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A mixed-integer programming approach to multi-class data classification problem

机译:混合整数编程方法解决多类数据分类问题

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This paper presents a new data classification method based on mixed-integer programming. Traditional approaches that are based on partitioning the data sets into two groups perform poorly for multi-class data classification problems. The proposed approach is based on the use of hyper-boxes for defining boundaries of the classes that include all or some of the points in that set. A mixed-integer programming model is developed for representing existence of hyper-boxes and their boundaries. In addition, the relationships among the discrete decisions in the model are represented using propositional logic and then converted to their equivalent integer constraints using Boolean algebra. The proposed approach for multi-class data classification is illustrated on an example problem. The efficiency of the proposed method is tested on the well-known IRIS data set. The computational results on the illustrative example and the IRIS data set show that the proposed method is accurate and efficient on multi-class data classification problems. (c) 2005 Elsevier B.V. All rights reserved.
机译:本文提出了一种基于混合整数规划的数据分类新方法。基于数据集分为两组的传统方法在处理多类数据分类问题时效果不佳。所提出的方法基于使用超框来定义包括该集合中的所有或某些点的类的边界。开发了一种混合整数编程模型,用于表示超框及其边界的存在。另外,使用命题逻辑表示模型中离散决策之间的关系,然后使用布尔代数将其转换为等效的整数约束。在一个示例问题上说明了所提出的用于多类数据分类的方法。在众所周知的IRIS数据集上测试了该方法的效率。算例和IRIS数据集的计算结果表明,该方法对多类数据分类问题是准确有效的。 (c)2005 Elsevier B.V.保留所有权利。

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