Enhancing energy savings verification in industrial settings using deep learning and anomaly detection within the IPMVP framework

被引:0
|
作者
Sukarti, Suziee [1 ]
Sulaima, Mohamad Fani [1 ]
Kadir, Aida Fazliana Abdul [1 ]
Zulkafli, Nur Izyan [2 ]
Othman, Mohammad Lutfi [3 ]
Hanak, Dawid P. [4 ]
机构
[1] Univ Tek Malaysia Melaka, Fak Teknol dan Kejuruteraan Elekt, Hang Tuah Jaya 76100, Melaka, Malaysia
[2] Univ Tek Malaysia Melaka, Fak Teknol & Kejuruteraan Mekanikal, Hang Tuah Jaya 76100, Melaka, Malaysia
[3] Univ Putra Malaysia, Fac Engn, Jalan Univ 1, Serdang 43400, Selangor, Malaysia
[4] Teesside Univ, Net Zero Ind Innovat Ctr, Ferrous Rd, Middlesbrough TS2 1DJ, England
关键词
Energy Savings Verification; Deep Learning; Measurement & Verification; Anomaly Detection; IPMVP Framework; Energy Efficiency; MODEL-PREDICTIVE CONTROL; NEURAL-NETWORK; BUILDINGS; LOAD; SYSTEM; UNCERTAINTY;
D O I
10.1016/j.enbuild.2024.115096
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study advances industrial energy Measurement and Verification (M&V) practices by integrating Deep Learning (DL) techniques with automated anomaly detection, challenging traditional M&V reliance on manual non-routine adjustments. The research explores whether automated, data-driven anomaly detection can replace these adjustments, enhancing accuracy and efficiency in energy savings verification post-energy conservation measures (ECMs)-a critical need for industrial applications. Utilizing a dataset with 30-minute to weekly interval readings, CNN, DNN, and RNN models were applied across 12 datasets to identify the most effective model for baseline prediction using key IPMVP performance metrics (CVRMSE, NMBE, R2) alongside MAPE and RMSE. The baseline modelling findings indicate that DNN performs optimally at 30-minute intervals (R2 = 0.9600, RMSE = 22.82), hourly intervals (R2 = 0.9581, RMSE = 23.27), and daily intervals (R2 = 0.9347, RMSE = 28.00). CNN, however, demonstrated the best performance for weekly intervals (R2 = 0.8875, RMSE = 31.91). DNN provides the best overall performance across most intervals, offering a reliable balance of accuracy and practicality for regular energy baseline prediction. For anomaly detection and savings impact, the 30-minute RNN model achieved the highest estimated savings of 4.38 million kWh which translates to 27.35 % of the total energy consumption of 16,000,000 kWh with a low standard error (0.634 kWh), demonstrating strong predictive precision. Across all frequencies, savings estimates exceeded twice the standard error, meeting IPMVP acceptability criteria and confirming the robustness of this approach. These findings substantiate that deep learning-based anomaly detection can effectively replace traditional non-routine adjustments, providing a reliable, streamlined solution for energy savings calculations. Visualizations within the study illustrate the model's enhancements, with comparative charts showing both original and anomaly-adjusted energy consumption and savings. This study contributes to the M&V field by demonstrating that, when integrated into the IPMVP framework, anomaly detection offers an efficient and accurate method for energy savings verification, paving the way for more streamlined, data-driven M&V processes in industrial settings. Additionally, it provides insights into optimizing deep learning models for energy data analysis, supporting quicker, more precise energy management decisions.
引用
收藏
页数:21
相关论文
共 50 条
  • [31] Applications of Anomaly Detection using Deep Learning on Time Series Data
    Van Quan Nguyen
    Linh Van Ma
    Kim, Jin-young
    Kim, Kwangki
    Kim, Jinsul
    2018 16TH IEEE INT CONF ON DEPENDABLE, AUTONOM AND SECURE COMP, 16TH IEEE INT CONF ON PERVAS INTELLIGENCE AND COMP, 4TH IEEE INT CONF ON BIG DATA INTELLIGENCE AND COMP, 3RD IEEE CYBER SCI AND TECHNOL CONGRESS (DASC/PICOM/DATACOM/CYBERSCITECH), 2018, : 393 - 396
  • [32] BINet: Multivariate Business Process Anomaly Detection Using Deep Learning
    Nolle, Timo
    Seeliger, Alexander
    Muhlhauser, Max
    BUSINESS PROCESS MANAGEMENT (BPM 2018), 2018, 11080 : 271 - 287
  • [33] Web Application Firewall Based on Anomaly Detection using Deep Learning
    Toprak, Sezer
    Yavuz, Ali Gokhan
    ACTA INFOLOGICA, 2022, 6 (02): : 219 - 244
  • [34] Smart Grid Anomaly Detection using a Deep Learning Digital Twin
    Danilczyk, William
    Sun, Yan
    He, Haibo
    2020 52ND NORTH AMERICAN POWER SYMPOSIUM (NAPS), 2021,
  • [35] Anomaly Detection with Noisy and Missing Data using a Deep Learning Architecture
    Thomopoulos, Stelios C. A.
    Kyriakopoulos, Christos
    SIGNAL PROCESSING, SENSOR/INFORMATION FUSION, AND TARGET RECOGNITION XXX, 2021, 11756
  • [36] An ensemble learning framework for anomaly detection in building energy consumption
    Araya, Daniel B.
    Grolinger, Katarina
    ElYamany, Hany F.
    Capretz, Miriam A. M.
    Bitsuamlak, Girma
    ENERGY AND BUILDINGS, 2017, 144 : 191 - 206
  • [37] Green Energy Efficient Routing with Deep Learning Based Anomaly Detection for Internet of Things (IoT) Communications
    Lydia, E. Laxmi
    Jovith, A. Arokiaraj
    Devaraj, A. Francis Saviour
    Seo, Changho
    Joshi, Gyanendra Prasad
    MATHEMATICS, 2021, 9 (05) : 1 - 18
  • [38] Hyperspectral Anomaly Detection Using Deep Learning: A Review
    Hu, Xing
    Xie, Chun
    Fan, Zhe
    Duan, Qianqian
    Zhang, Dawei
    Jiang, Linhua
    Wei, Xian
    Hong, Danfeng
    Li, Guoqiang
    Zeng, Xinhua
    Chen, Wenming
    Wu, Dongfang
    Chanussot, Jocelyn
    REMOTE SENSING, 2022, 14 (09)
  • [39] SADDLE: Spacecraft Anomaly Detection using Deep Learning
    Srivastava, Ankit
    Badal, Neeraj
    Manoj, B. S.
    2024 IEEE SPACE, AEROSPACE AND DEFENCE CONFERENCE, SPACE 2024, 2024, : 128 - 131
  • [40] A review on anomaly detection techniques using deep learning
    NOMURA Y.
    Zairyo/Journal of the Society of Materials Science, Japan, 2020, 69 (09) : 650 - 656