Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of underlying systems in standing balance. We investigated whether taking into account lower leg muscle activation in CLSIT could improve the reliability and accuracy of estimated parameters identifying the underlying systems. Methods: Standing balance behaviour of 20 healthy young participants was measured using continuous rotations of the support surface (SS). The dynamic balance behaviour obtained with CLSIT was expressed by sensitivity functions of the ankle torque, body sway and muscle activation of the lower legs to the SS rotation. Balance control models, 1) without activation dynamics, 2) with activation dynamics and 3) with activation ...
This thesis provides insight and novel tools for investigation into the neuromotor control of human ...
Background: Upright standing requires control of an inherently unstable multi-joint...
Background: Upright standing requires control of an inherently unstable multi-joint...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
BACKGROUND: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Abstract Background Closed loop system identification (CLSIT) is a method to disentangle the contrib...
Contains fulltext : 176899.pdf (publisher's version ) (Open Access)BACKGROUND: Clo...
Even though maintaining upright quiet stance might be considered by humans as a trivial task, it req...
The goal was to identify the contribution of intrinsic mechanical properties of the muscular-skeleta...
Introduction: System identification of the neuromuscular controller that regulates human balance, gi...
Balance control involves the contribution of neural, muscular and sensory systems, which work togeth...
Balance control involves the contribution of neural, muscular and sensory systems, which work togeth...
This thesis provides insight and novel tools for investigation into the neuromotor control of human ...
Background: Upright standing requires control of an inherently unstable multi-joint...
Background: Upright standing requires control of an inherently unstable multi-joint...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Background: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
BACKGROUND: Closed loop system identification (CLSIT) is a method to disentangle the contribution of...
Abstract Background Closed loop system identification (CLSIT) is a method to disentangle the contrib...
Contains fulltext : 176899.pdf (publisher's version ) (Open Access)BACKGROUND: Clo...
Even though maintaining upright quiet stance might be considered by humans as a trivial task, it req...
The goal was to identify the contribution of intrinsic mechanical properties of the muscular-skeleta...
Introduction: System identification of the neuromuscular controller that regulates human balance, gi...
Balance control involves the contribution of neural, muscular and sensory systems, which work togeth...
Balance control involves the contribution of neural, muscular and sensory systems, which work togeth...
This thesis provides insight and novel tools for investigation into the neuromotor control of human ...
Background: Upright standing requires control of an inherently unstable multi-joint...
Background: Upright standing requires control of an inherently unstable multi-joint...