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An anisotropic interaction model for simulating fingerprints.

Published version
Peer-reviewed

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Authors

Düring, Bertram 
Gottschlich, Carsten 
Huckemann, Stephan 
Kreusser, Lisa Maria  ORCID logo  https://orcid.org/0000-0002-1131-1125
Schönlieb, Carola-Bibiane 

Abstract

Evidence suggests that both the interaction of so-called Merkel cells and the epidermal stress distribution play an important role in the formation of fingerprint patterns during pregnancy. To model the formation of fingerprint patterns in a biologically meaningful way these patterns have to become stationary. For the creation of synthetic fingerprints it is also very desirable that rescaling the model parameters leads to rescaled distances between the stationary fingerprint ridges. Based on these observations, as well as the model introduced by Kücken and Champod we propose a new model for the formation of fingerprint patterns during pregnancy. In this anisotropic interaction model the interaction forces not only depend on the distance vector between the cells and the model parameters, but additionally on an underlying tensor field, representing a stress field. This dependence on the tensor field leads to complex, anisotropic patterns. We study the resulting stationary patterns both analytically and numerically. In particular, we show that fingerprint patterns can be modeled as stationary solutions by choosing the underlying tensor field appropriately.

Description

Keywords

Cell movement, Dynamical systems, Nonlocal interactions, Pattern formation, Algorithms, Anisotropy, Computer Simulation, Dermatoglyphics, Epidermal Cells, Female, Humans, Merkel Cells, Pregnancy, Stress, Physiological

Journal Title

J Math Biol

Conference Name

Journal ISSN

0303-6812
1432-1416

Volume Title

78

Publisher

Springer Science and Business Media LLC
Sponsorship
Engineering and Physical Sciences Research Council (EP/H023348/1)
European Commission Horizon 2020 (H2020) Marie Sk?odowska-Curie actions (691070)
Alan Turing Institute (unknown)
European Commission Horizon 2020 (H2020) Marie Sk?odowska-Curie actions (777826)
Leverhulme Trust (PLP-2017-275)
Engineering and Physical Sciences Research Council (EP/J009539/1)
Engineering and Physical Sciences Research Council (EP/M00483X/1)
Engineering and Physical Sciences Research Council (EP/N014588/1)
Engineering and Physical Sciences Research Council (EP/L016516/1)