DocumentCode :
3725306
Title :
Hybrid model of gas price prediction using moving average and neural network
Author :
Anita Thakur;Saswat Kumar;Aishwarya Tiwari
Author_Institution :
Amity School of Engineering and Technology, Amity University, Noida, India
fYear :
2015
Firstpage :
735
Lastpage :
737
Abstract :
The accurate prediction of gas price is very crucial for the producer and consumer. Producer can maximize their profit and manage short term operation and long term planning with the accurate price prediction. Meanwhile, consumer can maximize their utilities efficiently. This paper presents hybrid model for gas price prediction using back-propagation neural network along moving average approach. The actual data from 1998-2015 is extracted from American energy information ad- ministration (EIA) and multi-layer neural network is train with Levenberg-Marquardt algorithm.
Keywords :
"Biological neural networks","Neurons","Training","Forecasting","Mathematical model","Predictive models"
Publisher :
ieee
Conference_Titel :
Next Generation Computing Technologies (NGCT), 2015 1st International Conference on
Type :
conf
DOI :
10.1109/NGCT.2015.7375218
Filename :
7375218
Link To Document :
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