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Updated: Sep 18, 2025

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Published on: April 11, 2018
An Electromyography-Assisted Musculoskeletal Simulation With Concurrent Optimization of Muscle Excitations and Knee
Amir Esrafilian1,2, Colin Smith3, Jere Lavikainen4,2
1Department of Technical Physics, University of Eastern Finland, Yliopistonranta 8, P.O. Box 1627, Kuopio FI-70211, Finland; Department of Bioengineering, Stanford University, James H. Clark Center, 318 Campus Drive West, Stanford, CA 94305.
Abstract:
In this study, we developed and validated an electromyography (EMG)-assisted musculoskeletal (MSK) simulation method with concurrent optimization of knee kinematics and muscle excitations. The musculoskeletal model had a 12 degree-of-freedom (DoF) knee joint with personalized articulating surfaces. First, model's muscle parameters underwent calibration, followed by the EMG-assisted analysis. We compared estimated knee biomechanics against four other simulation approaches, i.e., a 12DoF knee model with either (1) uncalibrated EMG-assisted and (2) static-optimization (SO) neural solution; and a conventional 1DoF knee model with either (3) EMG-assisted or (4) SO neural solution. The performance of the models was assessed against in vivo measured values from two grand challenge datasets. For estimated muscle excitations and joint contact force (JCF), the EMG-assisted models outperformed the SO solutions. Compared to the EMG-assisted 1DoF knee, using EMG-assisted 12DoF knee improved estimation of muscle excitations, joint moments, and transverse tibiofemoral JCF to a greater extent than compressive tibiofemoral JCF. To estimate compressive tibiofemoral JCF (during walking), the EMG-assisted model with a personalized 1DoF knee may suffice. However, the EMG-assisted 12DoF knee model is recommended for a more accurate estimation of joint moments, muscle forces, and compressive and transverse tibiofemoral JCF, especially when these quantities can be affected, e.g., due to musculoskeletal disorders. The developed simulation method provides a viable approach for estimating knee biomechanics accounting for personalized muscle excitation strategy and knee articulating geometries.
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