Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin

Perak, a state in Malaysia, has a lot of exciting and captivating places for tourists to visit. There are many different natural wonders, cultural landmarks, historical sites, and delicious foods to enjoy. This makes Perak special and can bring in a lot of tourists. In today's digital age, soci...

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Main Authors: Rostam, Raudatul Jannah, Azizan, Azilawati, Khairudin, Nurkhairizan
Format: Article
Language:English
Published: Faculty of Hotel & Tourism Management, Universiti Teknologi MARA 2023
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Online Access:https://ir.uitm.edu.my/id/eprint/94870/1/94870.pdf
https://ir.uitm.edu.my/id/eprint/94870/
https://www.jthca.org/
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Institution: Universiti Teknologi Mara
Language: English
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spelling my.uitm.ir.948702024-05-31T01:17:24Z https://ir.uitm.edu.my/id/eprint/94870/ Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin jthca Rostam, Raudatul Jannah Azizan, Azilawati Khairudin, Nurkhairizan Travel and state. Tourism Perak, a state in Malaysia, has a lot of exciting and captivating places for tourists to visit. There are many different natural wonders, cultural landmarks, historical sites, and delicious foods to enjoy. This makes Perak special and can bring in a lot of tourists. In today's digital age, social media plays a big role in sharing information, including tourism. With the presence of technology that can discover feelings and emotions from social media texts, such as sentiment analysis, we can make this even better. Sentiment analysis is the process of analyzing and identifying the feelings conveyed in a text such as positivity or negativity by utilizing natural language processing (NLP) and machine learning approach. This project aims to discover the sentiments of tourist attraction in Perak by analyzing Twitter data. The project has three objectives: first to collect and prepare a suitable and reliable dataset, then classify the data into positive, negative, or neutral sentiments using NLP techniques, and finally develop a web-based application to visualize those sentiments. To accomplish these objectives, a collection of tweets pertaining to Perak’s tourist attractions has been gathered and prepared for analysis. TextBlob library in the Python programming language is used to extract sentiment of tweets from Twitter data and classify them into positive, negative, or neutral categories. Then a machine learning approach, Support Vector Machine (SVM) is used to create, train and test the sentiment model. And as a result, utilizing the SVM classifier with a linear kernel and a split of 70:30 between training and testing data yields an increased accuracy rate of 75.50%. This project is important because it provides valuable insight to the tourism sector in Perak. Faculty of Hotel & Tourism Management, Universiti Teknologi MARA 2023-12 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/94870/1/94870.pdf Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin. (2023) Journal of Tourism, Hospitality and Culinary Arts <https://ir.uitm.edu.my/view/publication/Journal_of_Tourism,_Hospitality_and_Culinary_Arts/>, 15 (2). pp. 90-107. ISSN 1985-8914 ; 2590-3837 https://www.jthca.org/
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 Travel and state. Tourism
spellingShingle Travel and state. Tourism
Rostam, Raudatul Jannah
Azizan, Azilawati
Khairudin, Nurkhairizan
Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
description Perak, a state in Malaysia, has a lot of exciting and captivating places for tourists to visit. There are many different natural wonders, cultural landmarks, historical sites, and delicious foods to enjoy. This makes Perak special and can bring in a lot of tourists. In today's digital age, social media plays a big role in sharing information, including tourism. With the presence of technology that can discover feelings and emotions from social media texts, such as sentiment analysis, we can make this even better. Sentiment analysis is the process of analyzing and identifying the feelings conveyed in a text such as positivity or negativity by utilizing natural language processing (NLP) and machine learning approach. This project aims to discover the sentiments of tourist attraction in Perak by analyzing Twitter data. The project has three objectives: first to collect and prepare a suitable and reliable dataset, then classify the data into positive, negative, or neutral sentiments using NLP techniques, and finally develop a web-based application to visualize those sentiments. To accomplish these objectives, a collection of tweets pertaining to Perak’s tourist attractions has been gathered and prepared for analysis. TextBlob library in the Python programming language is used to extract sentiment of tweets from Twitter data and classify them into positive, negative, or neutral categories. Then a machine learning approach, Support Vector Machine (SVM) is used to create, train and test the sentiment model. And as a result, utilizing the SVM classifier with a linear kernel and a split of 70:30 between training and testing data yields an increased accuracy rate of 75.50%. This project is important because it provides valuable insight to the tourism sector in Perak.
format Article
author Rostam, Raudatul Jannah
Azizan, Azilawati
Khairudin, Nurkhairizan
author_facet Rostam, Raudatul Jannah
Azizan, Azilawati
Khairudin, Nurkhairizan
author_sort Rostam, Raudatul Jannah
title Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
title_short Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
title_full Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
title_fullStr Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
title_full_unstemmed Perak's tourism through the lens of social media: a computer-based sentiment analysis approach / Raudatul Jannah Rostam, Azilawati Azizan and Nurkhairizan Khairudin
title_sort perak's tourism through the lens of social media: a computer-based sentiment analysis approach / raudatul jannah rostam, azilawati azizan and nurkhairizan khairudin
publisher Faculty of Hotel & Tourism Management, Universiti Teknologi MARA
publishDate 2023
url https://ir.uitm.edu.my/id/eprint/94870/1/94870.pdf
https://ir.uitm.edu.my/id/eprint/94870/
https://www.jthca.org/
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