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Consistency of Oblique Decision Tree and its Boosting and Random Forest

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arxiv 2211.12653 v4 pith:MCBQGD2M submitted 2022-11-23 math.ST stat.TH

classification math.STstat.TH
keywords treeconsistencyregressionboostingcartforestrandomvery
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abstract

Classification and Regression Tree (CART), Random Forest (RF) and Gradient Boosting Tree (GBT) are probably the most popular set of statistical learning methods. However, their statistical consistency can only be proved under very restrictive assumptions on the underlying regression function. As an extension to standard CART, the oblique decision tree (ODT), which uses linear combinations of predictors as partitioning variables, has received much attention. ODT tends to perform numerically better than CART and requires fewer partitions. In this paper, we show that ODT is consistent for very general regression functions as long as they are $L^2$ integrable. Then, we prove the consistency of the ODT-based random forest (ODRF), whether fully grown or not. Finally, we propose an ensemble of GBT for regression by borrowing the technique of orthogonal matching pursuit and study its consistency under very mild conditions on the tree structure. After refining existing computer packages according to the established theory, extensive experiments on real data sets show that both our ensemble boosting trees and ODRF have noticeable overall improvements over RF and other forests.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Breaking the Curse with BAND: Nonparametric Distribution Estimation in High Dimensions

    stat.ML 2026-07 conditional novelty 6.0 of 10

    Sparse Bayesian-network factorization plus sparsity-aware regression yields polynomial TV rates for high-dimensional mixed-type distribution estimation, beating classical histogram rates under sparsity.

  2. ODTE -- An ensemble of multi-class SVM-based oblique decision trees

    cs.LG 2024-11 conditional novelty 5.0 of 10

    ODTE builds a bagging ensemble of SVM-based oblique decision trees that handle multiclass problems directly at each node and reports competitive accuracy with more compact trees than alternatives.

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