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Online Primal-Dual Algorithms with Configuration Linear Programs
2020
In this paper, we present primal-dual algorithms for online problems with non-convex objectives. Problems with convex objectives have been extensively studied in recent years where the analyses rely crucially on the convexity and the Fenchel duality. However, problems with non-convex objectives resist against current approaches and non-convexity represents a strong barrier in optimization in general and in the design of online algorithms in particular. In our approach, we consider configuration
doi:10.4230/lipics.isaac.2020.45
fatcat:dxzz7jtpdzaixjeyjdmq57fkoq