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20172026
most citedOn Implicit Attribute Localization for Generalized Zero-Shot Learning

18 citations · 49 across the 30 of their papers we have counts for

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Showing 2024 · cs.CVShow all

8 papers · 2 filters

cs.CV2024

Token Merging for Training-Free Semantic Binding in Text-to-Image Synthesis

Taihang Hu, Linxuan Li, Joost van de Weijer +6

Although text-to-image (T2I) models exhibit remarkable generation capabilities, they frequently fail to accurately bind semantically related objects or attributes in the input prom…

cs.CV2024

Multi-Class Textual-Inversion Secretly Yields a Semantic-Agnostic Classifier

Kai Wang, Fei Yang, Bogdan Raducanu +1

With the advent of large pre-trained vision-language models such as CLIP, prompt learning methods aim to enhance the transferability of the CLIP model. They learn the prompt given…

cs.CV2024

Assessing Open-world Forgetting in Generative Image Model Customization

Héctor Laria, Alex Gomez-Villa, Kai Wang +2

Recent advances in diffusion models have significantly enhanced image generation capabilities. However, customizing these models with new classes often leads to unintended conseque…

cs.CV2024

Exemplar-free Continual Representation Learning via Learnable Drift Compensation

Alex Gomez-Villa, Dipam Goswami, Kai Wang +3

Exemplar-free class-incremental learning using a backbone trained from scratch and starting from a small first task presents a significant challenge for continual representation le…

cs.CV2024

Resurrecting Old Classes with New Data for Exemplar-Free Continual Learning

Dipam Goswami, Albin Soutif--Cormerais, Yuyang Liu +3

Continual learning methods are known to suffer from catastrophic forgetting, a phenomenon that is particularly hard to counter for methods that do not store exemplars of previous t…

cs.CV2024

LocInv: Localization-aware Inversion for Text-Guided Image Editing

Chuanming Tang, Kai Wang, Fei Yang +1

Large-scale Text-to-Image (T2I) diffusion models demonstrate significant generation capabilities based on textual prompts. Based on the T2I diffusion models, text-guided image edit…