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An experimental comparison of the new goal programming and the linear programming approaches in the two-group discriminant problems

机译:两组判别问题中新目标规划和线性规划方法的实验比较

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摘要

The aim of this article is to consider a new linear programming and two goal programming models for two-group classification problems. When these approaches are applied to the data of real life or of simulation, our proposed new models perform well both in separating the groups and the group-membership predictions of new objects. In discriminant analysis some linear programming models determine the attribute weights and the cut-off value in two steps, but our models determine simultaneously all of these values in one step. Moreover, the results of simulation experiments show that our proposed models outperform significantly than existing linear programming and statistical approaches in attaining higher average hit-ratios.
机译:本文的目的是为两组分类问题考虑一个新的线性规划和两个目标规划模型。当将这些方法应用于现实生活或模拟数据时,我们提出的新模型在分离组和新对象的组成员预测方面都表现良好。在判别分析中,一些线性规划模型分两步确定属性权重和临界值,但是我们的模型可以一步确定同时确定所有这些值。此外,仿真实验的结果表明,在获得更高的平均命中率方面,我们提出的模型优于现有的线性规划和统计方法。

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