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📄 ResearchAugust 20, 2026

DICS: Data-Informed Centroid Splitting for Decision Tree Classifiers

Decision tree-based models are widely used in machine learning due to their interpretability and strong empirical performance. However, training decision trees can be computationally expensive, particularly for large and high-dimensional datasets, largely due to the exhaustive search over candidate ...

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Source

http://arxiv.org/abs/2608.20258v1