Characterization of spacetime singularities for the Schrödinger equation by initial state

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Hauptverfasser: Fujii, Takeru, Ito, Kenichi
Format: Preprint
Veröffentlicht: 2026
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_version_ 1866910104759042048
author Fujii, Takeru
Ito, Kenichi
author_facet Fujii, Takeru
Ito, Kenichi
contents We discuss spacetime singularities of a solution to the Schrödinger equation with a metric perturbation and a sublinear potential. The quasi-homogeneous wave front set, due to Lascar (1977), of a solution is characterized by that of the free solution, and a classical high-energy scattering data. In the one-dimensional case, it further reduces to the homogeneous wave front set, due to Nakamura (2005), of the initial time-slice. For the proof of the former result we implement an idea inspired by Nakamura (2009), which was originally devised for spatial singularities of the Schrödinger equation. As for the latter result, we use an exact Egorov-type formula for the free propagator, and a special partition of unity conforming with the classical flow.
format Preprint
id arxiv_https___arxiv_org_abs_2604_02982
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Characterization of spacetime singularities for the Schrödinger equation by initial state
Fujii, Takeru
Ito, Kenichi
Analysis of PDEs
Mathematical Physics
Functional Analysis
Spectral Theory
35A18, 35Q41, 81Q15
We discuss spacetime singularities of a solution to the Schrödinger equation with a metric perturbation and a sublinear potential. The quasi-homogeneous wave front set, due to Lascar (1977), of a solution is characterized by that of the free solution, and a classical high-energy scattering data. In the one-dimensional case, it further reduces to the homogeneous wave front set, due to Nakamura (2005), of the initial time-slice. For the proof of the former result we implement an idea inspired by Nakamura (2009), which was originally devised for spatial singularities of the Schrödinger equation. As for the latter result, we use an exact Egorov-type formula for the free propagator, and a special partition of unity conforming with the classical flow.
title Characterization of spacetime singularities for the Schrödinger equation by initial state
topic Analysis of PDEs
Mathematical Physics
Functional Analysis
Spectral Theory
35A18, 35Q41, 81Q15
url https://arxiv.org/abs/2604.02982