AIOct 15, 2025

STEMS: Spatial-Temporal Enhanced Safe Multi-Agent Coordination for Building Energy Management

arXiv:2510.14112v1h-index: 5IEEE Internet of Things Journal
Originality Incremental advance
AI Analysis

This addresses energy efficiency and safety for multi-building systems, representing a domain-specific incremental improvement.

The paper tackled coordinated building energy management by proposing STEMS, a safety-constrained multi-agent reinforcement learning framework, which achieved 21% cost reduction, 18% emission reduction, and reduced safety violations from 35.1% to 5.6% while maintaining comfort.

Building energy management is essential for achieving carbon reduction goals, improving occupant comfort, and reducing energy costs. Coordinated building energy management faces critical challenges in exploiting spatial-temporal dependencies while ensuring operational safety across multi-building systems. Current multi-building energy systems face three key challenges: insufficient spatial-temporal information exploitation, lack of rigorous safety guarantees, and system complexity. This paper proposes Spatial-Temporal Enhanced Safe Multi-Agent Coordination (STEMS), a novel safety-constrained multi-agent reinforcement learning framework for coordinated building energy management. STEMS integrates two core components: (1) a spatial-temporal graph representation learning framework using a GCN-Transformer fusion architecture to capture inter-building relationships and temporal patterns, and (2) a safety-constrained multi-agent RL algorithm incorporating Control Barrier Functions to provide mathematical safety guarantees. Extensive experiments on real-world building datasets demonstrate STEMS's superior performance over existing methods, showing that STEMS achieves 21% cost reduction, 18% emission reduction, and dramatically reduces safety violations from 35.1% to 5.6% while maintaining optimal comfort with only 0.13 discomfort proportion. The framework also demonstrates strong robustness during extreme weather conditions and maintains effectiveness across different building types.

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