English

Hidden symmetries in non-self-adjoint graphs

Spectral Theory 2021-04-02 v2 Analysis of PDEs

Abstract

On finite metric graphs the set of all realizations of the Laplace operator in the edgewise defined L2L^2-spaces are studied. These are defined by coupling boundary conditions at the vertices most of which define non-self-adjoint operators. In [Hussein, Krej\v{c}i\v{r}\'{\i}k, Siegl, Trans. Amer. Math. Soc., 367(4):2921--2957, 2015] a notion of regularity of boundary conditions by means of the Cayley transform of the parametrizing matrices has been proposed. The main point presented here is that not only the existence of this Cayley transform is essential for basic spectral properties, but also its poles and its asymptotic behaviour. It is shown that these poles and asymptotics can be characterized using the quasi-Weierstrass normal form which exposes some "hidden" symmetries of the system. Thereby, one can analyse not only the spectral theory of these mostly non-self-adjoint Laplacians, but also the well-posedness of the time-dependent heat-, wave- and Schr\"odinger equations on finite metric graphs as initial-boundary value problems. In particular, the generators of C0C_0- and analytic semigroups and C0C_0-cosine operator functions can be characterized. On star-shaped graphs a characterization of generators of bounded C0C_0-groups and thus of operators similar to self-adjoint ones is obtained.

Keywords

Cite

@article{arxiv.2005.05470,
  title  = {Hidden symmetries in non-self-adjoint graphs},
  author = {Amru Hussein},
  journal= {arXiv preprint arXiv:2005.05470},
  year   = {2021}
}

Comments

46 pages, 7 figures

R2 v1 2026-06-23T15:28:29.619Z