Abstract
The Mixed-Shelves Picker Routing Problem (MSPRP) is a fundamental challenge in warehouse logistics, where pickers must navigate a mixed-shelves environment to retrieve SKUs efficiently. Traditional heuristics and optimization-based approaches struggle with scalability, while recent machine learning methods often rely on sequential decision-making, leading to high solution latency and suboptimal agent coordination. In this work, we propose a novel hierarchical and parallel decoding approach for solving the min-max variant of the MSPRP via multi-agent reinforcement learning. While our approach generates a joint distribution over agent actions, allowing for fast decoding and effective picker coordination, our method introduces a sequential action selection to avoid conflicts in the multi-dimensional action space. Experiments show state-of-the-art performance in both solution quality and inference speed, particularly for large-scale and out-of-distribution instances. Our code is publicly available at http://github.com/LTluttmann/marl4msprp.
| Original language | English |
|---|---|
| Title of host publication | Learning and Intelligent Optimization : 19th International Conference, LION 19, Prague, Czech Republic, June 15–19, 2025, Proceedings, Part I |
| Editors | Yingqian Zhang, Milan Hladik, Hossein Moosaei |
| Number of pages | 20 |
| Volume | 1 |
| Publisher | Springer International Publishing |
| Publication date | 02.01.2026 |
| Pages | 32-51 |
| ISBN (Print) | 9783032091550 |
| ISBN (Electronic) | 978-3-032-09156-7 |
| DOIs | |
| Publication status | Published - 02.01.2026 |
Bibliographical note
Publisher Copyright:© The Author(s), under exclusive license to Springer Nature Switzerland AG 2026.
Research areas and keywords
- Mixed-Shelves Warehouses
- Multi-Agent Reinforcement Learning
- Neural Combinatorial Optimization
- Picker Routing
- Business informatics
ASJC Scopus Subject Areas
- Theoretical Computer Science
- General Computer Science
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