Optimal Sparse Regression Trees
Rui Zhang, Rui Xin, Margo I. Seltzer, Cynthia Rudin
摘要
Regression trees are one of the oldest forms of AI models, and their predictions can be made without a calculator, which makes them broadly useful, particularly for high-stakes applications. Within the large literature on regression trees, there has been little effort towards full provable optimization, mainly due to the computational hardness of the problem. This work proposes a dynamic-programming-with-bounds approach to the construction of provably-optimal sparse regression trees. We leverage a novel lower bound based on an optimal solution to the k-Means clustering algorithm on one dimensional data. We are often able to find optimal sparse trees in seconds, even for challenging datasets that involve large numbers of samples and highly-correlated features.
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引用它的顶会 Paper5
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- Conditional Density Estimation with Histogram TreesLincen Yang, Matthijs van LeeuwenNeurIPS 2024 · 被引用 6 次
- Optimal Classification Trees for Continuous Feature Data Using Dynamic Programming with Branch-and-BoundCatalin E. Brita, Jacobus G. M. van der Linden, Emir DemirovicAAAI 2025 · 被引用 5 次
- Differentiable Decision Tree via "ReLU+Argmin" ReformulationQiangqiang Mao, Jiayang Ren, Yixiu Wang, Chenxuanyin Zou 等NeurIPS 2025 · 被引用 2 次
它引用的顶会 Paper3
- Generalized and Scalable Optimal Sparse Decision TreesJimmy Lin, Chudi Zhong, Diane Hu, Cynthia Rudin 等ICML 2020 · 被引用 174 次
- Learning Optimal Decision Trees Using Caching Branch-and-Bound SearchGaël Aglin, Siegfried Nijssen, Pierre SchausAAAI 2020 · 被引用 134 次
- Efficient Inference of Optimal Decision TreesFlorent AvellanedaAAAI 2020 · 被引用 62 次
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