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Most Influential AISTATS 2001 Paper · 2026-03 edition

Online Bagging and Boosting

Nikunj C. Oza; Stuart J. Russell

Venue
Conference on Artificial Intelligence and Statistics (AISTATS) 2001
Recognition
Most Influential AISTATS 2001 Paper (Rank No. 1)
Edition
2026-03
Impact factor
8
Certificate ID
dc58f1e0f4bf17f9

Abstract

Bagging and boosting are well-known ensemble learning methods. They combine multiple learned base models with the aim of improving generalization performance. To date, they have been used primarily in batch mode, and no effective online versions have been proposed. We present simple online bagging and boosting algorithms that we claim perform as well as their batch counterparts.

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