文化大學機構典藏 CCUR:Item 987654321/39266
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    jsp.display-item.identifier=請使用永久網址來引用或連結此文件: https://irlib.pccu.edu.tw/handle/987654321/39266


    题名: Integrated artificial intelligence-based resizing strategy and multiple criteria decision making technique to form a management decision in an imbalanced environment
    作者: Lin, SJ (Lin, Sin-Jin)
    贡献者: 會計系
    关键词: Decision making
    Imbalance data
    Multiple criteria decision making
    Support vector machine
    日期: 2017-12
    上传时间: 2018-01-11 11:06:49 (UTC+8)
    摘要: Classification in an imbalanced dataset is a current challenge in machine learning communities, as the class-imbalanced problem deteriorates the performance of numerous classifiers. This study introduces a two-stage intelligent data preprocessing approach to tackle the class-imbalanced problem. By modifying the penalty parameter of the support vector machine (SVM), the discriminating boundary will move toward the majority class and in turn misclassify the majority class examples as minority class examples. That is, more misclassifications for the majority class examples are equivalent to a greater number of minority class examples. Executing the SVM as a preprocessor can be used to overcome the class imbalanced problem. Sequentially, the modified dataset undergoes the random forest to defy the curse of dimensionality. Finally, the preprocessed data are fed into a rule-based classifier to generate comprehensive decision rules. According to the empirical results, the presented architecture is a promising alternative for the class-imbalanced problem.
    關聯: INTERNATIONAL JOURNAL OF MACHINE LEARNING AND CYBERNETICS 卷: 8 期: 6 頁碼: 1981-1992
    显示于类别:[會計學系暨研究所 ] 期刊論文

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