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A method for the detection of the most suitable fuzzy implication for data applications

机译:检测数据应用最合适的模糊含义的方法

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摘要

Fuzzy implications are widely used in applications where propositional logic is applicable. In cases where a variety of fuzzy implications can be used for a specific application, it is important that the optimal candidate to be chosen in order valuable inference to be drawn for a given set of data. This study introduces a method for detecting the most suitable fuzzy implication among others under consideration by evaluating the metric distance between each implication and the ideal implication for a given data application. The ideal implicationIis defined and used as a reference in order to measure the suitability of fuzzy implications. The method incorporates an algorithm which results in two extreme cases of fuzzy implications regarding their suitability for inference making; the most suitable and the least suitable implications. An example involving five fuzzy implications is included to illustrate the procedure of the method. The results obtained verify that the resulting implication is the optimal operator for inference making for the data.
机译:模糊含义广泛用于命题逻辑适用的应用中。在可以用于特定应用的各种模糊含义的情况下,重要的是要选择最佳候选者,以便为给定的一组数据绘制有价值的推理。本研究介绍了通过评估每个含义之间的度量距离和给定数据应用的理想含义来检测其他对其中最合适的模糊含义的方法。定义并用作参考的理想含义,以测量模糊含义的适用性。该方法包括一种算法,它导致两个关于其推理制造适用性的模糊造成的极端情况;最合适和最不适合的含义。包括涉及五种模糊含义的示例以说明该方法的过程。获得的结果验证了所产生的含义是用于数据的推理制定的最佳运算符。

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