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



2021

4414.

Pill, Daniela; Wiesen, Peter; Kleffmann, Jörg
Temperature dependencies of the degradation of NO, NO\(_{2}\) and HONO on a photocatalytic dispersion paint
Physical Chemistry Chemical Physics, 23 (15) :9418--9427
2021
ISSN: 1463-9076, 1463-9084

4413.

Teng, Long
The Heston model with time-dependent correlation driven by isospectral flows
Mathematics, 9 (9)
2021
Herausgeber: MDPI

4412.

Teng, Long
The Heston model with time-dependent correlation driven by isospectral flows
Mathematics, 9 (9) :934
2021

4411.

Dembinski, Hans; others
The Muon Puzzle in air showers and its connection to the LHC
PoS, ICRC2021 :037
2021

4410.


Towards a Common $t\bar{t}$ Monte-Carlo Sample for ATLAS and CMS
CERN, Geneva
Juni 2021

4409.

Haussmann, N.; Zang, M.; Mease, R.; Clemens, M.; Schmuelling, B.; Bolten, Matthias
Towards real-time magnetic dosimetry simulations for inductive charging systems
COMPEL
2021

4408.

Haussmann, N.; Zang, M.; Mease, R.; Clemens, M.; Schmuelling, B.; Bolten, M.
Towards real-time magnetic dosimetry simulations for inductive charging systems
COMPEL
2021

4407.

Haussmann, N.; Zang, M.; Mease, R.; Clemens, M.; Schmuelling, B.; Bolten, M.
Towards real-time magnetic dosimetry simulations for inductive charging systems
COMPEL
2021

4406.

Bolten, Matthias; Doganay, O. T.; Gottschalk, H.; Klamroth, K.
Tracing locally Pareto optimal points by numerical integration
SIAM J. Control Optim., 59 (5) :3302-3328
2021

4405.

Bolten, M.; Doganay, O. T.; Gottschalk, H.; Klamroth, K.
Tracing locally Pareto optimal points by numerical integration
SIAM J. Control Optim., 59 (5) :3302-3328
2021

4404.

Bolten, M.; Doganay, O. T.; Gottschalk, H.; Klamroth, K.
Tracing locally Pareto optimal points by numerical integration
SIAM J. Control Optim., 59 (5) :3302---3328
2021

4403.

Dobrick, Alexander; Glück, Jochen
Uniform convergence of operator semigroups without time regularity
J. Evol. Equ., 21 (4) :5101--5134
2021

4402.

Edeko, Nikolai; Kreidler, Henrik
Uniform enveloping semigroupoids for groupoid actions
J. Anal. Math.
2021

4401.

[german] Bohrmann-Linde, Claudia; Zeller, Diana
Videos in der chemiedidaktischen Lehre - von der Rezeption zur Produktion
Band Digitalisation in Chemistry Education. Digitales Lehren und Lernen an Hochschule und Schule im Fach Chemie
Seite 59–69
Herausgeber: Amitabh Banerji, Nicole Graulich, Johannes Huwer, Waxmann. Münster
2021
59–69

ISBN: 978-3-8309-4418-8

4400.

Sugiyama, M.; Schroder, J. B.; Southworth, B. S.; Friedhoff, S.
Weighted Relaxation for Multigrid Reduction in Time
2021

4399.

Sugiyama, M.; Schroder, J. B.; Southworth, B. S.; Friedhoff, S.
Weighted Relaxation for Multigrid Reduction in Time
2021

4398.

Sugiyama, M.; Schroder, J. B.; Southworth, B. S.; Friedhoff, S.
Weighted Relaxation for Multigrid Reduction in Time
2021

4397.

Jacob, Birgit; Laasri, Hafida
Well-posedness of infinite-dimensional non-autonomous passive boundary control systems
Evolution Equations and Control Theory, 10 (2) :385-409
2021
2020

4396.

Slootman, Juliette; Waltz, Victoria; Yeh, C. Joshua; Baumann, Christoph; Göstl, Robert; Comtet, Jean; Creton, Costantino
Quantifying Rate- and Temperature-Dependent Molecular Damage in Elastomer Fracture
Physical Review X, 10 (4) :041045
Dezember 2020

4395.

[german] Zeller, Diana; Grandrath, Rebecca; Bohrmann-Linde, Claudia
Erstellung eigener digitaler Lehr- und Lerntools - Stärkung der Medienkompetenz bei Lehramtsstudierenden im Fach Chemie
Chemie & Schule, 35 (4) :17-21
Dezember 2020

4394.

Li, Hongyan; Fan, Jilin; Buhl, Eva Miriam; Huo, Shuaidong; Loznik, Mark; Göstl, Robert; Herrmann, Andreas
DNA hybridization as a general method to enhance the cellular uptake of nanostructures
Nanoscale, 12 (41) :21299--21305
Oktober 2020
ISSN: 2040-3372

4393.

Allers, Maria; Kirk, Ansgar T.; Timke, Bennet; Erdogdu, Duygu; Wissdorf, Walter; Benter, Thorsten; Zimmermann, Stefan
Negative Reactant Ion Formation in High Kinetic Energy Ion Mobility Spectrometry (HiKE-IMS)
Journal of the American Society for Mass Spectrometry, 31 (9) :1861-1874
September 2020

4392.

Allers, Maria; Kirk, Ansgar T.; Timke, Bennet; Erdogdu, Duygu; Wissdorf, Walter; Benter, Thorsten; Zimmermann, Stefan
Negative Reactant Ion Formation in High Kinetic Energy Ion Mobility Spectrometry (HiKE-IMS)
Journal of the American Society for Mass Spectrometry, 31 (9) :1861-1874
September 2020

4391.

Allers, Maria; Kirk, Ansgar T.; Timke, Bennet; Erdogdu, Duygu; Wissdorf, Walter; Benter, Thorsten; Zimmermann, Stefan
Negative Reactant Ion Formation in High Kinetic Energy Ion Mobility Spectrometry (HiKE-IMS)
Journal of the American Society for Mass Spectrometry, 31 (9) :1861-1874
September 2020

4390.

Haussmann, N.; Zang, M.; Clemens, M.; Schmuelling, B.
Echtzeitnahe numerische Simulation der menschlichen Exposition durch magneto-quasistatische Felder beim induktiven Laden von Fahrzeugen
URSI e.V. Deutschland 2020 Kleinheubacher Tagung (KHB 2020), Miltenberg, Germany, 28.-30.09.2020. One page digest, accepted
September 2020