Spectral Decomposition of Euler–Mellin Integrals

Abstract We consider the spectral decomposition of singularities of integrals and their integrands. Our results apply to any integral of Euler–Mellin type, and thus especially to every scalar Feynman integral. Specifically we provide for both the integrand and integral respectively; two explicit constructions of the characteristic variety and characteristic cycle of the constructible function and D -module they are associated with. From this we also obtain the singular locus or Landau singularities of the integral. En route we give a simple procedure to compute the local Euler obstruction function of a variety, and using this, to compute the Euler characteristic of the complex link of a Whitney stratum.

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Publication Details

Journal
Communications in Mathematical Physics
Published
2026-09-24
DOI
https://doi.org/10.1007/s00220-026-05692-4
Primary Topic
Nonlinear Waves and Solitons
Type
article
Field-Weighted Citation Impact
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article

Spectral Decomposition of Euler–Mellin Integrals

Martin Helmer, Felix Tellander
Communications in Mathematical Physics
Nonlinear Waves and Solitons
article

Spectral Decomposition of Euler–Mellin Integrals

Martin Helmer, Felix Tellander
article en

Abstract

Abstract We consider the spectral decomposition of singularities of integrals and their integrands. Our results apply to any integral of Euler–Mellin type, and thus especially to every scalar Feynman integral. Specifically we provide for both the integrand and integral respectively; two explicit constructions of the characteristic variety and characteristic cycle of the constructible function and D -module they are associated with. From this we also obtain the singular locus or Landau singularities of the integral. En route we give a simple procedure to compute the local Euler obstruction function of a variety, and using this, to compute the Euler characteristic of the complex link of a Whitney stratum.

Communications in Mathematical PhysicsVol. 407(10)
Trinity College Dublin (IE), Swansea University (GB), University of Oxford (GB)
Openalex Percentile: Top 97%
Nonlinear Waves and Solitons
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