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Updated: Oct 2, 2026

An Inertial Measurement Unit Based Method to Estimate Hip and Knee Joint Kinematics in Team Sport Athletes on the Field
Published on: May 26, 2020
Estimating Linear and Rotational Head Kinematics in Ice Hockey from a Single Helmet-Mounted IMU Using Vector
Dario Sciacca1, Anisoara Ionescu2
1Signal Processing Laboratory 5, Swiss Federal School of Technology (EPFL), 1015, Lausanne, Switzerland. dario.sciacca@epfl.ch.
Purpose:
Accurate estimation of head kinematics is critical for assessing brain injury risk in contact sports. This study introduces a Vector AutoRegressive (VAR) framework to jointly model linear acceleration and angular velocity during head impacts, capturing the inherent coupling between translational and rotational dynamics.
Methods:
Controlled impacts were performed on a helmeted Hybrid III 50th percentile male headform using a pendulum impactor across multiple locations (front, front-oblique, side, rear-oblique) and three impact intensities (30°, 50°, 70° pendulum angles). Helmet-mounted Inertial Measurement Unit (IMU) signals were processed using VAR models trained on reference headform data at 30° and 50° impacts. The proposed framework was also evaluated for the estimation of head kinematics at untrained impact intensities (70°).
Results:
At the trained intensities, the VAR approach generally improved angular velocity reconstruction across impact configurations, with PMPE and RMSE reductions of up to 20.9 pp (-81.1%) and 288.8 °/s (-85.7%), respectively, at 30°. Linear acceleration improvements were more limited, with PMPE and RMSE reductions of up to 171.8 pp (-85.7%) and 10.9 g (-74.8%), also at 30°. At the untrained 70° intensity, angular velocity PMPE decreased at all locations but significantly only at the front-oblique, while RMSE decreased significantly at the front and front-oblique (up to - 341.1 °/s, - 52.2%). In contrast, linear acceleration PMPE degraded at all locations, increasing by up to 68.6 pp (+726.4%), while RMSE showed either deterioration or non-significant improvement.
Conclusion:
In conclusion, the VAR modeling framework offers a promising multivariate approach for reconstructing head impact kinematics from a single IMU-instrumented helmet. However, limited generalization to higher, untrained intensities highlights the need for further development before real-time head injury assessment can be supported.
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