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首页> 外文期刊>International journal of software engineering and knowledge engineering >Generating Intelligent Summary Terms for Improving Knowledge Discovery in Software Bug Repositories
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Generating Intelligent Summary Terms for Improving Knowledge Discovery in Software Bug Repositories

机译:生成智能摘要术语以改善软件错误存储库中的知识发现

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Software bug records are stored and managed using bug tracking tools. A software bug is characterized by a number of attributes like bug id, opened date, closed date, reported by, assigned to, summary (title), description and set of comments. Summary and description are the two important attributes of a bug. Description gives the detailed information about a bug, whereas summary (title) of a bug gives a quick glance and short information about a bug. The objective of this study is to discover the relationship between description and summary attributes of a bug and to find whether summary of a bug is really the compact and intelligent information of description of a bug. This finding helps in providing a new direction for faster knowledge discovery in a bug repository. Another objective of the work is to demonstrate that intelligent summary of a bug can be generated from description of bug using topic modeling techniques. In this work, topic modeling techniques are used to generate meaningful terms for framing the bug summary of software bugs which can be utilized for faster knowledge discovery. Topic modeling techniques can be utilized efficiently for generating intelligent summary from description of a software bugs and then the knowledge discovery can be performed using the intelligent summary only since it will reduce the volume of data for knowledge discovery. To demonstrate the presented approach, experiments are performed on three popular bug repositories namely, Android, Mozilla and MySql. Comparative analysis is carried using various performance parameters and in order to analyze the impact of present work, two knowledge discovery tasks namely, bug classification and duplicate bug identification are presented in this study.
机译:使用错误跟踪工具可以存储和管理软件错误记录。软件错误的特征在于许多属性,例如错误ID,打开日期,关闭日期,报告者,分配给对象,摘要(标题),描述和注释集。摘要和描述是错误的两个重要属性。描述提供了有关错误的详细信息,而错误的摘要(标题)给出了有关错误的快速浏览和简短信息。这项研究的目的是发现错误的描述和摘要属性之间的关系,并确定错误的摘要是否真的是错误描述的紧凑而智能的信息。这一发现有助于为在错误存储库中更快地发现知识提供新的方向。这项工作的另一个目标是证明可以使用主题建模技术从错误描述中生成错误的智能摘要。在这项工作中,主题建模技术用于生成有意义的术语,以框架化软件错误的错误摘要,这些错误摘要可用于更快地发现知识。可以有效地利用主题建模技术从软件错误的描述中生成智能摘要,然后仅使用智能摘要才能执行知识发现,因为这会减少用于知识发现的数据量。为了演示所提出的方法,对三个流行的错误库(Android,Mozilla和MySql)进行了实验。使用各种性能参数进行比较分析,并且为了分析当前工作的影响,本研究提出了两个知识发现任务,即错误分类和重复错误识别。

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