Computer-based plagiarism detection techniques: A comparative study

被引:3
|
作者
Mansoor, Marwah Najm [1 ]
Al-Tamimi, Mohammed S. H. [2 ]
机构
[1] Minist Higher Educ & Sci Res, Res & Dev Dept, Baghdad, Iraq
[2] Univ Baghdad, Coll Sci, Dept Comp Sci, Baghdad, Iraq
关键词
Plagiarism; Academic; Detection; Dataset; Pan;
D O I
10.22075/ijnaa.2022.6140
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Plagiarism is becoming more of a problem in academics. It's made worse by the ease with which a wide range of resources can be found on the internet, as well as the ease with which they can be copied and pasted. It is academic theft since the perpetrator has "taken" and presented the work of others as his or her own. Manual detection of plagiarism by a human being is difficult, imprecise, and time-consuming because it is difficult for anyone to compare their work to current data. Plagiarism is a big problem in higher education, and it can happen on any topic. Plagiarism detection has been studied in many scientific articles, and methods for recognition have been created utilizing the Plagiarism analysis, Authorship identification, and Near-duplicate detection (PAN) Dataset 2009-2011. Verbatim plagiarism, according to the researchers, plagiarism is simply copying and pasting. They then moved on to smart plagiarism, which is more challenging to spot since it might include text change, taking ideas from other academics, and translation into a more difficult-to-manage language. Other studies have found that plagiarism can obscure the scientific content of publications by swapping words, removing or adding material, or reordering or changing the original articles. This article discusses the comparative study of plagiarism detection techniques.
引用
收藏
页码:3599 / 3611
页数:13
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