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Chen Fu

3 accepted papers

2021

Linear Inverse Problem for Depth Completion with RGB Image and Sparse LIDAR Fusion

ICRA 2021poster

Comprehensive depth information from surrounding scenes is important for perception in autonomous driving and robots. Sparse LIDAR sensors give a low-density point cloud of the environment, but are more affordable than their high-density counterparts. In this paper, we propose a novel sensor fusion…

Cited by 6SourceScholar
2020

Depth Completion via Inductive Fusion of Planar LIDAR and Monocular Camera

IROS 2020poster

Modern high-definition LIDAR is expensive for commercial autonomous driving vehicles and small indoor robots. An affordable solution to this problem is fusion of planar LIDAR with RGB images to provide a similar level of perception capability. Even though state-of-the-art methods provide approaches…

Cited by 35SourceScholar