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Recent advances in imprecise-probabilistic graphical models

机译:不精确的概率图形模型的最新进展

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We summarise and provide pointers to recent advances in inference and identification for specific types of probabilistic graphical models using imprecise probabilities. Robust inferences can be made in so-called creedal networks when the local models attached to their nodes are imprecisely specified as conditional lower previsions, by using exact algorithms whose complexity is comparable to that for the precise-probabilistic counterparts.
机译:我们总结并向使用不精确概率的特定类型的概率图形模型的推理和识别近期推进的指针提供指针。当通过使用精确的算法,通过使用精确算法与精确概率对应物的复杂性相当的精确算法,可以在所谓的信用网络中进行鲁棒推断。

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