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Forecasting natural gas consumption in Istanbul using neural networks and multivariate time series methods

İsim Forecasting natural gas consumption in Istanbul using neural networks and multivariate time series methods
Yazar Demirel, Ö. F., Zaim, S., Çalışkan, A., Özuyar, Pınar Gökçin
Basım Tarihi: 2012
Basım Yeri - TÜBİTAK
Konu Forecasting, Neural networks, Natural gas, Time series
Tür Süreli Yayın
Dil İngilizce
Dijital Evet
Yazma Hayır
Kütüphane: Özyeğin Üniversitesi
Demirbaş Numarası 1303-6203
Kayıt Numarası 51631f67-ff4c-41b4-b445-d3ddf14b813f
Lokasyon Entrepreneurship
Tarih 2012
Örnek Metin The fast changes and developments in the world's economy have substantially increased energy consumption. Consequently, energy planning has become more critical and important. Forecasting is one of the main tools utilized in energy planning. Recently developed computational techniques such as genetic algorithms have led to easily produced and accurate forecasts. In this paper, a natural gas consumption forecasting methodology is developed and implemented with state-of-the-art techniques. We show that our forecasts are quite close to real consumption values. Accurate forecasting of natural gas consumption is extremely critical as the majority of purchasing agreements made are based on predictions. As a result, if the forecasts are not done correctly, either unused natural gas amounts must be paid or there will be shortages of natural gas in the planning periods.
DOI 10.3906/elk-1101-1029
Cilt 20
Kaynağa git Özyeğin Üniversitesi Özyeğin Üniversitesi
Özyeğin Üniversitesi Özyeğin Üniversitesi
Kaynağa git

Forecasting natural gas consumption in Istanbul using neural networks and multivariate time series methods

Yazar Demirel, Ö. F., Zaim, S., Çalışkan, A., Özuyar, Pınar Gökçin
Basım Tarihi 2012
Basım Yeri - TÜBİTAK
Konu Forecasting, Neural networks, Natural gas, Time series
Tür Süreli Yayın
Dil İngilizce
Dijital Evet
Yazma Hayır
Kütüphane Özyeğin Üniversitesi
Demirbaş Numarası 1303-6203
Kayıt Numarası 51631f67-ff4c-41b4-b445-d3ddf14b813f
Lokasyon Entrepreneurship
Tarih 2012
Örnek Metin The fast changes and developments in the world's economy have substantially increased energy consumption. Consequently, energy planning has become more critical and important. Forecasting is one of the main tools utilized in energy planning. Recently developed computational techniques such as genetic algorithms have led to easily produced and accurate forecasts. In this paper, a natural gas consumption forecasting methodology is developed and implemented with state-of-the-art techniques. We show that our forecasts are quite close to real consumption values. Accurate forecasting of natural gas consumption is extremely critical as the majority of purchasing agreements made are based on predictions. As a result, if the forecasts are not done correctly, either unused natural gas amounts must be paid or there will be shortages of natural gas in the planning periods.
DOI 10.3906/elk-1101-1029
Cilt 20
Özyeğin Üniversitesi
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