Policy Revision Dynamics and Algorithm Design in Stochastic and Mean-Field Games
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Overview
Syllabus
Intro
Single-Agent Reinforcement Learning
Applications of Multi-Agent Systems
Stochastic Games: Description of Play
Policies (General Treatment)
Objective Functions
Policy Update Rules and Policy Dynamics
e-Satisficing: Definitions
Two-Player Games and e-Satisficing: proof sketch (ctd)
Quantization of Policy Sets
Decoupling Learning and Adaptation
Algorithm for Symmetric Games: Abridged Algorithm
Simulations
Taught by
GERAD Research Center