Convergence of Gradient Methods on Bilinear Zero-Sum Games
Guojun Zhang, Yaoliang Yu
2020年份
37被引次数
11顶会引用
摘要
Min-max formulations have attracted great attention in the ML community due to the rise of deep generative models and adversarial methods, and understanding the dynamics of (stochastic) gradient algorithms for solving such formulations has been a grand challenge. As a first step, we restrict to bilinear zero-sum games and give a systematic analysis of popular gradient updates, for both simultaneous and alternating versions. We provide exact conditions for their convergence and find the optimal parameter setup and convergence rates. In particular, our results offer formal evidence that alternating updates converge "better" than simultaneous ones.
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引用它的顶会 Paper11
- Finite-Time Last-Iterate Convergence for Learning in Multi-Player GamesYang Cai, Argyris Oikonomou, Weiqiang ZhengNeurIPS 2022 · 被引用 63 次
- On Last-Iterate Convergence Beyond Zero-Sum GamesIoannis Anagnostides, Ioannis Panageas, Gabriele Farina, Tuomas SandholmICML 2022 · 被引用 52 次
- No-regret learning in games with noisy feedback: Faster rates and adaptivity via learning rate separationYu-Guan Hsieh, Kimon Antonakopoulos, Volkan Cevher, Panayotis MertikopoulosNeurIPS 2022 · 被引用 38 次
- Solving Min-Max Optimization with Hidden Structure via Gradient Descent AscentEmmanouil V. Vlatakis-Gkaragkounis, Lampros Flokas, Georgios PiliourasNeurIPS 2021 · 被引用 16 次
- Fundamental Benefit of Alternating Updates in Minimax OptimizationJaewook Lee, Hanseul Cho, Chulhee YunICML 2024 · 被引用 14 次
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