Predicting haze phenomenon using chaos theory in industrial area in malaysia

Predicting the occurrence of haze is of great importance due to its negative impact on human health, the environment, and the economy. This study aims to develop a model for predicting haze using chaos theory. The data were taken from an industrial area, Klang, Selangor Malaysia during Southwest Mon...

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Main Authors: Hazlina Darman, Nor Zila Abd Hamid
Format: Article
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2024
Online Access:http://journalarticle.ukm.my/23628/
http://journalarticle.ukm.my/23628/1/Paper_12%20-.pdf
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author Hazlina Darman,
Nor Zila Abd Hamid,
author_facet Hazlina Darman,
Nor Zila Abd Hamid,
author_sort Hazlina Darman,
building UKM Institutional Repository
collection Online Access
description Predicting the occurrence of haze is of great importance due to its negative impact on human health, the environment, and the economy. This study aims to develop a model for predicting haze using chaos theory. The data were taken from an industrial area, Klang, Selangor Malaysia during Southwest Monsoon. The model is trained using historical data on haze occurrences and the accuracy of the prediction is evaluated using a testing dataset. A chaos model, namely local mean approximation method (LMAM) will be used to predict the haze phenomenon. Results show that the chaos-based approach is effective in forecasting the onset and duration of haze events. The predicting model can provide early warnings for policymakers and relevant authorities, enabling them to take proactive measures to mitigate the effects of haze on public health and the environment. The model also presents a promising alternative to traditional forecasting techniques and highlights the potential applications of chaos theory in atmospheric science.
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spelling oai:generic.eprints.org:236282024-06-10T01:33:10Z http://journalarticle.ukm.my/23628/ Predicting haze phenomenon using chaos theory in industrial area in malaysia Hazlina Darman, Nor Zila Abd Hamid, Predicting the occurrence of haze is of great importance due to its negative impact on human health, the environment, and the economy. This study aims to develop a model for predicting haze using chaos theory. The data were taken from an industrial area, Klang, Selangor Malaysia during Southwest Monsoon. The model is trained using historical data on haze occurrences and the accuracy of the prediction is evaluated using a testing dataset. A chaos model, namely local mean approximation method (LMAM) will be used to predict the haze phenomenon. Results show that the chaos-based approach is effective in forecasting the onset and duration of haze events. The predicting model can provide early warnings for policymakers and relevant authorities, enabling them to take proactive measures to mitigate the effects of haze on public health and the environment. The model also presents a promising alternative to traditional forecasting techniques and highlights the potential applications of chaos theory in atmospheric science. Penerbit Universiti Kebangsaan Malaysia 2024-03 Article PeerReviewed application/pdf en http://journalarticle.ukm.my/23628/1/Paper_12%20-.pdf Hazlina Darman, and Nor Zila Abd Hamid, (2024) Predicting haze phenomenon using chaos theory in industrial area in malaysia. Journal of Quality Measurement and Analysis, 20 (1). pp. 159-169. ISSN 2600-8602 http://www.ukm.my/jqma
spellingShingle Hazlina Darman,
Nor Zila Abd Hamid,
Predicting haze phenomenon using chaos theory in industrial area in malaysia
title Predicting haze phenomenon using chaos theory in industrial area in malaysia
title_full Predicting haze phenomenon using chaos theory in industrial area in malaysia
title_fullStr Predicting haze phenomenon using chaos theory in industrial area in malaysia
title_full_unstemmed Predicting haze phenomenon using chaos theory in industrial area in malaysia
title_short Predicting haze phenomenon using chaos theory in industrial area in malaysia
title_sort predicting haze phenomenon using chaos theory in industrial area in malaysia
url http://journalarticle.ukm.my/23628/
http://journalarticle.ukm.my/23628/
http://journalarticle.ukm.my/23628/1/Paper_12%20-.pdf