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From tree matching to sparse graph alignment

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arxiv 2002.01258 v2 pith:2ZEK44KU submitted 2020-02-04 cs.DS math.PR

From tree matching to sparse graph alignment

classification cs.DS math.PR
keywords randomalignmentcorrelatedgraphsmatchingtreesalgorithmfraction
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abstract

In this paper we consider alignment of sparse graphs, for which we introduce the Neighborhood Tree Matching Algorithm (NTMA). For correlated Erd\H{o}s-R\'{e}nyi random graphs, we prove that the algorithm returns -- in polynomial time -- a positive fraction of correctly matched vertices, and a vanishing fraction of mismatches. This result holds with average degree of the graphs in $O(1)$ and correlation parameter $s$ that can be bounded away from 1, conditions under which random graph alignment is particularly challenging. As a byproduct of the analysis we introduce a matching metric between trees and characterize it for several models of correlated random trees. These results may be of independent interest, yielding for instance efficient tests for determining whether two random trees are correlated or independent.

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Cited by 1 Pith paper

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

  1. High-Dimensional Procrustes Matching via Tree Counts

    stat.ML 2026-07 accept novelty 7.0

    Exact Procrustes matching of n Gaussian vectors in d≥polylog(n) dimensions is achievable in polynomial time whenever the correlation satisfies ρ²>√α≈0.58, via counting wide trees.