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How to Combine Probabilistic and Possibilistic (Expert) Knowledge: Uniqueness of Reconstruction in Yageru27s (Product) Approach

机译:如何结合概率和可能(专家)知识:Yager u27s(产品)方法中重建的独特性

摘要

Often, about the same real-life system, we have both measurement-related probabilistic information expressed by a probability measure P(S) and expert-related possibilistic information expressed by a possibility measure M(S). To get the most adequate idea about the system, we must combine these two pieces of information. For this combination, R. Yager -- borrowing an idea from fuzzy logic -- proposed to use the simple product t-norm, i.e., to consider a set function f(S) = P(S) * M(S). A natural question is: can we uniquely reconstruct the two parts of knowledge from this function f(S)? In this paper, we prove that while in the discrete case, the reconstruction is often not unique, in the continuous case, we can always uniquely reconstruct both components P(S) and M(S) from the combined function f(S). In this sense, Yageru27s combination is indeed an adequate way to combine the two parts of knowledge.
机译:通常,对于同一个现实系统,我们既有由概率测度P(S)表示的与测量相关的概率信息,也有由可能性测度M(S)表示的与专家相关的概率信息。为了对系统有最充分的了解,我们必须将这两部分信息结合起来。对于这种组合,R.Yager(从模糊逻辑中借用了一个想法)建议使用简单乘积t范数,即考虑集合函数f(S)= P(S)* M(S)。一个自然的问题是:我们可以根据该函数f(S)唯一地重构知识的两个部分吗?在本文中,我们证明了在离散情况下重建通常不是唯一的,而在连续情况下,我们始终可以从组合函数f(S)唯一地重建分量P(S)和M(S)。从这个意义上讲,Yager的结合确实是将知识的两个部分结合起来的适当方法。

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