Automatic Bug Classification System to Improve the Software Organization Product Performance

Q2 Decision Sciences
A. R. D. Kelin, B. Nagarajan, Sasikumar Rajendran, Muthumari S.
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引用次数: 0

Abstract

Consistently, many bugs are raised, which are not completely settled, and countless designers are utilizing open sources or outsider assets, which prompts security issues. Bug-triage is the impending mechanized bug report framework to appoint individual security teams for a more than adequate pace of bug reports submitted from various IDEs inside the association (on-premises). We can lessen the time and cost of bug following and allocate it to the fitting group by foreseeing which division it has a place in within an association. In this paper, the authors are executing an automatic bug tracking system (ABTS) to allocate the group for the revealed bug involving the text examination for bug naming and characterization AI calculation for anticipating designer. Hybrid natural language processing and machine learning techniques are used for automatic bug identification to improve the performance of software organization products.
改进软件组织产品性能的Bug自动分类系统
始终如一地,出现了许多错误,这些错误没有得到完全解决,无数的设计人员正在使用开放源代码或外部资产,这引发了安全问题。bug分类是一种即将出现的机械化bug报告框架,它指定各个安全团队来处理协会内部(本地)各种ide提交的bug报告。我们可以减少跟踪bug的时间和成本,并通过预测bug在关联中的位置来将其分配给合适的组。在本文中,作者正在执行一个自动错误跟踪系统(ABTS),为发现的错误分配组,包括文本检查,错误命名和特征AI计算,以预测设计者。将自然语言处理和机器学习混合技术应用于软件组织产品的bug自动识别,以提高产品的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Sociotechnology and Knowledge Development
International Journal of Sociotechnology and Knowledge Development Decision Sciences-Information Systems and Management
CiteScore
4.20
自引率
0.00%
发文量
35
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