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Robust Dynamic Material Handling via Adaptive Constrained Evolutionary Reinforcement Learning.
Summary
This study introduces an adaptive constrained evolutionary reinforcement learning (ACERL) approach for dynamic material handling (DMH). ACERL effectively addresses sparse rewards and constraints, demonstrating superior performance and robustness in real-world scenarios.
Area of Science:
- Operations Research
- Artificial Intelligence
- Robotics
Background:
- Dynamic material handling (DMH) requires real-time task assignment to minimize makespan and tardiness.
- Reinforcement learning (RL) shows promise for DMH but faces challenges like sparse rewards and constraint satisfaction.
- Adaptability to dynamic events and efficient use of historical data are critical for robust DMH policies.
Purpose of the Study:
- To propose a novel adaptive constrained evolutionary RL (ACERL) approach for dynamic material handling.
- To address challenges in DMH including sparse rewards, constraint violation, and efficient policy training.
- To improve the adaptability and robustness of decision policies in dynamic environments.
Main Methods:
- ACERL utilizes a population of actors for diverse exploration and to handle sparse rewards and constraint violations.
- The approach adaptively selects beneficial training instances to enhance policy learning.
- Extensive experiments were conducted on multiple training and unseen test instances, including noised scenarios.
Main Results:
- ACERL significantly outperforms state-of-the-art algorithms in dynamic material handling tasks.
- Trained policies successfully schedule vehicles while fully satisfying all constraints.
- Experiments demonstrate ACERL's outstanding performance, robustness on noised instances, and overall effectiveness via cross-validation.
Conclusions:
- The proposed ACERL approach offers a powerful solution for dynamic material handling problems.
- ACERL effectively balances performance optimization with strict constraint satisfaction.
- The adaptive and evolutionary components of ACERL are crucial for its robust and efficient operation.
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