Metric--Measure Geometry and Geometric Analogues of Holographic Extremal Surfaces
Abstract
We develop a geometric framework based on metric--measure spaces $(M,g,f)$, where the function $f$ defines a deformation of the Riemannian measure motivated by Perelman's formulation of Ricci flow. Within this setting, we introduce measure-weighted hypersurfaces and associated geometric functionals, and derive modified extremality conditions for codimension-one and codimension-two submanifolds. These conditions provide intrinsic geometric analogues of extremal surface equations, arising solely...
Description / Details
We develop a geometric framework based on metric--measure spaces , where the function defines a deformation of the Riemannian measure motivated by Perelman's formulation of Ricci flow. Within this setting, we introduce measure-weighted hypersurfaces and associated geometric functionals, and derive modified extremality conditions for codimension-one and codimension-two submanifolds. These conditions provide intrinsic geometric analogues of extremal surface equations, arising solely from the metric--measure structure and independent of holographic duality or quantum field theoretic input. We further define a generalized functional combining a measure-weighted geometric term with an effective bulk contribution and analyze its variational properties. The resulting Euler--Lagrange equation exhibits a structural correspondence with semiclassical generalized entropy functionals, while maintaining a purely geometric interpretation distinct from thermodynamic entropy in the sense of Perelman's -functional. Applications to Schwarzschild and Anti-de Sitter geometries illustrate the emergence of preferred geometric scales and the modification of ultraviolet scaling behavior induced by the function . These results suggest that metric--measure geometry provides a minimal framework in which key structural features of extremal surface constructions can arise from intrinsic geometric principles.
Source: arXiv:2607.28690v1 - http://arxiv.org/abs/2607.28690v1 PDF: https://arxiv.org/pdf/2607.28690v1 Original Link: http://arxiv.org/abs/2607.28690v1
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Aug 3, 2026
Physics
Physics
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