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 46014650 of 15113 papers

TitleStatusHype
Analysis of Reinforcement Learning for determining task replication in workflows0
Analysis of Reinforcement Learning Schemes for Trajectory Optimization of an Aerial Radio Unit0
Analysis of Social Robotic Navigation approaches: CNN Encoder and Incremental Learning as an alternative to Deep Reinforcement Learning0
Analysis of Stochastic Processes through Replay Buffers0
Finite-Time Analysis of Temporal Difference Learning: Discrete-Time Linear System Perspective0
Analysis of Thompson Sampling for Partially Observable Contextual Multi-Armed Bandits0
Analysis on Riemann Hypothesis with Cross Entropy Optimization and Reasoning0
Analytically Tractable Bayesian Deep Q-Learning0
Analytic Energy-Guided Policy Optimization for Offline Reinforcement Learning0
Analyzing Behaviors of Mixed Traffic via Reinforcement Learning at Unsignalized Intersections0
Analyzing Cyber-Physical Systems from the Perspective of Artificial Intelligence0
Analyzing Language Learned by an Active Question Answering Agent0
Analyzing Policy Distillation on Multi-Task Learning and Meta-Reinforcement Learning in Meta-World0
Analyzing the Hidden Activations of Deep Policy Networks: Why Representation Matters0
Analyzing Visual Representations in Embodied Navigation Tasks0
An Analysis of Model-Based Reinforcement Learning From Abstracted Observations0
An Analysis of Categorical Distributional Reinforcement Learning0
An Analysis of Deep Reinforcement Learning Agents for Text-based Games0
An Analysis of Discretization Methods for Communication Learning with Multi-Agent Reinforcement Learning0
An Analysis of Frame-skipping in Reinforcement Learning0
An Analysis of Quantile Temporal-Difference Learning0
An Analysis of Reinforcement Learning for Malaria Control0
An Analytical Update Rule for General Policy Optimization0
An application of neural networks to a problem in knot theory and group theory (untangling braids)0
An application of reinforcement learning to residential energy storage under real-time pricing0
An approach to implement Reinforcement Learning for Heterogeneous Vehicular Networks0
An Approach to Partial Observability in Games: Learning to Both Act and Observe0
A differential Hebbian framework for biologically-plausible motor control0
An Architecture for Deploying Reinforcement Learning in Industrial Environments0
An Attempt to Model Human Trust with Reinforcement Learning0
A Natural Actor-Critic Algorithm with Downside Risk Constraints0
A Natural Extension To Online Algorithms For Hybrid RL With Limited Coverage0
An Auction-based Marketplace for Model Trading in Federated Learning0
An Augmented Reality Platform for Introducing Reinforcement Learning to K-12 Students with Robots0
An Automated Portfolio Trading System with Feature Preprocessing and Recurrent Reinforcement Learning0
An Automated Reinforcement Learning Reward Design Framework with Large Language Model for Cooperative Platoon Coordination0
An Autonomous Free Airspace En-route Controller using Deep Reinforcement Learning Techniques0
An Autonomous Network Orchestration Framework Integrating Large Language Models with Continual Reinforcement Learning0
Ancestral Reinforcement Learning: Unifying Zeroth-Order Optimization and Genetic Algorithms for Reinforcement Learning0
Anderson Acceleration for Reinforcement Learning0
A Nearly Optimal and Low-Switching Algorithm for Reinforcement Learning with General Function Approximation0
A Near-Optimal Algorithm for Safe Reinforcement Learning Under Instantaneous Hard Constraints0
An Efficient Dynamic Sampling Policy For Monte Carlo Tree Search0
Efficient Training of Generalizable Visuomotor Policies via Control-Aware Augmentation0
An Efficient, Generalized Bellman Update For Cooperative Inverse Reinforcement Learning0
An Elementary Proof that Q-learning Converges Almost Surely0
An Empirical Analysis of Multiple-Turn Reasoning Strategies in Reading Comprehension Tasks0
An Empirical Comparison of Neural Architectures for Reinforcement Learning in Partially Observable Environments0
An Empirical Study of the Effectiveness of Using a Replay Buffer on Mode Discovery in GFlowNets0
An Empowerment-based Solution to Robotic Manipulation Tasks with Sparse Rewards0
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Benchmark Results

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