Publication | Open Access
QUOTA: The Quantile Option Architecture for Reinforcement Learning
20
Citations
31
References
2019
Year
Artificial IntelligenceEngineeringStochastic GameUncertainty QuantificationGame TheoryQuantile Option ArchitectureManagementSequential Decision MakingComputer ScienceIntelligent SystemsRobot LearningDecision MakingMulti-agent LearningRoboticsDecision TheoryMechanism DesignDistributional Reinforcement LearningExploration V Exploitation
In this paper, we propose the Quantile Option Architecture (QUOTA) for exploration based on recent advances in distributional reinforcement learning (RL). In QUOTA, decision making is based on quantiles of a value distribution, not only the mean. QUOTA provides a new dimension for exploration via making use of both optimism and pessimism of a value distribution. We demonstrate the performance advantage of QUOTA in both challenging video games and physical robot simulators.
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