DocumentCode :
731539
Title :
A Dataset of High Impact Bugs: Manually-Classified Issue Reports
Author :
Ohira, Masao ; Kashiwa, Yutaro ; Yamatani, Yosuke ; Yoshiyuki, Hayato ; Maeda, Yoshiya ; Limsettho, Nachai ; Fujino, Keisuke ; Hata, Hideaki ; Ihara, Akinori ; Matsumoto, Kenichi
Author_Institution :
Grad. Sch. of Syst. Eng., Wakayama Univ., Wakayama, Japan
fYear :
2015
fDate :
16-17 May 2015
Firstpage :
518
Lastpage :
521
Abstract :
The importance of supporting test and maintenance activities in software development has been increasing, since recent software systems have become large and complex. Although in the field of Mining Software Repositories (MSR) there are many promising approaches to predicting, localizing, and triaging bugs, most of them do not consider impacts of each bug on users and developers but rather treat all bugs with equal weighting, excepting a few studies on high impact bugs including security, performance, blocking, and so forth. To make MSR techniques more actionable and effective in practice, we need deeper understandings of high impact bugs. In this paper we introduced our dataset of high impact bugs which was created by manually reviewing four thousand issue reports in four open source projects (Ambari, Camel, Derby and Wicket).
Keywords :
program debugging; software maintenance; MSR techniques; high impact bugs; mining software repositories; open source projects; software development; software maintenance; Computer bugs; Data mining; Labeling; Manuals; Security; Software systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mining Software Repositories (MSR), 2015 IEEE/ACM 12th Working Conference on
Conference_Location :
Florence
Type :
conf
DOI :
10.1109/MSR.2015.78
Filename :
7180132
Link To Document :
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