To optimize the accuracy of ozone (O-3) concentration prediction, this paper proposes a combined prediction model of O-3 hourly concentration, FC-LsOA-KELM, which integrates multiple machine learning methods. The model has three parts. The first part is the feature construction (FC), which is based on correlation analysis and incorporates time-delay effect analysis to provide a valuable feature set. The second part is the kernel extreme learning machine (KELM), which can establish a complex mapping relationship between feature set and prediction object. The third part is the lioness optimization algorithm (LsOA), which is purposed to find the optimal parameter combination of KELM. Then, we use air pollution data from 11 cities on Fenwei Plain in China from 2 January 2015 to 30 December 2019 to test the validity of FC-LsOA-KELM and compare it with other prediction methods. The experimental results show that FC-LsOA-KELM can obtain better prediction results and has a better performance.
机构:
Cent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Natl Engn Res Ctr High Speed Railway Construct Te, Changsha 410075, Peoples R ChinaCent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Song, Li
Wang, Lian
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Cent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R ChinaCent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Wang, Lian
Sun, Hongshuo
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Cent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R ChinaCent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Sun, Hongshuo
Cui, Chenxing
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Cent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R ChinaCent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Cui, Chenxing
Yu, Zhiwu
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Cent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
Natl Engn Res Ctr High Speed Railway Construct Te, Changsha 410075, Peoples R ChinaCent South Univ, Sch Civil Engn, Changsha 410082, Hunan, Peoples R China
机构:
Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Tian, Yushan
Liu, Quanli
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Liu, Quanli
Ji, Yao
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Ji, Yao
Dang, Qiuling
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Dang, Qiuling
Sun, Yuanyuan
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Sun, Yuanyuan
He, Xiaosong
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
He, Xiaosong
Liu, Yue
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China
Liu, Yue
Su, Jing
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Chinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R ChinaChinese Res Inst Environm Sci, State Key Lab Environm Criteria & Risk Assessment, Beijing 100012, Peoples R China