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Enhanced Adaptive Gradient Algorithms for Nonconvex-PL Minimax Optimization
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abstract
Minimax optimization recently is widely applied in many machine learning tasks such as generative adversarial networks, robust learning and reinforcement learning. In the paper, we study a class of nonconvex-nonconcave minimax optimization with nonsmooth regularization, where the objective function is possibly nonconvex on primal variable $x$, and it is nonconcave and satisfies the Polyak-Lojasiewicz (PL) condition on dual variable $y$. Moreover, we propose a class of enhanced momentum-based gradient descent ascent methods (i.e., MSGDA and AdaMSGDA) to solve these stochastic nonconvex-PL minimax problems. In particular, our AdaMSGDA algorithm can use various adaptive learning rates in updating the variables $x$ and $y$ without relying on any specifical types. Theoretically, we prove that our methods have the best known sample complexity of $\tilde{O}(\epsilon^{-3})$ only requiring one sample at each loop in finding an $\epsilon$-stationary solution. Some numerical experiments on PL-game and Wasserstein-GAN demonstrate the efficiency of our proposed methods.
Forward citations
Cited by 2 Pith papers
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A first-order method for constrained nonconvex-nonconcave minimax optimization
Under a local Kurdyka-Łojasiewicz condition, the constrained nonconvex-nonconcave minimax value function is locally generalized Hölder smooth, and an interleaved SCP/proximal-gradient method achieves Õ(ε^{−max{1/(1−θ)...
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Adaptive Stochastic Gradient Descent Ascent Algorithm for Nonconvex Minimax Problems with Decision-Dependent Distributions
New stochastic gradient descent ascent algorithms for nonconvex minimax problems with decision-dependent distributions achieve O(epsilon^{-(4+delta)}) and O(epsilon^{-8}) complexity in different settings.
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