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Feature Location Using Crowd-Based Screencasts

机译:使用基于人群的截屏视频进行功能定位

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摘要

Crowd-based multi-media documents such as screencasts have emerged as a source for documenting requirements of agile software projects. For example, screencasts can describe buggy scenarios of a software product, or present new features in an upcoming release. Unfortunately, the binary format of videos makes traceability between the video content and other related software artifacts (e.g., source code, bug reports) difficult. In this paper, we propose an LDA-based feature location approach that takes as input a set of screencasts (i.e., the GUI text and/or spoken words) to establish traceability link between the features described in the screencasts and source code fragments implementing them. We report on a case study conducted on 10 WordPress screencasts, to evaluate the applicability of our approach in linking these screencasts to their relevant source code artifacts. We find that the approach is able to successfully pinpoint relevant source code files at the top 10 hits using speech and GUI text. We also found that term frequency rebalancing can reduce noise and yield more precise results.
机译:诸如屏幕录像之类的基于人群的多媒体文档已经成为记录敏捷软件项目需求的来源。例如,截屏视频可以描述软件产品的错误场景,或者在即将发布的版本中介绍新功能。不幸的是,视频的二进制格式使得在视频内容和其他相关软件工件(例如,源代码,错误报告)之间的可追踪性变得困难。在本文中,我们提出了一种基于LDA的特征定位方法,该方法以一组截屏视频(即GUI文本和/或口头文字)作为输入,以在截屏视频中描述的功能与实现这些功能的源代码片段之间建立可追溯性链接。 。我们报告了对10个WordPress屏幕截图进行的案例研究,以评估我们将这些屏幕截图链接到其相关源代码工件的方法的适用性。我们发现该方法能够使用语音和GUI文本成功地将相关源代码文件精确定位在前10个匹配中。我们还发现,术语频率重新平衡可以减少噪声并产生更精确的结果。

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