A Survey of Automatic Text Classification Based on Thai Social Media Data

Author:

Tanantong Tanatorn1ORCID,Parnkow Monchai1

Affiliation:

1. Thammasat Research Unit in Data Innovation and Artificial Intelligence, Department of Computer Science, Faculty of Science and Technology, Thammasat University, Thailand

Abstract

In the digital age, the information on social media, such as Facebook, Twitter, and Instagram, is increasing rapidly. Therefore, it has led to studies and researches on social media analytics to extract useful models or knowledge from the data. One of the most interesting topics in social media analytics is text classification on social media data. However, since social media data has a diverse and complex data structure, text analysis and classification are considered a challenging issue that requires a specific technique to implement. The objective of this review paper is to collect and review research related to the automatic classification of Thai text on social media by presenting and explaining the process of text classification on various issues. These include data collection and data sources, amount of data and data preparation for research, feature extraction methods, text classification automated modeling methods, efficacy evaluation and measurement methods, the results of text classification, and summary of the overall trend of research on the topic.

Publisher

IGI Global

Subject

Artificial Intelligence,Management of Technology and Innovation,Information Systems and Management,Organizational Behavior and Human Resource Management,Strategy and Management,Information Systems

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Named Entity Recognition for Thai Historical Data;2024 21st International Joint Conference on Computer Science and Software Engineering (JCSSE);2024-06-19

2. A Review on Speech Recognition for Under-Resourced Languages;International Journal of Knowledge and Systems Science;2023-10-27

3. Thai Conversational Chatbot Classification Using BiLSTM and Data Augmentation;Communications in Computer and Information Science;2023

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