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Large deviations of multichordal SLE$_{0+}$, real rational functions, and zeta-regularized determinants of Laplacians
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abstract
We prove a strong large deviation principle (LDP) for multiple chordal SLE$_{0+}$ curves with respect to the Hausdorff metric. In the single-chord case, this result strengthens an earlier partial result by the second author. We also introduce a Loewner potential, which in the smooth case has a simple expression in terms of zeta-regularized determinants of Laplacians. This potential differs from the LDP rate function by an additive constant depending only on the boundary data, that satisfies PDEs arising as a semiclassical limit of the Belavin-Polyakov-Zamolodchikov equations of level two in conformal field theory with central charge $c \to -\infty$. Furthermore, we show that every multichord minimizing the potential in the upper half-plane for given boundary data is the real locus of a rational function and is unique, thus coinciding with the $\kappa \to 0+$ limit of the multiple SLE$_\kappa$. As a by-product, we provide an analytic proof of the Shapiro conjecture in real enumerative geometry, first proved by Eremenko and Gabrielov: if all critical points of a rational function are real, then the function is real up to post-composition by a M\"obius transformation.
Forward citations
Cited by 3 Pith papers
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Corner contributions to Neumann jump determinants: three model calculations and a BFK conjecture
For the mirror double of a geodesic polygon, the corner-renormalized Neumann jump determinant is conjectured to be (length/2) times the product over vertices of the inverse square roots of the angle parameters.
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Multiple chordal SLE($\kappa$) and quantum Calogero-Moser system
Multiple chordal SLE(kappa) partition functions with a marked boundary point are claimed to solve null vector equations and, after a gauge transform, to become quantum Calogero-Moser eigenstates.
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Multiple chordal SLE(0) and classical Calogero-Moser system
Multiple chordal SLE(0) systems of type (n,m) have traces given by the real locus of rational functions with n prescribed critical points and m poles, and their growth-point dynamics is the classical Calogero-Moser system.
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