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[ARTICLE · art-113809] src=arxiv.org ↗ pub= topic=machine-learning verified=true sentiment=· neutral

CG4AI: A Column Generation Framework for Training AI Models Under Constraints

Researchers propose CG4AI, a column generation framework that builds a convex combination of AI models while enforcing linear constraints on outputs, using a master linear program and pricing subproblem to generate models. Applied to MNIST digit classification and multi-commodity flow problems, CG4AI reliably produces feasible predictors with better accuracy than single-model baselines, as reported in arXiv:2608.26375v1.

read1 min views1 publishedAug 28, 2026

arXiv:2608.26375v1 Announce Type: new Abstract: Standard machine-learning training minimizes a loss function over a dataset, but does not guarantee that the resulting model will satisfy predefined rules or constraints on its outputs. In many real-world applications, ranging from autonomous systems to network routing, such guarantees are essential. We propose CG4AI, a framework that builds a convex combination of AI models while enforcing linear constraints on the combined output. A master linear program (LP) determines the optimal mixture weights, while a pricing subproblem generates new models guided by LP dual variables, focusing attention on the most violated constraints. A cutting-plane procedure extends feasibility guarantees beyond the training set. We apply CG4AI to two problems: (i) digit classification on MNIST, where we demonstrate four distinct uses of constraints, learning from constraints alone, improving adversarial robustness, correcting misclassified examples, and enforcing output relabeling; and (ii) the multi-commodity flow problem, where link capacity constraints are enforced on neural-network routing predictors. Experiments on MNIST and standard SNDLIB benchmark networks show that CG4AI reliably produces feasible predictors while achieving better accuracy than single-model baselines.

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