A new multivariate grey prediction model for forecasting China’s regional energy consumption

被引:0
|
作者
Geng Wu
Yi-Chung Hu
Yu-Jing Chiu
Shu-Ju Tsao
机构
[1] Chung Yuan Christian University,Department of Business Administration
关键词
Grey prediction; Energy consumption; Grey relational analysis; Feature selection;
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中图分类号
学科分类号
摘要
Predicting energy consumption is an essential part of energy planning and management. The reliable prediction of regional energy consumption is crucial for the authority in China to formulate policies by with respect to the dual control of its energy consumption and energy intensity. Given that energy consumption is affected by a number of factors, this study proposes a non-homogeneous, discrete, multivariate grey prediction model based on adjacent accumulation to predict the regional energy consumption in China. Interestingly regional GDP was selected by grey relational analysis as the independent variable in the proposed model. The results show that it can outperform the other multivariate grey models considered in terms of predicting regional energy consumption in China. Moreover, we found that economic development and energy consumption of each region in China remain closely related. In the post-COVID-19 period, regional economic development will continue to grow and increase energy consumption.
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页码:4173 / 4193
页数:20
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