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iOOBN: A Bayesian Network Modelling Tool Using Object Oriented Bayesian Networks with Inheritance

机译:iOOBN:使用具有继承性的面向对象的贝叶斯网络的贝叶斯网络建模工具

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The construction of Bayesian Networks (BNs) to model large-scale real-life problems is challenging. One approach to scaling up is Object Oriented Bayesian Networks (OOBNs). These provide modellers with the ability to define classes and construct models with a compositional and hierarchical structure, enabling reuse and supporting maintenance. In the OO programming paradigm, a key concept is inheritance, the ability to derive attributes and behavior from pre-existing classes, which enables an even higher level of reusability and scalability. However, inheritance in OOBNs has yet to be fully defined and implemented. Here we present iOOBN, a tool which provides fully defined inheritance for OOBNs. We provide guidance on modelling in iOOBN, describe our prototype implementation with an existing BN software tool, Hugin, and demonstrate its applicability and usefulness via a case study of re-engineering an existing large complex dynamic OOBN.
机译:建立贝叶斯网络(BN)来模拟大规模现实生活中的问题具有挑战性。扩大规模的一种方法是面向对象的贝叶斯网络(OOBN)。这些为建模者提供了定义类并使用组成和层次结构构造模型的能力,从而可以重用并支持维护。在OO编程范例中,一个关键概念是继承,即从预先存在的类派生属性和行为的能力,从而可以实现更高级别的可重用性和可伸缩性。但是,OOBN中的继承尚未完全定义和实现。在这里,我们介绍iOOBN,这是一种为OOBN提供完全定义的继承的工具。我们为iOOBN中的建模提供指导,使用现有的BN软件工具Hugin描述我们的原型实现,并通过对现有大型复杂动态OOBN进行重新设计的案例研究来证明其适用性和实用性。

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