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On Generalized Fuzzy Jensen-Exponential Divergence and Its Application to Pattern Recognition

机译:关于广义模糊的詹森指数发散及其应用于模式识别

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This paper develops a novel information theoretic divergence measure between two fuzzy sets based on exponential function and applies it to solve pattern recognition problems. First, we generalize the idea of fuzzy Jensen-exponential divergence and propose a new parametric divergence called fuzzy Jensen-exponential divergence of order-α to measure the information of discrimination between two fuzzy sets. We also prove some properties of the proposed measure and discuss its particular cases. Finally, we apply the proposed divergence measure between fuzzy sets to deal with pattern recognition problems with fuzzy information.
机译:本文在基于指数函数中,在两个模糊集之间开发了一种新的信息理论分歧测量,并应用它来解决模式识别问题。首先,我们概括了模糊的Jensen-指数发散的想法,并提出了一种称为模糊的Jensen-指数发散的新的参数分歧,以测量两个模糊集之间的判别信息。我们还证明了拟议措施的一些属性,并讨论其特定情况。最后,我们在模糊集之间应用建议的分歧测量来处理模糊信息的模式识别问题。

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