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 82768300 of 15113 papers

TitleStatusHype
PI-QT-Opt: Predictive Information Improves Multi-Task Robotic Reinforcement Learning at Scale0
pix2pockets: Shot Suggestions in 8-Ball Pool from a Single Image in the Wild0
Pixel-Attentive Policy Gradient for Multi-Fingered Grasping in Cluttered Scenes0
Pixel Reasoner: Incentivizing Pixel-Space Reasoning with Curiosity-Driven Reinforcement Learning0
Placement in Integrated Circuits using Cyclic Reinforcement Learning and Simulated Annealing0
Placement Optimization of Aerial Base Stations with Deep Reinforcement Learning0
Placement Optimization with Deep Reinforcement Learning0
Skill Reinforcement Learning and Planning for Open-World Long-Horizon Tasks0
Plan, Attend, Generate: Character-Level Neural Machine Translation with Planning0
Plan-Based Asymptotically Equivalent Reward Shaping0
Plan-Based Relaxed Reward Shaping for Goal-Directed Tasks0
Planning and Learning: Path-Planning for Autonomous Vehicles, a Review of the Literature0
Planning and Learning with Stochastic Action Sets0
Planning in Hierarchical Reinforcement Learning: Guarantees for Using Local Policies0
Planning Irregular Object Packing via Hierarchical Reinforcement Learning0
Planning to Practice: Efficient Online Fine-Tuning by Composing Goals in Latent Space0
Planning to the Information Horizon of BAMDPs via Epistemic State Abstraction0
Planning with Abstract Learned Models While Learning Transferable Subtasks0
Planning with a Learned Policy Basis to Optimally Solve Complex Tasks0
Planning with Exploration: Addressing Dynamics Bottleneck in Model-based Reinforcement Learning0
Planning with RL and episodic-memory behavioral priors0
Planning with Sequence Models through Iterative Energy Minimization0
Epistemic Monte Carlo Tree Search0
Plan-Seq-Learn: Language Model Guided RL for Solving Long Horizon Robotics Tasks0
Plan-Space State Embeddings for Improved Reinforcement Learning0
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Benchmark Results

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