评估使用基于搜索的自动模型合并技术的效率

Ankica Barisic, Csaba Debreceni, Dániel Varró, Vasco Amaral, M. Goulão
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引用次数: 1

摘要

模型驱动工程依赖于不同团队之间的有效协作,这引入了复杂的模型管理挑战。DSE Merge的目标是使用基于搜索的解决方案候选探索来有效地合并由不同合作者创建的模型版本,这些解决方案候选代表了由领域特定知识指导的无冲突合并模型。在本文中,我们报告了我们如何使用反应性实验软件工程方法从用户的角度系统地评估DSE合并技术的效率。经验性测试包括预期的最终用户(即工程师),即本科生的参与,期望他们能证实设计决策的影响。特别是,我们要求用户使用DSE merge来合并同一模型的不同版本,并与使用Diff merge进行比较。实验表明,使用DSE合并的参与者需要较少的认知努力,并表达了他们对DSE合并的偏好和满意度。
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Evaluating the efficiency of using a search-based automated model merge technique
Model-driven engineering relies on effective collaboration between different teams which introduces complex model management challenges. DSE Merge aims to efficiently merge model versions created by various collaborators using search-based exploration of solution candidates that represent conflict-free merged models guided by domain-specific knowledge. In this paper, we report how we systematically evaluated the efficiency of the DSE Merge technique from the user point of view using a reactive experimental Software engineering approach. The empirical tests included the involvement of the intended end users (i.e. engineers), namely undergraduate students, which were expected to confirm the impact of design decisions. In particular, we asked users to merge the different versions of the same model using DSE Merge when compared to using Diff Merge. The experiment showed that to use DSE Merge participant required lower cognitive effort, and expressed their preference and satisfaction with it.
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