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Effects of the Use of Multiple Fuzzy Partitions on the Search Ability of Multiobjective Fuzzy Genetics-Based Machine Learning

机译:多模糊分区对多目标模糊遗传学机器学习的搜索能力的影响

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An important issue in the design of fuzzy rule-based systems is to find a good accuracy-complexity tradeoff. While simple fuzzy systems with high interpretability are usually not accurate, complicated fuzzy systems with high accuracy are usually not interpretable. Recently evolutionary multiobjective optimization (EMO) algorithms have been used to search for simple and accurate fuzzy systems. The main advantage of EMO-based approaches over single-objective techniques is that a number of alternative fuzzy systems with different accuracy-complexity tradeoffs can be obtained by their single run. We have already proposed a multiobjective fuzzy genetics-based machine learning (GBML) algorithm for pattern classification problems. In our GBML algorithm, multiple fuzzy partitions with different granularities are simultaneously used. This is because we usually do not know an appropriate fuzzy partition for each input variable. However, the use of multiple fuzzy partitions significantly increases the size of the search space. In this paper, we examine the effect of the use of multiple fuzzy partitions on the search ability of our multiobjective fuzzy GBML algorithms through computational experiments.
机译:基于模糊规则的系统设计的一个重要问题是找到良好的精度复杂性权衡。虽然具有高可解释性的简单模糊系统通常不准确,但具有高精度的复杂模糊系统通常不会解释。最近进化的多目标优化(EMO)算法已被用于搜索简单准确的模糊系统。基于EMO的方法通过单目标技术的主要优点是,可以通过单次运行获得许多具有不同精度复杂性权衡的替代模糊系统。我们已经提出了一种用于模式分类问题的多目标模糊遗传学机器学习(GBML)算法。在我们的GBML算法中,同时使用具有不同粒度的多个模糊分区。这是因为我们通常不知道每个输入变量的适当模糊分区。但是,使用多个模糊分区显着增加了搜索空间的大小。在本文中,我们通过计算实验检查了多种模糊分区对多目标模糊GBML算法的搜索能力的影响。

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