HuCurl: Human-induced Curriculum Discovery
Mohamed Elgaar, Hadi Amiri
摘要
We introduce the problem of curriculum discovery and describe a curriculum learning framework capable of discovering effective curricula in a curriculum space based on prior knowledge about sample difficulty. Using annotation entropy and loss as measures of difficulty, we show that (i): the top-performing discovered curricula for a given model and dataset are often non-monotonic as apposed to monotonic curricula in existing literature, (ii): the prevailing easy-to-hard or hard-to-easy transition curricula are often at the risk of underperforming, and (iii): the curricula discovered for smaller datasets and models perform well on larger datasets and models respectively. The proposed framework encompasses some of the existing curriculum learning approaches and can discover curricula that outperform them across several NLP tasks.
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它引用的顶会 Paper9
- Curriculum Learning for Natural Language UnderstandingBenfeng Xu, Licheng Zhang, Zhendong Mao, Quan Wang 等ACL 2020 · 被引用 156 次
- When Do Curricula Work?Xiaoxia Wu, Ethan Dyer, Behnam NeyshaburICLR 2021 · 被引用 141 次
- Curriculum Learning by Dynamic Instance HardnessTianyi Zhou, Shengjie Wang, Jeff A. BilmesNeurIPS 2020 · 被引用 113 次
- SuperLoss: A Generic Loss for Robust Curriculum LearningThibault Castells, Philippe Weinzaepfel, Jérôme RevaudNeurIPS 2020 · 被引用 96 次
- Curriculum By SmoothingSamarth Sinha, Animesh Garg, Hugo LarochelleNeurIPS 2020 · 被引用 95 次
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