21578@AAAI

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#1 Equilibrium Learning in Auction Markets [PDF] [Copy] [Kimi]

Author: Stefan Heidekrüger

My dissertation investigates the computation of Bayes-Nash equilibria in auctions via multiagent learning. A particular focus lies on the game-theoretic analysis of learned gradient dynamics in such markets. This requires overcoming several technical challenges like non-differentiable utility functions and infinite-dimensional strategy spaces. Positive results may open the door for wide-ranging applications in Market Design and the economic sciences.