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首页> 外文期刊>International Journal of Information Technology & Decision Making >A MIXED INTEGER PROGRAMMING MODEL FOR MULTIPLE-CLASS DISCRIMINANT ANALYSIS
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A MIXED INTEGER PROGRAMMING MODEL FOR MULTIPLE-CLASS DISCRIMINANT ANALYSIS

机译:多类判别分析的混合整数规划模型

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摘要

A mixed integer programming model is proposed for multiple-class discriminant and classification analysis. When multiple discriminant functions, one for each class, are constructed with the mixed integer programming model, the number of misclassified observations in the sample is minimized. This model is an extension of the linear programming models for multiple-class discriminant analysis but may be considered as a generalization of mixed integer programming formulations for two-class classification analysis. Properties of the model are studied. The model is immune from any difficulties of many mathematical programming formulations for two-class classification analysis, such as nonexistence of optimal solutions, improper solutions, and instability under linear data transformation. In addition, meaningful discriminant functions can be generated under conditions where other techniques fail. Examples are provided. Results on publically accessible datasets show that this model is very effective in generating powerful discriminant functions.
机译:提出了一种混合整数规划模型,用于多类判别和分类分析。当使用混合整数规划模型构造针对每个类别的多个判别函数时,样本中未分类观察值的数量将降至最低。该模型是用于多类判别分析的线性规划模型的扩展,但可以视为用于两类分类分析的混合整数规划公式的概括。研究了模型的性质。该模型不受用于两类分类分析的许多数学程序设计公式的任何困难的困扰,例如不存在最优解,不正确的解以及线性数据转换下的不稳定性。另外,在其他技术失败的情况下,可以生成有意义的判别函数。提供示例。可公开访问的数据集的结果表明,该模型在生成强大的判别函数方面非常有效。

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