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Bug Report Summarization using Believability Score and Text Ranking

机译:错误报告使用相信分数和文本排名摘要

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摘要

During the maintenance phase of software development, bug reports provide software developers with important information. However, bug reports often include complex and long discussions. Therefore, concise and accurate summaries can help developers save the time for reading the full contents of bug reports. Several researchers have proposed summarizing bug reports. However, none of them proposed combining two different scores for measuring how important each sentence is among the developers’ comments. In this paper, we propose an unsupervised bug report summarization which combines believability score and text ranking score for measuring the degree to which a sentence is important, in order to generate high-quality summaries. The experimental results over a public dataset show that our method outperforms the state-of-the-art method in terms of summary quality.
机译:在软件开发的维护阶段,错误报告提供具有重要信息的软件开发人员。 但是,错误报告通常包括复杂和长时间的讨论。 因此,简洁和准确的摘要可以帮助开发人员节省读取错误报告的完整内容的时间。 几位研究人员提出了总结错误报告。 然而,他们都没有提出结合两个不同的分数来测量每个句子是开发人员评论中的重要性。 在本文中,我们提出了一个无监督的错误报告摘要,它结合了可信度分数和文本排名分数来测量句子重要的程度,以便产生高质量的摘要。 在公共数据集上的实验结果表明,我们的方法在摘要质量方面优于最先进的方法。

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