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A combination classification method of multiple decisions trees-based on generic algorithm towards customer behavior

机译:基于通用算法的顾客行为的多决策树组合分类方法

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In order to solve the classification problems of customer behaviors with randomicity and non-conformability, a combination classification method is proposed of multiple decision trees based on genetic algorithm. In this method, multiple decision trees that adopt the method of probability measurement level output are combined in parallel. Genetic algorithm is utilized to optimize connection weight matrix in combination algorithm. Furthermore, two sets of simulation experiment data are used to test and evaluate the proposed method. Results of the experiments indicate that the proposed method generates a higher classification accuracy rate than other methods’ for customer behavior segmentation.
机译:为了解决具有随机性和不整合性的顾客行为分类问题,提出了一种基于遗传算法的多决策树组合分类方法。在这种方法中,将采用概率测量级别输出方法的多个决策树并行组合。结合组合算法,利用遗传算法对连接权重矩阵进行优化。此外,使用两组模拟实验数据来测试和评估该方法。实验结果表明,与其他方法相比,该方法产生的分类准确率更高。

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