Time series analysis applied to construct US natural gas price functions for groups of states
The study of natural gas markets took a considerably new direction after the liberalization of the natural gas markets during the early 1990s. As a result, several problems and research opportunities arose for those studying the natural gas supply chain, particularly the marketing operations. Consequently, various studies have been undertaken about the econometrics of natural gas. Several models have been developed and used for different purposes, from descriptive analysis to practical applications such as price and consumption forecasting. In this work, we address the problem of finding a pooled regression formula relating the monthly figures of price and consumption volumes for each state of the United States during the last twenty years. The model thus obtained is used as the basis for the development of two methods aimed at classifying the states into groups sharing a similar price/consumption relationship: a dendrogram application, and an heuristic algorithm. The details and further applications of these grouping techniques are discussed, along with the ultimate purpose of using this pooled regression model to validate data employed in the stochastic optimization problem studied by the authors.
Year of publication: |
2010
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Authors: | Kalashnikov, V.V. ; Matis, T.I. ; Pérez-Valdés, G.A. |
Published in: |
Energy Economics. - Elsevier, ISSN 0140-9883. - Vol. 32.2010, 4, p. 887-900
|
Publisher: |
Elsevier |
Subject: | Natural gas Regression Time series |
Saved in:
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