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20202026
most citedHSVA: Hierarchical Semantic-Visual Adaptation for Zero-Shot Learning

84 citations · 162 across the 22 of their papers we have counts for

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33 papers · 1 filter

cs.CV2026

Mutually Causal Semantic Distillation Network for Zero-Shot Learning

Shiming Chen, Shuhuang Chen, Guo-Sen Xie +1

Zero-shot learning (ZSL) aims to recognize the unseen classes in the open-world guided by the side-information (e.g., attributes). Its key task is how to infer the latent semantic…

cs.CV2025

UniComp: Rethinking Video Compression Through Informational Uniqueness

Chao Yuan, Shimin Chen, Minliang Lin +3

Distinct from attention-based compression methods, this paper presents an information uniqueness driven video compression framework, termed UniComp, which aims to maximize the info…

cs.CV2025

Prototype-Guided Curriculum Learning for Zero-Shot Learning

Lei Wang, Shiming Chen, Guo-Sen Xie +4

In Zero-Shot Learning (ZSL), embedding-based methods enable knowledge transfer from seen to unseen classes by learning a visual-semantic mapping from seen-class images to class-lev…

cs.CV2025

Few-Shot Object Detection via Spatial-Channel State Space Model

Zhimeng Xin, Tianxu Wu, Yixiong Zou +3

Due to the limited training samples in few-shot object detection (FSOD), we observe that current methods may struggle to accurately extract effective features from each channel. Sp…

cs.CV2025

Interpretable Zero-Shot Learning with Locally-Aligned Vision-Language Model

Shiming Chen, Bowen Duan, Salman Khan +1

Large-scale vision-language models (VLMs), such as CLIP, have achieved remarkable success in zero-shot learning (ZSL) by leveraging large-scale visual-text pair datasets. However,…

cs.CV20251 cited

GenZSL: Generative Zero-Shot Learning Via Inductive Variational Autoencoder

Shiming Chen, Dingjie Fu, Salman Khan +1

Remarkable progress in zero-shot learning (ZSL) has been achieved using generative models. However, existing generative ZSL methods merely generate (imagine) the visual features fr…