Estimates of energy consumption in Turkey using neural networks with the teaching–learning-based optimization algorithm

The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching–learning-based optimization) algorithm to estimate energy consumption in Turkey. Gross domestic product, population, import, and export data were selected as independent variables i...

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Vydáno v:Energy (Oxford) Ročník 75; s. 295 - 303
Hlavní autoři: Uzlu, Ergun, Kankal, Murat, Akpınar, Adem, Dede, Tayfun
Médium: Journal Article Konferenční příspěvek
Jazyk:angličtina
Vydáno: Kidlington Elsevier Ltd 01.10.2014
Elsevier
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ISSN:0360-5442
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Abstract The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching–learning-based optimization) algorithm to estimate energy consumption in Turkey. Gross domestic product, population, import, and export data were selected as independent variables in the model. Performances of the ANN–TLBO model and the classical back propagation-trained ANN model (ANN–BP (teaching–learning-based optimization) model) were compared by using various error criteria to evaluate the model accuracy. Errors of the training and testing datasets showed that the ANN–TLBO model better predicted the energy consumption compared to the ANN–BP model. After determining the best configuration for the ANN–TLBO model, the energy consumption values for Turkey were predicted under three scenarios. The forecasted results were compared between scenarios and with projections by the MENR (Ministry of Energy and Natural Resources). Compared to the MENR projections, all of the analyzed scenarios gave lower estimates of energy consumption and predicted that Turkey's energy consumption would vary between 142.7 and 158.0 Mtoe (million tons of oil equivalent) in 2020. •This study is associated with predicting energy consumption in Turkey.•GDP (gross domestic product), population, import and export were used as predictor variables.•TLBO (teaching–learning-based optimization) and BP (back-propagation) were used to train ANNs (artificial neural networks).•ANN–TLBO predicted the energy consumption more accurately than ANN–BP.•Using the ANN–TLBO model, the energy consumption was forecasted until 2020.
AbstractList The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching–learning-based optimization) algorithm to estimate energy consumption in Turkey. Gross domestic product, population, import, and export data were selected as independent variables in the model. Performances of the ANN–TLBO model and the classical back propagation-trained ANN model (ANN–BP (teaching–learning-based optimization) model) were compared by using various error criteria to evaluate the model accuracy. Errors of the training and testing datasets showed that the ANN–TLBO model better predicted the energy consumption compared to the ANN–BP model. After determining the best configuration for the ANN–TLBO model, the energy consumption values for Turkey were predicted under three scenarios. The forecasted results were compared between scenarios and with projections by the MENR (Ministry of Energy and Natural Resources). Compared to the MENR projections, all of the analyzed scenarios gave lower estimates of energy consumption and predicted that Turkey's energy consumption would vary between 142.7 and 158.0 Mtoe (million tons of oil equivalent) in 2020. •This study is associated with predicting energy consumption in Turkey.•GDP (gross domestic product), population, import and export were used as predictor variables.•TLBO (teaching–learning-based optimization) and BP (back-propagation) were used to train ANNs (artificial neural networks).•ANN–TLBO predicted the energy consumption more accurately than ANN–BP.•Using the ANN–TLBO model, the energy consumption was forecasted until 2020.
The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching–learning-based optimization) algorithm to estimate energy consumption in Turkey. Gross domestic product, population, import, and export data were selected as independent variables in the model. Performances of the ANN–TLBO model and the classical back propagation-trained ANN model (ANN–BP (teaching–learning-based optimization) model) were compared by using various error criteria to evaluate the model accuracy. Errors of the training and testing datasets showed that the ANN–TLBO model better predicted the energy consumption compared to the ANN–BP model. After determining the best configuration for the ANN–TLBO model, the energy consumption values for Turkey were predicted under three scenarios. The forecasted results were compared between scenarios and with projections by the MENR (Ministry of Energy and Natural Resources). Compared to the MENR projections, all of the analyzed scenarios gave lower estimates of energy consumption and predicted that Turkey's energy consumption would vary between 142.7 and 158.0 Mtoe (million tons of oil equivalent) in 2020.
Author Akpınar, Adem
Kankal, Murat
Dede, Tayfun
Uzlu, Ergun
Author_xml – sequence: 1
  givenname: Ergun
  surname: Uzlu
  fullname: Uzlu, Ergun
  email: uzluergun@gmail.com, ergunuzlu@hotmail.com
  organization: Karadeniz Technical University, Faculty of Engineering, Department of Civil Engineering, 61080 Trabzon, Turkey
– sequence: 2
  givenname: Murat
  surname: Kankal
  fullname: Kankal, Murat
  organization: Karadeniz Technical University, Faculty of Engineering, Department of Civil Engineering, 61080 Trabzon, Turkey
– sequence: 3
  givenname: Adem
  surname: Akpınar
  fullname: Akpınar, Adem
  organization: Uludağ University, Faculty of Engineering, Department of Civil Engineering, 16059 Bursa, Turkey
– sequence: 4
  givenname: Tayfun
  surname: Dede
  fullname: Dede, Tayfun
  organization: Karadeniz Technical University, Faculty of Engineering, Department of Civil Engineering, 61080 Trabzon, Turkey
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Keywords Teaching–learning-based optimization algorithm
Turkey
Energy consumption/demand
Neural networks
Energy consumption
Neural network
Algorithm
Optimization
Teaching
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Snippet The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching–learning-based optimization) algorithm...
The main objective of the present study was to apply the ANN (artificial neural network) model with the TLBO (teaching-learning-based optimization) algorithm...
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SubjectTerms Algorithms
Applied sciences
data collection
Energy
Energy consumption
Energy consumption/demand
Estimates
Exact sciences and technology
exports
gross domestic product
imports
Learning theory
Mathematical models
natural resources
Neural networks
oils
Optimization
Projection
Teaching–learning-based optimization algorithm
Turkey
Turkey (country)
Title Estimates of energy consumption in Turkey using neural networks with the teaching–learning-based optimization algorithm
URI https://dx.doi.org/10.1016/j.energy.2014.07.078
https://www.proquest.com/docview/1651391363
https://www.proquest.com/docview/2000538474
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