A novel technique for Thai document plagiarism detection using syntactic parse trees
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Creator 1. Wansuree Massagram
2. Sorawat Prapanitisatian
3. Kraisak Kesorn
Title A novel technique for Thai document plagiarism detection using syntactic parse trees
Publisher Faculty of Engineering, Khon Kaen University
Publication Year 2561
Journal Title Engineering and Applied Science Research
Journal Vol. 45
Journal No. 4
Page no. 290-300
Keyword Text analysis, Plagiarism detection, Natural language processing, Thai
URL Website https://www.tci-thaijo.org/index.php/easr/index
Website title Engineering and Applied Science Research
ISSN 2539-6161
Abstract The act of plagiarism is a serious offense and all involved parties will be penalized according to most Thai university rules. The lack of effective tools for plagiarism detection in the Thai language is a problem for academic and research institutes in Thailand. A practical framework and detection tool would facilitate the development of academic integrity and honesty. This paper presents an effective alternative method to detect plagiarism in Thai academic articles utilizing a syntactic parse tree technique (SPT). The main concept of this method is the dynamic weighing of each sentence according to the roles of its words. The experimental results, empirically compared with three existing tools: tri-grams, semantic role labeling (SRL), Turnitin and Akarawisut, yield comparable or higher precision and recall in all four plagiarism study cases of word-by-word, word-reordering, modifier-insertion, and synonym-replacement plagiarism. SPT shows promise and should be incorporated in similarity comparison tools to improve the accuracy of plagiarism detection in the Thai language.
Engineering and Applied Science Research

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