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Prediction of CO2 emission in transportation sector by computational intelligence techniques

Date

2022

Author

Cansız, Ömer Faruk
Ünsalan, Kevser
Üneş, Fatih

Metadata

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Citation

Cansiz, O.F., Unsalan, K., Unes, F. (2022). Prediction of CO2 emission in transportation sector by computational intelligence techniques. International Journal of Global Warming, 27 (3), pp. 271-283. https://doi.org/10.1504/IJGW.2022.124202

Abstract

Carbon footprint is considered the main cause of global warming. There are various studies on environmental sustainability carried out global scale. In this study, prediction models were developed for CO2 emissions in transportation sector. Artificial neural networks (ANN), simple membership functions and fuzzy rule generation technique (SMRGT), support vector machine (SVM) and adaptive neuro fuzzy inference system (ANFIS) methods, which are artificial intelligence techniques (AI), and also multiple linear regression (MLR), which is a statistical method, were used for the analysis. As a result of the comparison the best performance was seen in ANN model.

Source

International Journal of Global Warming

Volume

27

Issue

3

URI

https://doi.org/10.1504/IJGW.2022.124202
https://hdl.handle.net/20.500.12508/2181

Collections

  • Araştırma Çıktıları | Scopus İndeksli Yayınlar Koleksiyonu [1420]
  • Araştırma Çıktıları | Web of Science İndeksli Yayınlar Koleksiyonu [1460]
  • Makale Koleksiyonu [193]



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