Skeletal forces are fundamental information in predicting the risk of bone fracture. The neuromotor control system can drive muscle forces with various task- and health-dependent strategies but current modelling techniques provide a single optimal solution of the muscle load sharing problem. The aim of the present work was to study the variability of the hip load magnitude due to sub-optimal neuromotor control strategies using a subject-specific musculoskeletal model. The model was generated from computed tomography (CT) and dissection data from a single cadaver. Gait kinematics, ground forces and electromyographic (EMG) signals were recorded on a body-matched volunteer. Model results were validated by comparing the traditional optimisation...
Hip osteoarthritis may be caused by increased or abnormal intra-articular forces, which are known to...
Predicting the movements, ground reaction forces and neuromuscular activity during gait can be a val...
In the last two decades, in silico approaches based on neuromusculoskeletal modeling and simulation ...
Skeletal forces are fundamental information in predicting the risk of bone fracture. The neuromotor ...
Inverse dynamics problems are usually solved in the analysis of human gait to obtain reaction forces...
Abnormal hip joint contact forces (HJCF) are considered a primary mechanical contributor to the prog...
In-vivo hip joint contact forces (HJCF) can be estimated using computational neuromusculoskeletal (N...
Knowledge of the musculoskeletal loading is essential for the design of orthopaedic implants and sur...
Pain, injuries or diseases might affect how we (are able to) coordinate movement. Therefore, an in-d...
In musculoskeletal modelling, several optimization techniques are used to calculate muscle forces, w...
BACKGROUND: Biological massive skeletal reconstructions in tumours adopt a long rehabilitation pr...
In this paper, we present an under-actuated model of human walking, comprising only a soleus muscle ...
In the context of neuro-orthopedic pathologies affecting walking and thus patients' quality of life,...
The weakness of hip abductor muscles is related to lower-limb joint osteoarthritis, and joint overlo...
Background: Rehabilitation after neurologic injury is dependent upon having knowledge of mechanisms ...
Hip osteoarthritis may be caused by increased or abnormal intra-articular forces, which are known to...
Predicting the movements, ground reaction forces and neuromuscular activity during gait can be a val...
In the last two decades, in silico approaches based on neuromusculoskeletal modeling and simulation ...
Skeletal forces are fundamental information in predicting the risk of bone fracture. The neuromotor ...
Inverse dynamics problems are usually solved in the analysis of human gait to obtain reaction forces...
Abnormal hip joint contact forces (HJCF) are considered a primary mechanical contributor to the prog...
In-vivo hip joint contact forces (HJCF) can be estimated using computational neuromusculoskeletal (N...
Knowledge of the musculoskeletal loading is essential for the design of orthopaedic implants and sur...
Pain, injuries or diseases might affect how we (are able to) coordinate movement. Therefore, an in-d...
In musculoskeletal modelling, several optimization techniques are used to calculate muscle forces, w...
BACKGROUND: Biological massive skeletal reconstructions in tumours adopt a long rehabilitation pr...
In this paper, we present an under-actuated model of human walking, comprising only a soleus muscle ...
In the context of neuro-orthopedic pathologies affecting walking and thus patients' quality of life,...
The weakness of hip abductor muscles is related to lower-limb joint osteoarthritis, and joint overlo...
Background: Rehabilitation after neurologic injury is dependent upon having knowledge of mechanisms ...
Hip osteoarthritis may be caused by increased or abnormal intra-articular forces, which are known to...
Predicting the movements, ground reaction forces and neuromuscular activity during gait can be a val...
In the last two decades, in silico approaches based on neuromusculoskeletal modeling and simulation ...