Induction of ordinal decision trees

J.W.T. Lee, Da-Zhong Liu
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引用次数: 5

Abstract

In many disciplines, such as social and behavioral sciences, we often have to do ordinal classification by assigning objects to ordinal classes. The fundamental objective of ordinal classification is to create an ordering in the universe of discourse. As such, a decision tree for ordinal classification should aim at producing an ordering which is most consistent with the implicit ordering in the input data. Ordinal classification problems are often dealt with by treating ordinal classes as nominal classes, or by representing the classes as values on a quantitative scale. Such approaches may not lead to the most desirable results since the methods do not fit the type of data, viz. ordinal data, concerned. In this paper, we propose a new measure for assessing the quality of output from an ordinal classification approach. We also propose an induction method to generate an ordinal decision tree for ordinal classification based on this quality perspective. We demonstrate the advantage of our method using results from a set of experiments.
序数决策树的归纳
在许多学科中,例如社会科学和行为科学,我们经常需要通过将对象分配到有序类来进行有序分类。有序分类的基本目标是在话语世界中创造一种秩序。因此,有序分类的决策树应该以产生与输入数据中的隐式排序最一致的排序为目标。序数分类问题通常通过将序数类视为名义类或将类表示为定量尺度上的值来处理。这种方法可能不会导致最理想的结果,因为这些方法不适合有关的数据类型,即顺序数据。在本文中,我们提出了一种评估有序分类方法输出质量的新方法。在此基础上,提出了一种生成有序分类决策树的归纳法。我们用一组实验的结果来证明我们方法的优点。
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