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 92019250 of 15113 papers

TitleStatusHype
Data-Driven Simulation of Ride-Hailing Services using Imitation and Reinforcement Learning0
Approximate Robust NMPC using Reinforcement Learning0
Distributed Deep Reinforcement Learning for Collaborative Spectrum Sharing0
A Dual-Critic Reinforcement Learning Framework for Frame-level Bit Allocation in HEVC/H.2650
NQMIX: Non-monotonic Value Function Factorization for Deep Multi-Agent Reinforcement Learning0
Machine Learning Applications in the Routing in Computer Networks0
Distributed Reinforcement Learning for Age of Information Minimization in Real-Time IoT Systems0
SOLO: Search Online, Learn Offline for Combinatorial Optimization Problems0
Efficient Transformers in Reinforcement Learning using Actor-Learner Distillation0
Influencing Reinforcement Learning through Natural Language GuidanceCode0
Deep Reinforcement Learning Powered IRS-Assisted Downlink NOMA0
A Dynamics Perspective of Pursuit-Evasion Games of Intelligent Agents with the Ability to Learn0
Reinforcement Learning for Emotional Text-to-Speech Synthesis with Improved Emotion Discriminability0
Federated Double Deep Q-learning for Joint Delay and Energy Minimization in IoT networks0
How Are Learned Perception-Based Controllers Impacted by the Limits of Robust Control?Code0
Low Dose Helical CBCT denoising by using domain filtering with deep reinforcement learning0
AdaPool: A Diurnal-Adaptive Fleet Management Framework using Model-Free Deep Reinforcement Learning and Change Point Detection0
Trajectory Tracking of Underactuated Sea Vessels With Uncertain Dynamics: An Integral Reinforcement Learning Approach0
Optimization Algorithm for Feedback and Feedforward Policies towards Robot Control Robust to Sensing Failures0
Multiple Tasks Integration: Tagging, Syntactic and Semantic Parsing as a Single Task0
Solving Heterogeneous General Equilibrium Economic Models with Deep Reinforcement Learning0
RLAD: Time Series Anomaly Detection through Reinforcement Learning and Active Learning0
Energy Efficient Edge Computing: When Lyapunov Meets Distributed Reinforcement Learning0
Generalized Reinforcement Learning for Building Control using Behavioral Cloning0
DEALIO: Data-Efficient Adversarial Learning for Imitation from Observation0
Deep Reinforcement Learning for Constrained Field Development Optimization in Subsurface Two-phase Flow0
Greedy-GQ with Variance Reduction: Finite-time Analysis and Improved Complexity0
FaiR-IoT: Fairness-aware Human-in-the-Loop Reinforcement Learning for Harnessing Human Variability in Personalized IoT0
Online Policies for Real-Time Control Using MRAC-RL0
Reinforcement learning for optimization of variational quantum circuit architectures0
Reinforcement Learning Beyond Expectation0
pH-RL: A personalization architecture to bring reinforcement learning to health practice0
Measuring Sample Efficiency and Generalization in Reinforcement Learning Benchmarks: NeurIPS 2020 Procgen Benchmark0
Shaping Advice in Deep Multi-Agent Reinforcement LearningCode0
Robust Reinforcement Learning under model misspecificationCode0
Augmenting Automated Game Testing with Deep Reinforcement Learning0
LASER: Learning a Latent Action Space for Efficient Reinforcement Learning0
Deep reinforcement learning of event-triggered communication and control for multi-agent cooperative transport0
Deep Hedging of Derivatives Using Reinforcement Learning0
Joint Resource Management for MC-NOMA: A Deep Reinforcement Learning Approach0
KnowRU: Knowledge Reusing via Knowledge Distillation in Multi-agent Reinforcement Learning0
Self-adaptive Torque Vectoring Controller Using Reinforcement LearningCode0
Reinforcement Learning for Robust Parameterized Locomotion Control of Bipedal Robots0
Model-Free Learning of Safe yet Effective Controllers0
A Convex Programming Approach to Data-Driven Risk-Averse Reinforcement Learning0
Barrier Function-based Safe Reinforcement Learning for Emergency Control of Power Systems0
Increasing the Efficiency of Policy Learning for Autonomous Vehicles by Multi-Task Representation Learning0
Autonomous Overtaking in Gran Turismo Sport Using Curriculum Reinforcement Learning0
Hierarchical Program-Triggered Reinforcement Learning Agents For Automated Driving0
A Meta-Reinforcement Learning Approach to Process Control0
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Benchmark Results

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