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En-LDA: An Novel Approach to Automatic Bug Report Assignment with Entropy Optimized Latent Dirichlet Allocation

机译:En-LDA:利用熵优化的潜在Dirichlet分配进行自动错误报告分配的新方法

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With the increasing number of bug reports coming into the open bug repository, it is impossible to triage bug reports manually by software managers. This paper proposes a novel approach called En-LDA (Entropy optimized Latent Dirichlet Allocation (LDA)) for automatic bug report assignment. Specifically, we propose entropy to optimize the number of topics of the LDA model and further use the entropy optimized LDA to capture the expertise and interest of developers in bug resolution. A developer’s interest in a topic is modeled by the number of the developer’s comments on bug reports of the topic divided by the number of all the developer’s comments. A developer’s expertise in a topic is modeled by the number of the developer’s comments on bug reports of the topic divided by the number of all developers’ comments on the topic. Given a new bug report, En-LDA recommends a ranked list of developers who are potentially adequate to resolve the new bug. Experiments on Eclipse JDT and Mozilla Firefox projects show that En-LDA can achieve high recall up to 84% and 58%, and precision up to 28% and 41%, respectively, which indicates promising aspects of the proposed approach.
机译:随着越来越多的错误报告进入开放的错误信息库,软件经理无法手动对错误报告进行分类。本文提出了一种称为En-LDA(熵优化的潜在Dirichlet分配(LDA))的新颖方法,用于自动错误报告分配。具体而言,我们提出了熵来优化LDA模型的主题数量,并进一步使用熵优化的LDA来捕获开发人员在错误解决方面的专业知识和兴趣。开发人员对主题的兴趣是通过对该主题的错误报告的开发人员评论的数量除以所有开发人员评论的数量得出的。开发人员在某个主题上的专业知识是根据该开发人员对该主题的错误报告的评论数量除以所有开发人员对该主题的评论数量得出的。给出新的错误报告后,En-LDA推荐有潜力的开发人员排名列表来解决新的错误。在Eclipse JDT和Mozilla Firefox项目上进行的实验表明,En-LDA分别可以实现高达84%和58%的高召回率,以及高达28%和41%的精度,这表明了该方法的前景。

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