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Automatic Detection of the Boundary between Metadata and Body in Persian Theses using BA_SVM

Authors :
Mohadese Rahnama
Seyed Mohammad Hossein Hasheminejad
Jalal A Nasiri
Source :
Iranian Journal of Information Processing & Management, Vol 36, Iss 4, Pp 1159-1179 (2021)
Publication Year :
2021
Publisher :
Iranian Research Institute for Information and Technology, 2021.

Abstract

Metadata extraction facilitates the process of indexing and improves information retrieval. Also automation of this process increases efficiency more than manual extraction. The example of the thesis metadata are names of students, professors, title, field, degree, abstract, keywords, etc. In this paper the aim is automatic boundary detection of metadata from the main body in Persian theses. Therefore, 250 theses collected from IRANDOC system. Features were extracted from paragraphs of each thesis then paragraphs were classified using support vector machine into 2 classes: metadata and body. In this study, Bat algorithm is used to set the parameter of SVM. The result reveals that the proposed method predicts type of paragraphs with 96.6 percent accuracy.

Details

Language :
Persian
ISSN :
22518223 and 22518231
Volume :
36
Issue :
4
Database :
Directory of Open Access Journals
Journal :
Iranian Journal of Information Processing & Management
Publication Type :
Academic Journal
Accession number :
edsdoj.8d2b62dfb8d746fda9d37762cc38262c
Document Type :
article