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Yuhao Lu

3 accepted papers

2023

VL-Grasp: a 6-Dof Interactive Grasp Policy for Language-Oriented Objects in Cluttered Indoor Scenes

IROS 2023poster

Robotic grasping faces new challenges in human-robot-interaction scenarios. We consider the task that the robot grasps a target object designated by human's language directives. The robot not only needs to locate a target based on vision-and-language information, but also needs to predict the reason…

Cited by 23SourcecodeScholar
2022

Hybrid Physical Metric For 6-DoF Grasp Pose Detection

ICRA 2022poster

6-DoF grasp pose detection of multi-grasp and multi-object is a challenge task in the field of intelligent robot. To imitate human reasoning ability for grasping objects, data driven methods are widely studied. With the introduction of large-scale datasets, we discover that a single physical metric…

Cited by 22SourcecodeScholar
2020

Deep Credible Metric Learning for Unsupervised Domain Adaptation Person Re-identification

ECCV 2020poster

The trained person re-identification systems fundamentally need to be deployed on different target environments. Learning the cross-domain model has great potential for the scalability of real-world applications. In this paper, we propose a deep credible metric learning (DCML) method for unsupervise…

Cited by 116SourcePDFScholar