Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand

© 2018 IEEE. Air contamination is one of the primary issues in the world. PM10 is the major pollutant having highly affecting in human wellbeing. Numerous scientists around the world create many classifications and prediction model to conjecture PM10 for alarm people in their country. Consistently f...

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Main Authors: Krittakom Srijiranon, Narissara Eiamkanitchat
Format: Conference Proceeding
Published: 2019
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/65510
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-655102019-08-05T04:39:17Z Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand Krittakom Srijiranon Narissara Eiamkanitchat Computer Science Engineering Mathematics © 2018 IEEE. Air contamination is one of the primary issues in the world. PM10 is the major pollutant having highly affecting in human wellbeing. Numerous scientists around the world create many classifications and prediction model to conjecture PM10 for alarm people in their country. Consistently from February to May in the northern part of Thailand, there is the exhaust cloud issue of PM10 yet there are few pieces of research in the air pollution utilizing the up to date data set. By observing this issue, refreshed information between 2011 and 2017 are utilized. Only two of the data from stations in Lampang and Phayao were selected for this study. Due to the minimal data loss problem. The collective neural networks system is selected to create an appropriate classification model. The average accuracy of prediction results in this work is 92.51% which higher than related works in a similar topic. 2019-08-05T04:34:36Z 2019-08-05T04:34:36Z 2019-05-10 Conference Proceeding 2-s2.0-85066472403 10.1109/ICSEC.2018.8712693 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85066472403&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/65510
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Computer Science
Engineering
Mathematics
spellingShingle Computer Science
Engineering
Mathematics
Krittakom Srijiranon
Narissara Eiamkanitchat
Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
description © 2018 IEEE. Air contamination is one of the primary issues in the world. PM10 is the major pollutant having highly affecting in human wellbeing. Numerous scientists around the world create many classifications and prediction model to conjecture PM10 for alarm people in their country. Consistently from February to May in the northern part of Thailand, there is the exhaust cloud issue of PM10 yet there are few pieces of research in the air pollution utilizing the up to date data set. By observing this issue, refreshed information between 2011 and 2017 are utilized. Only two of the data from stations in Lampang and Phayao were selected for this study. Due to the minimal data loss problem. The collective neural networks system is selected to create an appropriate classification model. The average accuracy of prediction results in this work is 92.51% which higher than related works in a similar topic.
format Conference Proceeding
author Krittakom Srijiranon
Narissara Eiamkanitchat
author_facet Krittakom Srijiranon
Narissara Eiamkanitchat
author_sort Krittakom Srijiranon
title Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
title_short Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
title_full Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
title_fullStr Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
title_full_unstemmed Collective neural networks system for PM<inf>10</inf> classification in the north of Thailand
title_sort collective neural networks system for pm<inf>10</inf> classification in the north of thailand
publishDate 2019
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85066472403&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/65510
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