cs.AI updates on arXiv.org 09月12日
扩展贝叶斯定理:区间型-2贝叶斯推断
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本文提出将贝叶斯定理扩展至区间型-2版本,避免输入的不一致性,并介绍一种将专家提供的区间编码为区间型-2模糊隶属函数的算法。

arXiv:2509.08834v1 Announce Type: new Abstract: Bayesian inference is widely used in many different fields to test hypotheses against observations. In most such applications, an assumption is made of precise input values to produce a precise output value. However, this is unrealistic for real-world applications. Often the best available information from subject matter experts (SMEs) in a given field is interval range estimates of the input probabilities involved in Bayes Theorem. This paper provides two key contributions to extend Bayes Theorem to an interval type-2 (IT2) version. First, we develop an IT2 version of Bayes Theorem that uses a novel and conservative method to avoid potential inconsistencies in the input IT2 MFs that otherwise might produce invalid output results. We then describe a novel and flexible algorithm for encoding SME-provided intervals into IT2 fuzzy membership functions (MFs), which we can use to specify the input probabilities in Bayes Theorem. Our algorithm generalizes and extends previous work on this problem that primarily addressed the encoding of intervals into word MFs for Computing with Words applications.

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贝叶斯定理 区间型-2 模糊隶属函数 区间编码 贝叶斯推断
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