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20242026
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cs.CV2026

GUIDED: Granular Understanding via Identification, Detection, and Discrimination for Fine-Grained Open-Vocabulary Object Detection

Jiaming Li, Zhijia Liang, Weikai Chen +2

Fine-grained open-vocabulary object detection (FG-OVD) aims to detect novel object categories described by attribute-rich texts. While existing open-vocabulary detectors show promi…

cs.CV2025

3D Weakly Supervised Semantic Segmentation via Class-Aware and Geometry-Guided Pseudo-Label Refinement

Xiaoxu Xu, Xuexun Liu, Jinlong Li +5

3D weakly supervised semantic segmentation (3D WSSS) aims to achieve semantic segmentation by leveraging sparse or low-cost annotated data, significantly reducing reliance on dense…

cs.CV2025

Orthogonal Projection Subspace to Aggregate Online Prior-knowledge for Continual Test-time Adaptation

Jinlong Li, Dong Zhao, Qi Zang +3

Continual Test Time Adaptation (CTTA) is a task that requires a source pre-trained model to continually adapt to new scenarios with changing target distributions. Existing CTTA met…

cs.CV2024

LESS: Label-Efficient and Single-Stage Referring 3D Segmentation

Xuexun Liu, Xiaoxu Xu, Jinlong Li +4

Referring 3D Segmentation is a visual-language task that segments all points of the specified object from a 3D point cloud described by a sentence of query. Previous works perform…

cs.CV2024

Enhancing Robustness of Vision-Language Models through Orthogonality Learning and Self-Regularization

Jinlong Li, Dong Zhao, Zequn Jie +3

Efficient fine-tuning of vision-language models (VLMs) like CLIP for specific downstream tasks is gaining significant attention. Previous works primarily focus on prompt learning t…

cs.CV2024

VidCompress: Memory-Enhanced Temporal Compression for Video Understanding in Large Language Models

Xiaohan Lan, Yitian Yuan, Zequn Jie +1

Video-based multimodal large language models (Video-LLMs) possess significant potential for video understanding tasks. However, most Video-LLMs treat videos as a sequential set of…