Boosted Histogram Transform for Regression
Yuchao Cai, Hanyuan Hang, Hanfang Yang, Zhouchen Lin
Abstract
In this paper, we propose a boosting algorithm for regression problems called boosted histogram transform for regression (BHTR) based on histogram transforms composed of random rotations, stretchings, and translations. From the theoretical perspective, we first prove fast convergence rates for BHTR under the assumption that the target function lies in the spaces C 0,α . Moreover, if the target function resides in the subspace C 1,α , for the first time we manage to explain the benefits of the boosting procedure, by establishing the upper bound of the convergence rate for the boosted regressor, i.e. BHTR, and the lower bound for base regressors, i.e. histogram transform regressors (HTR). In the experiments, compared with other state-of-the-art algorithms such as gradient boosted regression tree (GBRT), Breiman's forest, and kernel-based methods, our BHTR algorithm shows promising performance on both synthetic and real datasets.
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Cited by top-tier papers2
- GBHT: Gradient Boosting Histogram Transform for Density EstimationJingyi Cui, Hanyuan Hang, Yisen Wang, Zhouchen LinICML 2021 · 11 citations
- Extrapolated Random Tree for RegressionYuchao Cai, Yuheng Ma, Yiwei Dong, Hanfang YangICML 2023 · 5 citations
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