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20232026
most citedCLIPose: Category-Level Object Pose Estimation with Pre-trained Vision-Language Knowledge

29 citations · 29 across the 3 of their papers we have counts for

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8 papers · 1 filter

cs.CV2026

MemPose: Category-level Object Pose Estimation with Memory

Xiao Lin, Minghao Zhu, Yun Peng +4

In the pursuit of robust and generalizable category-level object pose estimation, most existing methods adopt parametric formulations that learn effective representations from data…

cs.CV2026

TACO: Towards Task-Consistent Open-Vocabulary Adaptation in Video Recognition

Minghao Zhu, Xiao Lin, Mengxian Hu +5

Adapting CLIP for open-vocabulary video recognition necessitates a delicate balance between newly acquired video knowledge and the pretrained generalization. While existing studies…

cs.CV2025

CleanPose: Category-Level Object Pose Estimation via Causal Learning and Knowledge Distillation

Xiao Lin, Yun Peng, Liuyi Wang +6

Category-level object pose estimation aims to recover the rotation, translation and size of unseen instances within predefined categories. In this task, deep neural network-based m…

cs.CV2024

MoTE: Reconciling Generalization with Specialization for Visual-Language to Video Knowledge Transfer

Minghao Zhu, Zhengpu Wang, Mengxian Hu +5

Transferring visual-language knowledge from large-scale foundation models for video recognition has proved to be effective. To bridge the domain gap, additional parametric modules…

cs.CV2024

SAM-LAD: Segment Anything Model Meets Zero-Shot Logic Anomaly Detection

Yun Peng, Xiao Lin, Nachuan Ma +4

Visual anomaly detection is vital in real-world applications, such as industrial defect detection and medical diagnosis. However, most existing methods focus on local structural an…

cs.CV202429 cited

CLIPose: Category-Level Object Pose Estimation with Pre-trained Vision-Language Knowledge

Xiao Lin, Minghao Zhu, Ronghao Dang +5

Most of existing category-level object pose estimation methods devote to learning the object category information from point cloud modality. However, the scale of 3D datasets is li…