Human bipedal gait requires active control of mediolateral dynamic balance to stay upright. The margin of stability is considered a measure of dynamic balance, and larger margins are by many authors assumed to reflect better balance control. The inverted pendulum model of gait indicates that changes in the mediolateral margin of stability are related to changes in bilateral single support times. We propose updated equations for the mediolateral margin of stability in temporally symmetric and asymmetric gait, which now include the single support times of both legs. Based on these equations, we study the relation between bilateral single support times and the mediolateral margin of stability in symmetric, asymmetric, and adaptive human gait. ...
Centre of mass (CoM) motion during human balance recovery is largely influenced by the ground reacti...
Typical healthy walking displays greater variability in the mediolateral direction compared to the a...
Recovery from perturbations during walking is primarily mediated by reactive control strategies that...
Human bipedal gait requires active control of mediolateral dynamic balance to stay upright. The marg...
Human bipedal gait is inherently unstable, and staying upright requires adaptive control of dynamic ...
We measured variability of foot placement during gait to test whether lateral balance must be active...
Vestibular information is critical for maintaining balance during locomotion, and is known to be att...
The ability to maintain dynamic balance in response to unexpected perturbations during walking is la...
The maintenance of balance during locomotion requires control of anteroposterior and mediolateral po...
International audienceDuring voluntary stepping initiation, postural stability along the mediolatera...
We investigated mediolateral dynamic stability at first foot off and first initial contact during ga...
Gait asymmetry resulting from neurological injury is more costly and less stable than healthy gait. ...
Integration of accurate vestibular, visual, and proprioceptive information is crucial in managing th...
BACKGROUND: Control of dynamic balance in human walking is essential to remain stable and can be par...
It is still unclear how humans control mediolateral (ML) stability in walking and even more so for r...
Centre of mass (CoM) motion during human balance recovery is largely influenced by the ground reacti...
Typical healthy walking displays greater variability in the mediolateral direction compared to the a...
Recovery from perturbations during walking is primarily mediated by reactive control strategies that...
Human bipedal gait requires active control of mediolateral dynamic balance to stay upright. The marg...
Human bipedal gait is inherently unstable, and staying upright requires adaptive control of dynamic ...
We measured variability of foot placement during gait to test whether lateral balance must be active...
Vestibular information is critical for maintaining balance during locomotion, and is known to be att...
The ability to maintain dynamic balance in response to unexpected perturbations during walking is la...
The maintenance of balance during locomotion requires control of anteroposterior and mediolateral po...
International audienceDuring voluntary stepping initiation, postural stability along the mediolatera...
We investigated mediolateral dynamic stability at first foot off and first initial contact during ga...
Gait asymmetry resulting from neurological injury is more costly and less stable than healthy gait. ...
Integration of accurate vestibular, visual, and proprioceptive information is crucial in managing th...
BACKGROUND: Control of dynamic balance in human walking is essential to remain stable and can be par...
It is still unclear how humans control mediolateral (ML) stability in walking and even more so for r...
Centre of mass (CoM) motion during human balance recovery is largely influenced by the ground reacti...
Typical healthy walking displays greater variability in the mediolateral direction compared to the a...
Recovery from perturbations during walking is primarily mediated by reactive control strategies that...