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Autoren:
Kim, Yeongsu; Lee, Seungwoo; Dollmann, Markus; Geierhos, Michaela 
Dokumenttyp:
Zeitschriftenartikel / Journal Article 
Titel:
Improving Classifiers for Semantic Annotation of Software Requirements with Elaborate Syntactic Structure 
Zeitschrift:
International Journal of Advanced Science and Technology 
Jahrgang:
112 
Verlag:
SERSC Australia 
Jahr:
2018 
Seiten von - bis:
123-136 
Stichwörter:
Software Engineering ; Natural Language Processing ; Semantic Annotation ; Machine Learning ; Feature Engineering ; Syntactic Structure 
Abstract:
A user generally writes software requirements in ambiguous and incomplete form by using natural language; therefore, a software developer may have difficulty in clearly understanding what the meanings are. To solve this problem with automation, we propose a classifier for semantic annotation with manually pre-defined semantic categories. To improve our classifier, we carefully designed syntactic features extracted by constituency and dependency parsers. Even with a small dataset and a large num...    »
 
ISSN:
2207-6360 ; 2005-4238 
Open Access ja oder nein?:
Nein / No