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Constant index expectation curvature for graphs or Riemannian manifolds

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arxiv 1912.11315 v1 pith:RJDC4HPJ submitted 2019-12-24 math.CO cs.DM

classification math.COcs.DM
keywords constantcurvaturegraphsmanifoldsalwaysconnectedexpectationfields
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An integral geometric curvature is defined as the index expectation K(x) = E[i(x)] if a probability measure m is given on vector fields on a Riemannian manifold or on a finite simple graph. Such curvatures are local, satisfy Gauss-Bonnet and are independent of any embedding in an ambient space. While realizing constant Gauss-Bonnet-Chern curvature is not possible in general already for 4-manifolds, we prove that for compact connected manifolds, constant curvature K_m can always be realized with m supported on Morse gradient fields. We give examples of finite simple graphs which do not allow for any constant m-curvature and prove that for one-dimensional connected graphs, there is a convex set of constant curvature configurations with dimension of the first Betti number of the graph. In particular, there is always a unique constant curvature solution for trees.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Euler Characteristics of Random Manifolds

    math.CO 2026-07 conditional novelty 5.0 of 10

    For a random codimension-1 level set H in a simplicial complex G, E[χ(H)] equals 2−2K(G)−χ(G), with K the curvature functional built from the f-vector.

  2. Elements of finite geometry I

    math.HO 2026-08 unverdicted novelty 2.0 of 10

    A review-style snapshot of twelve finite-geometry theorems, each claiming a discrete analogue of a well-known continuum result.

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