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Jingping Wang

5 accepted papers

2026

Gallant: Voxel Grid-based Humanoid Locomotion and Local-navigation across 3-D Constrained Terrains

CVPR 2026

Robust humanoid locomotion requires accurate and globally consistent perception of the surrounding 3D environment. However, existing perception modules, mainly based on depth images or elevation maps, offer only partial and locally flattened views of the environment, failing to capture the full 3D s

Cited by 0SourcecodeScholar
2024

Multi-Fov-Constrained Trajectory Planning for Multirotor Safe Landing

IROS 2024poster

In recent years, multirotors have become more and more widely used, such as in aerial photography and delivery. Ensuring a safe landing in emergencies is the most basic requirement, and it is important to make full use of all the sensors of the multirotor. To improve the safety of UAV landing in unk…

Cited by 0SourceScholar
2023

Continuous Implicit SDF Based Any-Shape Robot Trajectory Optimization

IROS 2023poster

Optimization-based trajectory generation methods are widely used in whole-body planning for robots. However, existing work either oversimplifies the robot's geometry and environment representation, resulting in a conservative trajectory or suffers from a huge overhead in maintaining additional infor…

Cited by 11SourcecodeScholar
2023

Decentralized Planning for Car-Like Robotic Swarm in Cluttered Environments

IROS 2023poster

Robot swarm is a hot spot in robotic research community. In this paper, we propose a decentralized framework for car-like robotic swarm which is capable of real-time planning in cluttered environments. In this system, path finding is guided by environmental topology information to avoid frequent top…

Cited by 11SourcecodeScholar
2023

Towards Efficient Trajectory Generation for Ground Robots beyond 2D Environment

ICRA 2023poster

With the development of robotics, ground robots are no longer limited to planar motion. Passive height variation due to complex terrain and active height control provided by special structures on robots require a more general navigation planning framework beyond 2D. Existing methods rarely considers…

Cited by 15SourcecodeScholar