Adaptive Neural Network Prediction for Energy Consumption
This paper discusses on the adaptive neural network model for predicting the energy consumption at a metering station. The function of the metering system is to calculate the energy consumption of the outgoing gas flow. To ensure the robustness of the developed model, it is suggested to make the mod...
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my.utp.eprints.53852017-01-19T08:22:54Z Adaptive Neural Network Prediction for Energy Consumption Ismail, M. J. Ibrahim, R. Ismail, Idris TK Electrical engineering. Electronics Nuclear engineering This paper discusses on the adaptive neural network model for predicting the energy consumption at a metering station. The function of the metering system is to calculate the energy consumption of the outgoing gas flow. To ensure the robustness of the developed model, it is suggested to make the model an adaptive model that will periodically update the weights. This will ensure the reliability of the model. A dynamic prediction model that can adapt itself to changes in the energy consumption pattern is desirable especially for short-term energy prediction. It is also important for an on- line running of the metering system. Two methods of weights update are proposed and tested, namely the accumulative training and sliding window training. The developed adaptive neural network model is then compared with the static neural network. Adaptive neural network for energy consumption has shown better result and recommended for implementation in the metering station. 2011-03-11 Conference or Workshop Item PeerReviewed application/pdf http://eprints.utp.edu.my/5385/1/ICSEM_maryamjamela__rev2_March11.pdf Ismail, M. J. and Ibrahim, R. and Ismail, Idris (2011) Adaptive Neural Network Prediction for Energy Consumption. In: 2011 International Conference on System Engineering and Modeling, 11 - 13 March 2011, Shanghai, China. (Submitted) http://eprints.utp.edu.my/5385/ |
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TK Electrical engineering. Electronics Nuclear engineering Ismail, M. J. Ibrahim, R. Ismail, Idris Adaptive Neural Network Prediction for Energy Consumption |
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This paper discusses on the adaptive neural network model for predicting the energy consumption at a metering station. The function of the metering system is to calculate the energy consumption of the outgoing gas flow. To ensure the robustness of the developed model, it is suggested to make the model an adaptive model that will periodically update the weights. This will ensure the reliability of the model. A dynamic prediction model that can adapt itself to changes in the energy consumption pattern is desirable especially for short-term energy prediction. It is also important for an on- line running of the metering system. Two methods of weights update are proposed and tested, namely the accumulative training and sliding window training. The developed adaptive neural network model is then compared with the static neural network. Adaptive neural network for energy consumption has shown better result and recommended for implementation in the metering station. |
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Conference or Workshop Item |
author |
Ismail, M. J. Ibrahim, R. Ismail, Idris |
author_facet |
Ismail, M. J. Ibrahim, R. Ismail, Idris |
author_sort |
Ismail, M. J. |
title |
Adaptive Neural Network Prediction for Energy Consumption |
title_short |
Adaptive Neural Network Prediction for Energy Consumption |
title_full |
Adaptive Neural Network Prediction for Energy Consumption |
title_fullStr |
Adaptive Neural Network Prediction for Energy Consumption |
title_full_unstemmed |
Adaptive Neural Network Prediction for Energy Consumption |
title_sort |
adaptive neural network prediction for energy consumption |
publishDate |
2011 |
url |
http://eprints.utp.edu.my/5385/1/ICSEM_maryamjamela__rev2_March11.pdf http://eprints.utp.edu.my/5385/ |
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1738655401643081728 |
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13.209306 |