Heuristic-Based Recommendation for Metamodel — OCL Coevolution

Edouard R. Batot, Wael Kessentini, H. Sahraoui, Michalis Famelis
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引用次数: 17

Abstract

We propose a novel approach for solving the problem of coevolution betweenmetamodels and OCL constraints. Unlike existing solutions, our approach does notrely on predefined update rules and explicit tracking of high level changes tothe metamodel. Rather, we pose it as a multi-objective optimization problem, exploring the space of possible OCL modifications to identify solutions that(a) do not violate the structure of the new version of the metamodel, (b)minimize changes to existing constraints, and (c) minimize loss of information. Finally, we recommend an appropriate subset of solutions to the user. We evaluate our approach on three cases of metamodel and OCL coevolution. Theresults show that we recommend accurate solutions for updating OCL constraints, even for complex evolution changes.
基于启发式的元模型推荐- OCL协同进化
我们提出了一种解决元模型与OCL约束之间协同进化问题的新方法。与现有的解决方案不同,我们的方法不仅依赖于预定义的更新规则和对元模型的高级更改的显式跟踪。相反,我们将其作为一个多目标优化问题,探索可能的OCL修改空间,以确定(a)不违反新版本元模型的结构,(b)最小化对现有约束的更改,以及(c)最小化信息损失的解决方案。最后,我们向用户推荐一个适当的解决方案子集。我们在元模型和OCL协同进化的三种情况下评估了我们的方法。结果表明,我们为更新OCL约束推荐了准确的解决方案,即使对于复杂的演化变化也是如此。
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