Exact controllability to eigensolutions of the bilinear heat equation on compact networks

Author:

Cannarsa Piermarco1,Duca Alessandro2,Urbani Cristina1

Affiliation:

1. Department of Mathematics, University of Rome Tor Vergata, Via della Ricerca Scientifica 1, 00133 Rome, Italy

2. Université Paris-Saclay, UVSQ, Laboratoire de Mathématiques de Versailles, 45 avenue des États-Unis 78035 Versailles cedex, France

Abstract

<p style='text-indent:20px;'>Partial differential equations on networks have been widely investigated in the last decades in view of their application to quantum mechanics (Schrödinger type equations) or to the analysis of flexible structures (wave type equations). Nevertheless, very few results are available for diffusive models despite an increasing demand arising from life sciences such as neurobiology. This paper analyzes the controllability properties of the heat equation on a compact network under the action of a single input bilinear control.</p><p style='text-indent:20px;'>By adapting a recent method due to [F. Alabau-Boussouira, P. Cannarsa, C. Urbani, <i>Exact controllability to eigensolutions for evolution equations of parabolic type via bilinear control</i>, arXiv: 1811.08806], an exact controllability result to the eigensolutions of the uncontrolled problem is obtained in this work. A crucial step has been the construction of a suitable biorthogonal family under a non-uniform gap condition of the eigenvalues of the Laplacian on a graph. Application to star graphs and tadpole graphs are included.</p>

Publisher

American Institute of Mathematical Sciences (AIMS)

Subject

Applied Mathematics,Discrete Mathematics and Combinatorics,Analysis

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