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Has this bug been reported?

机译:是否已报告此错误?

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摘要

Bug reporting is essentially an uncoordinated process. The same bugs could be repeatedly reported because users or testers are unaware of previously reported bugs. As a result, extra time could be spent on bug triaging and fixing. In order to reduce redundant effort, it is important to provide bug reporters with the ability to search for previously reported bugs. The search functions provided by the existing bug tracking systems are using relatively simple ranking functions, which often produce unsatisfactory results. In this paper, we adopt Ranking SVM, a Learning to Rank technique to construct a ranking model for effective bug report search. We also propose to use the knowledge of Wikipedia to discover the semantic relations among words and documents. Given a user query, the constructed ranking model can search for relevant bug reports in a bug tracking system. Unlike related works on duplicate bug report detection, our approach retrieves existing bug reports based on short user queries, before the complete bug report is submitted. We perform evaluations on more than 16,340 Eclipse and Mozilla bug reports. The evaluation results show that the proposed approach can achieve better search results than the existing search functions provided by Bugzilla and Lucene. We believe our work can help users and testers locate potential relevant bug reports more precisely.
机译:错误报告本质上是一个不协调的过程。由于用户或测试人员不知道以前报告的错误,因此可以重复报告相同的错误。结果,可能会花费额外的时间进行错误分类和修复。为了减少多余的工作,为错误报告者提供搜索以前报告的错误的能力很重要。现有错误跟踪系统提供的搜索功能正在使用相对简单的排名功能,这些功能通常会产生不令人满意的结果。在本文中,我们采用Rank SVM(一种学习等级技术)来构建用于有效漏洞报告搜索的等级模型。我们还建议利用Wikipedia的知识来发现单词和文档之间的语义关系。给定用户查询,构造的排名模型可以在错误跟踪系统中搜索相关的错误报告。与有关重复错误报告检测的相关工作不同,我们的方法在提交完整的错误报告之前,会根据简短的用户查询来检索现有的错误报告。我们对超过16,340个Eclipse和Mozilla错误报告进行评估。评估结果表明,与Bugzilla和Lucene提供的现有搜索功能相比,该方法可以实现更好的搜索结果。我们相信我们的工作可以帮助用户和测试人员更准确地找到潜在的相关错误报告。

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