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Evaluating the importance of load and morphology to regional tibial strength
Ting Long1, Ted Yeung1, Thor F Besier1,2
1Auckland Bioengineering Institute, University of Auckland, Auckland, New Zealand.
Abstract:
Monitoring tibial bone strength is critical for assessing fatigue fracture risk. This study aimed to evaluate the contributions of morphological features, muscle forces, and ankle contact forces to tibial stress-strain distribution and to analyse the effect of feature quantity on tibial stress-strain prediction accuracy. Tibial cortical morphologies were described using a statistical shape model based on CT scans from 40 young males. Regional stress-strains were calculated via finite element analysis (FEA), with loads estimated from optical motion capture data across six activities. Variable Importance in Projection (VIP) scores using a Partial Least Squares Regression (PLSR) model were employed to evaluate the importance of load and morphological features. The anterior-posterior (2.15 ~ 2.44) and vertical (1.74 ~ 2.34) components of ankle contact forces showed the highest VIP scores to stress-strain in high-risk regions. Using only ankle joint contact forces (anterior-posterior and vertical components) as predictors, the PLSR model achieved a mean R2 of 0.79 ~ 0.83 and RMSE < 5% for von Mises stress, tensile strain, and compressive strain. Ankle contact forces are the primary contributors to tibial stress-strain distribution and can effectively predict stress-strain in high-risk regions using the PLSR approach.
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