English

Hadamard-type formulas via the Maslov form

Spectral Theory 2016-01-28 v1

Abstract

Given a star-shaped bounded Lipschitz domain ΩRd\Omega\subset{\mathbb R}^d, we consider the Schr\"odinger operator LG=Δ+VL_{\mathcal G}=-\Delta+V on Ω\Omega and its restrictions LGΩtL^{\Omega_t}_{\mathcal G} on the subdomains Ωt\Omega_t, t[0,1]t\in[0,1], obtained by shrinking Ω\Omega towards its center. We impose either the Dirichlet or quite general Robin-type boundary conditions determined by a subspace G{\mathcal G} of the boundary space H1/2(Ω)×H1/2(Ω)H^{1/2}(\partial\Omega)\times H^{-1/2}(\partial\Omega), and assume that the potential is smooth and takes values in the set of symmetric (N×N)(N\times N) matrices. Two main results are proved: First, for any t0(0,1]t_0\in(0,1] we give an asymptotic formula for the eigenvalues λ(t)\lambda(t) of the operator LGΩtL^{\Omega_t}_{\mathcal G} as tt0t\to t_0 up to quadratic terms, that is, we explicitly compute the first and second tt-derivatives of the eigenvalues. This includes the case of the eigenvalues with arbitrary multiplicities. Second, we compute the first derivative of the eigenvalues via the (Maslov) crossing form utilized in symplectic topology to define the Arnold-Maslov-Keller index of a path in the set of Lagrangian subspaces of the boundary space. The path is obtained by taking the Dirichlet and Neumann traces of the weak solutions of the eigenvalue problems for LGΩtL^{\Omega_t}_{\mathcal G}.

Keywords

Cite

@article{arxiv.1601.07509,
  title  = {Hadamard-type formulas via the Maslov form},
  author = {Yuri Latushkin and Alim Sukhtayev},
  journal= {arXiv preprint arXiv:1601.07509},
  year   = {2016}
}

Comments

arXiv admin note: substantial text overlap with arXiv:1408.1103

R2 v1 2026-06-22T12:38:02.608Z