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Quotient FCMs-A Decomposition Theory for Fuzzy Cognitive Maps

机译:商FCMs-A模糊认知图的分解理论

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In this paper, we introduce a decomposition theory for fuzzy cognitive maps (FCMs). First, we partition the set of vertices of an FCM into blocks according to an equivalence relation, and by regarding these blocks as vertices we construct a quotient FCM. Second, each block induces a natural sectional FCM of the original FCM, which inherits the topological structure as well as the inference from the original FCM. In this way, we decompose the original FCM into a quotient FCM and some sectional FCMs. As a result, the analysis of the original FCM is reduced to the analysis of the quotient and sectional FCMs, which are often much smaller in size and complexity. Such a reduction is important in analyzing large-scale FCMs. We also propose a causal algebra in the quotient FCM, which indicates that the effect that one vertex influences another in the quotient depends on the weights and states of the-vertices along directed paths from the former to the latter. To illustrate the process involved, we apply our decomposition theory to university management networks. Finally, we discuss possible approaches to partitioning an FCM and major concerns in constructing quotient FCMs. The results represented in this paper provide an effective framework for calculating and simplifying causal inference patterns in complicated real-world applications.
机译:在本文中,我们介绍了模糊认知图(FCM)的分解理论。首先,我们根据等价关系将FCM的顶点集划分为块,然后将这些块视为顶点,从而构造商FCM。其次,每个块都引发原始FCM的自然截面FCM,它继承了拓扑结构以及来自原始FCM的推论。这样,我们将原始FCM分解为商FCM和一些分段FCM。结果,将原始FCM的分析简化为商和截面FCM的分析,它们的大小和复杂度通常要小得多。这种减少对于分析大型FCM非常重要。我们还提出了商FCM中的因果代数,该因果代数表明一个顶点影响商中的另一个顶点的效果取决于沿从前者到后者的有向路径的顶点的权重和状态。为了说明所涉及的过程,我们将分解理论应用于大学管理网络。最后,我们讨论了划分FCM的可能方法以及构建商FCM的主要问题。本文表示的结果为在复杂的实际应用中计算和简化因果推断模式提供了有效的框架。

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