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Bayesian additive regression trees with model trees

机译:贝叶斯添加剂回归树与模型树木

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摘要

Bayesian additive regression trees (BART) is a tree-based machine learning method that has been successfully applied to regression and classification problems. BART assumes regularisation priors on a set of trees that work as weak learners and is very flexible for predicting in the presence of nonlinearity and high-order interactions. In this paper, we introduce an extension of BART, called model trees BART (MOTR-BART), that considers piecewise linear functions at node levels instead of piecewise constants. In MOTR-BART, rather than having a unique value at node level for the prediction, a linear predictor is estimated considering the covariates that have been used as the split variables in the corresponding tree. In our approach, local linearities are captured more efficiently and fewer trees are required to achieve equal or better performance than BART. Via simulation studies and real data applications, we compare MOTR-BART to its main competitors. R code for MOTR-BART implementation is available at https://github.com/ebprado/MOTR-BART.
机译:贝叶斯添加剂回归树(BART)是一种基于树的机器学习方法,已成功应用于回归和分类问题。 BART在一套树上假设正规化的前瞻,这是一组弱学习者的树木,对于在非线性和高阶相互作用的情况下预测预测非常灵活。在本文中,我们介绍了一个叫做模型树Bart(MOTR-BART)的BART的扩展,这将考虑节点电平而不是分段常量的分段线性函数。在MOTR-BART中,而不是在预测的节点级别具有唯一值,考虑到已用作相应树中的分割变量的协变量来估计线性预测器。在我们的方法中,局部线性捕获更有效,更少的树木来实现相同或更好的性能而不是巴特。通过仿真研究和实际数据应用,我们将MOTR-BART与其主要竞争对手进行比较。 MOTR-BART实现的R代码可在https://github.com/ebprado/motr-bart获得。

著录项

  • 来源
    《Statistics and computing 》 |2021年第3期| 20.1-20.13| 共13页
  • 作者单位

    Maynooth Univ Hamilton Inst Maynooth Kildare Ireland|Maynooth Univ Dept Math & Stat Maynooth Kildare Ireland|Maynooth Univ Insight Ctr Data Analyt Maynooth Kildare Ireland;

    Maynooth Univ Hamilton Inst Maynooth Kildare Ireland|Maynooth Univ Dept Math & Stat Maynooth Kildare Ireland;

    Maynooth Univ Hamilton Inst Maynooth Kildare Ireland|Maynooth Univ Dept Math & Stat Maynooth Kildare Ireland|Maynooth Univ Insight Ctr Data Analyt Maynooth Kildare Ireland;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bayesian Trees; Linear models; Machine learning; Bayesian nonparametric regression;

    机译:贝叶斯树木;线性模型;机器学习;贝叶斯非参数回归;

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