Solving Linear Programs with Fast Online Learning Algorithms
Wenzhi Gao, Dongdong Ge, Chunlin Sun, Yinyu Ye
Abstract
This paper presents fast first-order methods for solving linear programs (LPs) approximately. We adapt online linear programming algorithms to offline LPs and obtain algorithms that avoid any matrix multiplication. We also introduce a variable-duplication technique that copies each variable times and reduces the optimality gap and constraint violation by a factor of . Furthermore, we show how online algorithms can be effectively integrated into sifting, a column generation scheme for large-scale LPs. Numerical experiments demonstrate that our methods can serve as either an approximate direct solver, or an initialization subroutine for exact LP solving.
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Install the CLIlune papers fulltext 01c7ae20-51a5-4d97-b01f-e346d4ea505dCited by top-tier papers2
- Decoupling Learning and Decision-Making: Breaking the O(T) Barrier in Online Resource Allocation with First-Order MethodsWenzhi Gao, Chunlin Sun, Chenyu Xue, Yinyu YeICML 2024 · 3 citations
- Wait-Less Offline Tuning and Re-solving for Online Decision MakingJingruo Sun, Wenzhi Gao, Ellen Vitercik, Yinyu YeICML 2025
Builds on5
- Practical Large-Scale Linear Programming using Primal-Dual Hybrid GradientDavid L. Applegate, Mateo Díaz, Oliver Hinder, Haihao Lu et al.NeurIPS 2021 · 165 citations
- Dual Mirror Descent for Online Allocation ProblemsSantiago R. Balseiro, Haihao Lu, Vahab S. MirrokniICML 2020 · 102 citations
- Simple and Fast Algorithm for Binary Integer and Online Linear ProgrammingXiaocheng Li, Chunlin Sun, Yinyu YeNeurIPS 2020 · 77 citations
- ECLIPSE: An Extreme-Scale Linear Program Solver for Web-ApplicationsKinjal Basu, Amol Ghoting, Rahul Mazumder, Yao PanICML 2020 · 36 citations
- Minibatch and Momentum Model-based Methods for Stochastic Weakly Convex OptimizationQi Deng, Wenzhi GaoNeurIPS 2021 · 21 citations
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