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Deriving stochastic properties from behavior models defined by Monterey Phoenix

机译:从蒙特雷·菲尼克斯定义的行为模型中得出随机属性

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Stochastic properties of behavior models are of interest to the developer of a System of Systems (SoS) in order to gain insight to the likelihood of potential outcomes of the system. Constraints added to the system introduce changes to the inherent dependencies within a representative Bayesian belief network; thereby impacting the system. This paper defines a probability process model that may be used to identify the probability of outcomes compliant with behavior models defined in Monterey Phoenix (MP), with constraints added to the model.
机译:行为模型的随机属性对于系统系统(SoS)的开发人员来说是令人感兴趣的,以便深入了解系统潜在结果的可能性。添加到系统中的约束会引入对代表性贝叶斯信念网络内固有依赖关系的更改;从而影响系统。本文定义了一种概率过程模型,该模型可用于确定符合蒙特雷·菲尼克斯(MP)中定义的行为模型的结果的概率,并在模型中添加了约束。

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