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20242026
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cs.CV2026

PACO: Proxy-Task Alignment and Online Calibration for On-the-Fly Category Discovery

Weidong Tang, Bohan Zhang, Zhixiang Chi +3

On-the-Fly Category Discovery (OCD) requires a model, trained on an offline support set, to recognize known classes while discovering new ones from an online streaming sequence. Ex…

cs.CV2026

Learning through Creation: A Hash-Free Framework for On-the-Fly Category Discovery

Bohan Zhang, Weidong Tang, Zhixiang Chi +4

On-the-Fly Category Discovery (OCD) aims to recognize known classes while simultaneously discovering emerging novel categories during inference, using supervision only from known c…

cs.CV2026

TALON: Test-time Adaptive Learning for On-the-Fly Category Discovery

Yanan Wu, Yuhan Yan, Tailai Chen +5

On-the-fly category discovery (OCD) aims to recognize known categories while simultaneously discovering novel ones from an unlabeled online stream, using a model trained only on la…

cs.CV2026

Generalization in Online Reinforcement Learning for Mobile Agents

Li Gu, Zihuan Jiang, Zhixiang Chi +5

Graphical user interface (GUI)-based mobile agents automate digital tasks on mobile devices by interpreting natural-language instructions and interacting with the screen. While rec…

cs.CV2025

Plug-in Feedback Self-adaptive Attention in CLIP for Training-free Open-Vocabulary Segmentation

Zhixiang Chi, Yanan Wu, Li Gu +5

CLIP exhibits strong visual-textual alignment but struggle with open-vocabulary segmentation due to poor localization. Prior methods enhance spatial coherence by modifying intermed…

cs.CV2024

Task Consistent Prototype Learning for Incremental Few-shot Semantic Segmentation

Wenbo Xu, Yanan Wu, Haoran Jiang +3

Incremental Few-Shot Semantic Segmentation (iFSS) tackles a task that requires a model to continually expand its segmentation capability on novel classes using only a few annotated…