This study proposes a decomposition-ensemble based carbon price forecasting model, which integrates ensemble empirical mode decomposition (EEMD) with local polynomial prediction (LPP). The EEMD method is used to decompose carbon price time series into several components, including some intrinsic mode functions (IMFs) and one residue. Motivated by the fully local characteristics of a time series decomposed by EEMD, we adopt the traditional LPP and regularized LPP (RLPP) to forecast each component. This led to two forecasting models, called the EEMD-LPP and EEMD-RLPP, respectively. Based on the fine-to-coarse reconstruction principle, an auto regressive integrated moving average (ARIMA) approach is used to forecast the high frequency IMFs, and LPP and RLPP is applied to forecast the low frequency IMFs and the residue. The study also proposes two other forecasting models, called the EEMD-ARIMA-LPP and EEMD-ARIMA-RLPP. The empirical study results showed that the EEMD-LPP and EEMD-ARIMA-LPP outperform the two other models. Furthermore, we examine the robustness and effects of parameter settings in the proposed model. Compared with existing state-of-art approaches, the results demonstrate that EEMD-ARIMA-LPP and EEMD-LPP can achieve higher level and directional predictions and higher robustness. The EEMD-LPP and EEMD-ARIMA-LPP are promising approaches for carbon price forecasting.
机构:
School of Artificial Intelligence, Shenyang University of Technology, Shenyang,110870, ChinaSchool of Artificial Intelligence, Shenyang University of Technology, Shenyang,110870, China
Tian, Zhongda
Chen, Hao
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School of Artificial Intelligence, Shenyang University of Technology, Shenyang,110870, ChinaSchool of Artificial Intelligence, Shenyang University of Technology, Shenyang,110870, China
机构:
North China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R ChinaNorth China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R China
Yang, Di
Liu, Da
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North China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R ChinaNorth China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R China
Liu, Da
Zhang, Guowei
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North China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R ChinaNorth China Elect Power Univ, Sch Econ & Management, Beijing 102206, Peoples R China
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Hong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R ChinaHong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Li, Xiang
Zhang, Yongqi
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Hong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R ChinaHong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Zhang, Yongqi
Chen, Lei
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Hong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Hong Kong Univ Sci & Technol, Dept Comp Sci & Engn, Hong Kong 999077, Peoples R ChinaHong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Chen, Lei
Li, Jia
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Hong Kong Univ Sci & Technol Guangzhou, Thrust Carbon Neutral & Climate Change, Guangzhou 511453, Peoples R ChinaHong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Li, Jia
Chu, Xiaowen
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Hong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China
Hong Kong Univ Sci & Technol, Dept Comp Sci & Engn, Hong Kong 999077, Peoples R ChinaHong Kong Univ Sci & Technol Guangzhou, Thrust Data Sci & Analyt, Guangzhou 511453, Peoples R China