English

Optimal distributed control for a viscous non-local tumour growth model

Analysis of PDEs 2023-10-25 v2 Optimization and Control

Abstract

In this paper, we address an optimal distributed control problem for a non-local model of phase-field type, describing the evolution of tumour cells in presence of a nutrient. The model couples a non-local and viscous Cahn-Hilliard equation for the phase parameter with a reaction-diffusion equation for the nutrient. The optimal control problem aims at finding a therapy, encoded as a source term in the system, both in the form of radiotherapy and chemotherapy, which could lead to the evolution of the phase variable towards a desired final target. First, we prove strong well-posedness for the system of non-linear partial differential equations. In particular, due to the presence of a viscous regularisation, we can also consider double-well potentials of singular type and cross-diffusion terms related to the effects of chemotaxis. Moreover, the particular structure of the reaction terms allows us to prove new regularity results for this kind of system. Then, turning to the optimal control problem, we prove the existence of an optimal therapy and, by studying Fr\'echet-differentiability properties of the control-to-state operator and the corresponding adjoint system, we obtain the first-order necessary optimality conditions.

Keywords

Cite

@article{arxiv.2304.08867,
  title  = {Optimal distributed control for a viscous non-local tumour growth model},
  author = {Matteo Fornoni},
  journal= {arXiv preprint arXiv:2304.08867},
  year   = {2023}
}

Comments

45 pages, revised version, to appear in Applied Mathematics and Optimization

R2 v1 2026-06-28T10:09:29.905Z