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 1115111200 of 15113 papers

TitleStatusHype
Two-stage training algorithm for AI robot soccer0
Two-Step Reinforcement Learning for Multistage Strategy Card Game0
UAS Navigation in the Real World Using Visual Observation0
UAS Visual Navigation in Large and Unseen Environments via a Meta Agent0
UAV aided Metaverse over Wireless Communications: A Reinforcement Learning Approach0
UAV Aided Search and Rescue Operation Using Reinforcement Learning0
UAV-Assisted Coverage Hole Detection Using Reinforcement Learning in Urban Cellular Networks0
UAV-Assisted Enhanced Coverage and Capacity in Dynamic MU-mMIMO IoT Systems: A Deep Reinforcement Learning Approach0
UAV-assisted Semantic Communication with Hybrid Action Reinforcement Learning0
UAV Base Station Trajectory Optimization Based on Reinforcement Learning in Post-disaster Search and Rescue Operations0
UAV Path Planning Employing MPC- Reinforcement Learning Method Considering Collision Avoidance0
UAV Trajectory Planning in Wireless Sensor Networks for Energy Consumption Minimization by Deep Reinforcement Learning0
UbuntuWorld 1.0 LTS - A Platform for Automated Problem Solving & Troubleshooting in the Ubuntu OS0
UCB Exploration via Q-Ensembles0
UDQL: Bridging The Gap between MSE Loss and The Optimal Value Function in Offline Reinforcement Learning0
UDUC: An Uncertainty-driven Approach for Learning-based Robust Control0
UIShift: Enhancing VLM-based GUI Agents through Self-supervised Reinforcement Learning0
ULTHO: Ultra-Lightweight yet Efficient Hyperparameter Optimization in Deep Reinforcement Learning0
Ultimate Intelligence Part III: Measures of Intelligence, Perception and Intelligent Agents0
Ultrafast photonic reinforcement learning based on laser chaos0
UMBRELLA: Uncertainty-Aware Model-Based Offline Reinforcement Learning Leveraging Planning0
Unbiased Asymmetric Reinforcement Learning under Partial Observability0
Unbiased Deep Reinforcement Learning: A General Training Framework for Existing and Future Algorithms0
Unbiased learning with State-Conditioned Rewards in Adversarial Imitation Learning0
Unbiased Methods for Multi-Goal Reinforcement Learning0
Unbiased Weight Maximization0
Uncertainty-aware Contact-safe Model-based Reinforcement Learning0
Uncertainty-Aware Decision Transformer for Stochastic Driving Environments0
Uncertainty-aware Distributional Offline Reinforcement Learning0
Uncertainty-aware Low-Rank Q-Matrix Estimation for Deep Reinforcement Learning0
Uncertainty-Aware Model-Based Reinforcement Learning with Application to Autonomous Driving0
Uncertainty-Aware Reinforcement Learning for Collision Avoidance0
Uncertainty-aware transfer across tasks using hybrid model-based successor feature reinforcement learning0
Uncertainty-based Meta-Reinforcement Learning for Robust Radar Tracking0
Uncertainty-Based Out-of-Distribution Detection in Deep Reinforcement Learning0
Uncertainty-Based Out-of-Distribution Classification in Deep Reinforcement Learning0
Uncertainty Decomposition in Bayesian Neural Networks with Latent Variables0
Uncertainty Estimation and Calibration with Finite-State Probabilistic RNNs0
Uncertainty Estimation for Language Reward Models0
Uncertainty quantification for Markov chains with application to temporal difference learning0
Uncertainty Regularized Policy Learning for Offline Reinforcement Learning0
Uncertainty Weighted Offline Reinforcement Learning0
Uncovering Surprising Behaviors in Reinforcement Learning via Worst-case Analysis0
Understanding Agent Incentives using Causal Influence Diagrams. Part I: Single Action Settings0
Understanding and Leveraging Overparameterization in Recursive Value Estimation0
Understanding and Leveraging Causal Relations in Deep Reinforcement Learning0
Understanding and Preventing Capacity Loss in Reinforcement Learning0
Understanding and Shifting Preferences for Battery Electric Vehicles0
Understanding and Simplifying One-Shot Architecture Search0
Optimality theory of stigmergic collective information processing by chemotactic cells0
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Benchmark Results

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