Improved Sample Complexity for Multiclass PAC Learning
Steve Hanneke, Shay Moran, Qian Zhang
摘要
We aim to understand the optimal PAC sample complexity in multiclass learning. While finiteness of the Daniely-Shalev-Shwartz (DS) dimension has been shown to characterize the PAC learnability of a concept class [Brukhim, Carmon, Dinur, Moran, and Yehudayoff, 2022], there exist polylog factor gaps in the leading term of the sample complexity. In this paper, we reduce the gap in terms of the dependence on the error parameter to a single log factor and also propose two possible routes towards completely resolving the optimal sample complexity, each based on a key open question we formulate: one concerning list learning with bounded list size, the other concerning a new type of shifting for multiclass concept classes. We prove that a positive answer to either of the two questions would completely resolve the optimal sample complexity up to log factors of the DS dimension.
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引用它的顶会 Paper2
- Sample Complexity of Agnostic Multiclass Classification: Natarajan Dimension Strikes BackAlon Cohen, Liad Erez, Steve Hanneke, Tomer Koren 等STOC 2026 · 被引用 10 次
- On Learning Verifiers and Implications to Chain-of-Thought ReasoningMaria-Florina Balcan, Avrim Blum, Zhiyuan Li, Dravyansh SharmaNeurIPS 2025 · 被引用 4 次
它引用的顶会 Paper3
- A Characterization of List LearnabilityMoses Charikar, Chirag PabbarajuSTOC 2023 · 被引用 25 次
- A Characterization of Multiclass LearnabilityNataly Brukhim, Daniel Carmon, Irit Dinur, Shay Moran 等FOCS 2022 · 被引用 7 次
- Optimal PAC Bounds without Uniform ConvergenceIshaq Aden-Ali, Yeshwanth Cherapanamjeri, Abhishek Shetty, Nikita ZhivotovskiyFOCS 2023 · 被引用 3 次
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