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Front propagation and arrival times in networks with application to neurodegenerative diseases

Abstract:
Many physical, epidemiological, or physiological dynamical processes on networks support front-like propagation, where an initial localized perturbation grows and systematically invades all nodes in the network. A key problem is then to extract estimates for the dynamics. In particular, if a single node is seeded at a small concentration, when will other nodes reach the same initial concentration? Here, motivated by the study of toxic protein propagation in neurodegenerative diseases, we present and compare three different estimates for the arrival time in order of increasing analytical complexity: the linear arrival time, obtained by linearizing the underlying dynamical system; the Lambert time, obtained by considering the interaction of pairs of nodes; and the nonlinear arrival time, obtained by asymptotic techniques. We use the classic Fisher–Kolmogorov–Petrovsky–Piskunov equation as a paradigm for the dynamics and show that each method provides different insights but consistent time estimates. Further, we show that the nonlinear asymptotic method also gives an approximate solution, valid in the entire domain, and the correct ordering of arrival regions over large regions of parameters and initial conditions.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1137/21M1467547

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Oxford college:
St Catherine's College
Role:
Author
ORCID:
0000-0002-6436-8483


Publisher:
Society for Industrial and Applied Mathematics
Journal:
SIAM Journal on Applied Mathematics More from this journal
Volume:
83
Issue:
1
Pages:
194-224
Publication date:
2023-02-22
Acceptance date:
2022-11-03
DOI:
EISSN:
1095-712X
ISSN:
0036-1399


Language:
English
Keywords:
Pubs id:
1299009
Local pid:
pubs:1299009
Deposit date:
2022-11-04
ARK identifier:

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