Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah

Analysis of rainfall behaviour has become important in many regions because it is related to many factors such as agricultural sector, water resource management, and flood disaster and landslide occurrence. The weather in Malaysia is characterized by two monsoon regimes called as Southwest Monsoon a...

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Main Authors: Wan Shahidan, Wan Nurshazelin, Abdullah, Siti Nurasikin
Format: Article
Language:English
Published: Universiti Teknologi MARA, Perlis 2017
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Online Access:https://ir.uitm.edu.my/id/eprint/54016/1/54016.pdf
https://ir.uitm.edu.my/id/eprint/54016/
https://crinn.conferencehunter.com/index.php/jcrinn/article/view/32
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spelling my.uitm.ir.540162021-12-02T08:34:30Z https://ir.uitm.edu.my/id/eprint/54016/ Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah Wan Shahidan, Wan Nurshazelin Abdullah, Siti Nurasikin Analysis Algorithms Analysis of rainfall behaviour has become important in many regions because it is related to many factors such as agricultural sector, water resource management, and flood disaster and landslide occurrence. The weather in Malaysia is characterized by two monsoon regimes called as Southwest Monsoon and Northeast Monsoon. Heavy rainfall will cause water level of river to reach its maximum level that may lead to flood disaster. Floods become more serious when people start losing the life of beloved ones and property. Although natural disasters are caused by nature and there is nothing that we can do to prevent them from happening, but yet being aware of its impact is a much required process that should be looked into thoroughly. The goal of this study is to analyse the rainfall analysis in Kota Bharu, Kelantan in order to overcome any bad consequences in future. Three types of clustering algorithm were used in this study, namely K - Means clustering, density based clustering and expectation maximization (EM) clustering algorithm. Comparisons between the clustering algorithms were conducted in this study to identify which clustering algorithm is the most suitable and simple for rainfall distribution. So, in this study clustering algorithm on rainfall distribution dataset is done using WEKA 3.8 software. The results found that K - Means clustering was the suitable and simple clustering algorithm based on time taken to build model. Universiti Teknologi MARA, Perlis 2017 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/54016/1/54016.pdf ID54016 Wan Shahidan, Wan Nurshazelin and Abdullah, Siti Nurasikin (2017) Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah. Journal of Computing Research and Innovation, 2 (1). pp. 64-68. ISSN 2600-8793 https://crinn.conferencehunter.com/index.php/jcrinn/article/view/32
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Analysis
Algorithms
spellingShingle Analysis
Algorithms
Wan Shahidan, Wan Nurshazelin
Abdullah, Siti Nurasikin
Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
description Analysis of rainfall behaviour has become important in many regions because it is related to many factors such as agricultural sector, water resource management, and flood disaster and landslide occurrence. The weather in Malaysia is characterized by two monsoon regimes called as Southwest Monsoon and Northeast Monsoon. Heavy rainfall will cause water level of river to reach its maximum level that may lead to flood disaster. Floods become more serious when people start losing the life of beloved ones and property. Although natural disasters are caused by nature and there is nothing that we can do to prevent them from happening, but yet being aware of its impact is a much required process that should be looked into thoroughly. The goal of this study is to analyse the rainfall analysis in Kota Bharu, Kelantan in order to overcome any bad consequences in future. Three types of clustering algorithm were used in this study, namely K - Means clustering, density based clustering and expectation maximization (EM) clustering algorithm. Comparisons between the clustering algorithms were conducted in this study to identify which clustering algorithm is the most suitable and simple for rainfall distribution. So, in this study clustering algorithm on rainfall distribution dataset is done using WEKA 3.8 software. The results found that K - Means clustering was the suitable and simple clustering algorithm based on time taken to build model.
format Article
author Wan Shahidan, Wan Nurshazelin
Abdullah, Siti Nurasikin
author_facet Wan Shahidan, Wan Nurshazelin
Abdullah, Siti Nurasikin
author_sort Wan Shahidan, Wan Nurshazelin
title Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
title_short Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
title_full Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
title_fullStr Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
title_full_unstemmed Comparison between clustering algorithm for rainfall analysis in Kelantan / Wan Nurshazelin Wan Shahidan and Siti Nurasikin Abdullah
title_sort comparison between clustering algorithm for rainfall analysis in kelantan / wan nurshazelin wan shahidan and siti nurasikin abdullah
publisher Universiti Teknologi MARA, Perlis
publishDate 2017
url https://ir.uitm.edu.my/id/eprint/54016/1/54016.pdf
https://ir.uitm.edu.my/id/eprint/54016/
https://crinn.conferencehunter.com/index.php/jcrinn/article/view/32
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score 13.211869