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김윤호

Kim, Yunho
Mathematical Imaging Analysis Lab.
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dc.citation.endPage 35696 -
dc.citation.startPage 35680 -
dc.citation.title IEEE ACCESS -
dc.citation.volume 11 -
dc.contributor.author Toharudin, Toni -
dc.contributor.author Caraka, Rezzy Eko -
dc.contributor.author Pratiwi, Indah Reski -
dc.contributor.author Kim, Yunho -
dc.contributor.author Gio, Prana Ugiana -
dc.contributor.author Sakti, Anjar Dimara -
dc.contributor.author Noh, Maengseok -
dc.contributor.author Nugraha, Farid Azhar Lutfi -
dc.contributor.author Pontoh, Resa Septiani -
dc.contributor.author Putri, Tafia Hasna -
dc.contributor.author Azzahra, Thalita Safa -
dc.contributor.author Cerelia, Jessica Jesslyn -
dc.contributor.author Darmawan, Gumgum -
dc.contributor.author Pardamean, Bens -
dc.date.accessioned 2023-12-21T12:43:21Z -
dc.date.available 2023-12-21T12:43:21Z -
dc.date.created 2023-04-04 -
dc.date.issued 2023-04 -
dc.description.abstract Air quality conditions are now more severe in the Jakarta area that is among the world’s top eight worst cities according to the 2022 Air Quality Index (AQI) report. In particular, the data from the Meteorological, Climatological, and Geophysical Agency (BMKG) of the Republic of Indonesia, the latest outcomes in air quality conditions in Jakarta and surrounding areas, says that PM2.5 concentrations have increased and peaked at 148 μg/m3 in 2022. While a classification system for this pollution is necessary and critical, the observation of PM2.5 concentrations measured through the BMKG Kemayoran station, Jakarta, turns out to be identified as an unbalanced data class. Thus, in this work, we perform boosting algorithm supervised learning to handle such an unbalanced classification toward PM2.5 concentration levels by observing meteorological patterns in Jakarta during 1 January 2015 to 7 July 2022. The boosting algorithms considered in this research include Adaptive Boosting (AdaBoost), Extreme Gradient Boosting (XGBoost), Categorical Boosting (CatBoost), and Light Gradient Boosting Machine (LightGBM). Our simulations have proven that boosting classification can significantly reduce bias in combination with variance reduction with unbalanced within-class coefficients, with the classification of PM2.5 class values: good 62%, moderate 34%, and unhealthy 59%, respectively. -
dc.identifier.bibliographicCitation IEEE ACCESS, v.11, pp.35680 - 35696 -
dc.identifier.doi 10.1109/ACCESS.2023.3265019 -
dc.identifier.issn 2169-3536 -
dc.identifier.scopusid 2-s2.0-85153341790 -
dc.identifier.uri https://scholarworks.unist.ac.kr/handle/201301/62468 -
dc.identifier.wosid 000972152700001 -
dc.language 영어 -
dc.publisher Institute of Electrical and Electronics Engineers Inc. -
dc.title Boosting Algorithm to handle Unbalanced Classification of PM2.5 Concentration Levels by Observing Meteorological Parameters in Jakarta-Indonesia using AdaBoost, XGBoost, CatBoost, and LightGBM -
dc.type Article -
dc.description.isOpenAccess TRUE -
dc.relation.journalWebOfScienceCategory Computer Science, Information Systems;Engineering, Electrical & Electronic;Telecommunications -
dc.relation.journalResearchArea Computer Science;Engineering;Telecommunications -
dc.type.docType Article -
dc.description.journalRegisteredClass scie -
dc.description.journalRegisteredClass scopus -
dc.subject.keywordAuthor AdaBoost -
dc.subject.keywordAuthor Boosting -
dc.subject.keywordAuthor CatBoost -
dc.subject.keywordAuthor LightGBM -
dc.subject.keywordAuthor PM2.5 -
dc.subject.keywordAuthor unbalanced classification -
dc.subject.keywordAuthor XGBoost -
dc.subject.keywordPlus BIG DATA -
dc.subject.keywordPlus MODEL -
dc.subject.keywordPlus MORTALITY -
dc.subject.keywordPlus FEATURES -
dc.subject.keywordPlus SUPPORT -

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