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Condensing reverse engineered class diagrams through class name based abstraction

机译:通过基于类名的抽象来压缩反向工程类图

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In this paper, we report on a machine learning approach to condensing class diagrams. The goal of the algorithm is to learn to identify what classes are most relevant to include in the diagram, as opposed to full reverse engineering of all classes. This paper focuses on building a classifier that is based on the names of classes in addition to design metrics, and we compare to earlier work that is based on design metrics only. We assess our condensation method by comparing our condensed class diagrams to class diagrams that were made during the original forward design. Our results show that combining text metrics with design metrics leads to modest improvements over using design metrics only. On average, the improvement reaches 5.3%. 7 out of 10 evaluated case studies show improvement ranges from 1% to 22%.
机译:在本文中,我们报告了一种用于精简类图的机器学习方法。该算法的目标是学习识别哪些类最适合包含在图中,而不是对所有类进行完全逆向工程。本文着重于构建除基于设计指标之外还基于类名称的分类器,并且我们将其与仅基于设计指标的早期工作进行了比较。我们通过将压缩的类图与原始正向设计期间制作的类图进行比较来评估我们的压缩方法。我们的结果表明,与仅使用设计指标相比,将文本指标与设计指标结合可以带来适度的改进。平均而言,改善达到5.3%。 10个评估案例研究中有7个显示改善幅度在1%到22%之间。

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