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Probabilistic Approaches to Estimating the Quality of Information in Military Sensor Networks

机译:估计军事传感器网络信息质量的概率方法

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摘要

Modelling based on probabilistic inference can be used to estimate the quality of information delivered by a military sensor network. Different modelling tools have complementary characteristics that can be leveraged to create an accurate model open to intuitive and efficient querying. In particular, stochastic process models can be used to abstract away from the physical reality by describing it as components that exist in discrete states with probabilistically invoked actions that change the state. The quality of information may be assessed by using the model to compute the probability that reports made by the network to its users are correct. In contrast, dynamic Bayesian network models, which have been used in a variety of military applications, are a more suitable vehicle for understanding the overall network performance and making inferences about the quality of information. Queries can be made simply by instantiating some variables and computing the probability distributions over others. We show that it is possible to combine both modelling tools by constructing a Bayesian network over the state variables of the process algebra model. The sparsity of the resulting Bayesian network allows fast propagation of probabilities, and hence interactive querying for the quality of information.
机译:基于概率推断的建模可用于估计军事传感器网络传递的信息的质量。不同的建模工具具有互补的特征,可以利用这些特征来创建对直观和有效查询开放的准确模型。特别地,通过将​​随机过程模型描述为存在于离散状态中的组件,这些随机过程模型可通过改变状态的概率调用动作来抽象化物理现实。信息质量可以通过使用该模型计算网络向其用户作出的报告正确的概率来评估。相比之下,动态贝叶斯网络模型(已用于多种军事应用)是更适合理解整体网络性能并推断信息质量的工具。可以通过实例化一些变量并计算其他变量的概率分布来简单地进行查询。我们表明可以通过在过程代数模型的状态变量上构建贝叶斯网络来组合这两种建模工具。所产生的贝叶斯网络的稀疏性允许概率的快速传播,因此可以交互查询信息的质量。

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