arXiv:2505.02543cs.ROcs.SY2025-05

用实测数据建模工业物联网能耗,帮自动化系统省电。

Data-Driven Energy Modeling of Industrial IoT Systems: A Benchmarking Approach

  • 通过真实设备跑微基准测试,收集能耗数据
  • 用机器学习模型预测应用和系统的能耗,准确率高
  • 适合想优化工业物联网能效的研究者和工程师

工业物联网(IIoT)的普及推动了制造环境中网络物理系统(CPS)的发展,通过自动化流程提升效率。但自主系统运行带来显著能耗成本。传统基于物理和工程的方法难以全面解决能耗建模问题。本文提出一种新方法,通过基准测试与分析,揭示IIoT设备和应用的功耗特征。我们构建了一个包含教育机器人臂、传送带、智能相机和计算节点的工业CPS实验平台,设计微基准测试和端到端应用,生成大规模性能与能耗数据集,并基于此训练和分析机器学习模型,实现从应用与系统特征预测能耗。该方法为研究者和从业者提供了工业CPS能量动态的实用洞察,助力提高物联网驱动自动化的能效与可持续性。

原文摘要 · Abstract (English)

The widespread adoption of IoT has driven the development of cyber-physical systems (CPS) in industrial environments, leveraging Industrial IoTs (IIoTs) to automate manufacturing processes and enhance productivity. The transition to autonomous systems introduces significant operational costs, particularly in terms of energy consumption. Accurate modeling and prediction of IIoT energy requirements are critical, but traditional physics- and engineering-based approaches often fall short in addressing these challenges comprehensively. In this paper, we propose a novel methodology for benchmarking and analyzing IIoT devices and applications to uncover insights into their power demands, energy consumption, and performance. To demonstrate this methodology, we develop a comprehensive framework and apply it to study an industrial CPS comprising an educational robotic arm, a conveyor belt, a smart camera, and a compute node. By creating micro-benchmarks and an end-to-end application within this framework, we create an extensive performance and power consumption dataset, which we use to train and analyze ML models for predicting energy usage from features of the application and the CPS system. The proposed methodology and framework provide valuable insights into the energy dynamics of industrial CPS, offering practical implications for researchers and practitioners aiming to enhance the efficiency and sustainability of IIoT-driven automation.

能耗建模工业物联网机器学习

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