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Defect relative entropy in symmetric orbifold CFTs

High Energy Physics - Theory 2026-04-21 v2 Statistical Mechanics Mathematical Physics math.MP Quantum Physics

Abstract

In this work, we compute the defect relative entropy between topological defects in the symmetric product orbifold CFT SymN(M)=MN/SN\mathrm{Sym}^N(M) = M^{\otimes N}/S_N. Our analysis covers two distinct classes of defects: universal defects, which realize the Rep(SN)\mathrm{Rep}(S_N) non-invertible symmetry, and non-universal defects. We show that the defect relative entropy reduces to a Kullback--Leibler (KL) divergence. The resulting expression decomposes naturally into two contributions: one governed by characters of the symmetric group SNS_N, and the other controlled by modular SS-matrix elements of the seed RCFT. Remarkably, both sets of data appear as probability distributions, yielding an information-theoretic interpretation of permutation group data and modular data within the symmetric orbifold. The structure of the divergence depends sensitively on the defect class. For universal defects, only the permutation group data contributes; for maximally fractional defects, both permutation and modular data enter and together define the relevant probability distributions. This feature suggests that the maximally fractional defect can be understood as a kind of product of the RCFT defect and the symmetric orbifold defect.

Keywords

Cite

@article{arxiv.2602.13782,
  title  = {Defect relative entropy in symmetric orbifold CFTs},
  author = {Mostafa Ghasemi},
  journal= {arXiv preprint arXiv:2602.13782},
  year   = {2026}
}

Comments

22 pages

R2 v1 2026-07-01T10:36:53.824Z