A novel IMU extrinsic calibration method for mass production land vehicles

Rodrigo Marco V, Kalkkuhl J, Raisch J, Seel T (2021)


Publication Type: Journal article

Publication year: 2021

Journal

Book Volume: 21

Pages Range: 1-30

Article Number: 7

Journal Issue: 1

DOI: 10.3390/s21010007

Abstract

Multi-modal sensor fusion has become ubiquitous in the field of vehicle motion estimation. Achieving a consistent sensor fusion in such a set-up demands the precise knowledge of the mis-alignments between the coordinate systems in which the different information sources are expressed. In ego-motion estimation, even sub-degree misalignment errors lead to serious performance degrada-tion. The present work addresses the extrinsic calibration of a land vehicle equipped with standard production car sensors and an automotive-grade inertial measurement unit (IMU). Specifically, the article presents a method for the estimation of the misalignment between the IMU and vehicle coordinate systems, while considering the IMU biases. The estimation problem is treated as a joint state and parameter estimation problem, and solved using an adaptive estimator that relies on the IMU measurements, a dynamic single-track model as well as the suspension and odometry systems. Additionally, we show that the validity of the misalignment estimates can be assessed by identifying the misalignment between a high-precision INS/GNSS and the IMU and vehicle coordinate systems. The effectiveness of the proposed calibration procedure is demonstrated using real sensor data. The results show that estimation accuracies below 0.1 degrees can be achieved in spite of moderate variations in the manoeuvre execution.

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APA:

Rodrigo Marco, V., Kalkkuhl, J., Raisch, J., & Seel, T. (2021). A novel IMU extrinsic calibration method for mass production land vehicles. Sensors, 21(1), 1-30. https://doi.org/10.3390/s21010007

MLA:

Rodrigo Marco, Vicent, et al. "A novel IMU extrinsic calibration method for mass production land vehicles." Sensors 21.1 (2021): 1-30.

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