Transforming Cooling Optimization for Green Data Center via Deep Reinforcement Learning
Yuanlong Li, Yonggang Wen, Kyle Guan, Dacheng Tao

TL;DR
This paper introduces a deep reinforcement learning-based control algorithm for data center cooling, achieving significant energy cost savings in simulations and real data traces by optimizing cooling policies with minimal modeling assumptions.
Contribution
It presents an end-to-end DRL cooling control algorithm (CCA) that outperforms traditional methods by directly learning from monitoring data without relying on complex system models.
Findings
11% cooling cost reduction in simulations
15% cooling energy savings on real data trace
Effective validation mechanism for real-world application
Abstract
Cooling system plays a critical role in a modern data center (DC). Developing an optimal control policy for DC cooling system is a challenging task. The prevailing approaches often rely on approximating system models that are built upon the knowledge of mechanical cooling, electrical and thermal management, which is difficult to design and may lead to sub-optimal or unstable performances. In this paper, we propose utilizing the large amount of monitoring data in DC to optimize the control policy. To do so, we cast the cooling control policy design into an energy cost minimization problem with temperature constraints, and tap it into the emerging deep reinforcement learning (DRL) framework. Specifically, we propose an end-to-end cooling control algorithm (CCA) that is based on the actor-critic framework and an off-policy offline version of the deep deterministic policy gradient (DDPG)…
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Taxonomy
TopicsReinforcement Learning in Robotics · Smart Grid Energy Management · Adaptive Dynamic Programming Control
