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EXEHDA-HM: A compositional approach to explore contextual information on hybrid models

机译:EXEHDA-HM:一种探索混合模型上下文信息的组合方法

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摘要

The current proposals of hybrid context modeling bring new challenges, an important one is how applications can access and process data stored on these models. Thinking about that, this paper proposes a solution to deal with this challenge through a compositional approach that explores the context information on hybrid models, called EXEHDA-HM. The proposed approach stands out by the design of a repository that supports three database models and by the compositional processing strategy based on rules. In our proposal, the applications can combine data stored on different bases in a single rule, which could enhance the identification of contextual situations. For the evaluation we designed and implemented some case studies on information security area, exploring the hybrid repository composed of relational, non-relational, and triple storage models. Our results demonstrate that was possible to identify richer situations with the data composition across more than one model and there are situations that can only be found through this composition.
机译:混合上下文建模的当前建议带来了新的挑战,一个重要的挑战是应用程序如何访问和处理存储在这些模型上的数据。考虑到这一点,本文提出了一种解决方案,可通过探索在混合模型(称为EXEHDA-HM)上的上下文信息的组合方法来应对这一挑战。所提出的方法在支持三个数据库模型的存储库设计以及基于规则的组合处理策略方面脱颖而出。在我们的建议中,应用程序可以在单个规则中组合存储在不同基础上的数据,这可以增强对上下文情况的识别。为了进行评估,我们设计并实施了一些有关信息安全领域的案例研究,探索了由关系,非关系和三重存储模型组成的混合存储库。我们的结果表明,可以通过多个模型中的数据组合来识别更丰富的情况,并且有些情况只能通过这种组合才能找到。

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