgeber: The Royal Society of Chemistry