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 40514100 of 15113 papers

TitleStatusHype
What Hides behind Unfairness? Exploring Dynamics Fairness in Reinforcement LearningCode0
Offline Trajectory Generalization for Offline Reinforcement Learning0
Course Recommender Systems Need to Consider the Job MarketCode0
Automated Discovery of Functional Actual Causes in Complex Environments0
Effective Reinforcement Learning Based on Structural Information Principles0
Autonomous Path Planning for Intercostal Robotic Ultrasound Imaging Using Reinforcement Learning0
Inferring Behavior-Specific Context Improves Zero-Shot Generalization in Reinforcement LearningCode0
Higher Replay Ratio Empowers Sample-Efficient Multi-Agent Reinforcement Learning0
The Feasibility of Constrained Reinforcement Learning Algorithms: A Tutorial Study0
Knowledgeable Agents by Offline Reinforcement Learning from Large Language Model Rollouts0
SmartPathfinder: Pushing the Limits of Heuristic Solutions for Vehicle Routing Problem with Drones Using Reinforcement Learning0
Generalized Population-Based Training for Hyperparameter Optimization in Reinforcement LearningCode0
Enhancing Autonomous Vehicle Training with Language Model Integration and Critical Scenario Generation0
Leveraging Domain-Unlabeled Data in Offline Reinforcement Learning across Two Domains0
FPGA Divide-and-Conquer Placement using Deep Reinforcement Learning0
Efficient Duple Perturbation Robustness in Low-rank MDPs0
Enhancing Policy Gradient with the Polyak Step-Size Adaption0
On the Sample Efficiency of Abstractions and Potential-Based Reward Shaping in Reinforcement Learning0
UAV-Assisted Enhanced Coverage and Capacity in Dynamic MU-mMIMO IoT Systems: A Deep Reinforcement Learning Approach0
Reward Learning from Suboptimal Demonstrations with Applications in Surgical Electrocautery0
Rethinking Out-of-Distribution Detection for Reinforcement Learning: Advancing Methods for Evaluation and DetectionCode0
Dual Ensemble Kalman Filter for Stochastic Optimal Control0
Asynchronous Federated Reinforcement Learning with Policy Gradient Updates: Algorithm Design and Convergence Analysis0
Adaptable Recovery Behaviors in Robotics: A Behavior Trees and Motion Generators(BTMG) Approach for Failure Management0
Diverse Randomized Value Functions: A Provably Pessimistic Approach for Offline Reinforcement Learning0
FGAIF: Aligning Large Vision-Language Models with Fine-grained AI Feedback0
Compositional Conservatism: A Transductive Approach in Offline Reinforcement LearningCode0
Transform then Explore: a Simple and Effective Technique for Exploratory Combinatorial Optimization with Reinforcement Learning0
Continual Policy Distillation of Reinforcement Learning-based Controllers for Soft Robotic In-Hand ManipulationCode0
Enhancing IoT Intelligence: A Transformer-based Reinforcement Learning Methodology0
Exploration is Harder than Prediction: Cryptographically Separating Reinforcement Learning from Supervised Learning0
A Reinforcement Learning based Reset Policy for CDCL SAT Solvers0
Distributionally Robust Reinforcement Learning with Interactive Data Collection: Fundamental Hardness and Near-Optimal Algorithm0
Sequential Recommendation for Optimizing Both Immediate Feedback and Long-term RetentionCode0
REACT: Revealing Evolutionary Action Consequence Trajectories for Interpretable Reinforcement Learning0
SliceIt! -- A Dual Simulator Framework for Learning Robot Food SlicingCode0
Reinforcement Learning in Categorical Cybernetics0
Methodology for Interpretable Reinforcement Learning for Optimizing Mechanical Ventilation0
Emergence of Chemotactic Strategies with Multi-Agent Reinforcement Learning0
Active Exploration in Bayesian Model-based Reinforcement Learning for Robot Manipulation0
Is Exploration All You Need? Effective Exploration Characteristics for Transfer in Reinforcement Learning0
Asymptotics of Language Model Alignment0
MTLight: Efficient Multi-Task Reinforcement Learning for Traffic Signal Control0
Utilizing Maximum Mean Discrepancy Barycenter for Propagating the Uncertainty of Value Functions in Reinforcement Learning0
Learning Off-policy with Model-based Intrinsic Motivation For Active Online Exploration0
Survey on Large Language Model-Enhanced Reinforcement Learning: Concept, Taxonomy, and Methods0
Molecular Generative Adversarial Network with Multi-Property Optimization0
Nonparametric Bellman Mappings for Reinforcement Learning: Application to Robust Adaptive Filtering0
Learning Visual Quadrupedal Loco-Manipulation from Demonstrations0
CtRL-Sim: Reactive and Controllable Driving Agents with Offline Reinforcement Learning0
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Benchmark Results

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