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Hierarchical Deep Reinforcement Learning Framework for Optimizing Cross-asset Budget Allocation in Municipal Asset Management

  • 2025
  • OriginalPaper
  • Chapter
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Abstract

This chapter introduces a hierarchical deep reinforcement learning (HDRL) framework designed to optimize cross-asset budget allocation in municipal asset management. The framework integrates the soft-actor critic method at the system level with linear programming at the asset level, providing a dynamic and adaptive solution to the budget allocation problem. The case study focuses on optimizing maintenance, repair, and rehabilitation (MRR) budgets for arterial and collector road networks in a Canadian municipality. The study compares three different cases, demonstrating the effectiveness of the HDRL framework in enhancing the level of service (LOS) and ensuring equitable resource distribution. The results highlight the framework's ability to adapt to changing priorities and network needs over time, making it a promising tool for municipal asset management.

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Title
Hierarchical Deep Reinforcement Learning Framework for Optimizing Cross-asset Budget Allocation in Municipal Asset Management
Authors
Amir Keshvari Fard
Arnold Yuan
Copyright Year
2025
DOI
https://doi.org/10.1007/978-3-031-95421-4_21
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