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Fuzzy-Enhanced Smart Building Energy Forecasting: A Case Study from the 2025 GECAD Competition

  • Istanbul Technical University

Araştırma sonucu: Kitap/Rapor/Konferans Bildirisinde BölümKonferans katkısıbilirkişi

Özet

This paper presents a fuzzy-based approach for electric energy consumption forecasting in the context of the 2025 GECAD Competition on Electric Energy Consumption Forecast Adopting Multi-criteria Performance Metrics. The proposed methodology leverages fuzzified temperature features using triangular membership functions combined with time-ofday data to train and evaluate multiple regression models, including Random Forest, XGBoost, Support Vector Regression (SVR), Multilayer Perceptron (MLP) regressor, and Linear Regression. Experimental results demonstrate that the XGBoost model achieved the best root mean square error (RMSE) performance, with a value of 1601.59 on the test dataset, while the MLP regressor obtained the best mean absolute error (MAE), with a value of 1097.01. These findings highlight the effectiveness of fuzzy-enhanced feature engineering in improving the accuracy of energy consumption prediction tasks across different performance metrics.

Orijinal dilİngilizce
Ana bilgisayar yayını başlığı14th International Conference on Renewable Energy Research and Applications, ICRERA 2025
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
Sayfalar1737-1742
Sayfa sayısı6
ISBN (Elektronik)9798331599898
DOI'lar
Yayın durumuYayınlandı - 2025
Etkinlik14th International Conference on Renewable Energy Research and Applications, ICRERA 2025 - Vienna, Austria
Süre: 27 Eki 202530 Eki 2025

Yayın serisi

Adı14th International Conference on Renewable Energy Research and Applications, ICRERA 2025

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???event.eventtypes.event.conference???14th International Conference on Renewable Energy Research and Applications, ICRERA 2025
Ülke/BölgeAustria
ŞehirVienna
Periyot27/10/2530/10/25

Bibliyografik not

Publisher Copyright:
© 2025 IEEE.

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