The focus of this paper is on the effect of muscle force optimization algorithms on the human lower limb stiffness estimation. By using a forward dynamic neuromusculoskeletal model coupled with a muscle short-range stiffness model we computed the human joint stiffness of the lower limb during running. The joint stiffness values are calculated using two different muscle force optimization procedures, namely: Toque-based and Torque/Kinematic-based algorithm. A comparison between the processed EMG signal and the corresponding estimated muscle forces with the two optimization algorithms is provided. We found that the two stiffness estimates are strongly influenced by the adopted algorithm. We observed different magnitude and timing of both the ...
The muscle-tendon unit (MTU) is the motor responsible for voluntary movement. Biomechanical properti...
This work presents a comparison between two optimization methods used to compute the muscle activati...
Subject-specific musculoskeletal models and computational walking models in general have come a long...
The dynamics of muscle force generation is directly related to the movement dynamics of the skeletal...
The human body has more muscles than Degrees of Freedom (DoF), and that leads to indeterminacy in th...
Knowledge of the musculoskeletal loading is essential for the design of orthopaedic implants and sur...
This research work presents a physiologically accurate and novel computationally fast neuromusculosk...
© 2011 Dr. Tim W. DornThe purpose of this dissertation was to investigate the biomechanics of human ...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
The aim of present study was to address limitations in model design, anatomical data, and implementa...
The muscle-tendon unit (MTU) is the motor responsible for voluntary movement. Biomechanical properti...
The human body has more muscles than degrees of freedom (DOF), which leads to indeterminacy in the m...
This is the author accepted manuscript. The final version is available from Elsevier via the DOI in ...
The muscle-tendon unit (MTU) is the motor responsible for voluntary movement. Biomechanical properti...
This work presents a comparison between two optimization methods used to compute the muscle activati...
Subject-specific musculoskeletal models and computational walking models in general have come a long...
The dynamics of muscle force generation is directly related to the movement dynamics of the skeletal...
The human body has more muscles than Degrees of Freedom (DoF), and that leads to indeterminacy in th...
Knowledge of the musculoskeletal loading is essential for the design of orthopaedic implants and sur...
This research work presents a physiologically accurate and novel computationally fast neuromusculosk...
© 2011 Dr. Tim W. DornThe purpose of this dissertation was to investigate the biomechanics of human ...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
Computational methods to estimate muscle forces during walking are becoming more common in biomechan...
The aim of present study was to address limitations in model design, anatomical data, and implementa...
The muscle-tendon unit (MTU) is the motor responsible for voluntary movement. Biomechanical properti...
The human body has more muscles than degrees of freedom (DOF), which leads to indeterminacy in the m...
This is the author accepted manuscript. The final version is available from Elsevier via the DOI in ...
The muscle-tendon unit (MTU) is the motor responsible for voluntary movement. Biomechanical properti...
This work presents a comparison between two optimization methods used to compute the muscle activati...
Subject-specific musculoskeletal models and computational walking models in general have come a long...