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Probability-Possibility Transformations: Application to Credal Networks

机译:概率-可能性转换:在Credal网络中的应用

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This paper deals with belief graphical models and probability-possibility transformations. It first analyzes some properties of transforming a credal network into a possibilistic one. In particular, we are interested in satisfying some properties of probability-possibility transformations like dominance and order preservation. The second part of the paper deals with using probability-possibility transformations in order to perform MAP inference in credal networks. This problem is known for its high computational complexity in comparison with MAP inference in Bayesian and possibilistic networks. The paper provides preliminary experimental results comparing our approach with both exact and approximate inference in credal networks.
机译:本文涉及信念图形模型和可能性-可能性转换。首先分析了将credal网络转换为可能网络的一些属性。尤其是,我们有兴趣满足概率-可能性转换的某些属性,例如支配性和顺序保留性。本文的第二部分讨论了使用可能性-可能性变换,以便在credal网络中执行MAP推断。与贝叶斯网络和可能性网络中的MAP推理相比,此问题因其较高的计算复杂度而闻名。本文提供了初步的实验结果,将我们的方法与credal网络中的精确推断和近似推断进行了比较。

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