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Clairvoyant Regret Minimization: Equivalence with Nemirovski's Conceptual Prox Method and Extension to General Convex Games

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arxiv 2208.14891 v1 pith:T3KJYVPX submitted 2022-08-31 cs.GT

classification cs.GT
keywords cmwualgorithmclairvoyantconceptualmethodpiliourasproxregret
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A recent paper by Piliouras et al. [2021, 2022] introduces an uncoupled learning algorithm for normal-form games -- called Clairvoyant MWU (CMWU). In this note we show that CMWU is equivalent to the conceptual prox method described by Nemirovski [2004]. This connection immediately shows that it is possible to extend the CMWU algorithm to any convex game, a question left open by Piliouras et al. We call the resulting algorithm -- again equivalent to the conceptual prox method -- Clairvoyant OMD. At the same time, we show that our analysis yields an improved regret bound compared to the original bound by Piliouras et al., in that the regret of CMWU scales only with the square root of the number of players, rather than the number of players themselves.

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    A contextual optimistic multiplicative weights algorithm (POMWU) achieves static-game regret, equilibrium convergence, and social welfare guarantees in time-varying games when players can predict the changing state of...

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