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Diagnostic reasoning and medical decision-making with fuzzy influence diagrams.

机译:具有模糊影响图的诊断推理和医疗决策。

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摘要

Influence diagrams have been widely used as knowledge bases in medical informatics and many applied domains. In conventional influence diagrams, the numerical models of uncertainty are probability distributions associated with chance nodes and value tables for value nodes. However, when incomplete knowledge or linguistic vagueness is involved in the reasoning systems, the suitability of probability distributions is questioned. This study intends to propose an alternative numerical model for influence diagrams, possibility distributions, which extend influence diagrams into fuzzy influence diagrams. In fuzzy influence diagrams, each chance node and value node is associated with a possibility distribution which expresses the uncertain features of the node. This study also develops a simulation algorithm and a fuzzy programming model for diagnosis and optimal decision in medical settings.
机译:影响图已被广泛用作医学信息学和许多应用领域中的知识库。在常规影响图中,不确定性的数值模型是与机会节点和价值节点的价值表相关的概率分布。但是,当推理系统涉及不完整的知识或语言模糊性时,就会质疑概率分布的适用性。本研究旨在为影响图,可能性分布提出一个替代的数值模型,该模型将影响图扩展为模糊影响图。在模糊影响图中,每个机会节点和值节点都与表示该节点不确定特征的可能性分布关联。这项研究还开发了一种仿真算法和一个模糊规划模型,用于医疗环境中的诊断和最佳决策。

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