Literature DB >> 23445050

Flexing computational muscle: modeling and simulation of musculotendon dynamics.

Matthew Millard1, Thomas Uchida, Ajay Seth, Scott L Delp.   

Abstract

Muscle-driven simulations of human and animal motion are widely used to complement physical experiments for studying movement dynamics. Musculotendon models are an essential component of muscle-driven simulations, yet neither the computational speed nor the biological accuracy of the simulated forces has been adequately evaluated. Here we compare the speed and accuracy of three musculotendon models: two with an elastic tendon (an equilibrium model and a damped equilibrium model) and one with a rigid tendon. Our simulation benchmarks demonstrate that the equilibrium and damped equilibrium models produce similar force profiles but have different computational speeds. At low activation, the damped equilibrium model is 29 times faster than the equilibrium model when using an explicit integrator and 3 times faster when using an implicit integrator; at high activation, the two models have similar simulation speeds. In the special case of simulating a muscle with a short tendon, the rigid-tendon model produces forces that match those generated by the elastic-tendon models, but simulates 2-54 times faster when an explicit integrator is used and 6-31 times faster when an implicit integrator is used. The equilibrium, damped equilibrium, and rigid-tendon models reproduce forces generated by maximally-activated biological muscle with mean absolute errors less than 8.9%, 8.9%, and 20.9% of the maximum isometric muscle force, respectively. When compared to forces generated by submaximally-activated biological muscle, the forces produced by the equilibrium, damped equilibrium, and rigid-tendon models have mean absolute errors less than 16.2%, 16.4%, and 18.5%, respectively. To encourage further development of musculotendon models, we provide implementations of each of these models in OpenSim version 3.1 and benchmark data online, enabling others to reproduce our results and test their models of musculotendon dynamics.

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Year:  2013        PMID: 23445050      PMCID: PMC3705831          DOI: 10.1115/1.4023390

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  51 in total

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9.  Mechanical properties of rat soleus after long-term spinal cord transection.

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10.  Optimality principles for model-based prediction of human gait.

Authors:  Marko Ackermann; Antonie J van den Bogert
Journal:  J Biomech       Date:  2010-01-13       Impact factor: 2.712

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  93 in total

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2.  Incorporating Six Degree-of-Freedom Intervertebral Joint Stiffness in a Lumbar Spine Musculoskeletal Model-Method and Performance in Flexed Postures.

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3.  The Influence of Component Alignment and Ligament Properties on Tibiofemoral Contact Forces in Total Knee Replacement.

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4.  Full-Body Musculoskeletal Model for Muscle-Driven Simulation of Human Gait.

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5.  Is my model good enough? Best practices for verification and validation of musculoskeletal models and simulations of movement.

Authors:  Jennifer L Hicks; Thomas K Uchida; Ajay Seth; Apoorva Rajagopal; Scott L Delp
Journal:  J Biomech Eng       Date:  2015-01-26       Impact factor: 2.097

6.  Passive cervical spine ligaments provide stability during head impacts.

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7.  Comparison of human gastrocnemius forces predicted by Hill-type muscle models and estimated from ultrasound images.

Authors:  Taylor J M Dick; Andrew A Biewener; James M Wakeling
Journal:  J Exp Biol       Date:  2017-02-15       Impact factor: 3.312

8.  Metabolic cost underlies task-dependent variations in motor unit recruitment.

Authors:  Adrian K M Lai; Andrew A Biewener; James M Wakeling
Journal:  J R Soc Interface       Date:  2018-11-21       Impact factor: 4.118

9.  Why are Antagonist Muscles Co-activated in My Simulation? A Musculoskeletal Model for Analysing Human Locomotor Tasks.

Authors:  Adrian K M Lai; Allison S Arnold; James M Wakeling
Journal:  Ann Biomed Eng       Date:  2017-09-12       Impact factor: 3.934

10.  Role of muscle damage on loading at the level adjacent to a lumbar spine fusion: a biomechanical analysis.

Authors:  Masoud Malakoutian; John Street; Hans-Joachim Wilke; Ian Stavness; Marcel Dvorak; Sidney Fels; Thomas Oxland
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