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Some practical issues in inference in hybrid Bayesian networks with deterministic conditionals

机译:确定性条件下混合贝叶斯网络推理中的一些实际问题

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In this paper we analyze the use of hybrid Bayesian networks in domains that include deterministic conditionals for continuous variables. We show how exact inference can become infeasible even for small networks, due to the difficulty in handling functional relationships. We compare two strategies for carrying out the inference task, using mixtures of polynomials (MOPs) and mixtures of truncated exponentials (MTEs).
机译:在本文中,我们分析了混合贝叶斯网络在包含确定性条件的连续变量域中的使用。我们展示了由于处理功能关系的困难,即使对于小型网络,精确推理也变得不可行。我们比较了使用多项式(MOP)和截断指数(MTE)的混合来执行推理任务的两种策略。

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