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Non-Convex Min-Max Optimization: Provable Algorithms and Applications in Machine Learning.
arXiv: Optimization and Control, (2018)
EI
Abstract
Min-max saddle-point problems have broad applications in many tasks in machine learning, e.g., distributionally robust learning, learning with non-decomposable loss, or learning with uncertain data. Although convex-concave saddle-point problems have been broadly studied with efficient algorithms and solid theories available, it remains a ...More
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