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This study extends previous work applying unsupervised machine learning to commodity markets. "Clustering Commodity Markets in Space and Time" [DOI: 10.1016/j.resourpol.2021.102162] examined returns and volatility in commodity markets. That paper supported the conventional ontology of commodity...
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-population model based approach to forecast the medium- (2020) to long- (2035) term natural gas demand in China. The adopted modelling … forecasting results show that China's natural gas demand will reach 330–370 billion m3 in the medium-term and 500–590 billion m3 … and international institutions and scholars. The growing natural gas demand will cause significant increase in import …
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Reliable and accurate day-ahead forecasting of natural gas consumption is vital for the operation of the Energy sector. Three different forecasting models are developed in this paper: The sigmoid function regression model, the feed-forward neural network, and the recurrent neural network model....
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