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arXiv · 2504.00467

Bayesian Network Structural Consensus via Greedy Min-Cut Analysis

Abstract

This paper presents the Min-Cut Bayesian Network Consensus (MCBNC) algorithm, a greedy method for structural consensus of Bayesian Networks (BNs), with applications in federated learning and model aggregation. MCBNC prunes weak edges from an initial unrestricted fusion using a structural score based on min-cut analysis, integrated into a modified Backward Equivalence Search (BES) phase of the Greedy Equivalence Search (GES) algorithm. The score quantifies edge support across input networks and is computed using max-flow. Unlike methods with fixed treewidth bounds, MCBNC introduces a pruning threshold $θ$ that can be selected post hoc using only structural information. Experiments on real-world BNs show that MCBNC yields sparser, more accurate consensus structures than both canonical fusion and the input networks. The method is scalable, data-agnostic, and well-suited for distributed or federated scenarios.

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BibTeXRIS

Pablo Torrijos, José M. Puerta, Juan A. Aledo, José A. Gámez. 2025-11-10. Bayesian Network Structural Consensus via Greedy Min-Cut Analysis. https://doi.org/10.1609/aaai.v40i43.41000

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