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Raghu Bollapragada

3 accepted papers

2022

Learning a neural Pareto manifold extractor with constraints

UAI 2022poster

Multi-objective optimization (MOO) problems require balancing competing objectives, often under constraints. The Pareto optimal solution set defines all possible optimal trade-offs over such objectives. In this work, we present a novel method for Pareto-front learning: inducing the full Pareto manif…

2018

A Progressive Batching L-BFGS Method for Machine Learning

ICML 2018oral

The standard L-BFGS method relies on gradient approximations that are not dominated by noise, so that search directions are descent directions, the line search is reliable, and quasi-Newton updating yields useful quadratic models of the objective function. All of this appears to call for a full batc…

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