Creativity Inspired Zero-Shot Learning
Mohamed Elhoseiny, Mohamed Elfeki
摘要
Zero-shot learning (ZSL) aims at understanding unseen categories with no training examples from class-level descriptions. To improve the discriminative power of zeroshot learning, we model the visual learning process of unseen categories with an inspiration from the psychology of human creativity for producing novel art. We relate ZSL to human creativity by observing that zero-shot learning is about recognizing the unseen and creativity is about creating a likable unseen. We introduce a learning signal inspired by creativity literature that explores the unseen space with hallucinated class-descriptions and encourages careful deviation of their visual feature generations from seen classes while allowing knowledge transfer from seen to unseen classes. Empirically, we show consistent improvement over the state of the art of several percents on the largest available benchmarks on the challenging task or generalized ZSL from a noisy text that we focus on, using the CUB and NABirds datasets. We also show the advantage of our approach on Attribute-based ZSL on three additional datasets (AwA2, aPY, and SUN). Code is available at https://github.com/mhelhoseiny/CIZSL .
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引用它的顶会 Paper8
- Class Normalization for (Continual)? Generalized Zero-Shot LearningIvan Skorokhodov, Mohamed ElhoseinyICLR 2021 · 被引用 51 次
- Towards Novel Target Discovery Through Open-Set Domain AdaptationTaotao Jing, Hongfu Liu, Zhengming DingICCV 2021 · 被引用 40 次
- Rethinking Generative Zero-Shot Learning: An Ensemble Learning Perspective for Recognising Visual PatchesZhi Chen, Sen Wang, Jingjing Li, Zi HuangACM MM 2020 · 被引用 33 次
- Continual Zero-Shot Learning through Semantically Guided Generative Random WalksWenxuan Zhang, Paul Janson, Kai Yi, Ivan Skorokhodov 等ICCV 2023 · 被引用 5 次
- Inspiration Seeds: Learning Non-Literal Visual Combinations for Generative ExplorationKfir Goldberg, Elad Richardson, Yael VinkerSIGGRAPH 2026 · 被引用 1 次
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