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Aggregating classifiers with ordinal response structure

机译:聚合具有顺序响应结构的分类器

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In recent years, the introduction of aggregation methods led to many new techniques within the field of prediction and classification. The most important developments, bagging and boosting, have been extensively analyzed for two- and multiclass problems. While the proposed methods treat the class indicator as a nominal response without any structure, in many applications the class may be considered as an ordered categorical variable. In this article, variants of bagging and boosting are proposed, which make use of the ordinal structure. It is demonstrated how the predictive power is improved by the use of appropriate aggregation methods. Comparisons between the methods are based on misclassification rates as well as criteria that take ordinality into account, like absolute or squared distance measures.
机译:近年来,聚合方法的引入导致了预测和分类领域中的许多新技术。对于两类和多类问题,已经对最重要的发展(装袋和提振)进行了广泛分析。虽然所提出的方法将类别指示符视为没有任何结构的名义响应,但在许多应用中,可以将类别视为有序的类别变量。在本文中,提出了使用序数结构的装袋和装袋的变体。演示了如何通过使用适当的聚合方法来提高预测能力。两种方法之间的比较是基于误分类率以及考虑到常规性(例如绝对或平方距离测量)的标准。

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