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  1. National Taiwan Ocean University Research Hub
  2. 電機資訊學院
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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/20222
DC FieldValueLanguage
dc.contributor.authorChen, Chao-Rongen_US
dc.contributor.authorOuedraogo, Faouzi Briceen_US
dc.contributor.authorChang, Yu-Mingen_US
dc.contributor.authorLarasati, Devita Ayuen_US
dc.contributor.authorTan, Shih-Weien_US
dc.date.accessioned2022-02-10T02:50:50Z-
dc.date.available2022-02-10T02:50:50Z-
dc.date.issued2021-10-
dc.identifier.issn2227-7390-
dc.identifier.urihttp://scholars.ntou.edu.tw/handle/123456789/20222-
dc.description.abstractThe operational challenge of a photovoltaic (PV) integrated system is the uncertainty (irregularity) of the future power output. The integration and correct operation can be carried out with accurate forecasting of the PV output power. A distinct artificial intelligence method was employed in the present study to forecast the PV output power and investigate the accuracy using endogenous data. Discrete wavelet transforms were used to decompose PV output power into approximate and detailed components. The decomposed PV output was fed into an adaptive neuro-fuzzy inference system (ANFIS) input model to forecast the short-term PV power output. Various wavelet mother functions were also investigated, including Haar, Daubechies, Coiflets, and Symlets. The proposed model performance was highly correlated to the input set and wavelet mother function. The statistical performance of the wavelet-ANFIS was found to have better efficiency compared with the ANFIS and ANN models. In addition, wavelet-ANFIS coif2 and sym4 offer the best precision among all the studied models. The result highlights that the combination of wavelet decomposition and the ANFIS model can be a helpful tool for accurate short-term PV output forecasting and yield better efficiency and performance than the conventional model.en_US
dc.language.isoen_USen_US
dc.publisherMDPIen_US
dc.relation.ispartofMATHEMATICS-BASELen_US
dc.subjectNEURAL-NETWORKen_US
dc.subjectFUZZYen_US
dc.subjectPREDICTIONen_US
dc.subjectSYSTEMen_US
dc.subjectTERMen_US
dc.subjectDECOMPOSITIONen_US
dc.subjectPERFORMANCEen_US
dc.titleHour-Ahead Photovoltaic Output Forecasting Using Wavelet-ANFISen_US
dc.typejournal articleen_US
dc.identifier.doi10.3390/math9192438-
dc.identifier.isiWOS:000745229000001-
dc.relation.journalvolume9en_US
dc.relation.journalissue19en_US
item.openairecristypehttp://purl.org/coar/resource_type/c_6501-
item.cerifentitytypePublications-
item.languageiso639-1en_US-
item.fulltextno fulltext-
item.grantfulltextnone-
item.openairetypejournal article-
crisitem.author.deptCollege of Electrical Engineering and Computer Science-
crisitem.author.deptDepartment of Electrical Engineering-
crisitem.author.deptNational Taiwan Ocean University,NTOU-
crisitem.author.deptCenter of Excellence for Ocean Engineering-
crisitem.author.deptData Analysis and Administrative Support-
crisitem.author.parentorgNational Taiwan Ocean University,NTOU-
crisitem.author.parentorgCollege of Electrical Engineering and Computer Science-
crisitem.author.parentorgNational Taiwan Ocean University,NTOU-
crisitem.author.parentorgCenter of Excellence for Ocean Engineering-
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電機工程學系
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