Convergence of Learning Dynamics in Information Retrieval Games
June 14, 2018 Β· Declared Dead Β· π AAAI Conference on Artificial Intelligence
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Authors
Omer Ben-Porat, Itay Rosenberg, Moshe Tennenholtz
arXiv ID
1806.05359
Category
cs.GT: Game Theory
Cross-listed
cs.IR
Citations
12
Venue
AAAI Conference on Artificial Intelligence
Last Checked
6 months ago
Abstract
We consider a game-theoretic model of information retrieval with strategic authors. We examine two different utility schemes: authors who aim at maximizing exposure and authors who want to maximize active selection of their content (i.e. the number of clicks). We introduce the study of author learning dynamics in such contexts. We prove that under the probability ranking principle (PRP), which forms the basis of the current state of the art ranking methods, any better-response learning dynamics converges to a pure Nash equilibrium. We also show that other ranking methods induce a strategic environment under which such a convergence may not occur.
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