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 28262850 of 15113 papers

TitleStatusHype
Demonstration-Regularized RL0
Grow Your Limits: Continuous Improvement with Real-World RL for Robotic Locomotion0
CROP: Conservative Reward for Model-based Offline Policy OptimizationCode1
CQM: Curriculum Reinforcement Learning with a Quantized World Model0
Transfer of Reinforcement Learning-Based Controllers from Model- to Hardware-in-the-Loop0
Controlled Decoding from Language Models0
Privately Aligning Language Models with Reinforcement Learning0
Model-enhanced Contrastive Reinforcement Learning for Sequential Recommendation0
MultiPrompter: Cooperative Prompt Optimization with Multi-Agent Reinforcement Learning0
TD-MPC2: Scalable, Robust World Models for Continuous ControlCode2
Hyperparameter Optimization for Multi-Objective Reinforcement Learning0
A Contextualized Real-Time Multimodal Emotion Recognition for Conversational Agents using Graph Convolutional Networks in Reinforcement Learning0
Fractal Landscapes in Policy Optimization0
Finetuning Offline World Models in the Real World0
WebWISE: Web Interface Control and Sequential Exploration with Large Language Models0
Corruption-Robust Offline Reinforcement Learning with General Function ApproximationCode0
Enhancing Robotic Manipulation: Harnessing the Power of Multi-Task Reinforcement Learning and Single Life Reinforcement Learning in Meta-World0
Safe Navigation: Training Autonomous Vehicles using Deep Reinforcement Learning in CARLACode1
A Review of Reinforcement Learning for Natural Language Processing, and Applications in Healthcare0
Diversify Question Generation with Retrieval-Augmented Style TransferCode1
Reinforcement learning in large, structured action spaces: A simulation study of decision support for spinal cord injury rehabilitation0
Diverse Priors for Deep Reinforcement Learning0
Iteratively Learn Diverse Strategies with State Distance Information0
Provable Benefits of Multi-task RL under Non-Markovian Decision Making Processes0
Automatic Unit Test Data Generation and Actor-Critic Reinforcement Learning for Code SynthesisCode1
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Benchmark Results

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