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 1072610750 of 15113 papers

TitleStatusHype
Distributed Deep Reinforcement Learning for Intelligent Load Scheduling in Residential Smart Grids0
Extracting Latent State Representations with Linear Dynamics from Rich Observations0
Empirically Verifying Hypotheses Using Reinforcement Learning0
Active Finite Reward Automaton Inference and Reinforcement Learning Using Queries and Counterexamples0
Reinforcement Learning Based Handwritten Digit Recognition with Two-State Q-Learning0
Logarithmic regret for episodic continuous-time linear-quadratic reinforcement learning over a finite-time horizon0
Learning predictive representations in autonomous driving to improve deep reinforcement learning0
Approximating Euclidean by Imprecise Markov Decision Processes0
A Unifying Framework for Reinforcement Learning and Planning0
Distributed Uplink Beamforming in Cell-Free Networks Using Deep Reinforcement Learning0
DDPG++: Striving for Simplicity in Continuous-control Off-Policy Reinforcement Learning0
Policy-GNN: Aggregation Optimization for Graph Neural NetworksCode0
Perception-Prediction-Reaction Agents for Deep Reinforcement Learning0
Newton-type Methods for Minimax OptimizationCode0
Reinforcement Learning and its Connections with Neuroscience and Psychology0
Some approaches used to overcome overestimation in Deep Reinforcement Learning algorithms0
Multi-Agent Deep Reinforcement Learning for HVAC Control in Commercial Buildings0
Reinforcement Learning for Non-Stationary Markov Decision Processes: The Blessing of (More) Optimism0
Unified Reinforcement Q-Learning for Mean Field Game and Control Problems0
Off-Dynamics Reinforcement Learning: Training for Transfer with Domain ClassifiersCode0
Towards Minimax Optimal Reinforcement Learning in Factored Markov Decision Processes0
RL Unplugged: A Suite of Benchmarks for Offline Reinforcement LearningCode0
Explainable robotic systems: Understanding goal-driven actions in a reinforcement learning scenario0
Local Stochastic Approximation: A Unified View of Federated Learning and Distributed Multi-Task Reinforcement Learning Algorithms0
A differential Hebbian framework for biologically-plausible motor control0
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Benchmark Results

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