A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples
This study focuses on comparing the performance of the Robust Circular Distance (RCDU*) (simplified version) and A statistics in detecting a single outlier in the Wrapped Normal (WN) samples. Firstly, this study proposes a simplified version of RCDU statistic. Then, the paper generates the cut-off p...
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Penerbit Universiti Kebangsaan Malaysia
2023
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2-s2.0-85171673986 Zulkefli N.M.; Rambli A.; Suhaimi M.I.K.A.; Mohamed I.; Redzuan R.S. A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples 2023 Sains Malaysiana 52 7 10.17576/jsm-2023-5207-19 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85171673986&doi=10.17576%2fjsm-2023-5207-19&partnerID=40&md5=790138f25e4b6075d3cde93218c26938 This study focuses on comparing the performance of the Robust Circular Distance (RCDU*) (simplified version) and A statistics in detecting a single outlier in the Wrapped Normal (WN) samples. Firstly, this study proposes a simplified version of RCDU statistic. Then, the paper generates the cut-off points for both statistics taken from WN samples via a simulation study. This study also evaluates the performance of both statistics using the proportion of a correct outlier detection. As a result, for a small sample size, the performance of RCDU*and A statistics do not have a huge difference. However, for a large sample size of n=250, A statistic performs slightly better than RCDU*statistic. As an illustration of a practical example, both statistics successfully detected one outlier present in the wind direction data at Kota Bharu station. © 2023 Penerbit Universiti Kebangsaan Malaysia. All rights reserved. Penerbit Universiti Kebangsaan Malaysia 1266039 English Article All Open Access; Gold Open Access |
author |
Zulkefli N.M.; Rambli A.; Suhaimi M.I.K.A.; Mohamed I.; Redzuan R.S. |
spellingShingle |
Zulkefli N.M.; Rambli A.; Suhaimi M.I.K.A.; Mohamed I.; Redzuan R.S. A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
author_facet |
Zulkefli N.M.; Rambli A.; Suhaimi M.I.K.A.; Mohamed I.; Redzuan R.S. |
author_sort |
Zulkefli N.M.; Rambli A.; Suhaimi M.I.K.A.; Mohamed I.; Redzuan R.S. |
title |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
title_short |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
title_full |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
title_fullStr |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
title_full_unstemmed |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
title_sort |
A Comparison between Two Discordancy Tests to Identify Outlier in Wrapped Normal (WN) Samples |
publishDate |
2023 |
container_title |
Sains Malaysiana |
container_volume |
52 |
container_issue |
7 |
doi_str_mv |
10.17576/jsm-2023-5207-19 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85171673986&doi=10.17576%2fjsm-2023-5207-19&partnerID=40&md5=790138f25e4b6075d3cde93218c26938 |
description |
This study focuses on comparing the performance of the Robust Circular Distance (RCDU*) (simplified version) and A statistics in detecting a single outlier in the Wrapped Normal (WN) samples. Firstly, this study proposes a simplified version of RCDU statistic. Then, the paper generates the cut-off points for both statistics taken from WN samples via a simulation study. This study also evaluates the performance of both statistics using the proportion of a correct outlier detection. As a result, for a small sample size, the performance of RCDU*and A statistics do not have a huge difference. However, for a large sample size of n=250, A statistic performs slightly better than RCDU*statistic. As an illustration of a practical example, both statistics successfully detected one outlier present in the wind direction data at Kota Bharu station. © 2023 Penerbit Universiti Kebangsaan Malaysia. All rights reserved. |
publisher |
Penerbit Universiti Kebangsaan Malaysia |
issn |
1266039 |
language |
English |
format |
Article |
accesstype |
All Open Access; Gold Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1809678156104204288 |