SOTAVerified

Reinforcement Learning (RL)

Reinforcement Learning (RL) involves training an agent to take actions in an environment to maximize a cumulative reward signal. The agent interacts with the environment and learns by receiving feedback in the form of rewards or punishments for its actions. The goal of reinforcement learning is to find the optimal policy or decision-making strategy that maximizes the long-term reward.

Papers

Showing 91019125 of 15113 papers

TitleStatusHype
Reinforcement Learning for Control with Multiple Frequencies0
Reinforcement Learning for Datacenter Congestion Control0
Reinforcement Learning For Data Poisoning on Graph Neural Networks0
Reinforcement Learning for Deceiving Reactive Jammers in Wireless Networks0
Multi-agent Reinforcement Learning for Decentralized Stable Matching0
Reinforcement Learning for Selective Key Applications in Power Systems: Recent Advances and Future Challenges0
Reinforcement Learning for Distributed Transient Frequency Control with Stability and Safety Guarantees0
Reinforcement Learning for Dynamic Resource Optimization in 5G Radio Access Network Slicing0
Reinforcement Learning for Edit-Based Non-Autoregressive Neural Machine Translation0
Reinforcement Learning for Education: Opportunities and Challenges0
Reinforcement Learning for Efficient and Tuning-Free Link Adaptation0
Reinforcement Learning for Efficient Design and Control Co-optimisation of Energy Systems0
Reinforcement Learning for Electricity Network Operation0
Reinforcement Learning for Emotional Text-to-Speech Synthesis with Improved Emotion Discriminability0
Reinforcement Learning for Fair Dynamic Pricing0
Reinforcement Learning for Feedback-Enabled Cyber Resilience0
Reinforcement Learning for Finite-Horizon Restless Multi-Armed Multi-Action Bandits0
Reinforcement Learning for Flexibility Design Problems0
Reinforcement Learning for Game-Theoretic Resource Allocation on Graphs0
On the (In)Tractability of Reinforcement Learning for LTL Objectives0
Reinforcement Learning for Generative AI: State of the Art, Opportunities and Open Research Challenges0
Reinforcement Learning for Hanabi0
Reinforcement Learning for Hardware Security: Opportunities, Developments, and Challenges0
Reinforcement Learning for Heterogeneous Teams with PALO Bounds0
Reinforcement Learning for Improving Object Detection0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1PPGMean Normalized Performance0.76Unverified
2PPOMean Normalized Performance0.58Unverified