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Regression trees for multivalued numerical response variables

机译:多值数值响应变量的回归树

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In the framework of regression trees, this paper provides a recursive partitioning methodology to deal with a non-standard response variable. Specifically, either multivalued numerical or modal response of the type histogram will be considered. These data are known as symbolic data, which special cases are classical data, imprecise data, conjunctive data as well as fuzzy data. In spite of pre-processing data in order to deal with standard regression tree methodology, this paper provides, as main contribution, a definition of the impurity measure and of the splitting criterion allowing for building the regression tree for multivalued numerical response variable. We analyze and evaluate the performance of our proposal, using simulated data as well as a real-world case studies. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在回归树的框架中,本文提供了一种递归分区方法来处理非标准响应变量。具体来说,将考虑直方图类型的多值数值或模态响应。这些数据称为符号数据,特殊情况是经典数据,不精确数据,合取数据以及模糊数据。尽管为了处理标准回归树方法而进行了预处理,但本文还是作为主要贡献提供了杂质度量和划分标准的定义,以允许为多值数值响应变量构建回归树。我们使用模拟数据以及实际案例研究来分析和评估我们提案的效果。 (C)2016 Elsevier Ltd.保留所有权利。

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