Formal Models of Active Learning from Contrastive Examples
Farnam Mansouri, Hans Simon, Adish Singla, Yuxin Chen, Sandra Zilles
摘要
Machine learning can greatly benefit from providing learning algorithms with pairs of contrastive training examples -- typically pairs of instances that differ only slightly, yet have different class labels. Intuitively, the difference in the instances helps explain the difference in the class labels. This paper proposes a theoretical framework in which the effect of various types of contrastive examples on active learners is studied formally. The focus is on the sample complexity of learning concept classes and how it is influenced by the choice of contrastive examples. We illustrate our results with geometric concept classes and classes of Boolean functions. Interestingly, we reveal a connection between learning from contrastive examples and the classical model of self-directed learning.
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- A Simple Framework for Contrastive Learning of Visual RepresentationsTing Chen, Simon Kornblith, Mohammad Norouzi, Geoffrey E. HintonICML 2020 · 被引用 24,064 次
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- ALICE: Active Learning with Contrastive Natural Language ExplanationsWeixin Liang, James Zou, Zhou YuEMNLP 2020 · 被引用 36 次
- Teaching an Active Learner with Contrastive ExamplesChaoqi Wang, Adish Singla, Yuxin ChenNeurIPS 2021 · 被引用 17 次
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