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Wheel-AINS: A Vehicle Autonomous Positioning System Based on a Wheel-Mounted MIMU Array
Guangmin Yuan1, Guoyuan He2, Xiangyang Guo3
1MOE Key Laboratory of Micro and Nano Systems for Aerospace, Northwestern Polytechnical University, Xi'an 710072, China.
This study introduces a low-cost Wheel-AINS using microelectromechanical systems inertial measurement unit arrays for vehicle autonomous positioning in GPS-denied areas. The novel system significantly reduces position drift and enhances navigation accuracy.
Area of Science:
- Robotics and Autonomous Systems
- Navigation and Positioning
- Sensor Fusion
Background:
- High-precision vehicle autonomous positioning is challenging in satellite-denied environments (urban canyons, tunnels).
- Low-cost microelectromechanical systems inertial measurement units (MIMUs) are alternatives to expensive IMUs but suffer from noise and bias instability, leading to navigation errors.
- Existing solutions struggle with sustained autonomous navigation accuracy due to error divergence in single MIMU systems.
Purpose of the Study:
- To propose and validate a novel autonomous positioning system, the Wheel-AINS, utilizing a wheel-mounted MIMU array for enhanced vehicle navigation.
- To address the limitations of single MIMUs by employing differential fusion and kinematic constraints for improved accuracy and reduced cost.
- To provide a viable technical pathway for long-endurance vehicle navigation in satellite-denied environments.
Main Methods:
- Developed a Wheel-AINS employing a differential layout with multiple low-cost MIMU chips on rear wheels for redundant sensor arrays.
- Implemented differential fusion of symmetrically mounted chips to cancel common-mode noise and zero bias, using wheel rotation for speed estimation.
- Integrated estimated wheel speed and vehicle kinematic constraints within a Kalman filter framework to suppress inertial navigation system error divergence.
Main Results:
- The Wheel-AINS achieved an average position drift rate of 0.50% and an average heading Root Mean Square Error (RMSE) of 12.2° in urban road tests.
- Demonstrated an 80% reduction in closure error for a 2.49 km trajectory (10.43 m) compared to a single MIMU system.
- Ablation experiments showed MIMU array fusion reduced position RMSE from 155.0 m to 10.1 m; dual-wheel constraint further improved it to 8.2 m.
Conclusions:
- The proposed Wheel-AINS significantly enhances autonomous positioning accuracy in satellite-denied environments using low-cost MIMUs.
- Differential fusion and kinematic constraints effectively mitigate MIMU limitations, offering a cost-effective solution for vehicle navigation.
- The system presents a practical and robust approach for long-term autonomous navigation, overcoming challenges in GPS-unavailable conditions.
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