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Jiaojiao Li

5 accepted papers

2026

Exploring 6D Object Pose Estimation with Deformation

CVPR 2026

We present DeSOPE, a large-scale dataset for 6DoF deformed objects. Most 6D object pose methods assume rigid or articulated objects, an assumption that fails in practice as objects deviate from their canonical shapes due to wear, impact, or deformation. To model this, we introduce the DeSOPE dataset

Cited by 0SourcecodeScholar
2025

SCFlow2: Plug-and-Play Object Pose Refiner with Shape-Constraint Scene Flow

CVPR 2025poster

We introduce SCFlow2, a plug-and-play refinement framework for 6D object pose estimation. Most recent 6D object pose methods rely on refinement to get accurate results. However, most existing refinements either suffer from noises in establishing correspondences, or rely on retraining for novel objec…

Cited by 0SourcePDFScholar
2023

Pseudo Flow Consistency for Self-Supervised 6D Object Pose Estimation

ICCV 2023poster

Most self-supervised 6D object pose estimation methods can only work with additional depth information or rely on the accurate annotation of 2D segmentation masks, limiting their application range. In this paper, we propose a 6D object pose estimation method that can be trained with pure RGB images…

Cited by 12PDFcodeScholar
2023

Rigidity-Aware Detection for 6D Object Pose Estimation

CVPR 2023poster

Most recent 6D object pose estimation methods first use object detection to obtain 2D bounding boxes before actually regressing the pose. However, the general object detection methods they use are ill-suited to handle cluttered scenes, thus producing poor initialization to the subsequent pose networ…

2023

Shape-Constraint Recurrent Flow for 6D Object Pose Estimation

CVPR 2023poster

Most recent 6D object pose estimation methods rely on 2D optical flow networks to refine their results. However, these optical flow methods typically do not consider any 3D shape information of the targets during matching, making them suffer in 6D object pose estimation. In this work, we propose a s…