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Simplifying Parametrization of Bayesian Networks in Prediction of System Quality

机译:简化贝叶斯网络的参数化预测系统质量

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Bayesian Networks (BNs) are a powerful means for modelling dependencies and predicting impacts of architecture design changes on system quality. The extremely demanding parametrization of BNs is however the main obstacle for their practical application, in spite of the extensive tool support. We have promising experiences from using a tree-structured notation, that we call Dependency Views (DVs), for prediction of impacts of architecture design changes on system quality. Compared to BNs, DVs are far less demanding to parametrize and create. DVs have shown to be sufficiently expressive, comprehensible and feasible. Their weakness is however limited analytical power. Once created, BNs are more adaptable to changes, and more easily refined than DVs. In this paper we argue that DVs are fully compatible with BNs, in spite of different estimation approaches and concepts. A transformation from a DV to a BN preserves traceability and results in a complete BN. By denning a transformation from DVs to BNs, we have enabled reliable parametrization of BNs with significantly reduced effort, and can now exploit the strengths of both the DV and the Bn approach.
机译:贝叶斯网络(BNS)是建模依赖性和预测建筑设计改变对系统质量的影响的强大手段。然而,由于大量工具支持,BNS的极其要求的参数化是它们实际应用的主要障碍。我们具有使用树结构化符号的经验,我们呼叫依赖视图(DVS),以预测建筑设计改变系统质量的影响。与BNS相比,DVS对参数化并创造得更苛刻。 DVS表明是充分的表现力,可理解和可行的。然而,它们的弱点是有限的分析能力。一旦创建,BNS更适应更改,而且比DVS更容易细化。在本文中,尽管有不同的估计方法和概念,但DVS与BNS完全兼容。从DV到BN的转换保留可追溯性并导致完整的BN。通过将DVS转换为BNS,我们已经启用了BNS的可靠参数化,以显着减少努力,现在可以利用DV和BN方法的优势。

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