Validation and Comparison of Instrumented Mouthguards for Measuring Head Kinematics and Assessing Brain Deformation in Football Impacts
arXiv:2008.01903 · doi:10.1007/s10439-020-02629-3
Abstract
Because of the relatively rigid coupling between the upper dentition and the skull, instrumented mouthguards have been shown to be a viable way of measuring head impact kinematics for assisting in understanding the underlying biomechanics of concussions. This has led various companies and institutions to further develop instrumented mouthguards. However, their use as a research tool for understanding concussive impacts makes quantification of their accuracy critical, especially given the conflicting results from various recent studies. Here we present a study that uses a pneumatic impactor to deliver impacts characteristic to football to a Hybrid III headform, in order to validate and compare five of the most commonly used instrumented mouthguards. We found that all tested mouthguards gave accurate measurements for the peak angular acceleration (mean relative error, MRE < 13%), the peak angular velocity (MRE < 8%), brain injury criteria values (MRE < 13%) and brain deformation (described as maximum principal strain and fiber strain, calculated by a convolutional neural network based brain model, MRE < 9%). Finally, we found that the accuracy of the measurement varies with the impact locations yet is not sensitive to the impact velocity for the most part.
Annals of Biomedical Engineering: Concussion Biomechanics in Football
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- Physics-informed machine learning improves detection of head impacts
- Data-driven decomposition of brain dynamics with principal component analysis in different types of head impacts
- Frequency content and filtering of head sensor kinematics: A method to enable field-based inter-study comparisons
- Kinematics clustering enables head impact subtyping for better traumatic brain injury prediction
- Denoising instrumented mouthguard measurements of head impact kinematics with a convolutional neural network
- Toward more accurate and generalizable brain deformation estimators for traumatic brain injury detection with unsupervised domain adaptation
- Time Window of Head Impact Kinematics Measurement for Calculation of Brain Strain and Strain Rate in American Football
- Identification of head impact locations, speeds, and force based on head kinematics
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