DocumentCode :
238617
Title :
Using K-means cluster based techniques in external plagiarism detection
Author :
Vani, K. ; Gupta, Deepika
Author_Institution :
Dept. of Comput. Sci., Amrita Sch. of Eng., Bangalore, India
fYear :
2014
fDate :
27-29 Nov. 2014
Firstpage :
1268
Lastpage :
1273
Abstract :
Text document categorization is one of the rapidly emerging research fields, where documents are identified, differentiated and classified manually or algorithmically. The paper focuses on application of automatic text document categorization in plagiarism detection domain. In today´s world plagiarism has become a prime concern, especially in research and educational fields. This paper aims on the study and comparison of different methods of document categorization in external plagiarism detection. Here the primary focus is to explore the unsupervised document categorization/ clustering methods using different variations of K-means algorithm and compare it with the general N-gram based method and Vector Space Model based method. Finally the analysis and evaluation is done using data set from PAN-20131 and performance is compared based on precision, recall and efficiency in terms of time taken for algorithm execution.
Keywords :
pattern clustering; text analysis; K-means algorithm; K-means cluster based techniques; N-gram based method; algorithm execution; automatic text document categorization; clustering methods; data set; educational fields; external plagiarism detection; plagiarism detection domain; unsupervised document categorization; vector space model based method; world plagiarism; Algorithm design and analysis; Classification algorithms; Clustering algorithms; Informatics; Partitioning algorithms; Plagiarism; Vectors; Candidate Retrieval; External Plagiarism; K-means Clustering; N-gram; Text Document Categorization; Vector Space Model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Contemporary Computing and Informatics (IC3I), 2014 International Conference on
Conference_Location :
Mysore
Type :
conf
DOI :
10.1109/IC3I.2014.7019659
Filename :
7019659
Link To Document :
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