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FUZZY CLASSIFIER SYSTEM FOR CLASSIFICATION TASK

机译:用于分类任务的模糊分类器系统

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In this paper, we discuss a fuzzification of the classical architecture of a learning classifier system. In this paper, Fuzzy Classifier System (FCS) is used to automatically generate fuzzy if-then rules for pattern classification problem. First, we describe FCS where a randomly generated initial population of fuzzy if-then rules is evolved by typical genetic operations such as selection, crossover and mutation. Second, we apply a heuristic procedure for improving the performance of FCS and compare result of adding this heuristic procedure. The motivation behind this approach is that classifier systems will be capable of generating compact, high performance rule sets which are general and accurate.
机译:在本文中,我们讨论了学习分类器系统的经典架构的模糊化。在本文中,模糊分类器系统(FCS)用于自动生成模糊IF-THE-DOT规则以进行模式分类问题。首先,我们描述了通过典型的遗传操作(例如选择,交叉和突变)随机生成的模糊IF-DON-DON规则的初始规则的初始群体。其次,我们应用启发式程序来提高FCS的性能,并比较添加这种启发式程序的结果。这种方法背后的动机是分类器系统将能够产生一般和准确的紧凑,高性能规则集。

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