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Expert Behavior Prior Reinforcement Learning
IEEE Transactions on Neural Networks and Learning Systems
|August 7, 2026
Summary
This study introduces an expert behavior prior (EBP) algorithm to enhance online reinforcement learning (RL) sample efficiency. EBP generates expert policy priors from online data, improving agent exploration and learning stability.
Area of Science:
- Artificial Intelligence
- Machine Learning
- Robotics
Background:
- Behavior prior reinforcement learning (BPRL) aims to boost sample efficiency in online reinforcement learning (RL) using offline demonstrations.
- Existing BPRL methods often use static datasets, leading to limited data diversity and suboptimal trajectories, which hampers policy exploitation and stability.
Purpose of the Study:
- To address limitations of static offline datasets in BPRL.
- To propose a novel algorithm, expert behavior prior (EBP), for improved online RL training.
Main Methods:
- Introduced a Q-guided conditional variational autoencoder (Q-CVAE) to generate expert policy priors from online replay buffers.
- Implemented an expert policy guidance (EPG) mechanism for selecting high-value actions.
- Integrated a policy gradient correction (PGC) module for stable policy improvement.
Main Results:
- The EBP algorithm demonstrated superior performance compared to state-of-the-art online RL methods.
- Achieved significantly higher sample efficiency and more stable convergence in experiments.
- Validated effectiveness across robotic control (Gym, PyBullet) and industrial control (DMControl) benchmarks.
Conclusions:
- EBP offers a more effective approach to policy priors by leveraging online data.
- The proposed methods enhance exploration, stability, and overall performance in online RL.
- EBP represents a significant advancement for practical applications of reinforcement learning.
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