Abstract
This paper presents a Kalman filter based LiDAR-Inertial-Leg Odometry (KLILO) system for legged robots to navigate in challenging environments. In particular, we employ the iterated error-state extended Kalman filter framework on manifolds to fuse measurements from the inertial measurement unit (IMU), LiDAR, joint encoders, and contact force sensors in a tightly coupled manner. To assess the performance of KLILO, we build a dataset that encompasses intricate environments with challenging conditions such as dynamic objects and deformable terrains. The results demonstrate that our algorithm can provide efficient and reliable localization in all tests. It exhibits an average improvement of around 40% in positioning accuracy compared to the baselines. Furthermore, we validate KLILO in a challenging navigation task on a real robot, where the LiDAR encounters ineffective measurements. © 2024 IEEE.
| Original language | English |
|---|---|
| Title of host publication | 2024 IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS '24 |
| Publisher | IEEE |
| Pages | 12487-12492 |
| ISBN (Electronic) | 9798350377705 |
| ISBN (Print) | 9798350377712 |
| DOIs | |
| Publication status | Published - 2024 |
| Event | 2024 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS 2024): Collaboration for a Sustainable Future - ADNEC Centre Abu Dhabi, Abu Dhabi, United Arab Emirates Duration: 14 Oct 2024 → 18 Oct 2424 https://iros2024-abudhabi.org/ |
Publication series
| Name | IEEE International Conference on Intelligent Robots and Systems |
|---|---|
| ISSN (Print) | 2153-0858 |
| ISSN (Electronic) | 2153-0866 |
Conference
| Conference | 2024 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS 2024) |
|---|---|
| Abbreviated title | IROS '24 |
| Place | United Arab Emirates |
| City | Abu Dhabi |
| Period | 14/10/24 → 18/10/24 |
| Internet address |
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